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Mechanical and dynamic mechanical analysis of jute and human hair-reinforced polymer composites

机译:黄麻和人毛增强聚合物复合材料的机械和动态力学分析

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Application of light-weight materials in automotive and structural components such as door panel, Dashboard and internal engine cover play a crucial role in the improvement of vehicle performance. Weight reduction of automotive vehicle components results in less fuel consumption, leading to drastic reduction of CO2 emission. Carbon emission can be minimized through replacement of light-weight natural fiber reinforced composite-based components in place of metallic components in the vehicles. Simultaneous application of heat and dynamic loads on polymer composite materials affect crystallinity resulting in the degradation of material properties and its weight. Many researchers have shown interest in the use of bio composites for automotive parts with good mechanical and thermal properties for conventional automotive materials. The present work focuses on the fabrication of jute and human hair-reinforced epoxy-based polymer composites with five different fiber compositions. Mechanical properties such as tensile strength and impact energy were analyzed. Storage modulus, loss modulus and damping behavior under different frequencies constituting a function of increasing temperature was observed. The effect of fiber composition and frequency on dynamic behavior of new combination of natural composites was analyzed for determining the viscoelastic behavior of composites. Mechanical properties were found to increase with increase in human hair composition in the composites. The glass transition temperature (T-g) obtained from storage modulus, loss modulus and damping curve exhibits a temperature between 80 and 95 degrees C for all composites. As a consequence, higher fiber content in matrix was observed to allow greater stress transfer at the interface resulting in high dynamic mechanical properties. The experimental results have shown that the natural fiber-reinforced polymer composite is sustainable in withstanding dynamic loads. POLYM. COMPOS., 40:1132-1141, 2019. (c) 2018 Society of Plastics Engineers
机译:轻量级材料在汽车和结构部件中的应用,如门板,仪表板和内部发动机罩在提高车辆性能方面发挥了至关重要的作用。汽车车辆部件的重量减少导致燃料消耗较少,导致CO2排放的急剧减少。通过替换基于轻质天然纤维增强复合材料的组分来最小化碳排放代替车辆中的金属组分。同时在聚合物复合材料上施加热和动态载荷影响结晶度,导致材料性质的降解及其重量。许多研究人员对使用生物复合材料进行了良好的机械和热性能的生物复合材料,用于传统的汽车材料。目前的工作侧重于用五种不同的纤维组合物制造黄麻和人发高度的环氧基聚合物复合材料。分析了诸如拉伸强度和冲击能量的机械性能。观察到构成升高温度函数的不同频率下的储存模量,损耗模量和阻尼行为。分析了纤维组成和频率对新组合的自然复合材料组合的动态行为的影响,用于确定复合材料的粘弹性行为。发现机械性能随复合材料中的人毛组合物的增加而增加。从储存模量,损失模量和阻尼曲线获得的玻璃化转变温度(T-G)在所有复合材料上表现出80至95℃之间的温度。结果,观察到较高的纤维含量以允许在界面处允许更大的应力传递,从而产生高动态的机械性能。实验结果表明,天然纤维增强聚合物复合材料可持续存在于承受动态载荷。聚合物。 Compos。,40:1132-1141,2019。(c)2018塑料工程师协会

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