Solar Wireless Sensor Nodes for Condition Monitoring of Freight Trains

被引:20
|
作者
Cii, Stefano [1 ]
Tomasini, Gisella [1 ]
Bacci, Maria Laura [1 ]
Tarsitano, Davide [1 ]
机构
[1] Politecn Milan, Dept Mech Engn, I-20156 Milan, Italy
关键词
Wireless sensor networks; Wireless communication; Monitoring; Batteries; Temperature sensors; Temperature measurement; Rails; Freight Trains; on-board monitoring; wireless sensor nodes; energy performances; solar energy; wireless sensor networks; on-field tests; WHEEL/RAIL CONTACT FORCES; RAILWAY; NETWORK;
D O I
10.1109/TITS.2020.3038319
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The objective of this work is to present the design and testing of a Wireless Sensor Network, powered by solar energy, to be installed on freight trains with the purpose of performing on-board monitoring operations. A complete Wireless Sensor Network requires a certain number of Wireless Sensor Nodes, installed in significant points of a vehicle, provided with sensors and capable of elaborating raw data, transmitting them via wireless network as synthesis information to an on-board control unit. The on-board control unit periodically communicates the data gathered from different sensors to a ground central control unit through the Internet. Each Wireless Sensor Node needs to be powered independently. To achieve this purpose a small solar panel was used to provide the Wireless Sensor Node with the necessary amount of energy. Integrated circuits were designed for power management, acquisition, elaboration and wireless transmission of data and analyzed in terms of performances and energy consumption. The communication protocol between the Wireless Sensor Node and the control unit was first laboratory-tested and finally the whole system was installed on a real wagon, and on-field tests were conducted for a period of almost one year.
引用
收藏
页码:3995 / 4007
页数:13
相关论文
共 50 条
  • [31] Cooperative Transmission Scheme with Inactive Node Reactivation Condition for Solar-Powered Wireless Sensor Networks
    Ota, Kentaro
    Kobayashi, Kentaro
    Yamazato, Takaya
    Katayama, Masaaki
    2011 IEEE 22ND INTERNATIONAL SYMPOSIUM ON PERSONAL INDOOR AND MOBILE RADIO COMMUNICATIONS (PIMRC), 2011, : 2384 - 2388
  • [32] Super Nodes For wireless Sensor Networks
    Abusaimeh, Hesham
    2014 6TH INTERNATIONAL CONFERENCE ON COMPUTER SCIENCE AND INFORMATION TECHNOLOGY (CSIT), 2014, : 90 - 95
  • [33] Monitoring Connectivity in Wireless Sensor Networks
    Khelifa, Benahmed
    Haffaf, H.
    Madjid, Merabti
    Llewellyn-Jones, David
    ISCC: 2009 IEEE SYMPOSIUM ON COMPUTERS AND COMMUNICATIONS, VOLS 1 AND 2, 2009, : 506 - 511
  • [34] A Survey on Localization of Wireless Sensor Nodes
    Kuriakose, Jeril
    Amruth, V
    Nandhini, Swathy N.
    2014 INTERNATIONAL CONFERENCE ON INFORMATION COMMUNICATION AND EMBEDDED SYSTEMS (ICICES), 2014,
  • [35] Feasibility of Harvesting Solar Energy for Self-Powered Environmental Wireless Sensor Nodes
    Li, Yuyang
    Hamed, Ehab A.
    Zhang, Xincheng
    Luna, Daniel
    Lin, Jeen-Shang
    Liang, Xu
    Lee, Inhee
    ELECTRONICS, 2020, 9 (12) : 1 - 13
  • [36] Beasties: Simple Wireless Sensor Nodes
    Hoskins, Asher
    McCann, Julie
    2008 IEEE 33RD CONFERENCE ON LOCAL COMPUTER NETWORKS, VOLS 1 AND 2, 2008, : 690 - 697
  • [37] Implementing RSA for Wireless Sensor Nodes
    Gulen, Utku
    Alkhodary, Abdelrahman
    Baktir, Selcuk
    SENSORS, 2019, 19 (13)
  • [38] Energy Options for Wireless Sensor Nodes
    Knight, Chris
    Davidson, Joshua
    Behrens, Sam
    SENSORS, 2008, 8 (12) : 8037 - 8066
  • [39] Wireless Sensor Network Dependable Monitoring for Urban Air Quality
    Nguyen, Huynh A. D.
    Ha, Quang P.
    IEEE ACCESS, 2022, 10 : 40051 - 40062
  • [40] Wireless Sensor Networks for Water Quality Monitoring: A Comprehensive Review
    Lopez-Ramirez, Gustavo Adulfo
    Aragon-Zavala, Alejandro
    IEEE ACCESS, 2023, 11 : 95120 - 95142