OpenConcrete: a tool for estimating the environmental impacts from concrete production

Alyson Kim, P. Cunningham, Kanotha Kamau-Devers, Sabbie A. Miller
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引用次数: 8

Abstract

As the increasing global consumption of concrete drives notable environmental burdens from its production, particularly greenhouse gas (GHG) emissions, interest in mitigation efforts is increasing. Yet current environmental impact quantification tools rely on user decision-making to select data for each concrete constituent, have inconsistent scopes and system boundaries, and often utilize third-party life cycle inventories. These factors limit customization or tracking of data and hinder the ability to draw robust comparisons among concrete mixtures to mitigate its environmental burdens. To address these issues, we introduce a cohesive, unified dataset of material, energy, and emission inventories to quantify the environmental impacts of concrete. In this work, we detail the synthesis of this open dataset and create an environmental impact assessment tool using this data. Models can be customized to be region specific, expanded to varying concrete mixtures, and support data visualization throughout each production stage. We perform a scenario analysis of impacts to produce a representative concrete mixture across the United States, with results ranging from 189 kg CO2-eq/m3 of concrete (California) to 266 kg CO2-eq/m3 of concrete (West Virginia). The largest driver of GHG, nitrogen oxide, sulfur oxide, and volatile organic compound emissions as well as energy demand is cement production, but aggregate production is the largest driver of water consumption and particulate matter smaller than 2.5 microns (PM2.5) emissions.
OpenConcrete:一个估算混凝土生产对环境影响的工具
随着全球混凝土消费量的不断增加,其生产带来了显著的环境负担,特别是温室气体(GHG)排放,人们对减缓努力的兴趣正在增加。然而,目前的环境影响量化工具依赖于用户决策来选择每个具体组成部分的数据,范围和系统边界不一致,并且经常使用第三方生命周期清单。这些因素限制了定制或数据跟踪,并阻碍了在混凝土混合物之间进行可靠比较以减轻其环境负担的能力。为了解决这些问题,我们引入了一个有凝聚力的、统一的材料、能源和排放清单数据集,以量化混凝土对环境的影响。在这项工作中,我们详细介绍了这个开放数据集的综合,并使用这些数据创建了一个环境影响评估工具。模型可以定制为特定区域,扩展到不同的混凝土混合物,并支持整个生产阶段的数据可视化。我们对影响进行情景分析,以生产美国各地具有代表性的混凝土混合物,结果范围从189千克二氧化碳当量/立方米的混凝土(加利福尼亚州)到266千克二氧化碳当量/立方米的混凝土(西弗吉尼亚州)。温室气体、氮氧化物、硫氧化物和挥发性有机化合物排放以及能源需求的最大驱动因素是水泥生产,但总生产是水消耗和小于2.5微米(PM2.5)颗粒物排放的最大驱动因素。
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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