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Purpose

Façades in hot-arid Gulf cities face compounding challenges of peak solar irradiance exceeding 1,050 Wh/m2 and potable-water scarcity that renders conventional pressurized green-wall irrigation systems economically and technically impractical. This study presents and experimentally validates the design-build lifecycle of a full-scale 3D-printed eco-clay biophilic façade wall grounded in gyroid triply periodic minimal surface (TPMS) geometry, targeting passive multifunctional environmental performance without mechanical infrastructure.

Design/methodology/approach

A five-stage EnergyPlus Weather (EPW) file -to-geometry-to-performance pipeline – Grasshopper/Ladybug/HoneyBee/Butterfly climate analysis; TPMS parametric design; Rhinoceros 8/Luban clay AM (additive manufacturing) fabrication; EnergyPlus and ANSYS Fluent computational fluid dynamics simulation; and multi-method experimental validation – established site-specific design targets and quantified performance. Experimental validation comprised: (1) outdoor thermocouple surface monitoring over three consecutive summer days (15-min logging) with infrared thermography; (2) five-point anemometer airflow validation at the fabricated prototype; (3) compressive and shear structural testing on fabricated specimens; (4) expanded passive irrigation testing (n = 10, three inlet flow rates, five wall inclinations); and (5) a cradle-to-grave International Organization for Standardization (ISO)14040/14,044 life-cycle assessment. Monte Carlo uncertainty propagation (n = 10,000 simulations) quantified confidence intervals on all key outcomes.

Findings

Outdoor thermocouple monitoring over three consecutive sunny days yielded a measured mean peak-hour exterior surface temperature reduction of 5.8 ± 0.6 °C (95% confidence interval, CI: [4.6, 7.0] °C) relative to the flat clay reference wall, with a peak reduction 8.7 °C at 14:00 (EnergyPlus simulation-to-measurement agreement: root-mean-square error, RMSE = 1.4 °C, R2 = 0.97). Five-point anemometer validation confirms ANSYS Fluent CFD predictions within ±7.3% (mean error 5.8%; grid convergence index, GCI <0.9%). Structural testing yields single-block compressive strength 1.80 ± 0.12 MPa (3.6 × cladding minimum threshold) and plug-prism joint shear strength 0.42 ± 0.035 MPa (2.3 × threshold). Expanded irrigation testing (n = 10) yielded a Christiansen Uniformity Coefficient (CUC) = 0.83 ± 0.02 (95% CI: [0.81, 0.85]), with feasibility demonstrated over 0–9° inclination range. A full life-cycle assessment (LCA) indicates 34.0 kg CO2e/m2 cradle-to-grave — 12.1 × lower than an equivalent reinforced-concrete (RC) wall (412 kg CO2e/m2).

Practical implications

The validated EPW-to-geometry-to-performance pipeline and consumer-accessible Luban Modular Cut fabrication workflow provide a replicable methodology for passive biophilic façade design in any hot-arid context. The passive gravity-fed irrigation system eliminates active irrigation infrastructure, providing a technically validated alternative aligned with UAE National Water Security Strategy 2036 compliance.

Originality/value

This study provides, to the authors' knowledge, the first outdoor experimental thermal validation, direct anemometer CFD validation, structural mechanical characterisation, and ISO 14040/14,044-compliant life-cycle assessment for a full-scale ceramic gyroid TPMS façade component under hot-arid conditions, elevating the contribution from prototype simulation to validated engineering prototype research.

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