Dependence of mechanical characteristics from composition and structure and optimization of mechanical fracture energy of polymer composite material based on high-molecular rubbers

E. Nurullaev, A. Ermilov, N. Y. Lyubimova
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引用次数: 1

Abstract

By means of numerical experiment the authors investigate dependence of conventional rupturing stress and mechanical fracture energy at uniaxial tension from fractional composition of dispersed filler, plasticizer volume fraction in polymer binder, effective density of transverse bonds, applied to development of covering for different purposes and with advanced service life in temperature range from 223 to 323 K. They compare mechanical characteristics of polymer composite materials (PCMs) based on high- and low-molecular rubbers. It was shown that rupturing stress of high-molecular rubber-based PCM is of a higher magnitude than the stress of low-molecular rubber-based one at almost invariable rupturing deformation. Numerical simulation by variation of composition parameters and molecular structure enables evaluation of its maximum fracture energy which is 1000 times higher than mechanical fracture energy of similar composites based on low-molecular rubbers.
高分子橡胶基高分子复合材料力学性能与组成结构的关系及力学断裂能的优化
通过数值实验研究了在223 ~ 323 K温度范围内,分散填料的分数组成、聚合物粘结剂中增塑剂的体积分数、横向键的有效密度对常规断裂应力和单轴拉伸下机械断裂能的影响。他们比较了基于高分子橡胶和低分子橡胶的聚合物复合材料(PCMs)的机械特性。结果表明,在几乎不变的断裂变形下,高分子橡胶基PCM的断裂应力要大于低分子橡胶基PCM的断裂应力。通过改变组分参数和分子结构进行数值模拟,得到其最大断裂能比同类低分子橡胶基复合材料的机械断裂能高1000倍。
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