ABSTRACT: Changing climate and the damaging effects of carbon dioxide (CO2) on the environment, has led to awareness throughout the construction industry of the need to deliver more sustainable solutions. Robust and rigorous carbon footprinting procedures for assessing solutions and projects can help to identify where action can be taken to reduce CO2 emissions. It also promotes the marketing of those solutions and methods that produce lower CO2 emissions. Geosynthetics often provide a cost-efficient alternative to more ‘traditional’ construction techniques. Recently, work by the Waste and Resources Action Programme in the UK has shown that geosynthetic solutions can also produce much lower CO2 emissions. However, there are still questions as to the reliability of such calculations. Although the methodologies employed are relatively consistent worldwide, the accuracy of the embodied carbon data available for use in calculations remains uncertain. Geosynthetic products are not specifically included in the embodied carbon construction materials databases most commonly employed in Europe, and often generic values for polypropylene and polyethylene are used. This paper presents a study in which the embodied carbon data for geosynthetic products was calculated using first-hand manufacturing process data. The values calculated for two categories of geosynthetics were considerably lower than commonly employed database values. Nonwoven geotextiles had an average embodied carbon value of 2.35 tCO2e/t, with values for example geogrids of 2.97 tCO2e/t for extruded and 2.36 tCO2e/t woven.
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October 2015
Research Article|
August 26 2015
Obtaining reliable embodied carbon values for geosynthetics
J. Raja;
J. Raja
Engineering doctorate student
1School of Civil and Building Engineering, Loughborough University, Loughborough, UK, Telephone: +44 (0)7826 545676, Telefax: +44 (0)1509 223981, E-mail: j.raja@lboro.ac.uk
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N. Dixon;
N. Dixon
Professor
2School of Civil and Building Engineering, Loughborough University, Loughborough, UK, Telephone: +44 (0)1509 228542, Telefax: +44 (0)1509 223981, E-mail: N.Dixon@lboro.ac.uk (corresponding author)
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G. Fowmes;
G. Fowmes
Lecturer
3School of Civil and Building Engineering, Loughborough University, Loughborough, UK, Telephone: +44 (0)1509 223775, Telefax: +44 (0)1509 223981, E-mail: G.J.Fowmes@lboro.ac.uk
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M. Frost;
M. Frost
Senior Lecturer
4School of Civil and Building Engineering, Loughborough University, Loughborough, UK, Telephone: +44 (0)1509 228306, Telefax: +44 (0)1509 223981, E-mail: M.W.Frost@lboro.ac.uk
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P. Assinder
P. Assinder
Past Chairman,International Geosynthetics Society: UK Chapter; Area Manager Africa
5Huesker Synthetic GmbH, Fabrikstraße 13-15, 48712 Gescher, Germany, Telephone: +44 (0)1746 769537, Telefax: +44 (0)1384 379773, E-mail: assinder@HUESKER.com
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Publisher: Emerald Publishing
Received:
January 07 2015
Revision Received:
April 25 2015
Accepted:
May 16 2015
Online ISSN: 1751-7613
Print ISSN: 1072-6349
© 2015 Thomas Telford Ltd
2015
Geosynthetics International (2015) 22 (5): 393–401.
Article history
Received:
January 07 2015
Revision Received:
April 25 2015
Accepted:
May 16 2015
Citation
Raja J, Dixon N, Fowmes G, Frost M, Assinder P (2015), "Obtaining reliable embodied carbon values for geosynthetics". Geosynthetics International, Vol. 22 No. 5 pp. 393–401, doi: https://doi.org/10.1680/jgein.15.00020
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