Geometrically nonlinear deformation reconstruction of based on Euler-Bernoulli beam theory using a nonlinear iFEM algorithm

被引:18
作者
Zhao, Feifei [1 ]
Bao, Hong [1 ]
Zhang, Feng [2 ]
机构
[1] Xidian Univ, Sch Mechanoelect Engn, Xian, Peoples R China
[2] Northwestern Polytech Univ, Sch Mech Civil Engn & Architecture, Xian 710072, Peoples R China
关键词
Large deflection; Deformation reconstruction; Strain gradient theory; Nonlinear iFEM algorithm; Geometric nonlinearity; CANTILEVER BEAM; EXPLICIT SOLUTION; POINT LOAD; STRAIN; DISPLACEMENT;
D O I
10.1016/j.tws.2023.110884
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Deformation reconstruction plays a vital role in the structural health monitoring systems. The inverse finite element method (iFEM) has been demonstrated to be an accurate and robust method of deformation reconstruction. Current iFEM formulations have been applied to the linear deformation of structures based on small-displacement assumption. However, the assumption is inapplicable to some structures with large displacements in practical engineering. Therefore, the geometric nonlinearity needs to be considered in deformation reconstruction model. In this paper, a novel nonlinear iFEM algorithm is proposed based on strain gradient theory. The advantage of the proposed iFEM is that the nonlinear responses does not need to be linearized, which eliminates the influence of the improper strain linearization on stability of reconstruction displacements. The simulation analyses and experimental tests are used to verify the proposed nonlinear iFEM method. Numerical results show that the large displacements can be accurately predicted and the nonlinear iFEM algorithm can improve the reconstruction accuracy by 9% as compared to the linear iFEM strategy. Hence, the proposed nonlinear iFEM approach can be used as a viable tool to accurately reconstruct geometrically nonlinear deformations of structures in real-time applications.
引用
收藏
页数:12
相关论文
共 41 条
[11]   Explicit solution to the large deformation of a cantilever beam under point load at the free tip using the variational iteration method-II [J].
Ghaffarzadeh, Hosein ;
Nikkar, Ali .
JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2013, 27 (11) :3433-3438
[12]   Shape sensing methods: Review and experimental comparison on a wing-shaped plate [J].
Gherlone, Marco ;
Cerracchio, Priscilla ;
Mattone, Massimiliano .
PROGRESS IN AEROSPACE SCIENCES, 2018, 99 :14-26
[13]   Shape Monitoring of a Beam Structure from Measured Strain or Curvature [J].
Glaser, R. ;
Caccese, V. ;
Shahinpoor, M. .
EXPERIMENTAL MECHANICS, 2012, 52 (06) :591-606
[14]   RECURSIVE ESTIMATION OF DISPLACEMENT AND VELOCITY IN A CANTILEVER BEAM USING A MEASURED SET OF DISTRIBUTED STRAIN DATA [J].
GOPINATHAN, M ;
PAJUNEN, GA ;
NEELAKANTA, PS ;
AROCKAISAMY, M .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 1995, 6 (04) :537-549
[15]  
Jutte C.V., 2011, DEFORMED SHAPE CALCU
[16]   Estimation of dynamic structural displacements using fiber Bragg grating strain sensors [J].
Kang, Lae-Hyong ;
Kim, Dae-Kwan ;
Han, Jae-Hung .
JOURNAL OF SOUND AND VIBRATION, 2007, 305 (03) :534-542
[17]   An experimental implementation of inverse finite element method for real-time shape and strain sensing of composite and sandwich structures [J].
Kefal, A. ;
Tabrizi, I. E. ;
Tansan, M. ;
Kisa, E. ;
Yildiz, M. .
COMPOSITE STRUCTURES, 2021, 258
[18]  
Kefal A., 2022, SENSORS-BASEL, V20, P1
[19]   A smoothed iFEM approach for efficient shape-sensing applications: Numerical and experimental validation on composite structures [J].
Kefal, Adnan ;
Tabrizi, Isa Emami ;
Yildiz, Mehmet ;
Tessler, Alexander .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2021, 152
[20]  
Kirby G.C., 1997, SMART STRUCT MAT, V3041, P1