A solution of tracking-device design for offshore vessel

Authors

  • Nguyen Tuan Phuoc Viettel High Technology Industries Corporation, Vietnam
  • Nguyen Quoc Chung Viettel High Technology Industries Corporation, Vietnam
  • Le Viet Nhat Quang Viettel High Technology Industries Corporation, Vietnam
  • Diep Vi Cuong Viettel High Technology Industries Corporation, Vietnam
  • Nguyen Minh Khanh Ngoc Viettel High Technology Industries Corporation, Vietnam

Corressponding author's email:

phuocnt6@viettel.com.vn

DOI:

https://doi.org/10.54644/jte.64.2021.85

Keywords:

Tracking-device, offshore fishing industry, satellite-network-based data transmission, aquaculture data acquisition, low-power embedded system

Abstract

Currently, designs of tracking-device are primarily for inland operation. So, what are the problems when designing a tracking-devices for an offshore vessel? The offshore environment limits the power supply to the equipment and breaks the mobile-network to transmit data. The document presents the solutions of satellite-network-based data transmission, internal battery, and solar-cell-based charger for the offshore tracking-device. There are three necessary steps. The first step is choosing the most suitable solutions (included measuring the performance of separate parts in the lab). Design and measuring the completed device is the second step. And the last is using a large number of devices for long-term experiments to evaluate the effects and the limitations. Now, there are over 2000 commercial products based on successful solutions. The solutions contribute to building a new digital ecosystem for the offshore fishing industry, aquaculture data acquisition, oil and gas exploitation, and marine environment.

Downloads: 0

Download data is not yet available.

References

Quốc hội Việt Nam, Luật 18/2017/QH14, 2017

Chính Phủ Việt Nam, Nghị định 26/2019/NĐ-CP, 2019

Alexander Przybysz; Carlos M. Duarte; Nathan R. Geraldi; Jurgen Kosel; Michael L. Berumen, "Cellular network Marine Sensor Buoy", 2020 IEEE Sensors Applications Symposium (SAS), 2020 DOI: https://doi.org/10.1109/SAS48726.2020.9220047

I. I. Lysogor; L. S. Voskov; A. Y. Rolich; S. G. Efremov, “Energy efficient method of data transmission in a heterogeneous network of the Internet of things for remote areas”, 2019 International Siberian Conference on Control and Communications (SIBCON), 2019 DOI: https://doi.org/10.1109/SIBCON.2019.8729647

Paul Gardner-Stephen; Angus Wallace; Lucas Moss; Loic Lagadec; Matthew Lloyd, “Designing a combined personal communicator and data entry terminal for disaster relief & remote operations”, 2019 IEEE Global Humanitarian Technology Conference (GHTC), 2019 DOI: https://doi.org/10.1109/GHTC46095.2019.9033022

Barbara Anderson; Ethan Chaffee; Bill Perry; Dave Lopez, “Low Cost Lighter-Than-Air Data Acquisition and Flight Control System”, 2016 IEEE Aerospace Conference, 2016 DOI: https://doi.org/10.1109/AERO.2016.7500903

Amit Singh Gaur; Jyoti Budakoti; Chung-Horng Lung;Alan Redmond, "IoT-Equipped UAV Communications with Seamless Vertical Handover",2017 IEEE Conference on Dependable and Secure Computing, 2017

Alexander Laun; Elizabeth Pittman, "Development of a Small, Low-Cost, Networked Buoy for Persistent Ocean Monitoring and Data Acquisition", OCEANS 2018 MTS/IEEE Charleston, 2018

https://satellitephonestore.com

Iridium, Iridium 9603 SBD Transceiver Developer’s Guide, 2017

Boston Consulting Group, Batteries for Electric Cars Challenges, Opportunities, and the Outlook to 2020, pp.3, 2010

Published

28-06-2021

How to Cite

[1]
Nguyễn Tuấn Phước, Nguyễn Quốc Chung, Lê Viết Nhật Quang, Diệp Vĩ Cường, and Nguyễn Minh Khánh Ngọc, “A solution of tracking-device design for offshore vessel”, JTE, vol. 16, no. 3, pp. 31–39, Jun. 2021.

Most read articles by the same author(s)