Selection of Building External Windows in Different Climatic Zones Based on LCA

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Abstract:

The area of building external windows is about 30% of the total area in building envelope, but the energy loss of the external windows accounts for over 50% of the building energy. Building external windows is the weakest parts of insulation performance in building envelope. Based on the method of life cycle assessment (LCA), this article deeply surveys and analyzes the resource consumption, energy consumption and pollutant emissions of bridge-cut-off aluminum alloy windows, unplasticized polyvinyl chloride (PVC-U) windows and aluminum-wood composite windows. This article calculates five main environmental impacts of functional unit (per m2) for the three products including the non-renewable resource consumption, energy consumption, greenhouse effect, acidification and eutrophication. The results show that to meet local design standard for energy efficiency and to achieve the same energy-saving effect, the environmental impacts of different climate zones in external windows from low to high are in the following order: unplasticized polyvinyl chloride (PVC-U) windows with 70 series (4 or 5 cavity), aluminum-wood composite windows with 68 series, un-plasticized polyvinyl chloride (PVC-U) windows with 60 series (3 cavity), bridge-cut-off aluminum alloy windows (55-58 series, the height of PA66 from 14.8mm to16.8mm), and bridge-cut-off aluminum alloy windows (65-70 series, the height of PA66 from 22mm to 35mm). This research provides domestic basic data for building external windows and green building.

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184-194

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April 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Ming Qinghua etc., "The choice of energy saving doors and windows in different climate environment" [J], Doors and Windows, 2010, No.4 ,54-57.

Google Scholar

[2] Wang Zheng, Wang Xinchun, "Building Regulations for Windows in China and Abroad" [R], 6-11.

Google Scholar

[3] "Design Standard for Energy Efficiency of Public Buildings" GB 50189-2005[S], National Standard of the People's Republic of China, 6-8.

Google Scholar

[4] "Design Standard for Energy Efficiency of Residential Buildings in Severe Cold and Cold Zones" JGJ 26-2010[S], Professional Standard of the People's Republic of China, 6-12.

DOI: 10.54254/2754-1169/29/20231348

Google Scholar

[5] "Design Standard for Energy Efficiency of Residential Building in Hot Summer and Warm Winter Zone" JGJ 75-2003[S], Professional Standard of the People's Republic of China, 6-7.

Google Scholar

[6] "Design Standard for Energy Efficiency of Residential Buildings in Hot Summer and Cold Winter Zone" JGJ 134-2010[S], Professional Standard of the People's Republic of China, 5-8.

Google Scholar

[7] "Evaluation Standard for Green Building"(Draft for examination)) GB/T 50378-201×[S], National Standard of the People's Republic of China.

Google Scholar

[8] "Aluminum for Future Generations", http://recycling.world-aluminium.org/cn/home.html.

Google Scholar

[9] Ding Ning etc., "Comparative Analysis of Primary Aluminum and Secondary Aluminum on Energy Consumption and Greenhouse Gas Emission"[J], Transactions of Nonferrous Metals Society of China, Vol. 22 No. 10 2012, 2910-2914.

Google Scholar