Life Cycle Assessment of alkali activated materials: preliminary investigation for pavement applications

Q2 Engineering RILEM Technical Letters Pub Date : 2021-12-07 DOI:10.21809/rilemtechlett.2021.120
F. Lolli, K. Kurtis
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引用次数: 2

Abstract

The capital investment in the US for construction and maintenance of the infrastructure road network is $150 billion/year. Investments in OECD countries will likely stabilize, while other countries will face an exponential growth of investments for infrastructures driven by the development of metropolitan cities. Continued “business-as-usual” practice for portland and asphalt cement concrete pavement construction ignores the increasing warning calls for the identification of more sustainable and less energy intensive paving materials. Alkali activated materials concrete (AAM) have been studied with growing interest during the last three decades. AAM show promising results in terms of mechanical performance, while also having a global warming potential impact 30-80% less than that of portland cement concrete. The global warming potential of AAM is closely dependent on the: 1) activating solution used to activate the raw material and 2) origin of the raw material. Specifically, the impact of the transport for both of these components is ~ 10% of its global warming potential. Hence, to increase the adoption of AAM for pavements, it is fundamental to analyze the existing literature to clarify the link between environmental impact and mechanical performance, identifying opportunities for applications that are tailored to the local availability of raw material.
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碱活性材料的生命周期评估:路面应用的初步调查
美国用于基础设施公路网建设和维护的资本投资为1500亿美元/年。经合组织国家的投资可能会稳定下来,而其他国家的基础设施投资将因大都市的发展而呈指数级增长。波特兰和沥青水泥混凝土路面施工的持续“一切照旧”做法忽视了越来越多的警告,即需要确定更可持续、能耗更低的路面材料。在过去的三十年里,人们对碱活性材料混凝土(AAM)的研究越来越感兴趣。AAM在力学性能方面显示出有希望的结果,同时其对全球变暖的潜在影响也比硅酸盐水泥混凝土低30-80%。AAM的全球变暖潜力与以下因素密切相关:1)用于活化原材料的活化溶液和2)原材料的来源。具体而言,运输对这两种成分的影响约为其全球变暖潜力的10%。因此,为了增加AAM在路面上的应用,分析现有文献以澄清环境影响和机械性能之间的联系,确定根据当地原材料可用性定制应用的机会是至关重要的。
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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