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Mechanical behavior of microcellular, natural fiber reinforced composites at various strain rates and temperatures

机译:微孔天然纤维增强复合材料在不同应变速率和温度下的力学行为

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摘要

The mechanical properties of polypropylene (PP) composites with short, wheat straw natural-fiber reinforcements are studied in tension at various temperatures and rates of loading. Specimens of two fiber lengths have been considered with both closed-form, microcellular voids and in solid form. Results of mechanical stress-strain tests are given at static to moderate rates of strain, specifically 0.0005/s, 0.025/s and 14/s. Testing at these strain rates is conducted up to specimen failure at low, room and high temperatures of -30 °C, 22 °C, and 107 °C, respectively. Primary findings suggest that fibers increase the tangent modulus and ultimate stress, while reducing the failure strain, compared to pure polymer. The presence of microcellular voids generally reduces ultimate strength, but does not reduce failure strain. In many cases, the microcellular composites display reduced rate sensitivity that would result in the development of lower stress than solid counterparts during high rate and/or high strain events. The performance difference between the two fiber cases studied here is largest at room temperature and quasi-static strain rates, and in most cases becomes insignificant with increasing or decreasing temperature and increasing strain rates.
机译:研究了具有短小麦秸秆天然纤维增强材料的聚丙烯(PP)复合材料的机械性能,研究了不同温度和加载速率下的张力。已经考虑到两种纤维长度的样品具有闭合形式的微孔空隙和固体形式。机械应力-应变测试的结果是在静态到中等应变率下给出的,具体为0.0005 / s,0.025 / s和14 / s。在这些应变率下进行测试,直至分别在-30°C,22°C和107°C的低温,室温和高温下破坏样品。主要发现表明,与纯聚合物相比,纤维可增加切线模量和极限应力,同时减小破坏应变。微孔空隙的存在通常会降低极限强度,但不会降低破坏应变。在许多情况下,微孔复合材料显示出降低的速率敏感性,这将导致在高速率和/或高应变事件期间产生的应力低于固体对应物。此处研究的两种光纤案例之间的性能差异在室温和准静态应变率下最大,并且在大多数情况下,随着温度的升高或降低以及应变率的提高而变得微不足道。

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