Assessing the maturity of alternative construction materials and their potential impact on embodied carbon for single-family homes in the American Midwest

IF 2.2 Q2 CONSTRUCTION & BUILDING TECHNOLOGY
Sindhuja Ranganath, Stephen McCord, Volker Sick
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Abstract

This study presents a whole building life cycle assessment for a 265 m2 end-terrace home built in Michigan, United States. The study scrutinized the embodied carbon footprint of conventional construction materials, focusing on high-impact materials like concrete, steel, gypsum, paint, and insulation. Stages from raw material extraction to transportation and processing of the raw materials into finished products and transportation of finished products to the site are considered. The baseline materials contributed to approximately 28,450 kg CO2e, equivalent to 107.35 kg CO2e/m2. A notable reduction in the embodied carbon footprint, ranging from 19% to 39%, was observed by substituting with ‘like-for-like’ alternatives. However, the study highlighted challenges in shifting to low-embodied carbon materials, primarily due to limited market readiness and scalability of some eco-friendly options. The study also assessed the feasibility of these alternatives using the United States Department of Energy’s “Technology Readiness Level” framework, examining their current production capacity, estimating potential future demand, and identifying key development areas to meet net-zero carbon goals effectively. This comprehensive approach underscores the complexity of transitioning to low embodied-carbon building practices while balancing feasibility and environmental impact.
评估替代建筑材料的成熟度及其对美国中西部单户住宅内含碳量的潜在影响
本研究对美国密歇根州一栋 265 平方米的端户住宅进行了整体建筑生命周期评估。该研究仔细检查了传统建筑材料的内含碳足迹,重点是混凝土、钢材、石膏、涂料和绝缘材料等高影响材料。研究考虑了从原材料开采到运输的各个阶段,以及将原材料加工成成品和将成品运输到工地的过程。基准材料产生了约 28 450 千克二氧化碳当量,相当于 107.35 千克二氧化碳/平方米。通过使用 "同类 "替代品,观察到内含碳足迹显著减少了 19% 至 39%。不过,该研究强调了向低内含碳材料转变所面临的挑战,这主要是由于一些生态友好型方案的市场准备程度和可扩展性有限。该研究还利用美国能源部的 "技术就绪水平 "框架评估了这些替代品的可行性,检查了它们目前的生产能力,估计了未来的潜在需求,并确定了有效实现净零碳目标的关键发展领域。这种综合方法强调了向低体现碳建筑实践过渡的复杂性,同时兼顾了可行性和环境影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Frontiers in Built Environment
Frontiers in Built Environment Social Sciences-Urban Studies
CiteScore
4.80
自引率
6.70%
发文量
266
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