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A valid inhomogeneous cell-based smoothed finite element model for the transient characteristics of functionally graded magneto-electro-elastic structures
被引:52
|作者:
Zhou, Liming
[1
]
Ren, Shuhui
[1
]
Liu, Changyi
[1
]
Ma, Zhichao
[1
]
机构:
[1] Jilin Univ, Sch Mech Sci & Engn, Peoples Ave 5988, Changchun 130022, Jilin, Peoples R China
基金:
中国国家自然科学基金;
关键词:
Inhomogeneous cell-based smoothed finite element method;
Modified Newmark method;
Functionally graded magneto-electro-elastic material;
Transient response;
G SPACE THEORY;
WEAK W-2 FORM;
TOPOLOGY OPTIMIZATION;
FREE-VIBRATION;
UNIFIED FORMULATION;
MECHANICS PROBLEMS;
WAVE-PROPAGATION;
BEHAVIOR;
FEM;
SENSORS;
D O I:
10.1016/j.compstruct.2018.09.074
中图分类号:
O3 [力学];
学科分类号:
08 ;
0801 ;
摘要:
For the sake of surmounting defect of over-stiffness of finite element model (FEM) and accurately solving the transient response problems of structures comprise functionally graded magneto-electro-elastic (FGMEE) materials, we put forward an inhomogeneous cell-based smoothed finite element model (ICS-FEM) and a modified Newmark method. By employing the inhomogeneous gradient smoothing technique into FEM, the mass matrix M and the equivalent stiffness matrix K(eq )are derived, ICS-FEM that provides a stiffness coinciding with the actual condition is also obtained. Moreover, this model can be carried out with user-defined subroutines in the existing FEM software. Several numerical examples including cantilever beams, a layered FGMEE sensor and an FGMEE energy harvester are analyzed, which prove that ICS-FEM could achieve results with higher accuracy and reliability than FEM. ICS-FEM are applied to more complex structures such as FGMEE layered sensor and energy harvester. Therefore, such method to solve the transient characteristics of FGMEE structures can be a reference for the design of smart structures.
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页码:298 / 313
页数:16
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