This paper investigates the influence of using a lightweight aggregate called “Diatomite” in hollow masonry (i.e. cement) blocks for bushfire resistance.
One of the 100-block series category (i.e. 90 mm thick) hollow masonry blocks were fabricated using a diatomite fine aggregate-based cement mix (i.e. cement-sand-diatomite mix). Properties of the mixed ingredients were determined, and the cement-sand-diatomite mix were developed based on the absolute volume method. After 28 days of curing, tests were conducted on hollow blocks, including density, compressive strength, bushfire and building fire resistance, and the results were compared with those of the cement-sand (standard) mix hollow block and one of the commercially available hollow blocks.
The newly developed diatomite mix hollow block satisfies the density requirement for ultra-lightweight masonry units and the strength requirement for loadbearing hollow masonry units. It is the only block that complied with the temperature limit for unguarded interior surfaces of bushfire shelters and showed one-hour additional building fire resistance (−/120/120) than that of cement-sand mix (−/60/60) and commercial hollow blocks (−/60/60).
The diatomite mix hollow block developed in this research can be suggested as a suitable loadbearing lightweight hollow masonry block for bushfire shelters and external walls of the buildings in bushfire-prone areas.
Limited studies are available for hollow masonry blocks in relation to their bushfire and building fire resistance.
1. Introduction
Many countries that experience very hot and dry weather conditions, such as Australia, the United States, Greece, Africa and Russia, have suffered from bushfires for centuries. A bushfire is an unplanned and uncontrollable fire that ignites naturally through lightning or artificially through deliberate lighting (Willis, 2005). It plays a vital role in the ecology and helps to provide necessary nutrients to many native plant species (Beringer, 2000). However, on the other hand, severe bushfires have become a significant threat to the residents who live along the urban bushland interface by losing their lives, properties and livestock.
People who appreciate the natural setting make their settlements at the urban bushland interface, and these settlements are continued to increase despite the fire risk. Therefore, necessary measures should be taken to reduce their vulnerability to bushfires. A properly designed, constructed and maintained house is one of the possible options to defend themselves from bushfires (ACT Emergency Services Agency, 2009). Even though people could not evacuate well in advance for many reasons, it acts as a safe refuge during the fire-front passage. Otherwise, last-minute evacuation results in many fatalities due to flames, embers, intense heat, smoke, vehicle accidents, etc (Haynes et al., 2010). Also, when people do shelter inside their houses, they can actively attend to protect their properties after the fire front passes.
Having bushfire resistance building materials in buildings is essential in developing a well-prepared house to defend from bushfires. Special attention needs to be offered to the external wall element of the house, as it is the component that is massively exposed to embers, radiant heat and direct flames of bushfires.
On the other hand, external wall is vital in building energy consumption. Much energy is dissipated through the exterior wall, as it is the most significant building element separating the indoor and outdoor environment. Therefore, hollow masonry block application is practiced in construction, as they provide good thermal and sound insulation. Although it has a lower thermal mass than the solid block due to its cavities, its thermal transfer is lower, as the thermal transmission of air is much lower. Therefore, no additional insulation materials are required. Also, it is environmentally friendly due to less material usage. Due to its lightweight characteristics, it reduces the construction cost and enhances the productivity of masons (i.e. labour hours).
Because of these inherited advantages of hollow masonry blocks, research has been conducted to enhance the properties of conventional hollow masonry blocks, so their application in the construction industry is assured (Gunduz, 2008; Kumar, 2003; Ali et al., 2020; Mohammed et al., 2012; Popoola et al., 2015; Xie et al., 2021; Al-Tamimi et al., 2020). One of the methods is combining new materials at suitable proportions. Gunduz (2008) produced 15–35% lighter hollow blocks than the standard weight blocks by mixing scoria, pumice, fly ash and cement. Kumar (2003) developed fly ash-lime-phosphogypsum hollow blocks that are lightweight and have sufficient strength. In some studies, conventional materials used in producing hollow blocks were replaced with new natural and waste materials. Ali et al. (2020) replaced sand in the mixture with expanded polystyrene (EPS) crumbles and produced lightweight hollow blocks for non-loadbearing applications. For example, the weight and net compressive strength of the control blocks were 23.5 kg and 9.5 MPa, respectively, while they were 6.9–2.4 MPa and 19.5–10.6 kg in EPS blocks. In contrast, a loadbearing hollow block was cast by replacing fine aggregates in the block mixture with crumb rubber (Mohammed et al., 2012). The newly developed block was not only loadbearing but also lightweight and had good thermal, acoustic and electrical properties. In another study, cement was replaced by sawdust ash to produce a new hollow block (Popoola et al., 2015). It is commonly observed in all the above studies that the higher the replacement content (i.e. EPS, rubber or sawdust), the lower the strength and density of the block. On the other hand, Xie et al. (2021) developed a lightweight and thermally insulating hollow block by replacing cement, natural sand and coarse aggregates with ground granulated blast furnace slag, fine recycled aggregates from demolished waste concrete blocks and sludge ceramsite, respectively. The new block’s density, compressive strength, water absorption and thermal resistance coefficient were 920 kg/m3, 3.6 MPa, 12.3% and 0.884 m2k/W, respectively. In contrast to all these studies, Al-Tamimi et al. (2020) investigates a way to reduce the heat flow of the block by changing the cavity geometry and its layout. The thermal conductivity of the hollow blocks with the optimum cavity design was 0.460 W/mK, whereas it is 1.6 W/mK in regular concrete hollow blocks. Also, they investigated that this value can be further reduced by replacing the aggregates in the block mix with an insulating material such as perlite, polyethylene and rubber.
In summary, it can be concluded that new hollow masonry blocks have been developed by adding new materials and changing the geometry of the block/cavities. The commonly examined properties were density, compressive strength, water absorption, durability and thermal conductivity of the block. No experimental studies have been conducted to investigate the bushfire resistance of conventional hollow masonry blocks and the effect of adding a lightweight aggregate into the block mix for the bushfire resistance.
Among the lightweight aggregates, diatomite is one of the natural aggregates available in countries that suffer from bushfires. Diatomite is made from a unicellular aquatic plant called “Diatoms”. They produce their skeletal structure by extracting silica from water. Hence diatomite is abundantly found in lakes in volcanic environments. Once the diatoms died, they deposited, fossilized and compressed into a rock called “diatomaceous earth or diatomite”. It is white, yellowish, grey, light grey and sometimes dark grey in colour. Also, it is lightweight due to its cellular structure with high porosity (Figure 1). The bulk density of diatomite ranges between 417 and 600 kg/m3. Further, it has a lower thermal conductivity value of 0.05–0.1 W/mK. Due to their unique properties, diatomite aggregates are mostly used in building construction as insulation, filtration material and fillers (Topçu and Uygunoğlu, 2007; Posi et al., 2013; Ivanov and Belyakov, 2008; Ahmadi et al., 2018).
On the left, a photograph shows various small, irregularly shaped diatomite particles in shades of beige, brown, and gray. On the right, labeled “Microscopic view,” is the grayscale Scanning Electron Microscope (SEM) image at 13.8 k magnification, showing intricate porous, cylindrical, and circular structures densely packed together with visible surface textures and perforations. The SEM image displays measurement scales along the bottom edge, with SEM HV: 5.0 kilovolts, SEM MAG: 13.8 kx, WD: 10.00 millimeters, Det: SE, and a scale bar marked at 5 micrometers.Diatomite aggregate
On the left, a photograph shows various small, irregularly shaped diatomite particles in shades of beige, brown, and gray. On the right, labeled “Microscopic view,” is the grayscale Scanning Electron Microscope (SEM) image at 13.8 k magnification, showing intricate porous, cylindrical, and circular structures densely packed together with visible surface textures and perforations. The SEM image displays measurement scales along the bottom edge, with SEM HV: 5.0 kilovolts, SEM MAG: 13.8 kx, WD: 10.00 millimeters, Det: SE, and a scale bar marked at 5 micrometers.Diatomite aggregate
This study aimed to develop a hollow masonry (i.e. cement) block by adding one of the lightweight aggregates (i.e. diatomite) into a cement-sand mix and investigate its influence on the bushfire resistance of hollow masonry blocks. First, the properties of cement, sand and diatomite aggregate are presented. Second, the mix proportions, the geometry of the block and casting details are described. Then details of test procedures and test results of hardened hollow blocks, such as density, compressive strength, bushfire and building fire resistance, are presented and discussed. Here the presented test results include one of the commercially available hollow masonry blocks.
2. Experimental study
2.1 Materials
Hollow masonry block mixes were developed using general-purpose cement (28-day strength of 49 MPa and specific gravity of 3.06), fine aggregates (i.e. commercially available sand and diatomite) and tap water (Plate 1). Diatomite aggregates were sourced from Chalkmine, Australia. The measured saturated surface dry (SSD) specific gravity values of sand and diatomite aggregates are 2.57 and 1.34, respectively (SA, 2000). Water absorption values of sand and diatomite aggregates at their SSD condition are 0.1 and 110.6%, respectively (SA, 2000). The chemical composition of materials is shown in Table 1. Figure 2 shows the average particle size distribution of fine aggregates determined based on the standards (SA, 2009). All these properties were measured using the relevant standards in this study.
At the top, the “Loading arm” is a long, cylindrical, metal piece, positioned above the other components and connected to a mechanical frame. Directly below it, the “Steel plate” is rectangular and flat, extending horizontally to provide support to the “Test specimen.” The test specimen is a rectangular, vertically oriented concrete block with clear markings visible on its surface. It rests on the “Steel base,” which is a rectangular, solid metal platform. The “Plywood strips” are thin, rectangular pieces positioned on the top and bottom sides of the test specimen horizontally. Red arrows point to each labeled part, and the background is a plain white wall.Hollow block compression test set-up. Source: Authors' own work
At the top, the “Loading arm” is a long, cylindrical, metal piece, positioned above the other components and connected to a mechanical frame. Directly below it, the “Steel plate” is rectangular and flat, extending horizontally to provide support to the “Test specimen.” The test specimen is a rectangular, vertically oriented concrete block with clear markings visible on its surface. It rests on the “Steel base,” which is a rectangular, solid metal platform. The “Plywood strips” are thin, rectangular pieces positioned on the top and bottom sides of the test specimen horizontally. Red arrows point to each labeled part, and the background is a plain white wall.Hollow block compression test set-up. Source: Authors' own work
Chemical composition of materials (% by mass)
| Component | Cement | Sand | Diatomite |
|---|---|---|---|
| Silicon dioxide (SiO2) | 19.40 | 97.62 | 84.72 |
| Aluminium oxide (Al2O3) | 4.33 | 1.14 | 3.87 |
| Ferric oxide (Fe2O3) | 3.29 | 0.38 | 2.58 |
| Calcium oxide (CaO) | 62.79 | 0.01 | 0.72 |
| Magnesium oxide (MgO) | 3.11 | 0.02 | 0.76 |
| Sodium oxide (Na2O) | 0.11 | 0.01 | 0.27 |
| Potassium oxide (K2O) | 0.66 | 0.10 | 0.10 |
| Sulphur trioxide (SO3) | 2.32 | 0.01 | 0.02 |
| LOI | 3.08 | 0.63 | 7.36 |
| Component | Cement | Sand | Diatomite |
|---|---|---|---|
| Silicon dioxide (SiO2) | 19.40 | 97.62 | 84.72 |
| Aluminium oxide (Al2O3) | 4.33 | 1.14 | 3.87 |
| Ferric oxide (Fe2O3) | 3.29 | 0.38 | 2.58 |
| Calcium oxide (CaO) | 62.79 | 0.01 | 0.72 |
| Magnesium oxide (MgO) | 3.11 | 0.02 | 0.76 |
| Sodium oxide (Na2O) | 0.11 | 0.01 | 0.27 |
| Potassium oxide (K2O) | 0.66 | 0.10 | 0.10 |
| Sulphur trioxide (SO3) | 2.32 | 0.01 | 0.02 |
| LOI | 3.08 | 0.63 | 7.36 |
The illustration displays three labeled materials on a white background. (a) shows a pile of gray powder, commonly identifiable as cement. Cement is a fine, soft powder composed primarily of ground limestone, clay, and other minerals. (b) shows a pile of fine beige to light brown granules, with small lumps. (c) shows a pile of coarse granules with a brown-yellowish coloration, identified as diatomite fine aggregate.Materials (a) Cement, (b) Sand and (c) Diatomite fine aggregate. Source: Authors' own work. Source: Authors' own work
The illustration displays three labeled materials on a white background. (a) shows a pile of gray powder, commonly identifiable as cement. Cement is a fine, soft powder composed primarily of ground limestone, clay, and other minerals. (b) shows a pile of fine beige to light brown granules, with small lumps. (c) shows a pile of coarse granules with a brown-yellowish coloration, identified as diatomite fine aggregate.Materials (a) Cement, (b) Sand and (c) Diatomite fine aggregate. Source: Authors' own work. Source: Authors' own work
2.2 Mix design
This study developed two mixes: (1) cement–sand and (2) cement–sand–diatomite mixes. Both the mixes were proportioned based on the absolute volume method. The cement to the sand ratio in the cement–sand mix at the mixing stage was 1:3, while the effective water to cement ratio was 0.6:1. Lightweight aggregate mixes are developed by replacing sand in the cement-sand mix with lightweight aggregate on an equal volume basis. This study developed a cement–sand–diatomite mix by replacing 60% sand. This was based on previous research developing various diatomite cement mixes to achieve a suitable bushfire resist solid masonry block to use as an external walling material for buildings in bushfire-prone areas (Ariyaratne et al., 2023). Mix proportions of the cement–sand and cement–sand–diatomite mixes are shown in Table 2.
Mix proportions of the cement mixes (SSD condition)
| Material | Cement-sand mix | Cement – sand – diatomite mix |
|---|---|---|
| Cement [kg/m3] | 478 | 471 |
| Sand [kg/m3] | 1,380 | 559 |
| Diatomite [kg/m3] | 0 | 437 |
| Effective Water [kg/m3] | 287 | 283 |
| Material | Cement-sand mix | Cement – sand – diatomite mix |
|---|---|---|
| Cement [kg/m3] | 478 | 471 |
| Sand [kg/m3] | 1,380 | 559 |
| Diatomite [kg/m3] | 0 | 437 |
| Effective Water [kg/m3] | 287 | 283 |
Note(s): Entrapped air content of all the mixes was assumed as 2% of the total mix volume and aggregates’ moisture content was considered in mix design calculations
2.3 Geometry of the hollow masonry block
One of the hollow blocks (i.e. 10.01 block) included in the 100-block series was fabricated in this study, where 390, 90 and 190 mm are its length, width and height, respectively. Figure 3 shows the hollow block’s geometry, cross-sectional view, and dimensions. The block’s perimeter face shell and web thickness are 25 mm and the middle web thickness is 26 mm. Commercial blocks of a similar overall geometry were also tested in this research for comparison purposes. In this paper, hollow blocks made of cement–sand mix will be referred to as standard mix hollow blocks, while those made of cement–sand–diatomite mix will be referred to as diatomite mix hollow blocks.
The vertical axis is labeled “Percentage Passing (percent),” ranging from 0 to 100 with an interval of 10. The horizontal axis is labeled “Particle size (millimeters),” ranging from 0.05 to 50 with a multiple of 10 on a logarithmic scale. The line graph compares sand and diatomite particle size distributions. The sand data are plotted as a blue line with circular markers, while the diatomite data are shown as an orange line with triangular markers. A legend at the bottom identifies the symbols and colors for sand and diatomite. The blue line starts from (0.07, 2), increases steeply through (0.3, 8) and (1.18, 60), and ends at (4.75, 100). The orange line starts from (0.075, 6), increases gradually through (0.3, 8) and (1.18, 16) and ends at (4.75, 100). Note: All the numerical data values are approximated.Average particle size distribution
The vertical axis is labeled “Percentage Passing (percent),” ranging from 0 to 100 with an interval of 10. The horizontal axis is labeled “Particle size (millimeters),” ranging from 0.05 to 50 with a multiple of 10 on a logarithmic scale. The line graph compares sand and diatomite particle size distributions. The sand data are plotted as a blue line with circular markers, while the diatomite data are shown as an orange line with triangular markers. A legend at the bottom identifies the symbols and colors for sand and diatomite. The blue line starts from (0.07, 2), increases steeply through (0.3, 8) and (1.18, 60), and ends at (4.75, 100). The orange line starts from (0.075, 6), increases gradually through (0.3, 8) and (1.18, 16) and ends at (4.75, 100). Note: All the numerical data values are approximated.Average particle size distribution
2.4 Mixing and casting procedure
Mixing and casting of the hollow blocks were performed by following the procedures given in ASTM C192/C192M-18 (ASTM, 2018), AS 1012.2–2014 (SA, 2014a) and AS 1012.8.1–2014 (SA, 2014b). Fine aggregates, cement and water were added to the pan mixer and mixed for 7 min. Since diatomite aggregate has a higher water absorption capacity, diatomite aggregate was saturated and surface dried before mixing with cement, sand and effective water. After completing the mixing, hollow blocks were cast within the next 20 min (Plate 2). The hollow block mould was prepared by assembling the foam board pieces into the block shape. The mould was filled in two layers and vibrated/compacted manually based on the slump of each mix. Filled moulds were covered and kept at room temperature (i.e. 23 ± 2 0C) for 24 h, and then specimens were removed from the moulds. Finally, all the specimens were placed inside lime-saturated water at a temperature of 23 ± 2 0C until 28 days. Plate 3 shows the cast hollow block specimens.
The top portion of the photo shows a close-up of the test specimen setup, highlighting the “rod-type thermocouple,” which is located above the specimen. The thermocouple is positioned at a slight angle and is attached to a metal component, with a red arrow pointing directly to it. The test specimen, a large rectangular block, is situated between two sides: the fire side on the left and the ambient side on the right. The test specimen is surrounded by insulating material, which is clearly visible in the photo. The specimen is placed in a vertical orientation, with its length running horizontally across the photo, and the thermocouple is positioned above it, pointed toward the middle section of the specimen. The wires from the thermocouple extend downward toward the specimen, indicating the connection for temperature measurement. In this close-up, the thermocouple appears as a thin, cylindrical metal component, which is placed just above the specimen, aligned with its center. On the right side of the photo, it displays the positions of the thermocouples on the test specimen, each labeled as follows: “F L” (Fire left), placed at the left edge of the fire side; “F M” (Fire middle), positioned in the center of the fire side; “F R” (Fire right), located at the right edge of the fire side. The diagram also shows “F C L” (Fire cavity left) and “F C R” (Fire cavity right) located in the cavities on the fire side. The “A C L” (Ambient cavity left) and “A C R” (Ambient cavity right) thermocouples are positioned in the respective cavities on the ambient side, while “A L” (Ambient left), “A M” (Ambient middle), and “A R” (Ambient right) are arranged along the left, middle, and right sections of the ambient side, respectively. At the bottom left, a close-up shows the “K-type thermocouples on the ambient side,” labeled “A L,” “A M,” and “A R.” These thermocouples are clearly marked, with “A L” placed on the leftmost edge, “A M” in the middle, and “A R” on the rightmost edge. The thermocouples are enclosed in red circles, marking their exact locations on the concrete block. Additionally, the bottom right shows another diagram, which illustrates the arrangement of the thermocouples on the block on the fire side. This diagram positions “F L,” “F M,” and “F R” along the fire side of the block. “F L” is positioned at the leftmost side, “F M” in the center, and “F R” at the rightmost side. Inside this rectangular block, there are two cavities. On the left cavity, the labels “F C L” and “A C L” are placed along the wall of the block. Similarly, on the right cavity, there are labels “F C R” and “A C R” placed along the walls. At the bottom of the block on the ambient side, the thermocouples are labeled “A L,” “A M,” and “A R,” arranged from left to right.Fire test set-up and thermocouple arrangement of the hollow blocks. Source: Authors' own work
The top portion of the photo shows a close-up of the test specimen setup, highlighting the “rod-type thermocouple,” which is located above the specimen. The thermocouple is positioned at a slight angle and is attached to a metal component, with a red arrow pointing directly to it. The test specimen, a large rectangular block, is situated between two sides: the fire side on the left and the ambient side on the right. The test specimen is surrounded by insulating material, which is clearly visible in the photo. The specimen is placed in a vertical orientation, with its length running horizontally across the photo, and the thermocouple is positioned above it, pointed toward the middle section of the specimen. The wires from the thermocouple extend downward toward the specimen, indicating the connection for temperature measurement. In this close-up, the thermocouple appears as a thin, cylindrical metal component, which is placed just above the specimen, aligned with its center. On the right side of the photo, it displays the positions of the thermocouples on the test specimen, each labeled as follows: “F L” (Fire left), placed at the left edge of the fire side; “F M” (Fire middle), positioned in the center of the fire side; “F R” (Fire right), located at the right edge of the fire side. The diagram also shows “F C L” (Fire cavity left) and “F C R” (Fire cavity right) located in the cavities on the fire side. The “A C L” (Ambient cavity left) and “A C R” (Ambient cavity right) thermocouples are positioned in the respective cavities on the ambient side, while “A L” (Ambient left), “A M” (Ambient middle), and “A R” (Ambient right) are arranged along the left, middle, and right sections of the ambient side, respectively. At the bottom left, a close-up shows the “K-type thermocouples on the ambient side,” labeled “A L,” “A M,” and “A R.” These thermocouples are clearly marked, with “A L” placed on the leftmost edge, “A M” in the middle, and “A R” on the rightmost edge. The thermocouples are enclosed in red circles, marking their exact locations on the concrete block. Additionally, the bottom right shows another diagram, which illustrates the arrangement of the thermocouples on the block on the fire side. This diagram positions “F L,” “F M,” and “F R” along the fire side of the block. “F L” is positioned at the leftmost side, “F M” in the center, and “F R” at the rightmost side. Inside this rectangular block, there are two cavities. On the left cavity, the labels “F C L” and “A C L” are placed along the wall of the block. Similarly, on the right cavity, there are labels “F C R” and “A C R” placed along the walls. At the bottom of the block on the ambient side, the thermocouples are labeled “A L,” “A M,” and “A R,” arranged from left to right.Fire test set-up and thermocouple arrangement of the hollow blocks. Source: Authors' own work
The combined bar and line chart compares densities and compressive strengths for three concrete block mixes: “Standard mix,” “Diatomite mix,” and “Commercial.” The vertical axis on the left is labeled “Compressive strength (MegaPascals),” ranging from 0 to 30 with an interval of 5, and the vertical axis on the right is labeled “Density (kilograms per cubic meter),” ranging from 0 to 2500 with an interval of 500. For each mix, the horizontal axis presents two bars displaying “Air-dried density” (green diagonal hatch fill) and “Oven-dried density” (black diagonal hatch fill). An orange line with circular markers corresponds to compressive strength. The legend at the bottom identifies bar and line colors and patterns. The data from the bars are as follows: Standard mix: Air-dried density: 2101; Oven-dried density: 1952. Diatomite mix: Air-dried density: 1579; Oven-dried density: 1331. Commercial: Air-dried density: 1859; Oven-dried density: 1823. The orange line starts from (standard mix, 25.3), passes through (diatomite mix, 17.5), and ends at (commercial, 18.4). Error bars are included for compressive strength points. Two horizontal dashed lines extend right from the markings 13.8 and 15 on the vertical axis to represent the standards’ minimum compressive strength requirement. The upper horizontal dashed line is labeled “AS 4773.2-2015 [30],” and the lower dashed line is labeled “ASTM C90-16a [28].” Note: All the numerical data values are approximated.Density and compressive strength of hollow blocks
The combined bar and line chart compares densities and compressive strengths for three concrete block mixes: “Standard mix,” “Diatomite mix,” and “Commercial.” The vertical axis on the left is labeled “Compressive strength (MegaPascals),” ranging from 0 to 30 with an interval of 5, and the vertical axis on the right is labeled “Density (kilograms per cubic meter),” ranging from 0 to 2500 with an interval of 500. For each mix, the horizontal axis presents two bars displaying “Air-dried density” (green diagonal hatch fill) and “Oven-dried density” (black diagonal hatch fill). An orange line with circular markers corresponds to compressive strength. The legend at the bottom identifies bar and line colors and patterns. The data from the bars are as follows: Standard mix: Air-dried density: 2101; Oven-dried density: 1952. Diatomite mix: Air-dried density: 1579; Oven-dried density: 1331. Commercial: Air-dried density: 1859; Oven-dried density: 1823. The orange line starts from (standard mix, 25.3), passes through (diatomite mix, 17.5), and ends at (commercial, 18.4). Error bars are included for compressive strength points. Two horizontal dashed lines extend right from the markings 13.8 and 15 on the vertical axis to represent the standards’ minimum compressive strength requirement. The upper horizontal dashed line is labeled “AS 4773.2-2015 [30],” and the lower dashed line is labeled “ASTM C90-16a [28].” Note: All the numerical data values are approximated.Density and compressive strength of hollow blocks
2.5 Test details
The blocks’ compressive strength, density and fire resistance were determined following the relevant Australian and ASTM standards. Details of the test set-ups and procedures are presented in this section. Ambient compressive strength and hardened density tests were conducted using three specimens, while fire-resistance tests were conducted using the individual block specimens.
2.5.1 Compressive strength
The compressive strength of the hollow blocks was determined as per AS/NZS 4456.4–2003 (AS/NZS, 2003). After 28 days of moist curing, blocks were removed from the curing tank. Before conducting the compression test, the top/bottom surfaces of the blocks were grinded to have flat surfaces. After that, they were conditioned inside a humidity chamber at 25 0C and a 75% humidity level before conducting the compression tests. Block specimens (three in each case) were subjected to compression using a 2 MN Instron testing machine at a loading rate of 0.3 MPa/s (Plate 4). The loading was applied only through the face shells of the block. Since the height-to-thickness ratio of the hollow block is more than 5, the unconfined compressive strength of the hollow block is similar to the experimental compressive strength as per AS 3700-2018 (SA, 2018b).
Seven images arranged in two rows show a concrete block’s cracking and failure during compression testing. The image on the left is a top-down vertical view with three large red dashed circles outlining cracks radiating through the length and width of the block. The next image is a close-up side view labeled “S 3-14-C 3” with a red arrow highlighting a major vertical crack running from top to bottom. Brick-colored supports are beneath the block. The third image shows a tall rectangular concrete block on supports, with a major vertical crack running from the top edge to mid-side highlighted by a red arrow; the block is surrounded by scattered debris on the floor. The fourth image on the top right displays the same block after complete failure, broken into multiple large and small angular pieces on a table. In the bottom row, two images on the left show the compression testing of a rectangular concrete block labeled “S 3-14-C 3.” The block is positioned horizontally between metal plates. In both images, red arrows point to visible cracks forming and propagating across the block’s length, with loose debris beneath and rough surfaces indicating ongoing damage. The right image is of a concrete block, visibly broken after a compression test. The block consists of several large, jagged fragments, with loose debris and smaller crushed pieces scattered around its base. The surface shows multiple fracture lines, indicating severe structural failure.Failures of the standard mix hollow block in compression test. Source: Authors' own work
Seven images arranged in two rows show a concrete block’s cracking and failure during compression testing. The image on the left is a top-down vertical view with three large red dashed circles outlining cracks radiating through the length and width of the block. The next image is a close-up side view labeled “S 3-14-C 3” with a red arrow highlighting a major vertical crack running from top to bottom. Brick-colored supports are beneath the block. The third image shows a tall rectangular concrete block on supports, with a major vertical crack running from the top edge to mid-side highlighted by a red arrow; the block is surrounded by scattered debris on the floor. The fourth image on the top right displays the same block after complete failure, broken into multiple large and small angular pieces on a table. In the bottom row, two images on the left show the compression testing of a rectangular concrete block labeled “S 3-14-C 3.” The block is positioned horizontally between metal plates. In both images, red arrows point to visible cracks forming and propagating across the block’s length, with loose debris beneath and rough surfaces indicating ongoing damage. The right image is of a concrete block, visibly broken after a compression test. The block consists of several large, jagged fragments, with loose debris and smaller crushed pieces scattered around its base. The surface shows multiple fracture lines, indicating severe structural failure.Failures of the standard mix hollow block in compression test. Source: Authors' own work
2.5.2 Density
The saturated surface dry (SSD) hardened density of blocks was determined as per AS 1012.12.1–1998 (SA, 1998). SSD density of the block was calculated by dividing the SSD mass by its volume. Similarly, the air dried (AD) mass of the block at the compression test date was determined by dividing the AD mass by its volume. The oven-dry density of the block was calculated using the following equation for each cement mix (ASTM, 2014).
2.5.3 Fire resistance of hollow blocks
Bushfire and building fire resistance of the hollow blocks under non-loadbearing condition were observed following the relevant AS standards (SA, 2018a; SA, 2014c). After finishing the moist curing of block specimens, they were removed from the curing tank and air-dried for at least one week before any fire tests. However, before conducting the bushfire resistance tests, those air-dried blocks were again conditioned inside an environmental chamber at a temperature of 25 0C and relative humidity of 45% for at least one week.
During the bushfire test, blocks were tested under bushfire flame zone conditions by exposing them to the standard fire curve for 30 min and then cooling down for 60 min (SA, 2018a). The building fire resistance test was conducted by exposing blocks to a standard fire curve until any failure was observed (i.e. integrity or insulation). These fire test results help to assess the fire resistance level of the block if any consequent structural fire occurs after the bushfire front passes.
Block surface temperatures were recorded by attaching a total ten number of “K” type wired thermocouples on the fire side, fire side cavity, ambient side cavity and ambient side surfaces and the furnace temperature was recorded by placing a rod-type thermocouple closer to the fire side block surface inside the furnace (Plate 5).
The collage of six images captures various views of a concrete block under and after compression testing. The top left and top middle images display a rectangular concrete block during compression testing between metal plates. The block’s sidewalls show substantial cracks. Red arrows in both images point to major diagonal and vertical cracks forming on the sides of the block, with loose debris collecting on the base platform. The block is labeled “D 60-H-C 1” in black marker. The images show different angles emphasizing crack development and damage during the test. The top right image shows a concrete block with two hollow cavities viewed from above. The inner walls of both cavities are broken by large vertical fractures and displacement of fragments caused by compressive failure. The surrounding block surface is jagged, and debris is visible against the black tabletop background. The bottom left image shows a lengthwise side view, with a bright red arrow pointing to a severe jagged edge crack and spalling damage. The bottom middle is a frontal side view with a red arrow marking a vertical crack extending the full height of the block. The bottom right image is an oblique side view looking through the hollow cavity, with a red dashed circle emphasizing a large, exposed internal fracture. All images include visible lab apparatus, scattered debris, and the noted cracks or fracture zones.Failures of the diatomite mix hollow blocks in compression test. Source: Authors' own work
The collage of six images captures various views of a concrete block under and after compression testing. The top left and top middle images display a rectangular concrete block during compression testing between metal plates. The block’s sidewalls show substantial cracks. Red arrows in both images point to major diagonal and vertical cracks forming on the sides of the block, with loose debris collecting on the base platform. The block is labeled “D 60-H-C 1” in black marker. The images show different angles emphasizing crack development and damage during the test. The top right image shows a concrete block with two hollow cavities viewed from above. The inner walls of both cavities are broken by large vertical fractures and displacement of fragments caused by compressive failure. The surrounding block surface is jagged, and debris is visible against the black tabletop background. The bottom left image shows a lengthwise side view, with a bright red arrow pointing to a severe jagged edge crack and spalling damage. The bottom middle is a frontal side view with a red arrow marking a vertical crack extending the full height of the block. The bottom right image is an oblique side view looking through the hollow cavity, with a red dashed circle emphasizing a large, exposed internal fracture. All images include visible lab apparatus, scattered debris, and the noted cracks or fracture zones.Failures of the diatomite mix hollow blocks in compression test. Source: Authors' own work
3. Results and discussion
This section presents and compares the results of the standard mix and diatomite mix and commercially available hollow blocks in detail. Table 3 summarizes properties of all the hollow blocks.
Properties – standard mix, diatomite mix and commercial hollow blocks
| Block | Oven-dried density (kg/m3) | SSD density (kg/m3) | Air-dried density (kg/m3) | Compressive Strength (MPa) | BAL-FZ failure time (min) | Building fire resistance |
|---|---|---|---|---|---|---|
| Standard mix | 1952 | 2,197 | 2,108 | 26.7 | 22 | −/60/60 |
| 2,203 | 2,112 | 27.5 | ||||
| 2,163 | 2083 | 21.8 | ||||
| Average | 2,188 | 2,101 | 25.3 | |||
| Diatomite mix | 1,331 | 1,807 | 1,584 | 18.0 | No | −/120/120 |
| 1,781 | 1,563 | 15.0 | ||||
| 1,794 | 1,590 | 19.4 | ||||
| Average | 1,794 | 1,579 | 17.5 | |||
| Commercial | 1823 | 1,879 | 17.4 | 28 | −/60/60 | |
| N/A | 1,821 | 19.3 | ||||
| 1,877 | 18.6 | |||||
| Average | 1,859 | 18.4 |
| Block | Oven-dried density (kg/m3) | SSD density (kg/m3) | Air-dried density (kg/m3) | Compressive | BAL-FZ failure time (min) | Building fire resistance |
|---|---|---|---|---|---|---|
| Standard mix | 1952 | 2,197 | 2,108 | 26.7 | 22 | −/60/60 |
| 2,203 | 2,112 | 27.5 | ||||
| 2,163 | 2083 | 21.8 | ||||
| Average | 2,188 | 2,101 | 25.3 | |||
| Diatomite mix | 1,331 | 1,807 | 1,584 | 18.0 | No | −/120/120 |
| 1,781 | 1,563 | 15.0 | ||||
| 1,794 | 1,590 | 19.4 | ||||
| Average | 1,794 | 1,579 | 17.5 | |||
| Commercial | 1823 | 1,879 | 17.4 | 28 | −/60/60 | |
| N/A | 1,821 | 19.3 | ||||
| 1,877 | 18.6 | |||||
| Average | 1,859 | 18.4 |
3.1 Density
The average SSD density of the standard mix hollow block was 2,188 kg/m3, and the calculated oven-dry density was 1,952 kg/m3. The average air-dried (AD) density of the block at the compression testing day was 2,101 kg/m3. As indicated in Table 3, blocks with 60% of diatomite aggregate have an average SSD hardened density, air-dried density and calculated oven-dried density of 1,794, 1,579 and 1,331 kg/m3, respectively. The AD and oven-dry densities of all the blocks are shown in Figure 4.
On the left, a 3 D rectangular concrete block is shown with two rectangular hollow sections visible from the top. The block dimensions are labeled: 390 millimeters in length, 190 millimeters in height, and 90 millimeters in width. A horizontal dashed line labeled “X-X” indicates the sectional plane. On the right, the “X-X Section” view displays the horizontal cross-section of the block. The section shows two rectangular voids evenly spaced within the block. The overall width is 390 millimeters, and the height is 90 millimeters. The thicknesses of the concrete web and sides are marked: 25 millimeters from each outer edge to the start of the voids and 26 millimeters in the central web separating the two voids. The distance from the top and bottom edges to the voids is also 25 millimeters. All dimensions are indicated with double-headed arrows.Geometry and cross-sectional view of the hollow block
On the left, a 3 D rectangular concrete block is shown with two rectangular hollow sections visible from the top. The block dimensions are labeled: 390 millimeters in length, 190 millimeters in height, and 90 millimeters in width. A horizontal dashed line labeled “X-X” indicates the sectional plane. On the right, the “X-X Section” view displays the horizontal cross-section of the block. The section shows two rectangular voids evenly spaced within the block. The overall width is 390 millimeters, and the height is 90 millimeters. The thicknesses of the concrete web and sides are marked: 25 millimeters from each outer edge to the start of the voids and 26 millimeters in the central web separating the two voids. The distance from the top and bottom edges to the voids is also 25 millimeters. All dimensions are indicated with double-headed arrows.Geometry and cross-sectional view of the hollow block
The standard mix block recorded the highest AD and SSD density. The AD and SSD density of the diatomite mix hollow block was lower than the standard mix hollow block because 60% of the sand in the standard mix was replaced by lightweight diatomite aggregate. Considering the AD density and volume of the block, AD masses of standard and diatomite mix hollow blocks are approximately 9.1 and 6.9 kg, respectively. Therefore, the mass of a standard mix hollow block can be reduced by 24% with the inclusion of diatomite aggregate. Even though hollow blocks are lighter than solid masonry blocks, masses can be further reduced by including a lightweight aggregate in the mix. This results in better work comfort, ease of handling, reduced dead load of a structure, reduced construction cost, etc. Additionally, commercial blocks were also conditioned at the same conditions applied to the cast blocks for about one week before conducting the compression test (i.e. 25 0C and 75% relative humidity). The AD density of the commercially available block is 1,859 kg/m3 (8.7 kg) and thus the newly developed diatomite mix hollow block is 21% lighter than those of commercial blocks. Therefore, diatomite mix hollow blocks are more efficient in reducing the weight and consequently cost of construction than commercially available units.
Also, the difference between the SSD and AD densities of standard and diatomite-mix hollow blocks are 4 and 14%, respectively. This is because the water absorption capacity of diatomite aggregate is comparatively higher than sand (i.e. 110.6 versus 0.1%). Hence, more water is absorbed by the diatomite mix hollow block. Therefore, there is a higher possibility of penetrating external agents into the diatomite mix hollow block. Hence, necessary measures such as applying water-repellent surface sealants, protective coatings or external renders or incorporating hydrophobic additives during mixing can be taken to avoid any durability issues that could arise in diatomite mix hollow blocks when utilized in external wall applications.
A lightweight concrete masonry unit is a block with an oven-dry density of less than 1,680 kg/m3 (ASTM, 2016). Also, if the oven-dry density is less than 1,400 kg/m3, lightweight concrete masonry units can be subclassified as ultra-lightweight units (CMAA, 2020). Since the oven-dry densities of the standard mix and diatomite mix and commercial hollow blocks are 1,952, 1,331 and 1,823 kg/m3, respectively, only the diatomite mix hollow block satisfies the oven-dry density requirement for ultra-lightweight masonry units. Standard mix and commercial hollow blocks are classified into medium weight based on their oven-dry density (ASTM, 2016).
3.2 Compressive strength
Table 3 and Figure 4 shows the average compressive strength of each block type. The average compressive strength of a standard mix hollow block was 25.3 MPa. Plate 6 shows the compression failure patterns of those blocks. Splitting through the web shells and shear failures across the face shell at the middle are the commonly observed cracks during the compression tests. Diatomite mix hollow blocks showed an average compressive strength of 17.5 MPa. Most of those blocks failed during the compression test by cracking across the face shell at the middle level (see Plate 7). In addition, few cracks were observed on the block’s web shells. The average face shell bedding compressive strength of the commercial block was 18.4 MPa. Plate 8 shows the compression test failure patterns of the commercial block.
Five photos are showing concrete blocks undergoing compression testing, with each block displaying visible cracks. The top-left photo shows a concrete block with a rectangular shape, positioned vertically. Two rectangular cavities are shown inside the block running along the length of the block. The block is placed on a testing surface. There is a visible crack running through the center of the block along its length. The crack is highlighted with a red circle at the front and middle sections. The top-center photo shows a concrete block with a rectangular shape. The block is placed vertically under a flat rectangular metal surface of a testing machine, and a vertical crack runs down the center. The block is labeled “R” near the top and “H B 3” near the bottom. A red arrow is pointing directly to the crack. The top-right photo displays a rectangular concrete block placed vertically between the flat rectangular metal plates, which are part of the testing machine. It has a vertical crack running vertically at the center of the front side and is labeled “C-H B 2.” A red arrow points to the crack, marking its position. The bottom-left photo shows another view of the concrete block between the metal plates with a large crack running diagonally from the top-right corner to the center along the length. The front side of the block is labeled “C-H B 3,” and a red arrow is positioned to indicate the location of the crack. The bottom-right photo features a damaged concrete block placed over a flat wooden surface. Two cavities at the top of the block are shown. The bottom edge of the front side is damaged, and dust is scattered over the surface. Two main cracks extend from the bottom edge towards the center of the cavities at the top.Failures of the commercial hollow blocks in compression test. Source: Authors' own work
Five photos are showing concrete blocks undergoing compression testing, with each block displaying visible cracks. The top-left photo shows a concrete block with a rectangular shape, positioned vertically. Two rectangular cavities are shown inside the block running along the length of the block. The block is placed on a testing surface. There is a visible crack running through the center of the block along its length. The crack is highlighted with a red circle at the front and middle sections. The top-center photo shows a concrete block with a rectangular shape. The block is placed vertically under a flat rectangular metal surface of a testing machine, and a vertical crack runs down the center. The block is labeled “R” near the top and “H B 3” near the bottom. A red arrow is pointing directly to the crack. The top-right photo displays a rectangular concrete block placed vertically between the flat rectangular metal plates, which are part of the testing machine. It has a vertical crack running vertically at the center of the front side and is labeled “C-H B 2.” A red arrow points to the crack, marking its position. The bottom-left photo shows another view of the concrete block between the metal plates with a large crack running diagonally from the top-right corner to the center along the length. The front side of the block is labeled “C-H B 3,” and a red arrow is positioned to indicate the location of the crack. The bottom-right photo features a damaged concrete block placed over a flat wooden surface. Two cavities at the top of the block are shown. The bottom edge of the front side is damaged, and dust is scattered over the surface. Two main cracks extend from the bottom edge towards the center of the cavities at the top.Failures of the commercial hollow blocks in compression test. Source: Authors' own work
The vertical axis is labeled “Temperature (degrees Celsius),” ranging from 0 to 150 with an interval of 50. The horizontal axis is labeled “Time (minutes),” ranging from 0 to 100 with an interval of 10. The line chart depicts temperature versus time for three mixes: “Standard mix,” shown by the dark blue line, “Diatomite mix,” shown by the green line, and “Commercial mix,” shown by the orange line. A legend at the bottom identifies these lines and colors. The dark blue line starts from (0, 26), increases as a concave-down profile to (42, 108), decreases, reaching the point (90, 70). The green line starts from (0, 24), increases as a concave-down profile to (50, 66), then decreases, reaching the point (90, 50). The orange line starts from (0, 24), increases as a concave-down profile to (47, 110), then decreases, reaching the point (90, 52). Two vertical dashed lines extend upward from the markings 30 and 90 on the horizontal axis. A horizontal dashed line labeled “Temperature limit” extends between (0, 70) and (90, 70). A dark blue arrow labeled “22 minutes” and an orange arrow labeled “26 minutes” extend vertically downwards from (22, 70) and (28, 70), respectively. The chart is split into two phases: a “Heating” area ranging from 0 to 30 minutes, and a “Cooling” area ranging from 30 to 90 minutes. Note: All the numerical data values are approximated.Ambient surface time-temperature curves of the bushfire test
The vertical axis is labeled “Temperature (degrees Celsius),” ranging from 0 to 150 with an interval of 50. The horizontal axis is labeled “Time (minutes),” ranging from 0 to 100 with an interval of 10. The line chart depicts temperature versus time for three mixes: “Standard mix,” shown by the dark blue line, “Diatomite mix,” shown by the green line, and “Commercial mix,” shown by the orange line. A legend at the bottom identifies these lines and colors. The dark blue line starts from (0, 26), increases as a concave-down profile to (42, 108), decreases, reaching the point (90, 70). The green line starts from (0, 24), increases as a concave-down profile to (50, 66), then decreases, reaching the point (90, 50). The orange line starts from (0, 24), increases as a concave-down profile to (47, 110), then decreases, reaching the point (90, 52). Two vertical dashed lines extend upward from the markings 30 and 90 on the horizontal axis. A horizontal dashed line labeled “Temperature limit” extends between (0, 70) and (90, 70). A dark blue arrow labeled “22 minutes” and an orange arrow labeled “26 minutes” extend vertically downwards from (22, 70) and (28, 70), respectively. The chart is split into two phases: a “Heating” area ranging from 0 to 30 minutes, and a “Cooling” area ranging from 30 to 90 minutes. Note: All the numerical data values are approximated.Ambient surface time-temperature curves of the bushfire test
The composite image showing a concrete block after fire exposure, labeled views: The top left image, “a. Fire side,” shows bolts, arrows, and a red dashed circle with inset detail on surface cracks, labeled “Surface cracks.” The top right image, “b. Ambient side,” shows bolts fitted in the block, with the blue marker “S 3-12” and the label “No surface cracks.” Middle section: The image titled “c. Bottom” with a yellow “F” flag (fire-exposed side) shows the bottom face of a concrete block with two hollow cavities. Three large red dashed ovals highlight surface cracks, with arrows pointing to and annotating “Surface cracks.” Three magnified insets below display close-up crack details, each with a black arrow. Right center: the image labeled “d. Top” includes a yellow “F” box for the fire-exposed side. The main block’s top surface shows two hollow cavities. Red dashed ovals on the surface highlight crack locations. Close-up inset images show crack details, each with arrows and labels. The bottom left label reads “Surface cracks.” Bottom left: it presents two vertical faces of a concrete block labeled “e. Side” that show the effects of fire exposure. The left image features a yellow “F” for the fire-exposed side, with red arrows pointing to “Discoloration” and “Surface cracks.” The right image also displays a yellow “F,” with a surface crack highlighted by a red arrow and blue handwriting “S 3-H, 0 min” visible.Standard mix hollow block surfaces after the bushfire test. Source: Authors' own work
The composite image showing a concrete block after fire exposure, labeled views: The top left image, “a. Fire side,” shows bolts, arrows, and a red dashed circle with inset detail on surface cracks, labeled “Surface cracks.” The top right image, “b. Ambient side,” shows bolts fitted in the block, with the blue marker “S 3-12” and the label “No surface cracks.” Middle section: The image titled “c. Bottom” with a yellow “F” flag (fire-exposed side) shows the bottom face of a concrete block with two hollow cavities. Three large red dashed ovals highlight surface cracks, with arrows pointing to and annotating “Surface cracks.” Three magnified insets below display close-up crack details, each with a black arrow. Right center: the image labeled “d. Top” includes a yellow “F” box for the fire-exposed side. The main block’s top surface shows two hollow cavities. Red dashed ovals on the surface highlight crack locations. Close-up inset images show crack details, each with arrows and labels. The bottom left label reads “Surface cracks.” Bottom left: it presents two vertical faces of a concrete block labeled “e. Side” that show the effects of fire exposure. The left image features a yellow “F” for the fire-exposed side, with red arrows pointing to “Discoloration” and “Surface cracks.” The right image also displays a yellow “F,” with a surface crack highlighted by a red arrow and blue handwriting “S 3-H, 0 min” visible.Standard mix hollow block surfaces after the bushfire test. Source: Authors' own work
The compressive strength requirement prescribed in ASTM C90-16a (ASTM, 2016) for loadbearing concrete masonry units is 13.8 MPa. AS 4773.2–2015 (SA, 2015) shows that unconfined compressive strength requirements for loadbearing and non-loadbearing hollow masonry units are 15 MPa and 10 MPa, respectively. In this study, both experimental and unconfined compressive strengths were the same. Since the compressive strength of all the blocks are greater than 15 MPa, both the standard mix and diatomite mix hollow blocks developed in this research and the commercial block comply with the strength requirement for loadbearing masonry units in both standards.
As in Figure 4, the highest compressive strength was recorded by the standard mix hollow block and strength reduces in the order of commercial hollow block and diatomite mix hollow block. The strength of the standard mix block is 38 and 45% higher than that of the commercial block and the diatomite mix block. Therefore, it is realized that the inclusion of a weaker aggregate into the mix (i.e. diatomite) has lower the strength in the diatomite mix block than the standard mix block. Even though the mix ingredients are not known in the commercial block, the inclusion of a weaker and lighter aggregate might be one of the reasons for its reduced strength. This is evident from having a comparatively lower oven-dried density. So, the strength and density of the blocks are in the descending order of standard mix, commercial and diatomite mix hollow blocks. Therefore, the higher the density, the higher the compressive strength (i.e. a positive relationship).
3.3 Fire resistance
3.3.1 Bushfire resistance
Figure 5 and Table 4 show the ambient side surface time–temperature curves from the bushfire tests and a summary of bushfire test results of all the blocks, respectively. In Figure 5 and Table 4, the average ambient or fire side surface temperature is the mean of temperature readings taken at three locations on both surfaces. For additional results and data, Ariyaratne (2023) provides time–temperature curves for individual thermocouples attached to the fire side, ambient side and cavity surfaces.
The illustration depicts a labeled, multi-step collage documenting block casting. (a) “Foam mould” shows two images, The left image presents a top-down view of three white rectangular foam moulds, each with two elongated internal cavities lined with plastic. The right image displays a side view of a single foam mould placed vertically, again with visible internal cavities at the top. (b) “Filling the mix” shows two images. The left image has a person shoveling wet concrete mix into a white foam mould, already partially filled with mix. The right image provides a top-down close-up of a foam mould thoroughly packed with wet concrete mix, filling the elongated cavities. (c) “Filled mould and initial curing” also contains two images. The left image shows a white rectangular foam mould filled with wet concrete mix, labeled “Filled mould” with a gray tag. The right image displays two moulds, each covered with a plastic or acrylic lid secured by four bolts, labeled “Initial curing” with a yellow tag. (d) “Outer mould layer removal” illustrates a concrete block after demoulding, with parts of the white foam casing still attached to its sides. The block’s edges are visible, and the setting is a workshop or laboratory. (e) “Inner mould removal” shows two images: the left side features a concrete block on a base, with partial foam inserts inside two cavities and screws attached below the cavities; the right image shows hands grasping and pulling out the foam inserts from the block cavities. (f) displays a rectangular concrete block in the background with two hollow cavities and two separated, deformed white foam mould pieces in the foreground on a gray surface.(a) – (f) Fabrication steps of the hollow block. Source: Authors' own work
The illustration depicts a labeled, multi-step collage documenting block casting. (a) “Foam mould” shows two images, The left image presents a top-down view of three white rectangular foam moulds, each with two elongated internal cavities lined with plastic. The right image displays a side view of a single foam mould placed vertically, again with visible internal cavities at the top. (b) “Filling the mix” shows two images. The left image has a person shoveling wet concrete mix into a white foam mould, already partially filled with mix. The right image provides a top-down close-up of a foam mould thoroughly packed with wet concrete mix, filling the elongated cavities. (c) “Filled mould and initial curing” also contains two images. The left image shows a white rectangular foam mould filled with wet concrete mix, labeled “Filled mould” with a gray tag. The right image displays two moulds, each covered with a plastic or acrylic lid secured by four bolts, labeled “Initial curing” with a yellow tag. (d) “Outer mould layer removal” illustrates a concrete block after demoulding, with parts of the white foam casing still attached to its sides. The block’s edges are visible, and the setting is a workshop or laboratory. (e) “Inner mould removal” shows two images: the left side features a concrete block on a base, with partial foam inserts inside two cavities and screws attached below the cavities; the right image shows hands grasping and pulling out the foam inserts from the block cavities. (f) displays a rectangular concrete block in the background with two hollow cavities and two separated, deformed white foam mould pieces in the foreground on a gray surface.(a) – (f) Fabrication steps of the hollow block. Source: Authors' own work
Bushfire test results – standard mix, diatomite mix and commercial hollow blocks
| Performance criteria | Standard | Diatomite | Commercial | |
|---|---|---|---|---|
| A crack from the fire side face to the ambient side face greater than 3 mm | No | No | No | |
| Combustibility | No | No | No | |
| Initial avg. temperature on the ambient side surface (0C) | 25 | 23 | 24 | |
| Avg. temperature on the fire side surface at the end of heating phase (0C) | 785 | 800 | 799 | |
| Avg. temperature on the ambient side surface at the end of heating phase (0C) | 83 | 62 | 79 | |
| Maximum average temperature on the ambient side surface for the duration of the 90 min test period (0C) and time* (min) | 108, 45* | 66, 46* | 110, 46* | |
| Time when the avg. ambient surface temperature reached 70 0C (min) | 22 | Not reached | 28 | |
| Avg. temperature on the ambient side surface at the end of cooling phase (0C) | 70 | 49 | 52 | |
| Surface cracks on | Fire side | Yes | Yes | No |
| Ambient side | No | No | No | |
| Surface discolouration | Yes | Yes | No | |
| Performance criteria | Standard | Diatomite | Commercial | |
|---|---|---|---|---|
| A crack from the fire side face to the ambient side face greater than 3 mm | No | No | No | |
| Combustibility | No | No | No | |
| Initial avg. temperature on the ambient side surface (0C) | 25 | 23 | 24 | |
| Avg. temperature on the fire side surface at the end of heating phase (0C) | 785 | 800 | 799 | |
| Avg. temperature on the ambient side surface at the end of heating phase (0C) | 83 | 62 | 79 | |
| Maximum average temperature on the ambient side surface for the duration of the 90 min test period (0C) and time* (min) | 108, 45* | 66, 46* | 110, 46* | |
| Time when the avg. ambient surface temperature reached 70 0C (min) | 22 | Not reached | 28 | |
| Avg. temperature on the ambient side surface at the end of cooling phase (0C) | 70 | 49 | 52 | |
| Surface cracks on | Fire side | Yes | Yes | No |
| Ambient side | No | No | No | |
| Surface discolouration | Yes | Yes | No | |
The initial average ambient surface temperature of all the blocks was 24 ± 1 0C. This was seen to be uniform in the first few minutes, and then temperatures started to increase at different rates. As shown in Figure 5, the ambient surface temperature of both standard and commercial blocks at the end of the heating phase was greater than 70 0C except for the diatomite mix hollow block. After exposing to 30 min of standard fire, average ambient surface temperatures of the standard mix, diatomite mix and commercial hollow blocks were 83, 62 and 79 0C, respectively. Therefore, the temperature rise rate during the heating period can be approximately calculated based on the initial temperature and the temperature after 30 min. For example, the temperature increment rate of the standard mix block is 1.93 0C/min (). Similarly, it is 1.30 and 1.83 0C/min on the diatomite mix and commercial blocks, respectively.
From this point onwards, temperatures in all blocks continued to increase until they reached the maximum temperature. Therefore, heating of the block was observed in all the blocks during both heating and cooling phases. The maximum average ambient surface temperature of both the standard mix and commercial hollow blocks was greater than 100 0C, while it was 66 0C on the diatomite mix block (Table 4). Therefore, including diatomite aggregate resulted in recording lower ambient surface temperatures (i.e. higher bushfire resistance). The maximum temperature recorded by the standard mix hollow block can be reduced by 39% with the replacement of sand with diatomite aggregate.
Also, it is noticed that all these blocks achieved their peak value after around the same amount of time. Therefore, similar to the temperature increment rate calculated during the heating phase, the increment rate of the blocks during the cooling phase also can be calculated based on their temperature at the beginning of the cooling phase and the peak temperature reached. So, the increment rate in the standard mix, diatomite mix and commercial hollow blocks are 1.67, 0.25 and 1.94 0C/min, respectively. Therefore, similar to the heating period, the lowest increment rate during the cooling period was recorded by the diatomite mix hollow block.
After reaching the peak, temperatures on each block started to drop. At the end of the cooling phase, the temperature recorded by the standard mix, diatomite mix and commercial hollow blocks were 70, 49 and 52 0C, respectively. Hence, the cooling rate of the standard mix block is 0.84 () 0C/min. Similarly, cooling rates of the diatomite mix and commercial blocks are 0.39 and 1.32 0C/min, respectively, where the diatomite mix block recorded the lowest. Also, cooling rates seem to be lower than the heating rates of each block.
All over both heating and cooling phases, none of the blocks were combustible and had ambient surface cracks. Also, no gaps (i.e. cracks greater than 3 mm) were visible from the fire to the ambient side of the block. Mainly, cracks were observed across the face shell of the block on the fire-exposed side (Plates 9-11). In addition, during the 90 min of the test period, the standard mix hollow block recorded the highest ambient surface temperatures and the commercial hollow block showed slightly lower values. On the other hand, the diatomite mix hollow block recorded the lowest ambient surface temperatures and heating rates. Therefore, the inclusion of diatomite aggregate into the masonry block mix, higher the bushfire resistance of the block. Also, earlier, it was observed that there is a positive relationship between the density and compressive strength of the block. In contrast, the lower the density, the higher the bushfire resistance (i.e. negative relationship).
The illustration shows the composite image of a concrete block after fire exposure, with labeled sections: Top row: It shows two concrete block surfaces: “a. Fire side” on the left shows bolts, arrows, a rectangular inset, and a red dashed circle highlighting “Surface cracks” with a label. “b. Ambient side” on the right has bolts, “D 60-H B 4” in blue marker, and the label “No surface cracks.” Middle left: The image “c. Top” shows the fire-exposed (yellow “F”) top face of a concrete block with a hollow. Three red dashed circles and arrows highlight several surface cracks. Below, three inset images provide close-up details of crack locations, marked by arrows. The upper right label reads “Surface cracks.” Bottom left: The image “d. Bottom” shows the fire-exposed (yellow “F”) bottom face of a hollow concrete block, with three red dashed circles indicating surface crack locations. Three inset panels below provide close-up details of each crack. The label “Surface cracks” is placed above. Right: The image presents two vertical concrete block side faces labeled “e. Side,” each with a yellow “F” (fire-exposed). The top image annotates “Discoloration” with a red arrow; blue writing “D 60 30 min” appears below. The bottom image highlights “Hairline surface cracks” via a red arrow and dashed circle, with a close-up inset.Diatomite mix hollow block surfaces after the bushfire test. Source: Authors' own work
The illustration shows the composite image of a concrete block after fire exposure, with labeled sections: Top row: It shows two concrete block surfaces: “a. Fire side” on the left shows bolts, arrows, a rectangular inset, and a red dashed circle highlighting “Surface cracks” with a label. “b. Ambient side” on the right has bolts, “D 60-H B 4” in blue marker, and the label “No surface cracks.” Middle left: The image “c. Top” shows the fire-exposed (yellow “F”) top face of a concrete block with a hollow. Three red dashed circles and arrows highlight several surface cracks. Below, three inset images provide close-up details of crack locations, marked by arrows. The upper right label reads “Surface cracks.” Bottom left: The image “d. Bottom” shows the fire-exposed (yellow “F”) bottom face of a hollow concrete block, with three red dashed circles indicating surface crack locations. Three inset panels below provide close-up details of each crack. The label “Surface cracks” is placed above. Right: The image presents two vertical concrete block side faces labeled “e. Side,” each with a yellow “F” (fire-exposed). The top image annotates “Discoloration” with a red arrow; blue writing “D 60 30 min” appears below. The bottom image highlights “Hairline surface cracks” via a red arrow and dashed circle, with a close-up inset.Diatomite mix hollow block surfaces after the bushfire test. Source: Authors' own work
The figure shows a fire-tested concrete block with different views highlighting crack formation and intact regions. Fire-exposed sides are marked with the letter “F.” In part (a), “Fire side,” the rectangular face marked with “F” contains four visible embedded circular inserts aligned horizontally in two rows near the center. The surface is smooth and uniform with no visible surface cracks. A rectangular label at the lower right confirms “No surface cracks.” In part (b), “Ambient side,” the opposite face is marked with “A” at the top left. Writing in dark ink “C O M–B1” appears near the center, accompanied by vertical marker lines. Four embedded circular inserts are visible. Similar to the fireside, the surface appears intact with no cracks, confirmed by the label “No surface cracks.” In part (c), “Top view,” the block shows two large hollow core openings running horizontally across the concrete block. Around the left hollow, a circular red marking highlights surface cracks, with an inset image magnifying this region. Cracks extend diagonally outward from the edge of the hollow where a nut and bolt are placed along with a washer. A second inset shows surface cracking at the middle top surface, with fine branching cracks visible. Toward the right hollow, another red circle highlights cracking, with an inset showing fine vertical and diagonal cracks along the edge. The fire-exposed side is marked “F” on the left edge. Multiple black arrows are drawn on the concrete surface, pointing in the directions of observed crack propagation. In part (d), “Bottom view,” the underside also reveals two large hollow cavities in a concrete block. Red circles highlight three regions of surface cracks. The left circle encloses cracks propagating outward from the hollow edge, shown enlarged with a black arrow marking the crack direction. The central section has fine cracks extending laterally, again illustrated in the inset image with a black arrow. The right hollow also shows cracks at its boundary, with fine branching visible in the inset. Across the entire bottom surface, multiple black arrows are drawn to trace crack orientations. The label “Surface cracks” indicates their presence. In part (e), “Side view,” the vertical faces of the concrete block are shown. The right vertical face is marked with “R” at the top and the handwritten text “30 min” with a checkmark below it. This surface remains intact and is labeled “No surface cracks.” The adjacent bottom vertical face is marked with “L” at the top and shows a distinct vertical surface crack extending downward along the surface, highlighted with a red arrow. This region is labeled “Surface cracks.” Both vertical faces carry a yellow “F” marker, indicating they were exposed to fire.Commercial block surfaces after the bushfire test. Source: Authors' own work
The figure shows a fire-tested concrete block with different views highlighting crack formation and intact regions. Fire-exposed sides are marked with the letter “F.” In part (a), “Fire side,” the rectangular face marked with “F” contains four visible embedded circular inserts aligned horizontally in two rows near the center. The surface is smooth and uniform with no visible surface cracks. A rectangular label at the lower right confirms “No surface cracks.” In part (b), “Ambient side,” the opposite face is marked with “A” at the top left. Writing in dark ink “C O M–B1” appears near the center, accompanied by vertical marker lines. Four embedded circular inserts are visible. Similar to the fireside, the surface appears intact with no cracks, confirmed by the label “No surface cracks.” In part (c), “Top view,” the block shows two large hollow core openings running horizontally across the concrete block. Around the left hollow, a circular red marking highlights surface cracks, with an inset image magnifying this region. Cracks extend diagonally outward from the edge of the hollow where a nut and bolt are placed along with a washer. A second inset shows surface cracking at the middle top surface, with fine branching cracks visible. Toward the right hollow, another red circle highlights cracking, with an inset showing fine vertical and diagonal cracks along the edge. The fire-exposed side is marked “F” on the left edge. Multiple black arrows are drawn on the concrete surface, pointing in the directions of observed crack propagation. In part (d), “Bottom view,” the underside also reveals two large hollow cavities in a concrete block. Red circles highlight three regions of surface cracks. The left circle encloses cracks propagating outward from the hollow edge, shown enlarged with a black arrow marking the crack direction. The central section has fine cracks extending laterally, again illustrated in the inset image with a black arrow. The right hollow also shows cracks at its boundary, with fine branching visible in the inset. Across the entire bottom surface, multiple black arrows are drawn to trace crack orientations. The label “Surface cracks” indicates their presence. In part (e), “Side view,” the vertical faces of the concrete block are shown. The right vertical face is marked with “R” at the top and the handwritten text “30 min” with a checkmark below it. This surface remains intact and is labeled “No surface cracks.” The adjacent bottom vertical face is marked with “L” at the top and shows a distinct vertical surface crack extending downward along the surface, highlighted with a red arrow. This region is labeled “Surface cracks.” Both vertical faces carry a yellow “F” marker, indicating they were exposed to fire.Commercial block surfaces after the bushfire test. Source: Authors' own work
The vertical axis is labeled “Temperature (degrees Celsius),” ranging from 0 to 300 with an interval of 50. The horizontal axis is labeled “Time (minutes),” ranging from 0 to 120 with an interval of 20. The line chart depicts temperature versus time for three mixes: “Standard mix” shown by the dark blue line, “Diatomite mix” shown by the green line, and “Commercial mix” shown by the orange line. A legend at the bottom identifies these lines and colors. The dark blue line starts from (0, 23), increases gradually through (40, 108), and passes through (66, 163). The green line starts from (0, 21), increases gradually through (80, 98), and passes through (119, 163). The orange line starts from (0, 23), increases gradually through (75, 163), and passes through (120, 230). A vertical dashed line extends upward from the marking 120 on the horizontal axis. A horizontal dashed line labeled “Insulation failure temperature” extends between (0, 163) and (120, 163). A dark blue arrow labeled “66 minutes,” an orange arrow labeled “75 minutes,” and a green arrow labeled “119 minutes” extend vertically downwards from (65, 163), (75, 163), and (119, 163), respectively. The chart includes a box label in the top left giving heating rates: The standard mix approximately equals 2.3 degrees Celsius per minute; the diatomite mix approximately equals 1.2 degrees Celsius per minute; and the commercial mix approximately equals 2.0 degrees Celsius per minute. Note: All the numerical data values are approximated.Ambient surface time-temperature curves of the building fire test surfaces after the building fire test
The vertical axis is labeled “Temperature (degrees Celsius),” ranging from 0 to 300 with an interval of 50. The horizontal axis is labeled “Time (minutes),” ranging from 0 to 120 with an interval of 20. The line chart depicts temperature versus time for three mixes: “Standard mix” shown by the dark blue line, “Diatomite mix” shown by the green line, and “Commercial mix” shown by the orange line. A legend at the bottom identifies these lines and colors. The dark blue line starts from (0, 23), increases gradually through (40, 108), and passes through (66, 163). The green line starts from (0, 21), increases gradually through (80, 98), and passes through (119, 163). The orange line starts from (0, 23), increases gradually through (75, 163), and passes through (120, 230). A vertical dashed line extends upward from the marking 120 on the horizontal axis. A horizontal dashed line labeled “Insulation failure temperature” extends between (0, 163) and (120, 163). A dark blue arrow labeled “66 minutes,” an orange arrow labeled “75 minutes,” and a green arrow labeled “119 minutes” extend vertically downwards from (65, 163), (75, 163), and (119, 163), respectively. The chart includes a box label in the top left giving heating rates: The standard mix approximately equals 2.3 degrees Celsius per minute; the diatomite mix approximately equals 1.2 degrees Celsius per minute; and the commercial mix approximately equals 2.0 degrees Celsius per minute. Note: All the numerical data values are approximated.Ambient surface time-temperature curves of the building fire test surfaces after the building fire test
The Australian Building Codes Board (ABCB) performance standard suggests a temperature limit for the unguarded interior surfaces of a bushfire shelter as 70 °C (Performance Standard, 2014). In this study, the standard mix and commercial hollow blocks exceeded this limit during the heating phase. The diatomite mix hollow block’s average ambient side surface temperatures were less than 70°C throughout the testing period. Therefore, considering the low ambient surface temperatures, low heating rates and compliance with the bushfire shelters’ unguarded interior surface temperature limit, diatomite mix hollow block looks more suitable for bushfire shelters.
3.3.2 Building fire resistance
Average ambient side surface time-temperature curves from the building fire tests are shown in Figure 6 and Table 5 summarizes building fire test results of each block. Similar to the bushfire resistance test, the average ambient or fire side surface temperature represents the mean of temperature readings recorded at three distinct points on each respective surface. For additional results and data, Ariyaratne (2023) provides time–temperature curves for individual thermocouples attached to the fire side, ambient side and cavity surfaces.
Both photos show rectangular concrete blocks, each with multiple elongated rectangular cavities with rounded ends running along the length of the block. In the left photo, there are multiple concrete blocks arranged on a wooden cart. The blocks are rectangular in shape with two cavities running along their length in each. These cavities are evenly spaced across the surface, making the blocks appear like interlocking or stackable components. The cart on which the blocks are placed has a wooden base, with metal framing visible on the edges. In the right photo, three concrete blocks are positioned vertically side by side on the floor. The blocks are arranged linearly, lying flat with their longer sides parallel to each other. Similar to the left-side blocks, these have rectangular shapes with the characteristic cavities running through them. On the front block, a label is written on the surface in black ink. The background is neutral, with a clean floor surface visible beneath the blocks.Hollow block test specimens. Source: Authors' own work
Both photos show rectangular concrete blocks, each with multiple elongated rectangular cavities with rounded ends running along the length of the block. In the left photo, there are multiple concrete blocks arranged on a wooden cart. The blocks are rectangular in shape with two cavities running along their length in each. These cavities are evenly spaced across the surface, making the blocks appear like interlocking or stackable components. The cart on which the blocks are placed has a wooden base, with metal framing visible on the edges. In the right photo, three concrete blocks are positioned vertically side by side on the floor. The blocks are arranged linearly, lying flat with their longer sides parallel to each other. Similar to the left-side blocks, these have rectangular shapes with the characteristic cavities running through them. On the front block, a label is written on the surface in black ink. The background is neutral, with a clean floor surface visible beneath the blocks.Hollow block test specimens. Source: Authors' own work
Building fire test results – standard mix, diatomite mix and commercial hollow blocks
| Performance | Standard | Diatomite | Commercial |
|---|---|---|---|
| Any specific observations during the fire test | No | No | No |
| Initial avg. temperature on the ambient side surface (0C) | 20 | 19 | 21 |
| Insulation failure time (min) | 66 | 119 | 75 |
| Avg. fire side temperature at the point of insulation failure (0C) | 938 | 1,033 | 909 |
| A gap from the fire side face to the ambient side face greater than 3 mm | No | No | No |
| Surface cracks on the fire side | Yes | Yes | No |
| Surface cracks on the ambient side | No | No | Yes |
| Surface discolouration | Yes | Yes | Yes |
| FRL | -/60/60 | -/120/120 | -/60/60 |
| Performance | Standard | Diatomite | Commercial |
|---|---|---|---|
| Any specific observations during the fire test | No | No | No |
| Initial avg. temperature on the ambient side surface (0C) | 20 | 19 | 21 |
| Insulation failure time (min) | 66 | 119 | 75 |
| Avg. fire side temperature at the point of insulation failure (0C) | 938 | 1,033 | 909 |
| A gap from the fire side face to the ambient side face greater than 3 mm | No | No | No |
| Surface cracks on the fire side | Yes | Yes | No |
| Surface cracks on the ambient side | No | No | Yes |
| Surface discolouration | Yes | Yes | Yes |
| FRL | -/60/60 | -/120/120 | -/60/60 |
As mentioned in Table 5, the initial ambient side temperature of all three blocks was around 20 ± 1 0C. The initial temperature continued the same for the first few minutes and then increased. The temperature of the standard hollow block started to increase rapidly due to the insulation failure (i.e. initial ambient temperature 20 + 140 0C). So, the standard hollow block failed via insulation at 66 min. The commercial block also reached its failure after 75 min from the start of the fire exposure. Until 75 min, the diatomite block temperature was well below the insulation failure. At the time of failure of standard and commercial blocks, temperatures recorded by the diatomite mix block are 48 and 43% lower than each block, respectively. However, the diatomite block also recorded a higher ambient surface temperature than the insulation limit after 119 min from fire exposure. Until then, the temperature of the diatomite block is comparatively lower than the standard and commercial blocks. Also, the insulation failure of the standard mix hollow block can be delayed by 53 min with the inclusion of diatomite aggregate in the mix. Therefore, building fire resistance of blocks can be listed in the descending order as diatomite mix, commercial and standard mix hollow block with respect to the insulation failure time. Similar to the pattern observed in the bushfire test, building fire resistance also shows a decreasing trend with the block’s increased density.
In addition, the rate of ambient surface temperature increment during the building fire test can also be calculated using the trendline drawn across each time-temperature curve. So, it is 2.3, 1.2 and 2.0 0C/min, for the standard mix, diatomite mix and commercial block, respectively, where the diatomite mix block again recorded the lowest.
None of the blocks showed any integrity failure during the test. Therefore, the building fire resistance of the standard, diatomite and commercial hollow blocks are -/60/60, -/120/120 and -/60/60, respectively. Hence, it shows that adding diatomite aggregate into the block mix enhances the building fire resistance of a hollow masonry block.
Surface cracks were mostly observed on the fire-exposed side and across the face shell on the fire side (see Plates 12-14), which was similarly observed during the bushfire test. However, the width of the cracks observed in the standard block building fire resistance test is much more severe than the cracks from the bushfire test, whereas, in the diatomite mix block, there was no significant difference.
The photos show different views of a concrete block exposed to fire. Fire-exposed sides are marked with the letter “F.” In part (a), “Fire side,” the fire-exposed side of the concrete block is shown with surface cracks extending diagonally from the center towards the edges. The cracks are clearly visible and marked with arrows pointing toward them. Two horizontal rows of embedded circular inserts are positioned near the middle of the block. The surface texture appears rough, with visible fire damage. The label “Surface cracks” is placed beside the cracks. In part (b), “Ambient side,” the opposite side of the block is smooth, with no visible surface cracks. The block is marked with the label “S 3-H 1” near the center, and the text “No surface cracks” is displayed at the bottom right, confirming that this side is undamaged. In part (c), “Top view,” the top view shows two large hollow core openings running horizontally across the block. The left hollow area is marked with red circles around visible surface cracks. These cracks extend diagonally outward from the edge of the hollow. Insets magnify these areas, showing fine details of the cracks. The cracks are clearly visible near the hollow where a nut and bolt are placed, along with a washer. Additional fine cracks appear on the middle top surface, with another inset showing these smaller branching cracks. A yellow “F” marker is shown at the top left. In part (d), “Bottom view,” the bottom of the block shows similar hollow core openings. Surface cracks are visible near these openings, with red circles highlighting the crack areas. The cracks extend from the hollow regions, and insets magnify these cracks, showing the full extent of the damage, with more pronounced cracks at the center of the block. A yellow “F” marker is shown at the top left. In part (e), “Side view,” the vertical faces of the concrete block are shown. The right vertical face is marked with “R” at the top. A vertical surface crack at the center is marked with an arrow pointing directly to the crack. The bottom vertical face is marked with “L” at the top and shows a vertical surface crack at the center, marked with an arrow pointing directly to the crack. The cracks in both are labeled “Surface cracks,” and both have a yellow “F” marker.Standard mix hollow block surfaces after the building fire test. Source: Authors' own work
The photos show different views of a concrete block exposed to fire. Fire-exposed sides are marked with the letter “F.” In part (a), “Fire side,” the fire-exposed side of the concrete block is shown with surface cracks extending diagonally from the center towards the edges. The cracks are clearly visible and marked with arrows pointing toward them. Two horizontal rows of embedded circular inserts are positioned near the middle of the block. The surface texture appears rough, with visible fire damage. The label “Surface cracks” is placed beside the cracks. In part (b), “Ambient side,” the opposite side of the block is smooth, with no visible surface cracks. The block is marked with the label “S 3-H 1” near the center, and the text “No surface cracks” is displayed at the bottom right, confirming that this side is undamaged. In part (c), “Top view,” the top view shows two large hollow core openings running horizontally across the block. The left hollow area is marked with red circles around visible surface cracks. These cracks extend diagonally outward from the edge of the hollow. Insets magnify these areas, showing fine details of the cracks. The cracks are clearly visible near the hollow where a nut and bolt are placed, along with a washer. Additional fine cracks appear on the middle top surface, with another inset showing these smaller branching cracks. A yellow “F” marker is shown at the top left. In part (d), “Bottom view,” the bottom of the block shows similar hollow core openings. Surface cracks are visible near these openings, with red circles highlighting the crack areas. The cracks extend from the hollow regions, and insets magnify these cracks, showing the full extent of the damage, with more pronounced cracks at the center of the block. A yellow “F” marker is shown at the top left. In part (e), “Side view,” the vertical faces of the concrete block are shown. The right vertical face is marked with “R” at the top. A vertical surface crack at the center is marked with an arrow pointing directly to the crack. The bottom vertical face is marked with “L” at the top and shows a vertical surface crack at the center, marked with an arrow pointing directly to the crack. The cracks in both are labeled “Surface cracks,” and both have a yellow “F” marker.Standard mix hollow block surfaces after the building fire test. Source: Authors' own work
The series of images presents detailed views of a concrete block exposed to fire on one side. Fire-exposed sides are marked with the letter “F.” In part (a), “Fire side,” the fire-exposed side of the block, is shown. Surface cracks are clearly visible, extending diagonally from the center toward the edges, and are marked with arrows pointing toward them. Two horizontal rows of embedded circular inserts are visible near the middle of the block. The surface texture appears rough with visible fire damage, and the label “Surface cracks” is placed beside the cracks. The label “F” is located in the top left corner of the image. In part (b), “Ambient side,” the opposite side of the block has a smooth surface with no visible surface cracks. The label “No surface cracks” is displayed at the bottom right. The block is marked with “D 60 H B 2” near the center. The “A” label is located near the top of the block. In part (c), “Top,” the top view of the concrete block reveals two large hollow core openings that run horizontally across the block. The top hollow area has visible surface cracks, marked with red circles, extending diagonally outward from the edge of the hollow core. These cracks are also shown in magnified insets, which highlight finer details of the cracks. The “F” label appears near the top left corner of the image. The surface near the cracks has a rough texture, showing signs of fire exposure. In part (d), “Bottom,” the bottom view shows surface cracks around the hollow core areas, with visible discoloration marked by red circles. One crack is visible near the bottom hollow, and another is positioned near the center. The “F” label is located in the top right corner of the image. In part (e), “Side,” the side view of the concrete block shows cracks near the edges of the block. The left section shows a vertical crack, while the right section shows another crack with the label “3 hrs.” The “F” label is positioned at the top right corner, indicating the fire-exposed side, and the label “Discoloration” is positioned near the cracks on the left face.Diatomite mix hollow block surfaces after the building fire test. Source: Authors' own work
The series of images presents detailed views of a concrete block exposed to fire on one side. Fire-exposed sides are marked with the letter “F.” In part (a), “Fire side,” the fire-exposed side of the block, is shown. Surface cracks are clearly visible, extending diagonally from the center toward the edges, and are marked with arrows pointing toward them. Two horizontal rows of embedded circular inserts are visible near the middle of the block. The surface texture appears rough with visible fire damage, and the label “Surface cracks” is placed beside the cracks. The label “F” is located in the top left corner of the image. In part (b), “Ambient side,” the opposite side of the block has a smooth surface with no visible surface cracks. The label “No surface cracks” is displayed at the bottom right. The block is marked with “D 60 H B 2” near the center. The “A” label is located near the top of the block. In part (c), “Top,” the top view of the concrete block reveals two large hollow core openings that run horizontally across the block. The top hollow area has visible surface cracks, marked with red circles, extending diagonally outward from the edge of the hollow core. These cracks are also shown in magnified insets, which highlight finer details of the cracks. The “F” label appears near the top left corner of the image. The surface near the cracks has a rough texture, showing signs of fire exposure. In part (d), “Bottom,” the bottom view shows surface cracks around the hollow core areas, with visible discoloration marked by red circles. One crack is visible near the bottom hollow, and another is positioned near the center. The “F” label is located in the top right corner of the image. In part (e), “Side,” the side view of the concrete block shows cracks near the edges of the block. The left section shows a vertical crack, while the right section shows another crack with the label “3 hrs.” The “F” label is positioned at the top right corner, indicating the fire-exposed side, and the label “Discoloration” is positioned near the cracks on the left face.Diatomite mix hollow block surfaces after the building fire test. Source: Authors' own work
The illustration shows the composite of a concrete block after a fire exposure test, with labeled sections: Top row: It presents two concrete block faces after the fire test. The left is “a. Fire side” with embedded wires, three small bolts, and the label “No surface cracks.” Right is “b. Ambient side” with two wires, two small bolts, the label “Hairline surface cracks,” and a red dashed circle linked to an inset showing a faint crack area. Middle: It shows the top view of a fire-exposed concrete block (“F”) with three hollow cavities. Four red dashed circles highlight surface crack locations, each connected by arrows to close-up inset panels below showing detail of crack formation. A text label “Surface cracks” is placed at center right. Bottom: It presents two vertical faces of a concrete block labeled “e. Side,” both marked with a yellow “F” for the fire-exposed side. Red arrows indicate “Discoloration” on each face; the central label reads “No surface cracks.” A footer banner also states “F: Fire-exposed side.”Commercial hollow block surfaces after building fire test. Source: Authors' own work
The illustration shows the composite of a concrete block after a fire exposure test, with labeled sections: Top row: It presents two concrete block faces after the fire test. The left is “a. Fire side” with embedded wires, three small bolts, and the label “No surface cracks.” Right is “b. Ambient side” with two wires, two small bolts, the label “Hairline surface cracks,” and a red dashed circle linked to an inset showing a faint crack area. Middle: It shows the top view of a fire-exposed concrete block (“F”) with three hollow cavities. Four red dashed circles highlight surface crack locations, each connected by arrows to close-up inset panels below showing detail of crack formation. A text label “Surface cracks” is placed at center right. Bottom: It presents two vertical faces of a concrete block labeled “e. Side,” both marked with a yellow “F” for the fire-exposed side. Red arrows indicate “Discoloration” on each face; the central label reads “No surface cracks.” A footer banner also states “F: Fire-exposed side.”Commercial hollow block surfaces after building fire test. Source: Authors' own work
Therefore, considering the failure during the bushfire test and having lower building fire resistance, both standard mix and commercial hollow blocks cannot be recommended as suitable for use in external walls of buildings in bushfire-prone areas. However, adding diatomite aggregate into the standard mix enhances the bushfire and building fire resistance of the hollow blocks. Hence, diatomite-mix hollow masonry block is an option for buildings in bushfire-prone areas. It is not only enhancing bushfire and building fire resistance, but it is also ultra-lightweight and loadbearing, which are added advantages in the construction field and will be a solution to reduce the energy consumption of the buildings. Studies on the newly developed block’s thermal and sound insulation and durability properties should be conducted as future works.
4. Conclusions
In this study, a diatomite mix hollow masonry block was developed by adding diatomite aggregate into a cement-sand mix (i.e. standard mix) and properties such as density, compressive strength and bushfire and building fire resistance were determined experimentally. The results were compared with the standard mix hollow block and one of the commercially available hollow blocks as well. Results shows that the addition of diatomite aggregate into the block mix enhances the bushfire and building fire resistance of hollow masonry blocks. Based on the experimental results obtained, the following conclusions can be drawn:
Standard mix hollow block recorded the highest density and compressive strength and lowest bushfire and building fire resistance.
Newly developed diatomite mix hollow block satisfies the oven dry density requirement for ultra-lightweight masonry units and strength requirement for loadbearing hollow masonry units.
There is a positive relationship between the density and compressive strength of the blocks. At the same time, there is a negative relationship between the bushfire/building fire resistance and the density of the block.
During the bushfire test, the diatomite mix hollow block showed the lowest ambient surface temperatures and heating rates. It satisfied the temperature limit for unguarded interior surfaces of bushfire shelters in the ABCB performance.
In terms of building fire resistance, both standard mix and commercial hollow block had only one hour of fire resistance level. However, the diatomite hollow block had two hours of resistance, showing the lowest ambient side surface temperatures and rate of temperature increment and a relatively low crack intensity level.
Inclusion of diatomite aggregate into the standard mix decreased density and strength while enhancing bushfire and building fire resistance of hollow masonry blocks.
Considering the enhanced bushfire and building fire resistances, the newly developed diatomite mix hollow block is a suitable masonry block for bushfire shelters and external walls of the buildings in bushfire-prone areas compared to the standard mix and commercially available hollow blocks. Being loadbearing and ultra-lightweight are the added advantages of this newly developed block unit.

