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Transforming Marble Waste into High-Performance Water-Resistant and Thermally Insulative Hybrid Polymer Composites for Environmental Sustainability

机译:将大理石废物转化为高性能防水和热绝缘混合聚合物复合材料用于环境可持续性

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摘要

Marble waste is generated by marble processing units in large quantities and dumped onto open land areas. This creates environmental problems by contaminating soil, water, and air with adverse health effects on all the living organisms. In this work, we report on understanding the use of calcium-rich marble waste particulates (MPs) as economic reinforcement in recyclable polypropylene (PP) to prepare sustainable composites via the injection molding method. The process was optimized to make lightweight and high-strength thermally insulated sustainable composites. Physicochemical, mineralogical, and microscopic characterization of the processed marble waste particulates were carried out in detail. Composite samples were subsequently prepared via the injection molding technique with different filler concentrations (0%, 20%, 40%, 60%, and 80%) on weight fraction at temperatures of 160, 180, and 200 °C. Detailed analysis of the mechanical and thermal properties of the fabricated composites was carried out. The composites showed a density varying from 0.96 to 1.27 g/cm , while the water absorption capacity was very low at 0.006–0.034%. Marble waste particulates were found to considerably increase the tensile, as well as flexural, strength of the sustainable composites, which varied from 22.06 to 30.65 MPa and 43.27 to 58.11 MPa, respectively, for the molding temperature of 160 °C. The impact strength of the sustainable composites was found to surge with the increment in filler concentration, and the maximum impact strength was recorded as 1.66 kJ/m with 20% particulates reinforcement at a molding temperature of 200 °C. The thermal conductivity of the particulates-reinforced sustainable composites was as low as 0.23 W m K at a 200 °C molding temperature with 20% and 40% filler concentrations, and the maximum thermal conductivity was 0.48 W m K at a 160 °C molding temperature with 80% filler concentration. Our findings have shown a technically feasible option for manufacturing a lightweight composite with better mechanical and thermal properties using marble waste particulates as a potential civil infrastructural material.
机译:大理石废物由大量大量的大理石加工单位产生,倾倒在开放的土地区域。这通过污染土壤,水和空气对所有生物体产生不良健康影响来创造环境问题。在这项工作中,我们报告了解使用钙的大理石废物颗粒(MPS)作为可再循环聚丙烯(PP)的经济增强,以通过注塑方法制备可持续复合材料。优化该过程以使轻质和高强度的隔热可持续复合材料制成。详细地进行了处理的大理石废物颗粒的物理化学,矿物学和微观表征。随后通过注射成型技术在160,180和200℃的温度下以不同的填料浓度(0%,20%,40%,60%和80%)的注塑浓度(0%,20%,40%,60%和80%)制备复合样品。进行了对制造复合材料的机械和热性质的详细分析。复合材料显示密度从0.96到1.27g / cm的密度变化,而吸水能力非常低,0.006-0.034%。发现大理石废物颗粒可显着增加抗拉,以及可持续复合材料的弯曲强度,其分别从22.06至30.65MPa和43.27至58.11MPa变化,用于160℃的模塑温度。发现可持续复合材料的冲击强度随着填料浓度的增量而浪涌,并且最大冲击强度被记录为1.66kJ / m,其成型温度为200℃的模塑温度。颗粒增强的可持续复合材料的导热率在200℃的模塑温度下低至0.23WM k,浓度为20%和40%填料浓度,最大导热率为0.48WM k,在160℃的成型下温度80%填料浓度。我们的研究结果显示了一种技术上可行的选择,用于制造轻量级复合材料,使用大理石废物颗粒作为潜在的民用基础设施材料,具有更好的机械和热性能。

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