节能建筑用水泥基复合砂浆技术经济分析

Jeanne Leclerc, Abdul Wasy Zia
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引用次数: 0

摘要

本文探讨了保温水泥基砂浆在不断增长的可持续材料的需求,以提高建筑能源效率的愿望。水泥砂浆在全球范围内被广泛使用,结合轻质和绝缘的骨料,如沙子替代品,可以提高能源效率,最大限度地减少建筑物的能源损失。技术经济分析在这项工作中评估复合砂浆通过加入气凝胶,膨胀粘土和膨胀聚苯乙烯骨料,符合欧洲标准EN998-1。它们的性能是根据换砂率、导热系数、抗压强度、密度和成本来评估的。集成绝缘集料可降低抗压强度和密度,影响机械阻力和结构重量。因此,该分析确定了最佳的材料组成,即用67%的气凝胶和100%的膨胀粘土和膨胀聚苯乙烯代替砂土,以保持热学和力学性能之间的平衡。人们认为,气凝胶表现出最好的绝缘性能,但它们是最昂贵的候选材料。技术经济分析还检查了最佳厚度,显示膨胀聚苯乙烯可以在盈亏平衡点上减少高达86%的能耗,尽管它需要一个超过8厘米的不切实际的厚层。本研究中开发的决策支持系统推荐膨胀聚苯乙烯作为最具成本效益的选择,可实现50%的节能和高达68%的二氧化碳减排。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Techno-economic analysis of cement-based composite mortars for energy-efficient buildings
This article explores thermal insulating cement-based mortars in aspiration of increasing demand for sustainable materials to improve building energy efficiency. Cement mortars are widely used around the globe, and integrating lightweight and insulating aggregates such as sand replacements offers better energy efficiency and minimize energy losses in buildings. The techno-economic analysis in this work evaluates composite mortars by incorporating aerogel, expanded clay, and expanded polystyrene aggregates, in line with European standards EN998-1. Their performance is assessed as a function of percentage sand replacement, thermal conductivity, compressive strength, density, and cost. Integrating insulating aggregates reduces compressive strength and density, impacting mechanical resistance and structural weight. Therefore, this analysis identifies the optimal material composition by replacing sand with 67% aerogel and 100% expanded clay and expanded polystyrene to maintain a balance between thermal and mechanical performance. It is perceived that the aerogel exhibits the best insulation properties, but they are the most expensive candidate. The techno-economic analysis also examines the optimal thickness, revealing that expanded polystyrene can reduce energy consumption by up to 86% at the break-even point, though it requires an impractically thick layer of over 8 cm. The decision support system developed in this study recommends expanded polystyrene as the most cost-effective option for achieving 50% energy savings and CO2 reduction of up to 68%.
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