Opportunities and challenges for engineering construction materials as carbon sinks

Q2 Engineering RILEM Technical Letters Pub Date : 2021-01-01 DOI:10.21809/rilemtechlett.2021.146
Sabbie A. Miller, Elisabeth Van Roijen, P. Cunningham, Alyson Kim
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引用次数: 5

Abstract

Population growth and urbanization over the coming decades are anticipated to drive unprecedented demand for infrastructure materials and energy resources. Unfortunately, factors such as the degree of resource consumption, the energy-intensive nature of production, and the chemical-reaction driven emissions make infrastructure materials production industries among the greatest contributors to anthropogenic CO2 emissions. Yet there is an often-overlooked potential environmental benefit to infrastructure materials: most remain in use for decades and their long service lives can facilitate extended storage of carbon. In this perspective, we present an overview of recent technological advancements that can support infrastructure materials acting as a global, distributed carbon sink and discuss areas for further research and development. We present mechanisms to quantify the extent to which the embodied carbon will be removed from the carbon cycle for a long enough period of time to provide carbon sequestration and climate benefit. We conclude that it is possible to unlock the vast potential to engineer a carbon sequestration system that simultaneously meets societal need for expanding infrastructure systems; however, complexities in how these systems are engineered must be systematically and quantitatively incorporated into materials design.
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工程建筑材料作为碳汇的机遇与挑战
预计未来几十年的人口增长和城市化将推动对基础设施材料和能源资源的空前需求。不幸的是,诸如资源消耗程度、生产的能源密集型性质以及化学反应驱动的排放等因素使基础设施材料生产行业成为人为二氧化碳排放的最大贡献者之一。然而,基础设施材料有一个经常被忽视的潜在环境效益:大多数材料可以使用数十年,它们的长使用寿命可以促进碳的长期储存。从这个角度来看,我们概述了最近的技术进步,这些技术进步可以支持基础设施材料作为全球分布式碳汇,并讨论了进一步研究和开发的领域。我们提出了一种机制来量化碳在足够长的时间内从碳循环中去除的隐含碳的程度,以提供碳固存和气候效益。我们的结论是,有可能释放巨大的潜力来设计一个碳封存系统,同时满足扩大基础设施系统的社会需求;然而,这些系统工程的复杂性必须系统地和定量地纳入材料设计。
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
RILEM Technical Letters
RILEM Technical Letters Materials Science-Materials Science (all)
CiteScore
5.00
自引率
0.00%
发文量
13
审稿时长
10 weeks
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