A Combined Optimal Sensor Placement Strategy for the Structural Health Monitoring of Bridge Structures

被引:24
作者
He, Can [1 ]
Xing, Jianchun [1 ]
Li, Juelong [2 ]
Yang, Qiliang [1 ]
Wang, Ronghao [1 ]
Zhang, Xun [1 ]
机构
[1] PLA Univ Sci & Technol, Coll Def Engn, Nanjing 210007, Jiangsu, Peoples R China
[2] Tech Management Off Naval Def Engn, Beijing 100841, Peoples R China
关键词
IDENTIFICATION; LOCATION;
D O I
10.1155/2013/820694
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Optimal sensor placement is an important part in the structural health monitoring of bridge structures. However, some defects are present in the existing methods, such as the focus on a single optimal index, the selection of modal order and sensor number based on experience, and the long computation time. A hybrid optimization strategy named MSE-AGA is proposed in this study to address these problems. The approach firstly selects modal order using modal participation factor. Then, the modal strain energy method is adopted to conduct the initial sensor placement. Finally, the adaptive genetic algorithm (AGA) is utilized to determine the optimal number and locations of the sensors, which uses the root mean square of off-diagonal elements in the modal assurance criterion matrix as the fitness function. A case study of sensor placement on a numerically simulated bridge structure is provided to verify the effectiveness of the MSE-AGA strategy, and the AGA method without initial placement is used as a contrast experiment. A comparison of these strategies shows that the optimal results obtained by the MSE-AGA method have a high modal strain energy index, a short computation time, and small off-diagonal elements in the modal assurance criterion matrix.
引用
收藏
页数:9
相关论文
共 27 条
  • [1] Balageas D., 2006, Structural Health Monitoring
  • [2] OPTIMAL SENSOR-LOCATION FOR DETECTING CHANGES IN DYNAMIC BEHAVIOR
    BASSEVILLE, M
    BENVENISTE, A
    MOUSTAKIDES, GV
    ROUGEE, A
    [J]. IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 1987, 32 (12) : 1067 - 1075
  • [3] Bhattacharya B., 2013, P INT S ENG UNC SAF, P477
  • [4] Boller C, 2009, Encyclopedia of structural health monitoring
  • [5] Optimal piezoelectric actuator and sensor location for active vibration control, using genetic algorithm
    Bruant, Isabelle
    Gallimard, Laurent
    Nikoukar, Shahrarn
    [J]. JOURNAL OF SOUND AND VIBRATION, 2010, 329 (10) : 1615 - 1635
  • [6] CARNE TG, 1995, P SOC PHOTO-OPT INS, V2460, P927
  • [7] Multi-objective genetic algorithms for cost-effective distributions of actuators and sensors in large structures
    Cha, Young-Jin
    Agrawal, Anil K.
    Kim, Yeesock
    Raich, Anne M.
    [J]. EXPERT SYSTEMS WITH APPLICATIONS, 2012, 39 (09) : 7822 - 7833
  • [8] Placement of sensors in operational modal analysis for truss bridges
    Debnath, N.
    Dutta, A.
    Deb, S. K.
    [J]. MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2012, 31 : 196 - 216
  • [9] A Bayesian approach to optimal sensor placement for structural health monitoring with application to active sensing
    Flynn, Eric B.
    Todd, Michael D.
    [J]. MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2010, 24 (04) : 891 - 903
  • [10] Structural health monitoring of a cable-stayed bridge using smart sensor technology: deployment and evaluation
    Jang, Shinae
    Jo, Hongki
    Cho, Soojin
    Mechitov, Kirill
    Rice, Jennifer A.
    Sim, Sung-Han
    Jung, Hyung-Jo
    Yun, Chung-Bang
    Spencer, Billie F., Jr.
    Agha, Gul
    [J]. SMART STRUCTURES AND SYSTEMS, 2010, 6 (5-6) : 439 - 459