Development and implementation of model smoothing method in the framework of absolute nodal coordinate formulation

Author:

Zhang Zhigang12ORCID,Mao Hongsheng12,Hou Junjian12,Wang Liangwen1ORCID,Wang Gengxiang3

Affiliation:

1. Henan Key Laboratory of Intelligent Manufacturing of Mechanical Equipment, Zhengzhou University of Light Industry, Zhengzhou, China

2. Henan New Energy Vehicle Lightweight Design and Manufacturing Engineering Research Center, Zhengzhou University of Light Industry, Zhengzhou, China

3. State Key Laboratory for Turbulence and Complex Systems, College of Engineering, Peking University, Beijing, China

Abstract

A model smoothing formulation used to filter out the high-frequency components in the dynamical modeling process is developed and implemented in the framework of absolute nodal coordinate formulation (ANCF). Unlike the conventional method which employs stiff ordinary differential equation (ODE) solvers with numerical damping to calculate the dynamic responses of the ANCF model, a new formulation with the controlled high frequency is proposed in this paper. Using the average stress defined in a time interval to replace the instant stress in the virtual power of the internal force, the additional inertial and damping terms are introduced to the equations of motion of the ANCF element. It is proved that the highest frequency magnitude of the modified ANCF model can be adjusted by changing the length parameter of the time interval. As the high-frequency components are filtered out in the process of the model development, the traditional stiff problems of ANCF elements can be solved by using well-developed explicit integration algorithms, particularly in the very stiff and thin structures. Dynamic analysis of the classic examples including the pendulum beam and plate are performed to evaluate the performance of the model smoothing formulation of ANCF elements. Numerical results show that the proposed method can greatly improve the calculation efficiency of ANCF models, and the calculation accuracy can be also guaranteed.

Funder

Doctoral Scientific Research Foundation of Zhengzhou University of Light Industry

National Natural Science Foundation of China

Key Scientific and Technological Project of Henan Province

Publisher

SAGE Publications

Subject

Mechanical Engineering,Condensed Matter Physics

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