TY - JOUR
T1 - Applying adaptive meshless model to solving elasto-plastic contact problems
AU - Zhang, Zheng
AU - Liu, Geng
AU - Liu, Tianxiang
AU - Zeng, Quanren
AU - Tong, Ruiting
PY - 2008/4
Y1 - 2008/4
N2 - Aim: This paper forms a small but essential part of a project supported by NNSFC (National Natural Science Foundation of China). Starting from Ref. 3 by Xiao et al, Refs. 4 and 5 by Liu et al, and Ref. 6 by Rossi et al, it supplies a computationally efficient method needed by the NNSFC project. In the full paper, we explain in some detail the application of the adaptive meshless model to solving elasto-plastic contact problems; in this abstract, we just add some pertinent remarks to listing the three topics of explanation. The first topic is: Solution to the elasto-plastic contact problem. In this topic, we point out that, in computing the adaptive meshless model, some nodes need to be removed or inserted for the convenience of adaptive analysis. The second topic is: Applying the adaptive meshless model to solving the elasto-plastic contact problem. In this topic, we give the method's flow chart and its computing module's schematic, as shown in Fig. 1 in the full paper. The third topic is: Numerical examples. In this topic, we apply the adaptive meshless model to solving two numerical examples: (1) The problem of contact between cylinder and plane and (2) The problem of contact between rough surface and plane. Calculated results, shown in Fig. 3 and Table 1 for the first example and Fig. 6 and Table 2 for the second example, show preliminarily that our adaptively refined solutions are about the same in precision as the uniformly refined solutions but are more efficient in that CPU time required is less by about 75-80%.
AB - Aim: This paper forms a small but essential part of a project supported by NNSFC (National Natural Science Foundation of China). Starting from Ref. 3 by Xiao et al, Refs. 4 and 5 by Liu et al, and Ref. 6 by Rossi et al, it supplies a computationally efficient method needed by the NNSFC project. In the full paper, we explain in some detail the application of the adaptive meshless model to solving elasto-plastic contact problems; in this abstract, we just add some pertinent remarks to listing the three topics of explanation. The first topic is: Solution to the elasto-plastic contact problem. In this topic, we point out that, in computing the adaptive meshless model, some nodes need to be removed or inserted for the convenience of adaptive analysis. The second topic is: Applying the adaptive meshless model to solving the elasto-plastic contact problem. In this topic, we give the method's flow chart and its computing module's schematic, as shown in Fig. 1 in the full paper. The third topic is: Numerical examples. In this topic, we apply the adaptive meshless model to solving two numerical examples: (1) The problem of contact between cylinder and plane and (2) The problem of contact between rough surface and plane. Calculated results, shown in Fig. 3 and Table 1 for the first example and Fig. 6 and Table 2 for the second example, show preliminarily that our adaptively refined solutions are about the same in precision as the uniformly refined solutions but are more efficient in that CPU time required is less by about 75-80%.
KW - Adaptive meshless model
KW - Adaptively refined solution
KW - Elasto-plastic contact problem
KW - Rough surface
UR - http://www.scopus.com/inward/record.url?scp=44849096720&partnerID=8YFLogxK
M3 - 文章
AN - SCOPUS:44849096720
SN - 1000-2758
VL - 26
SP - 265
EP - 270
JO - Xibei Gongye Daxue Xuebao/Journal of Northwestern Polytechnical University
JF - Xibei Gongye Daxue Xuebao/Journal of Northwestern Polytechnical University
IS - 2
ER -