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BE: MUSES: Sustainable Concrete Infrastructure Materials and Systems: Developing an Integrated Life Cycle Design Framework

BE: MUSES: Sustainable Concrete Infrastructure Materials and Systems: Developing an Integrated Life Cycle Design Framework
BE:MUSES:可持续混凝土基础设施材料和系统:开发集成生命周期设计框架
批准号:
0329416
负责人:
Gregory Keoleian
金额:
$167.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-09-01 至 2009-08-31

项目摘要

项目成果

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中文摘要
翻译
这个环境中的生物复杂性-材料用途:科学、工程和社会(Muses)项目汇集了来自三个国家和七个学科的研究人员,以创建模型和评估旨在减少大型民用基础设施中使用的混凝土对环境影响的新材料。全球混凝土生产推动了自然和人类系统之间的巨大物质流动。这种物质流的剪切强度每年超过120亿吨,造成了重大的社会影响。例如,基于混凝土的基础设施项目需要大量的公共资本投资,水泥生产引发大量温室气体排放,并导致与建筑有关的交通拥堵,造成污染和生产力损失。开发新材料来补充或替代混凝土以改善性能特征通常不会解决广泛的经济,环境和社会后果。该项目将通过开发一种新的可持续设计框架来解决这一缺点,该框架将微结构剪裁与生命周期分析相结合。该项目从技术设计的角度以及健康、经济和政策的角度探讨了工程水泥复合材料(ECC)。 该项目包括ECC发展的微观研究,ECC在桥面,道路和管道上的宏观应用,回收材料的结合,生命周期影响的测量以及不同地理范围的调查。这项工作包括多学科的观点,包括土木和材料工程,地质学,环境健康科学,工业生态学,环境经济学和公共政策。需要探讨的问题包括采购替代品(超级采石场与小型矿山)和基础设施项目地点(城市与农村,美国与中国)的影响。鉴于固有的设计复杂性,研究人员将在其定量模型中纳入不确定性和敏感性分析,以确保结果足够稳健,以支持采用新材料的有效决策。密歇根大学的团队将与日本东北大学的研究人员合作,他们将研究在ECC混合物中使用CO2硬化过程;中国清华大学的研究人员将使用生命周期模型评估中国基础设施系统的可持续性性能,以及斯坦福大学。将通过一个网上教育资源简编以及一系列有全球合作伙伴参加的讲习班,促进教育推广工作。预计Muses的这项研究将对大型民用基础设施的材料使用产生重大影响,并将提供工具,加速采用新材料和材料替代品,从而降低其整个生命周期对环境的影响。
英文摘要
This Biocomplexity in the Environment - Materials Use: Science, Engineering and Society (MUSES) project brings together researchers from three countries and seven disciplines to create models and evaluate new materials aimed at reducing the environmental impact of concrete used in large civil infrastructures. Global production of concrete drives huge flows of material between natural and human systems. The shear magnitude of this material flow, which exceeds 12 billion tons each year, causes significant societal impacts. For example, concrete-based infrastructure projects require major investments of public capital, trigger enormous greenhouse gas emissions from cement production, and lead to construction-related traffic congestion resulting in pollution and lost productivity. Developments of new materials to supplement or replace concrete to improve the performance characteristics typically do not address the broad economic, environmental, and social consequences. This project will address this shortcoming by developing a novel framework for sustainable design that integrates microstructure tailoring with life cycle analysis. The project explores engineered cementitious composites (ECC) both from a technical design standpoint and from the health, economics, and policy perspectives. The project includes micro-scale research on the development of ECC, macro-scale application of ECC to bridge decks, roadways, and pipes, incorporation of recycled materials, measurement of life-cycle impacts, and investigation at different geographic scopes. This work encompasses multi-disciplinary perspectives including civil and materials engineering, geology, environmental health sciences, industrial ecology, environmental economics, and public policy. Among the issues to be explored are the impacts of sourcing alternatives (superquarries vs. smaller mines) and location of infrastructure projects (urban vs. rural, and U.S. vs. China). Given the inherent design complexity, researchers will incorporate uncertainty and sensitivity analysis in their quantitative models to ensure that results are sufficiently robust to support effective decision-making in the adoption of new materials. The University of Michigan team will collaborate with researchers at the Tohoku University in Japan, who will investigate the use of CO2 hardening process on the ECC mixes; researchers at Tsinghua University in China who will use the life cycle model to assess sustainability performance of infrastructure systems in China, and Stanford University. Educational outreach will be facilitated through a web-based educational resource compendium, as well as through a series of workshops involving the global partners. It is expected that this MUSES research will have a significant impact on materials use in large, civil infrastructures and will provide tools that will accelerate the adoption of new materials and material substitutions that lower the environmental impact over their whole life cycle.
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