Application of Laminate Theory to Plate Elements Based on Absolute Nodal Coordinate Formulation

Author:

Zhang Zhaowei1234,Gerstmayr Johannes5,Zhang Wei67

Affiliation:

1. State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences , Sheyang, Liaoning 110016, China ; , Sheyang, Liaoning 110169, China ; , Beijing 100049, China

2. Institutes for Robotics and Intelligent Manufacturing, Chinese Academy of Sciences , Sheyang, Liaoning 110016, China ; , Sheyang, Liaoning 110169, China ; , Beijing 100049, China

3. University of Chinese Academy of Sciences , Sheyang, Liaoning 110016, China ; , Sheyang, Liaoning 110169, China ; , Beijing 100049, China

4. Shenyang Institute of Automation

5. Department of Mechatronics, University of Innsbruck , Innsbruck 6020, Austria

6. State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences , Sheyang, Liaoning 110016, China ; , Sheyang, Liaoning 110169, China

7. Institutes for Robotics and Intelligent Manufacturing, Chinese Academy of Sciences , Sheyang, Liaoning 110016, China ; , Sheyang, Liaoning 110169, China

Abstract

Abstract Laminated plates have a wide range of applications in engineering, and their flexibility becomes increasingly significant with the development of lightweighting technology. The absolute nodal coordinate formulation (ANCF) has emerged as a promising approach for modeling flexible multibody dynamics. However, researches on thick laminated plates with shear deformation for multiflexible systems remain limited. To investigate the application of ANCF plate elements for laminated plates, this article introduces a new laminated plate element that considers shear deformation. We utilize the fully parameterized ANCF plate element to analyze laminated composite structures, focusing specifically on their layers in the thickness direction. By employing a structural mechanics approach, the study achieves a uniform stiffness matrix that can adapt to laminated plates with shear deformation and can be precomputed in advance. Additionally, a summary of a thin laminated plate element is provided for comparison. Both plate elements are composed by layers, and their elastic forces and Jacobian matrices are derived using first-order shear theory and Kirchhoff's theory, respectively. The effectiveness and accuracy of the proposed elements are validated through a series of benchmark problems encompassing modal, static, and dynamic investigations. The study thoroughly analyzes the results compared with the commercial finite element method software abaqus and analytical approach. The findings demonstrate that the methods effectively address laminated plates.

Funder

China Scholarship Council

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

ASME International

Reference36 articles.

1. Recent Advances in the Absolute Nodal Coordinate Formulation: Literature Review From 2012 to 2020;ASME J. Comput. Nonlinear Dyn.,2022

2. An Overview of the ANCF Approach, Justifications for Its Use, Implementation Issues, and Future Research Directions;Multibody Syst. Dyn.,2023

3. Mikkola, A. M., and Shabana, A. A., 2000, “ A Larger Deformation Plate Element for Multibody Applications,” University of Illinois at Chicago, Chicago, IL, Report No. MBS00-6-UIC.https://apps.dtic.mil/sti/pdfs/ADA384568.pdf

4. A Non-Incremental Finite Element Procedure for the Analysis of Large Deformation of Plates and Shells in Mechanical System Applications;Multibody Syst. Dyn.,2003

5. Analysis of Thin Plate Structures Using the Absolute Nodal Coordinate Formulation;Proc. Inst. Mech. Eng., Part K: J. Multi-Body Dyn.,2005

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