The Physicomechanical and Interfacial Properties of the Vetiveria Zizanioides Fiber Reinforced Polymer Composites

Haydar Zaman
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Abstract

The effects of chemical treatment and vetiveria zizanioides (vetiver) loading on the physicomechanical, morphological, and weather tests of the vetiver fiber (VF)-filled polypropylene (PP) composites were investigated. Raw VF was chemically treated with sodium dodecyl sulfate (SDS) and SDS-pretreated benzoyl chloride to increase its compatibility with the PP matrix. The mechanical properties of the PP/VF composites, including tensile strength, tensile modulus, impact strength, hardness, and water absorption, were increased by raising the fiber content to the optimum level of 30 wt%. The resultant composites' mechanical characteristics and water desorption were improved by adding SDS and SDS-pretreated benzoyl chloride for the VF. PP/VF composites containing benzoyl chloride after SDS pretreatment show better mechanical performance when compared to untreated and SDS-treated fiber composites. SEM studies showed that the treatment of the fibers enhanced the interfacial interaction between PP and VF, verifying the mechanical properties of the composites. Water absorption tests revealed that SDS-pretreated benzoyl chloride composites absorbed less water than untreated counterparts and even SDS-treated composites. Sodium dodecyl sulfate-pretreated benzoyl chloride composites exhibited less loss in tensile strength and tensile modulus during weather testing than sodium dodecyl sulfate-treated and untreated composites.
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香根草纤维增强聚合物复合材料的物理力学性能和界面性能
研究了化学处理和香根草负载对香根草纤维(VF)填充聚丙烯(PP)复合材料的物理机械、形态和耐候性测试的影响。用十二烷基硫酸钠(SDS)和经 SDS 处理的苯甲酰氯对未加工的香根草纤维进行化学处理,以增加其与聚丙烯基体的相容性。将纤维含量提高到 30% 的最佳水平后,PP/VF 复合材料的机械性能(包括拉伸强度、拉伸模量、冲击强度、硬度和吸水性)都得到了提高。在 VF 中加入 SDS 和经过 SDS 处理的苯甲酰氯可改善复合材料的机械特性和吸水性。与未经处理和经 SDS 处理的纤维复合材料相比,经 SDS 预处理后含有苯甲酰氯的 PP/VF 复合材料具有更好的机械性能。SEM 研究表明,纤维处理增强了 PP 和 VF 之间的界面相互作用,验证了复合材料的机械性能。吸水测试表明,经 SDS 处理的苯甲酰氯复合材料的吸水性低于未经处理的同类复合材料,甚至低于经 SDS 处理的复合材料。与十二烷基硫酸钠处理和未处理的复合材料相比,十二烷基硫酸钠处理的苯甲酰氯复合材料在耐候测试中的拉伸强度和拉伸模量损失较小。
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