Investigation of lightweight gypsum based on montmorillonite nanoclay with enhanced insulation properties

Erfan Anjomshoa
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Abstract

PurposeNowadays, thermal comfort plays a prominent role in contemporary construction practices. Appropriate thermal insulation not only offers energy efficiency benefits in buildings but also enhances occupant well-being, comfort, and productivity. Therefore, a comprehensive understanding of the thermal properties of building materials is essential. This research aims to prepare and investigate a lightweight gypsum-based composite incorporating nano montmorillonite with advanced thermal insulation properties, considering both quality and cost-effectiveness while ensuring environmental compatibility.Design/methodology/approachThis study adopts a laboratory experimental approach. A gypsum sample (without additives) and seven samples of gypsum combined with varying percentages of sodium and calcium montmorillonite nanoclays undergo extensive testing and analysis. Subsequently, the properties of these samples are compared.FindingsThe results indicate that adding montmorillonite nanoclays to gypsum composites reduces the density of the tested samples and increases their porosity. Moreover, the thermal conductivity coefficient decreases in these samples, significantly improving the thermal insulation properties of the lightweight gypsum plaster. This improvement is more pronounced in samples containing sodium montmorillonite nanoclay compared to calcium-based samples. Additionally, the investigations reveal that compressive strength decreases with the addition of montmorillonite to the samples.Originality/valueIn this research, laboratory experiments were conducted to investigate the physical and mechanical properties of gypsum plaster with varying percentages of sodium and calcium montmorillonite nanoclays. The studied properties include density, porosity, thermal conductivity coefficient, and compressive strength. Additionally, stress-strain diagrams, elastic modulus, and initial and secondary critical stresses were analyzed for each specimen.
基于蒙脱土纳米粘土的轻质石膏的保温性能研究
目的如今,热舒适性在当代建筑实践中发挥着重要作用。适当的隔热不仅能提高建筑物的能效,还能改善居住者的健康、舒适度和工作效率。因此,全面了解建筑材料的热性能至关重要。本研究旨在制备和研究一种含有纳米蒙脱石的轻质石膏基复合材料,它具有先进的隔热性能,同时兼顾质量和成本效益,并确保环境兼容性。对一种石膏样品(不含添加剂)和七种与不同比例的钠和钙蒙脱石纳米粘土相结合的石膏样品进行了广泛的测试和分析。结果表明,在石膏复合材料中添加纳米蒙脱土会降低测试样品的密度,增加其孔隙率。此外,这些样品的导热系数降低,从而显著改善了轻质石膏灰泥的隔热性能。与钙基样品相比,这种改善在含有钠蒙脱石纳米土的样品中更为明显。此外,研究还发现,抗压强度会随着蒙脱石添加量的增加而降低。所研究的特性包括密度、孔隙率、导热系数和抗压强度。此外,还分析了每个试样的应力应变图、弹性模量以及初始和次临界应力。
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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