Design and Verification of a Rail-Borne Energy Harvester for Powering Wireless Sensor Networks in the Railway Industry

被引:90
|
作者
Gao, Mingyuan [1 ]
Wang, Ping [1 ]
Cao, Yong [1 ]
Chen, Rong [1 ]
Cai, Dunjin [2 ]
机构
[1] Southwest Jiaotong Univ, Sch Civil Engn, Minist Educ, Key Lab High Speed Railway Engn, Chengdu 610031, Peoples R China
[2] Third Railway Survey & Design Inst Grp Corp, Tianjin 300142, Peoples R China
关键词
Energy harvester; rail-borne device; wheelset/track excitation; railway vibration; wireless sensor networks; electromagnetics; TWINS PREDICTION PROGRAM; ELECTROMAGNETIC GENERATOR; EXPERIMENTAL VALIDATION; FREE/IMPACT MOTION; ROLLING NOISE; VIBRATION; OPTIMIZATION; FABRICATION; SYSTEM; DRIVEN;
D O I
10.1109/TITS.2016.2611647
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Design, modeling, simulation, and vibration testing related to electromagnetic energy harvesters are investigated in this paper. A rail-borne electromagnetic energy harvester with copper-beads spacing is proposed and fabricated, the suitable for harvesting vibration-induced energy of the wheelset/track system. A vehicle-track model considering vehicle traveling load is constructed and numerically solved by fast explicit integration methods. An electromagnetic model is established to predict the induced voltage. The track irregularity power spectrum density is applied as excitation source on the track. Based on the calculation results, both the resonant harvester and the magnetic levitation harvester are designed. The solution utilizes copper beads as radial spacing, which guarantees reliable unidirectionalmovement of magnets inside a multilayer-multirow coil. Vibration tests are conducted with the proposed track-borne device, and a hydraulic driven system is exploited to generate the realistic wheelset/rail interaction force. The proposed railborne energy harvester can be mounted to the track easily and extensively. The magnetic levitation harvester offers an approach for harvesting broadband low-frequency (3-7Hz) wheelset/track interaction with the rail displacement of 0.6 to 1.2 mm. For the resonant harvester, the output power of 119 mW and the output peak-peak voltage of 2.32 V are achieved with the rail displacement of 1.2 mm, the coil height of 48 mm, the load resistance of 45 Omega, the coil inductance of 105.572 mH, and 3000 numbers of turns. Furthermore, a dc-dc boost converter is proposed, which is capable of converting the alternating voltage of the transducer into 5 V/10-mA dc output at the resonant frequency of 6 Hz, the rail displacement of 2 mm, and the induced voltage of 3.4 V.
引用
收藏
页码:1596 / 1609
页数:14
相关论文
共 50 条
  • [21] Wireless Sensor Networks for Condition Monitoring in the Railway Industry: A Survey
    Hodge, Victoria J.
    O'Keefe, Simon
    Weeks, Michael
    Moulds, Anthony
    [J]. IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS, 2015, 16 (03) : 1088 - 1106
  • [22] A wind energy harvester for low power Wireless Sensor Networks
    Ramasur, D.
    Hancke, G. P.
    [J]. 2012 IEEE INTERNATIONAL INSTRUMENTATION AND MEASUREMENT TECHNOLOGY CONFERENCE (I2MTC), 2012, : 2623 - 2627
  • [23] An MPPT Micro Solar Energy Harvester for Wireless Sensor Networks
    Senivasan, Suganti
    Drieberg, Micheal
    Singh, Balbir Mahinder Singh
    Sebastian, Patrick
    Hiung, Lo Hai
    [J]. 2017 IEEE 13TH INTERNATIONAL COLLOQUIUM ON SIGNAL PROCESSING & ITS APPLICATIONS (CSPA), 2017, : 159 - 163
  • [24] Powering Wireless Sensor Networks Nodes for Complex Protocols on Harvested Energy
    Pedro Amaro, J.
    Ferreira, Fernando J. T. E.
    Cortesao, Rui
    Landeck, Jorge
    [J]. 4TH CONFERENCE OF ENTERPRISE INFORMATION SYSTEMS - ALIGNING TECHNOLOGY, ORGANIZATIONS AND PEOPLE (CENTERIS 2012), 2012, 5 : 518 - 526
  • [25] Poster: RailCop: Detecting Missing Rail on Railway Using Wireless Sensor Networks
    Chakraborty, Tusher
    Khan, Taslim Arefin
    Al Islam, A. B. M. Alim
    [J]. MOBISYS'16: COMPANION COMPANION PUBLICATION OF THE 14TH ANNUAL INTERNATIONAL CONFERENCE ON MOBILE SYSTEMS, APPLICATIONS, AND SERVICES, 2016, : 16 - 16
  • [26] Design of verification platform for wireless vision sensor networks
    Ye, Juanjuan
    Shang, Fei
    Yu, Chuang
    [J]. 2ND ANNUAL INTERNATIONAL CONFERENCE ON INFORMATION SYSTEM AND ARTIFICIAL INTELLIGENCE (ISAI2017), 2017, 887
  • [27] Kinetic Electromagnetic Energy Harvester for Railway Applications-Development and Test with Wireless Sensor
    Hadas, Zdenek
    Rubes, Ondrej
    Ksica, Filip
    Chalupa, Jan
    [J]. SENSORS, 2022, 22 (03)
  • [28] Simulation and Hardware Implementation of Solar Energy Harvester for Wireless Sensor Networks
    Hong, Timothy Ngi Ing
    Drieberg, Micheal
    Singh, Balbir Singh Mahinder
    [J]. 2014 IEEE CONFERENCE ON SYSTEMS, PROCESS AND CONTROL (ICSPC 2014), 2014, : 84 - 89
  • [29] Magnetoelectric and electromagnetic composite vibration energy harvester for wireless sensor networks
    Qiu, Jing
    Chen, Hengjia
    Wen, Yumei
    Li, Ping
    [J]. JOURNAL OF APPLIED PHYSICS, 2015, 117 (17)
  • [30] Design and testing of piezoelectric energy harvester for powering wireless sensors of electric line monitoring system
    Qiu, Jing
    Wen, Yumei
    Li, Ping
    Yang, Jin
    [J]. JOURNAL OF APPLIED PHYSICS, 2012, 111 (07)