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Mechanical behavior and deformation micromechanisms of polypropylene nonwoven fabrics as a function of temperature and strain rate

机译:聚丙烯非织造布的力学行为和变形微观机制与温度和应变率的关系

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摘要

The mechanical behavior and the deformation and failure micromechanisms of a thermally-bonded polypropylene nonwoven fabric were studied as a function of temperature and strain rate. Mechanical tests were carried out from 248 K (below the glass transition temperature) up to 383 K at strain rates in the range ≈10−3 s−1 to 10−1 s−1. In addition, individual fibers extracted from the nonwoven fabric were tested under the same conditions. Micromechanisms of deformation and failure at the fiber level were ascertained by means of mechanical tests within the scanning electron microscope while the strain distribution at the macroscopic level upon loading was determined by means of digital image correlation. It was found that the nonwoven behavior was mainly controlled by the properties of the fibers and of the interfiber bonds. Fiber properties determined the nonlinear behavior before the peak load while the interfiber bonds controlled the localization of damage after the peak load. The influence of these properties on the strength, ductility and energy absorbed during deformation is discussed from the experimental observations.
机译:研究了热粘合聚丙烯非织造布的力学行为以及变形和破坏的微观机制,它是温度和应变率的函数。在≈10-3s-1至10-1 s-1的应变速率下,从248 K(低于玻璃化转变温度)到383 K进行了机械测试。另外,在相同条件下测试从无纺布中提取的单根纤维。通过扫描电子显微镜内的机械测试确定了纤维水平上的变形和破坏的微观机制,同时通过数字图像相关性确定了加载时宏观水平上的应变分布。发现非织造行为主要由纤维和纤维间键的性质控制。纤维特性决定了峰值载荷之前的非线性行为,而纤维间的结合力控制了峰值载荷之后的损伤局部。从实验观察中讨论了这些性能对变形期间的强度,延展性和吸收的能量的影响。

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