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用生物基聚合物稳定的环保土材料的热性能:改进配合比设计的实验数据和建模程序

Thermal Properties of Eco-Friendly Earthen Materials Stabilized with Bio-Based Polymers: Experimental Data and Modeling Procedure for Improving Mix-Design.

作者信息

Cappai Marta, Shoukat Rizwan, Pilia Luca, Ricciu Roberto, Lai Daniele, Marongiu Gianluca, Pia Giorgio

机构信息

Dipartimento di Ingegneria Meccanica, Chimica e dei Materiali, Università degli Studi di Cagliari, Via Marengo 2, 09123 Cagliari, Italy.

Materialia Association, 09037 San Gavino Monreale, Italy.

出版信息

Materials (Basel). 2024 Feb 23;17(5):1035. doi: 10.3390/ma17051035.

Abstract

The fight against climate change has delineated new objectives, among which one of the most crucial is the replacement of high-energy-intensity materials in the construction sector with more sustainable and thermally efficient alternatives to reduce indirect emissions. Consequently, the thermal properties of materials assume fundamental importance. In this regard, the large-scale use of earth represents a promising option, not only due to its widespread availability but especially for its minimal embodied energy. However, to enhance its durability, it is necessary to stabilize the mixtures of raw materials. This study analyzes experimental systems based on earth stabilized with bio-based polymers to evaluate their thermal properties and how these vary depending on the selected mix-design. The experimental measurements showed thermal properties comparable to conventional materials. As expected, thermal conductivity increases when porosity decreases. The minimum value is equal to 0.216 W/m·K vs. a porosity of 43.5%, while the maximum is 0.507 W/m·K vs. a porosity of 33.2%. However, the data obtained for individual systems may vary depending on the topological characteristics, which were analyzed through a model for granular materials. The modeling suggests correlations between microstructures and thermal behaviour, which can be useful to develop tools for the mix-design procedure.

摘要

应对气候变化的斗争已明确了新目标,其中最关键的目标之一是用更具可持续性且热效率更高的替代品,取代建筑行业中高能源强度的材料,以减少间接排放。因此,材料的热性能至关重要。在这方面,大规模使用土是一个很有前景的选择,这不仅是因为土随处可得,更重要的是其蕴含的能源极少。然而,为提高其耐久性,有必要稳定原材料的混合物。本研究分析了基于生物基聚合物稳定土的实验系统,以评估其热性能以及这些性能如何随所选的配合比设计而变化。实验测量结果表明,其热性能与传统材料相当。正如预期的那样,孔隙率降低时热导率会增加。最小值为0.216W/m·K,对应的孔隙率为43.5%,最大值为0.507W/m·K,对应的孔隙率为33.2%。然而,各个系统获得的数据可能会因拓扑特征而有所不同,这些拓扑特征通过一种粒状材料模型进行了分析。该建模表明了微观结构与热行为之间的相关性,这对于开发配合比设计程序的工具可能会很有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4bae/10934699/0292284b0605/materials-17-01035-g001.jpg

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