...
首页> 外文期刊>Multibody System Dynamics >A nonlinear visco-elastic constitutive model for large rotation finite element formulations
【24h】

A nonlinear visco-elastic constitutive model for large rotation finite element formulations

机译:大旋转有限元公式的非线性粘弹性本构模型

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Although all known materials have internal damping that leads to energy dissipation, most existing large deformation visco-elastic finite element formulations are based on linear constitutive models or on nonlinear constitutive models that can be used in the framework of an incremental co-rotational finite element solution procedure. In this investigation, a new nonlinear objective visco-elastic constitutive model that can be implemented in non-incremental large rotation and large deformation finite element formulations is developed. This new model is based on developing a simple linear relationship between the damping forces and the rates of deformation vector gradients. The deformation vector gradients can be defined using the decomposition of the matrix of position vector gradients. In this paper, the decomposition associated with the use of the tangent frame that is equivalent to the QR decomposition is employed to define the matrix of deformation gradients that enter into the formulation of the viso-elastic constitutive model developed in this investigation. Using the relationship between the deformation gradients and the components of the Green–Lagrange strain tensor, it is shown that the damping forces depend nonlinearly on the strains and linearly on the classical strain rates. The relationship between the damping forces and strains and their rates is used to develop a new visco-elastic model that satisfies the objectivity requirements and leads to zero strain rates under an arbitrary rigid body displacement. The linear visco-elastic Kelvin–Voigt model frequently used in the literature can be obtained as a special case of the proposed nonlinear model when only two visco-elastic coefficients are used. As demonstrated in this paper, the use of two visco-elastic coefficients only leads to viscous coupling between the deformation gradients. The model developed in this investigation can be used in the framework of large deformation and large rotation non-incremental solution procedure without the need for using existing co-rotational finite element formulations. The finite element absolute nodal coordinate formulation (ANCF) that allows for straightforward implementation of general constitutive material models is used in the validation of the proposed visco-elastic model. A comparison with the linear visco-elastic model is also made in this study. The results obtained in this investigation show that there is a good agreement between the solutions obtained using the proposed nonlinear model and the linear model in the case of small deformations.
机译:尽管所有已知材料都具有导致能量耗散的内部阻尼,但是大多数现有的大变形粘弹性有限元公式是基于线性本构模型或非线性本构模型的,这些模型可以在增量同向旋转有限元解决方案的框架中使用程序。在这项研究中,开发了一种新的非线性目标粘弹性本构模型,该模型可以在非增量大旋转和大变形有限元公式中实现。该新模型基于在阻尼力和变形矢量梯度速率之间建立简单的线性关系。可以使用位置矢量梯度矩阵的分解来定义变形矢量梯度。在本文中,使用与切线框架相关的分解(等效于QR分解)来定义变形梯度矩阵,该矩阵进入了在此研究中开发的粘弹性本构模型的公式。利用变形梯度和格林-拉格朗日应变张量的分量之间的关系,可以看出阻尼力非线性地取决于应变,线性地取决于经典应变率。利用阻尼力和应变及其比率之间的关系来开发一种新的粘弹性模型,该模型满足客观要求,并在任意刚体位移下导致零应变率。当仅使用两个粘弹性系数时,可以得到文献中经常使用的线性粘弹性Kelvin-Voigt模型作为所提出的非线性模型的特例。如本文所示,使用两个粘弹性系数只会导致形变梯度之间的粘滞耦合。本研究中开发的模型可用于大变形和大旋转非增量求解过程的框架,而无需使用现有的同向旋转有限元公式。允许直接执行一般本构材料模型的有限元绝对节点坐标公式(ANCF)用于验证所提出的粘弹性模型。在这项研究中也与线性粘弹性模型进行了比较。这项研究获得的结果表明,在变形较小的情况下,使用所提出的非线性模型和线性模型获得的解具有良好的一致性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号