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CONSTITUTIVE MODELLING AND PARAMETER IDENTIFICATION FOR RUBBER-LIKE MATERIALS

机译:像橡胶一样的材料的本构建模和参数识别

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摘要

The aim of the paper is to determine the phenomenological model to characterize the stress-strain relation and to simulate the behaviour of solid polyurethane (PUR) rubbers used in civil engineering, as well as to present the process of identification of model parameters for such materials. For the material studied the strain energy density function was established and a general constitutive relationship for the second-order tensor of Piola-Kirchhoff stress for elasticity is determined. Constitutive relationships for engineering stress in terms of the principal stretches are also specified. The paper presents the method of identification of parameters for constitutive models of hyperelasticity and hypoelasticity for the accessible experimental data. The applied identification procedure is based on the feature of two-phase structure of polyurethane material and is supported by the experimental data from uniaxial quasi-static tension and compression tests. In the analysis, the material behaviour was considered both for the case of incompressible deformation and also for the case of slightly compressible, non-linearly elastic materials that are homogeneous and isotropic. The change of volume was admitted too, in range of large deformations in a tension and compression test. The attempt of description of stress-softening phenomenon was undertaken in rubber-like materials, for a given level of strain, under unloading (the Mullins effect) caused by the damage of microstructure of this material. Different descriptions of the stress-softening phenomenon were already proposed in the literature but they fail to give fully satisfactory conformity of experimental data with theoretical predictions. The phenomenological model by ELIAS-ZUNIGA and BEATTY, A new phenomenological model for stress-softening in elastomers, ZAMP, 53, 794-814, 2002, for such materials was modified by different softening functions and a simplified version of this model was identified, based on the experimental data. In the proposed model, the damage of microstructure was described by a new exponential function, which depends on the current magnitude of intensity of strain and its earlier maximum value during the process of material loading. In this paper, a suitable analysis of existent models and their verification based on experimental data for polyurethane rubber is presented for uniaxial experiments. It is shown that the magnitude of stress-softening varies with strain and this phenomenon increases with the magnitude of the pre-strain and the type of loading: monotonic tension, compression or cyclic loading. The obtained results are presented graphically for uniaxial tension and com-pression.
机译:本文的目的是确定现象学模型以表征应力-应变关系并模拟土木工程中使用的固态聚氨酯(PUR)橡胶的性能,并提出识别此类材料的模型参数的过程。对于所研究的材料,建立了应变能密度函数,并确定了Piola-Kirchhoff应力的二阶张量的总本构关系,以求弹性。还规定了主要拉伸方面的工程应力本构关系。本文提出了用于可访问的实验数据的超弹性和次弹性本构模型的参数识别方法。应用的识别程序基于聚氨酯材料的两相结构特征,并得到单轴准静态拉伸和压缩测试的实验数据的支持。在分析中,既考虑了不可压缩变形的情况,又考虑了均匀可塑性各向同性的,略微可压缩的非线性弹性材料的情况。在拉伸和压缩试验中,在大变形范围内也可以接受体积的变化。在给定的应变水平下,在这种材料的微观结构损坏引起的卸载(穆林斯效应)下,对类似橡胶的材料进行了应力软化现象描述的尝试。关于应力软化现象的不同描述已经在文献中提出,但是它们不能使实验数据与理论预测完全一致。 ELIAS-ZUNIGA和BEATTY的现象学模型,一种用于弹性体中应力软化的新现象学模型,ZAMP,53,794-814,2002,通过不同的软化功能对其进行了修改,并确定了该模型的简化版本,根据实验数据。在提出的模型中,通过新的指数函数描述了微观结构的破坏,该函数取决于当前的应力强度大小及其在材料加载过程中的早期最大值。在本文中,针对聚氨酯橡胶的现有模型进行了适当的分析,并基于聚氨酯橡胶的实验数据对其进行了验证,以用于单轴实验。结果表明,应力软化的强度随应变而变化,并且这种现象随着预应变的大小和载荷类型(单调张力,压缩或循环载荷)而增加。所获得的结果以图形方式显示了单轴拉伸和压缩。

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