A variable velocity strategy particle swarm optimization algorithm (VVS-PSO) for damage assessment in structures

被引:0
作者
Hoang-Le Minh
Samir Khatir
R. Venkata Rao
Magd Abdel Wahab
Thanh Cuong-Le
机构
[1] Ghent University,Department of Electrical Energy, Metals, Mechanical Constructions and Systems
[2] Ho Chi Minh City Open University,Faculty of Civil Engineering
[3] Sardar Vallabhbhai National Institute of Technology,Department of Mechanical Engineering
[4] Ho Chi Minh City University of Technology (HUTECH),CIRTECH Institute
[5] Ghent University,Soete Laboratory, Faculty of Engineering and Architecture
来源
Engineering with Computers | 2023年 / 39卷
关键词
Intelligent algorithm; Vibration-based damage identifications; Particle swarm optimization; Structural health monitoring; Structural damage detection; SAP2000 (OAPI);
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, for the first time, a variable velocity strategy particle swarm optimization (VVS-PSO) is presented to solve the optimization problems ranging from numerical functions to real-world problems. VVS-PSO introduces a new term added in the velocity updating process at each iteration. This new term is controlled by a reduction linear function, which allows VVS-PSO to reach a faster convergence rate. At the same time, it also leads to enhance the accuracy level. In this way, the strategy of position updating in VVS-PSO is more flexible than that of the original PSO. This strategy will support VVS-PSO to improve the distance between the current step and the previous step and to expand the feasible search space around each particle. To illustrate the convergence rate and level of accuracy of VVS-PSO, the original PSO and 4 well-known optimization algorithms are employed to solve 23 classical benchmark functions. Then, an engineering design problem and experimental validation using a four-storey steel frame are also presented to examine the reliability of VVS-PSO for solving particular real applications. VVS-PSO finally is applied to a real 3D reinforced concrete structure for the purpose of damage assessment. First, the modal assurance criterion (MAC) method, which considers the differences between the mode shapes, is combined with the Root-Mean-Square-Error (RMSE) that registers the differences between frequencies at two states, e.g., damaged and undamaged structures, to determine the objective function. Then, VVS-PSO is used to minimize the objective function, which accounts for variables related to stiffness reduction in elements. The presented results illustrate that VVS-PSO can solve the optimization and structural damage assessment problems with very high accuracy and reliability.
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页码:1055 / 1084
页数:29
相关论文
共 74 条
[1]  
Carden EP(2004)Vibration based condition monitoring: a review Struct Health Monit 3 355-377
[2]  
Fanning P(2011)Vibration-based damage identification methods: a review and comparative study Struct Health Monit 10 83-111
[3]  
Fan W(2006)A review of vibration-based structural health monitoring with special emphasis on composite materials Shock Vib Dig 38 295-324
[4]  
Qiao P(1997)Detection of structural damage through changes in frequency: a review Eng Struct 19 718-723
[5]  
Montalvao D(2007)Development in vibration-based structural damage detection technique Mech Syst Signal Process 21 2198-2211
[6]  
Maia NMM(2014)Cracks detection in steel beams: a new approach by sine-sweep vibration measurements Comptes Rendus Mécanique 342 437-449
[7]  
Ribeiro AMR(2017)Vibration-based damage detection for structural connections using incomplete modal data by Bayesian approach and model reduction technique Eng Struct 132 260-277
[8]  
Salawu O(2017)Damage detection in bridge structures under moving loads with phase trajectory change of multi-type vibration measurements Mech Syst Signal Process 87 410-425
[9]  
Yan Y(2016)Detection of material interfaces using a regularized level set method in piezoelectric structures Inverse Probl Sci Eng 24 153-176
[10]  
Dougdag M(2019)Artificial neural network methods for the solution of second order boundary value problems Comp Mater Contin 59 345-359