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Modeling of nonlinearhyper-viscoelasticand stress softening behaviors of acrylonitrile butadiene rubber/polyvinyl chloride nanocomposites reinforced by nanoclay and graphene

机译:纳米粘土和石墨烯增强丙烯腈丁二烯橡胶/聚氯乙烯纳米复合材料的非线性滑球 - 粘弹性和胁迫软化行为的建模

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This research work is devoted to the development of multiple material models as constitutive equations for the description of the complex mechanical behavior of a series of nanocomposites based on the acrylonitrile butadiene rubber (NBR)/polyvinyl chloride (PVC) reinforced by nanoclay graphene. The preparation method and the mechanical with other properties of these nanocomposites were already investigated and reported in our previous work. The developed model consists of the Marlow hyperelastic integral equation, strain hardening power-law equation for the nonlinear viscoelastic behavior as well as Ogden and Roxburgh equation to simulate the stress softening behavior. Stress relaxation tests were first carried out to show the nonlinear viscoelastic behavior of the samples. Simple tensile and volumetric tests were performed for Marlow model. The parameters of the nonlinear viscoelastic and stress softening equations in the model were determined by solving an inverse problem using a novel numerical algorithm, which was based on the combination of an optimization loop using Down Hill simplex method and finite element simulation of a dumbbell test specimen under load. To achieve this task, quasi-static tests under cyclic loading with different final extensions and three extensional rates were also performed. Then, their corresponding finite element models were developed and the associated inverse problems were solved. Comparing the force-displacement data obtained via simulation using the mentioned model with their corresponding experimental data confirms of the model correctness and its applicability. Moreover, the mechanical behaviors of both neat and reinforced polymer blend (NBR/PVC) with nanofillers are shown to be supportive of the computed parameters.
机译:本研究致力于开发多种材料模型作为本构方程,用于描述一系列基于纳米粘土石墨烯增强的丙烯腈-丁二烯橡胶(NBR)/聚氯乙烯(PVC)纳米复合材料的复杂力学行为。这些纳米复合材料的制备方法和力学性能与其他性能已经在我们之前的工作中进行了研究和报道。该模型由Marlow超弹性积分方程、非线性粘弹性行为的应变硬化幂律方程以及模拟应力软化行为的Ogden和Roxburgh方程组成。首先进行应力松弛试验,以显示样品的非线性粘弹性行为。对马洛模型进行了简单的拉伸和体积试验。模型中非线性粘弹性和应力软化方程的参数是通过使用一种新的数值算法求解一个反问题来确定的,该算法基于下坡单纯形法的优化循环和载荷下哑铃试样的有限元模拟相结合。为了完成这项任务,还进行了具有不同最终延伸率和三种延伸率的循环荷载下的准静态试验。然后,开发了相应的有限元模型,并解决了相关的反问题。通过与相应的实验数据的比较,验证了模型的正确性和适用性。此外,含有纳米填料的纯聚合物共混物(NBR/PVC)和增强聚合物共混物(NBR/PVC)的力学行为均支持计算参数。

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