CORC  > 北京大学  > 工学院
一种基于单元几何变形的网格修匀方法; Mesh smoothing approach based on element geometrical deformation operation
孙树立 ; 苑远 ; 勾志宏 ; 张明磊
刊名计算力学学报
2016
关键词网格修匀 网格调整 单元几何变形 拉伸-收缩操作 动网格 mesh smoothing mesh adj ustment element geometrical deformation stretching-shrinking operation dynamic mesh
DOI10.7511/jslx201604008
英文摘要基于单元几何变形操作提出一种高效的非结构网格质量修匀方法。其基本过程是先对每个单元独立地进行拉伸-收缩操作以优化单元的形状,然后在整个网格中通过对各单元的节点位置进行加权平均来获得改善后的网格。为进一步提高修匀方法对网格质量的优化效果,并使得该方法具备一定的网格调整能力,结合动网格技术提出了对单元进行大范围和较大幅度移动的策略;在修匀过程中还通过适当算法调整单元形心位置和单元尺寸,进一步增强了修匀方法对网格局部进行疏密调节的能力。本文方法可适用于平面和三维非结构网格的质量改善及网格调整。若干算例表明了方法的有效性。; An efficient mesh smoothing approach for unstructured mesh based on element geometrical deformation operation is proposed.Firstly,shapes of all the individual elements are optimized by a two-step stretching-shrinking operation,and then the grid quality is improved through weighted average of the node position of each element in the mesh.In order to further improve the smoothing effect on the quality of grid,and enable the method to have a certain ability of mesh adj ustment,a strategy of wide range and large scale movement of elements is proposed combining dynamic mesh technique.In smoot-hing process appropriate algorithm for changing the position of element centroid and element size is pres-ented to further enhance the adj ustment ability of local grid density.The proposed approach can be applied to the quality improvement and adj ustment for planar and three-dimensional unstructured mesh. A number of examples are presented to show the effectiveness of the method.; 国家自然科学基金; 北京市自然科学基金; 973项目子课题; 中文核心期刊要目总览(PKU); 中国科技核心期刊(ISTIC); 中国科学引文数据库(CSCD); 4; 478-484; 33
语种中文
内容类型期刊论文
源URL[http://ir.pku.edu.cn/handle/20.500.11897/494145]  
专题工学院
推荐引用方式
GB/T 7714
孙树立,苑远,勾志宏,等. 一种基于单元几何变形的网格修匀方法, Mesh smoothing approach based on element geometrical deformation operation[J]. 计算力学学报,2016.
APA 孙树立,苑远,勾志宏,&张明磊.(2016).一种基于单元几何变形的网格修匀方法.计算力学学报.
MLA 孙树立,et al."一种基于单元几何变形的网格修匀方法".计算力学学报 (2016).
个性服务
查看访问统计
相关权益政策
暂无数据
收藏/分享
所有评论 (0)
暂无评论
 

除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。


©版权所有 ©2017 CSpace - Powered by CSpace