AFOSR/RTE, Air Force Office of Scientific Research, , Arlington, VA 22203, USA.
Philos Trans A Math Phys Eng Sci. 2014 May 13;372(2015):20130215. doi: 10.1098/rsta.2013.0215.
Whether used as structural components in design or matrix materials for composites, the mechanical properties of polymers are increasingly important. The compressive response of extruded polymethyl methacrylate (PMMA) rod with aligned polymer chains and Al-Ni-PMMA particulate composites are investigated across a range of strain rates and temperatures. The particulate composites were prepared using an injection-moulding technique resulting in highly anisotropic microstructures. The mechanics of these materials are discussed in the light of theories of deformation for glassy polymers. The experimental data from this study are compared with PMMA results from the literature as well as epoxy-based composites with identical particulates. The PMMA exhibited the expected strain rate and temperature dependence and brittle failure was observed at the highest strain rates and lowest temperatures. The Al-Ni-PMMA composites were found to have similar stress-strain response to the PMMA with reduced strain softening after yield. Increasing volume fraction of particulates in the composite resulted in decreased strength.
无论是作为设计中的结构部件还是复合材料的基体材料,聚合物的力学性能都变得越来越重要。本文研究了具有定向聚合物链的挤出聚甲基丙烯酸甲酯(PMMA)棒和 Al-Ni-PMMA 颗粒复合材料在不同应变率和温度下的压缩响应。颗粒复合材料是通过注塑成型技术制备的,具有各向异性的微观结构。根据玻璃态聚合物的变形理论讨论了这些材料的力学性能。本研究的实验数据与文献中的 PMMA 结果以及具有相同颗粒的环氧树脂基复合材料进行了比较。PMMA 表现出预期的应变率和温度依赖性,并且在最高应变率和最低温度下观察到脆性失效。Al-Ni-PMMA 复合材料的应力-应变响应与 PMMA 相似,屈服后应变软化减少。复合材料中颗粒体积分数的增加导致强度降低。