4.7 Article

A unified vibration modeling of open cylindrical shell-rectangular plate coupling structures based on the dynamic stiffness method

期刊

JOURNAL OF SOUND AND VIBRATION
卷 563, 期 -, 页码 -

出版社

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jsv.2023.117870

关键词

Open cylindrical shell -plate coupled structures; Dynamic stiffness method; Free and forced vibration

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This paper proposes a unified vibration modeling for free and forced vibration analysis of coupled open cylindrical shell-plate structures (COSPS). The model splits the coupled structure into open cylindrical shells and rectangular plates, establishes the dynamic stiffness (DS) matrix of each substructure based on thin plate theory and thin shell theory, and assembles the global DS matrices using a strategy similar to the finite element method. The proposed model is verified through vibration analysis of different COSPS structures and experimental tests, showing reliability and effectiveness in the modeling process.
This paper presents a unified vibration modeling for free and forced vibration analysis of coupled open cylindrical shell-plate structures (COSPS). In the model, the coupled structure is first split into several open cylindrical shells and rectangular plates, and then based on Kirchoff's thin plate theory and Flugge's thin shell theory, the dynamic stiffness (DS) matrix of each substructure is separately established by applying the generalized superposition method and the projection method. Subsequently, according to the continuity and equilibrium conditions of the coupled boundary, the coordinate transformation matrix of each substructure is derived. After obtaining fundamental DS matrices and their coordinate transformation matrices, global DS matrices of various COSPS are assembled using a strategy similar to the finite element method (FEM) without repeating the theoretical derivation. To verify the convergence and reliability of the current formulation, free vibration and forced vibration analysis of three types of coupled structures are carried out, and the results are compared with those from published works and FEM solutions. In addition, an experimental model of a coupled structure is established and an experimental test is performed. The comparison results show that the proposed model is reliable and effective, and its modeling process is more direct and convenient. This work not only greatly expands the application scope of the DSM but also provides a new idea for the vibration analysis of COSPS.

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