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首页> 外文期刊>Journal of Applied Mechanics: Transactions of the ASME >Isogeometric Implementation of High-Order Microplane Model for the Simulation of High-Order Elasticity, Softening, and Localization
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Isogeometric Implementation of High-Order Microplane Model for the Simulation of High-Order Elasticity, Softening, and Localization

机译:高阶微相模型的ISogeometric实现,用于仿真高阶弹性,软化和定位

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摘要

In this paper, a recently developed higher-order microplane (HOM) model for softening and localization is implemented within a isogeometric finite-element framework. The HOM model was derived directly from a three-dimensional discrete particle model, and it was shown to be associated with a high-order continuum characterized by independent rotation and displacement fields. Furthermore, the HOM model possesses two characteristic lengths: the first associated with the spacing of flaws in the material internal structure and related to the gradient character of the continuum; the second associated with the size of these flaws and related to the micropolar character of the continuum. The displacement-based finite element implementation of this type of continua requires C-1 continuity both within the elements and at the element boundaries. This motivated the implementation of the concept of isogeometric analysis which ensures a higher degree of smoothness and continuity. Nonuniform rational B-splines (NURBS) based isogeometric elements are implemented in a 3D setting, with both displacement and rotational degrees-of-freedom at each control point. The performed numerical analyses demonstrate the effectiveness of the proposed HOM model implementation to ensure optimal convergence in both elastic and softening regime. Furthermore, the proposed approach allows the natural formulation of a localization limiter able to prevent strain localization and spurious mesh sensitivity known to be pathological issues for typical local strainsoftening constitutive equations.
机译:在本文中,用于软化和定位的最近开发的高阶微板(HOM)模型在异诊室有限元框架内实现。 HOM模型直接来自三维离散粒子模型,并且显示与由独立旋转和位移场的特征的高阶连续体相关联。此外,HOM模型具有两个特征长度:第一个与材料内部结构中缺陷间距相关的首先相关,并且与连续体的梯度特征相关;与这些缺陷的尺寸相关的第二并且与连续体的微微波利多特征相关。这种基于位移的有限元实现这种类型的连续元件需要在元素内和元素边界内的C-1连续性。这激发了ISoGeometic分析概念的实现,确保了更高程度的平滑度和连续性。基于非均匀的B样条(NURBS)的异诊测量元件在3D设置中实现,每个控制点具有位移和旋转自由度。所进行的数值分析证明了所提出的HOM模型实施的有效性,以确保弹性和软化制度的最佳收敛。此外,所提出的方法允许局部化限制器的自然制剂能够防止已知的典型局部躯干组成型方程的病理问题和杂散网眼敏感性。

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