首页> 外文期刊>Engineering Computations >Model Adaptivity For Finiteelement Analysis Of Thin Or Thick plates Based On Equilibrated boundary Stress Resultants
【24h】

Model Adaptivity For Finiteelement Analysis Of Thin Or Thick plates Based On Equilibrated boundary Stress Resultants

机译:基于平衡边界应力结果的薄板或厚板有限元分析的模型适应性

获取原文
获取原文并翻译 | 示例

摘要

Purpose - The purpose of this paper is to address error-controlled adaptive finite element (FE) method for thin and thick plates. A procedure is presented for determining the most suitable plate model (among available hierarchical plate models) for each particular FE of the selected mesh, that is provided as the final output of the mesh adaptivity procedure. Design/methodology/approach - The model adaptivity procedure can be seen as an appropriate extension to model adaptivity for linear elastic plates of so-called equilibrated boundary traction approach error estimates, previously proposed for 2D/3D linear elasticity. Model error indicator is based on a posteriori element-wise computation of improved (continuous) equilibrated boundary stress resultants, and on a set of hierarchical plate models. The paper illustrates the details of proposed model adaptivity procedure for choosing between two most frequently used plate models: the one of Kirchhoff and the other of Reissner-Mindlin. The implementation details are provided for a particular case of the discrete Kirchhoff quadrilateral four-node plate FE and the corresponding Reissner-Mindlin quadrilateral with the same number of nodes. The key feature for those elements that they both provide the same quality of the discretization space (and thus the same discretization error) is the one which justifies uncoupling of the proposed model adaptivity from the mesh adaptivity. Findings - Several numerical examples are presented in order to illustrate a very satisfying performance of the proposed methodology in guiding the final choice of the optimal model and mesh in analysis of complex plate structures. Originality/value - The paper confirms that one can make an automatic selection of the most appropriate plate model for thin and thick plates on the basis of proposed model adaptivity procedure.
机译:目的-本文的目的是解决薄板和厚板的误差控制自适应有限元(FE)方法。提出了一种用于确定所选网格的每个特定FE的最合适的平板模型(在可用的分层平板模型中)的过程,该过程作为网格适应性过程的最终输出提供。设计/方法/方法-模型适应性程序可以看作是对线性弹性板的模型适应性的适当扩展,即所谓的平衡边界牵引方法误差估计,以前是针对2D / 3D线性弹性提出的。模型误差指标基于改进的(连续的)平衡边界应力结果的后验元素计算,并且基于一组分层的板模型。本文详细说明了在两个最常用的板块模型之间进行选择的拟议模型适应性程序的细节:一个是基尔霍夫模型,另一个是Reissner-Mindlin。针对离散的Kirchhoff四边形四节点板FE和具有相同节点数的相应Reissner-Mindlin四边形的特定情况提供了实现细节。这些元素都提供相同质量的离散化空间(因此也具有相同的离散化误差)的关键特征是可以证明所提出的模型适应性与网格适应性不相关的特征。发现-给出了几个数值示例,以说明所提出的方法在指导复杂模型板结构分析中最佳模型和网格的最终选择时表现出令人满意的性能。原创性/价值-本文确认,可以根据拟议的模型适应性程序自动选择最适合薄板和厚板的板模型。

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