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The Potential of Silane Coated Calcium Carbonate on Mechanical Properties of Rigid PVC Composites for Pipe Manufacturing

机译:硅烷包覆碳酸钙对硬质PVC管材复合材料力学性能的影响

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The inclusion of CaCO3 and kaolin in polyvinyl chloride (PVC) polymer matrices greatly enhances the physical and mechanical properties of the composite. In this study, the effects of kaolin and surface treatment of CaCO3 and kaolin particles on the microstructure and mechanical properties of PVC composites filled with kaolin particles via melt blending method were studied by means of SEM, tensile, Charpy impact testing, and FTIR. Treated and untreated kao-lin particles were dispersed in matrices of PVC resin at different concentrations up to 30 wt percentage. The tensile strength, elastic modulus, strain to failure and morphology of the resulting composites were measured for various filler loadings. Uniform dispersion of the fillers into the matrix proved to be a critical factor. SEM images revealed that small sized particles were more agglomerated than micron-sized particles and the amount of agglomerates increased with increasing particle content. Silane treated Kaolin-CaCO3/PVC composites had superior tensile and impact strengths to untreated kaolin-CaCO3/PVC composites. The Young’s modulus of all composites increased with increasing particle content up to maximum at 10% filler loading followed by gradually decreasing as content increased.
机译:CaCO3和高岭土在聚氯乙烯(PVC)聚合物基质中的加入大大增强了复合材料的物理和机械性能。在这项研究中,通过SEM,拉伸,夏比冲击试验和FTIR研究了高岭土以及CaCO3和高岭土颗粒的表面处理对熔融共混法填充高岭土颗粒的PVC复合材料的微观结构和力学性能的影响。将处理过的和未处理的高岭土颗粒以不同的浓度分散在PVC树脂基体中,浓度最高为30 wt%。对于各种填料载荷,测量所得复合材料的拉伸强度,弹性模量,破坏应变和形态。填料均匀分散到基质中被证明是一个关键因素。 SEM图像显示,小尺寸的颗粒比微米尺寸的颗粒更易团聚,并且团聚的数量随颗粒含量的增加而增加。硅烷处理的高岭土-CaCO3 / PVC复合材料比未处理的高岭土-CaCO3 / PVC复合材料具有优异的拉伸强度和冲击强度。所有复合材料的杨氏模量都随着颗粒含量的增加而增加,在填料含量为10%时达到最大值,然后随着含量的增加而逐渐降低。

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