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Mechanical Performance of Jute Fiber-Reinforced Micaceous Clay Composites Treated with Ground-Granulated Blast-Furnace Slag

机译:粒状高炉矿渣处理黄麻纤维增强云母黏土复合材料的力学性能

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摘要

The combined capacity of Jute Fibers (JF), the reinforcement, and Ground-Granulated Blast-Furnace Slag (GBFS), the binder, was examined as a sustainable solution towards ameliorating the inferior engineering properties of micaceous clays. A total of sixteen JF + GBFS mix designs, i.e., JF (% by total mass) = {0, 0.5, 1.0, 1.5} and GBFS (% by total mass) = {0, 3, 6, 9}, were tested for unconfined compression (UC) strength; for those mix designs containing GBFS, curing was allowed for 7 and 28 days prior to testing. Scanning electron microscopy (SEM) studies were also carried out to observe the evolution of fabric in response to JF, GBFS and JF + GBFS amendments. The greater the JF content the higher the developed strength and stiffness up to 1% JF, beyond of which the effect of JF-reinforcement led to some adverse results. The JF inclusions, however, consistently improved the ductility and toughness of the composite. The addition of GBFS to the JF-reinforced samples improved the soil–fiber connection interface, and thus led to further improvements in the composite’s strength, stiffness and toughness. The mix design “1% JF + 9% GBFS” managed to satisfy ASTM’s strength criterion and hence was deemed as the optimum choice in this investigation. Finally, a non-linear, multivariable regression model was developed and validated to quantify the peak UC strength as a function of the composite’s index properties. The proposed model contained a limited number of fitting parameters, all of which can be calibrated by little experimental effort, and thus implemented for preliminary design assessments.
机译:黄麻纤维(JF)(增强材料)和磨碎的高炉矿渣(GBFS)(粘合剂)的组合容量已被研究为改善云母粘土劣等工程性能的可持续解决方案。总共测试了16种JF + GBFS混合设计,即JF(总质量百分比)= {0,0.5,1.0,1.5}和GBFS(总质量百分比)= {0,3,6,9}无限制压缩(UC)强度;对于那些包含GBFS的混合料设计,在测试前允许固化7天和28天。还进行了扫描电子显微镜(SEM)研究,以观察织物对JF,GBFS和JF + GBFS修正的响应。 JF含量越大,高达1%JF的强度和刚度就越高,超过此范围,JF增强的作用会导致一些不良结果。然而,JF夹杂物持续改善了复合材料的延展性和韧性。在JF增强的样品中添加GBFS改善了土壤纤维连接界面,从而进一步改善了复合材料的强度,刚度和韧性。混合设计“ 1%JF + 9%GBFS”设法满足ASTM的强度标准,因此被认为是该研究的最佳选择。最后,开发并验证了非线性多变量回归模型,以量化峰UC强度作为复合材料指标特性的函数。所提出的模型包含有限数量的拟合参数,只需很少的实验工作就可以校准所有这些参数,因此可以用于初步设计评估。

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