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首页> 外文期刊>Experimental Mechanics >A Finite Element Method for the Determination of Optimal Viscoelastic Material Properties from Indentation Tests of Polymer Film and Wire with Polymer Insulation
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A Finite Element Method for the Determination of Optimal Viscoelastic Material Properties from Indentation Tests of Polymer Film and Wire with Polymer Insulation

机译:通过聚合物绝缘膜和金属丝的压痕试验确定最佳粘弹性材料性能的有限元方法

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摘要

The time-dependent behavior of bulk polymer film and wire with polymer insulation is studied using indentation. The indenter is displaced into the material at a constant rate and then held at a fixed indentation depth to monitor load relaxation. A finite element simulation of the experiment is performed; this analysis is parameterized in terms of the unknown shear compliance modeled as a Prony series. An optimization method is then presented to determine the unknown material parameters by minimizing the RMS error between the model and the experimental data. The method is demonstrated with poly (vinyl chloride) (PVC) films after thermal aging and pristine polyethylene sheet; excellent agreement between the model and the data is demonstrated. The method is also demonstrated to successfully characterize the material properties for the compression of a wire with PVC insulation; the resulting properties are then shown to adequately predict the crossed-cylinder indentation behavior of the same wire using a 3D finite element model. The chief benefit of the method is that an analytical solution method is not required for its implementation; as such, the optimization approach can be readily applied to the determination of material properties from arbitrarily complex experimental geometries.
机译:使用压痕研究了具有聚合物绝缘的本体聚合物薄膜和电线的时间依赖性行为。压头以恒定的速率移入材料中,然后保持在固定的压头深度以监控负载松弛。进行实验的有限元模拟;根据未知剪切顺应性建模为Prony系列,对该分析进行参数化。然后提出一种优化方法,通过最小化模型和实验数据之间的RMS误差来确定未知的材料参数。热老化后的聚氯乙烯(PVC)薄膜和原始的聚乙烯片材证明了该方法。证明了模型与数据之间的极好的一致性。该方法还被证明可以成功地表征具有PVC绝缘层的压缩电线的材料特性。然后使用3D有限元模型显示得到的特性,可以充分预测同一条导线的交叉圆柱压痕行为。该方法的主要优点是不需要使用解析解决方案方法。这样,优化方法可以很容易地应用于从任意复杂的实验几何形状确定材料特性的过程中。

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