DOI QR코드

DOI QR Code

스마트 양식장 수조 내 용존 산소 및 온도 제어를 위한 시스템 구현

An Implementation of System for Control of Dissolved Oxygen and Temperature in the pools of Smart Fish Farm

  • 투고 : 2021.09.28
  • 심사 : 2021.11.23
  • 발행 : 2021.12.31

초록

Dissolved oxygen, pH, and temperature are the most important factors for fish farming because they affect fish growth and mass mortality of the fish. Therefore, fish farm workers must always check all pools on the farm, but this is very difficult in reality. That's why we developed a control system for smart fish farms. This system includes a gateway, sensor gatherers, and a PC program using LabVIEW. One sensor gatherer can cover up to four pools. The sensor gatherers are connected to the gateway in the form of a bus. For the gateway, the ATmega2560 is used as the main processor for communication and the STM32F429 is used as a sub-processor for displaying LCD. For the sensor gatherer, ATmega2560 is used as the main processor for communication. MQTT (Message Queuing Telemetry Transport), RS-485, and Zigbee are used as the communication protocols in the control system. The users can control the temperature and the dissolved oxygen using the PC program. The commands are transferred from the PC program to the gateway through the MQTT protocol. When the gateway gets the commands, it transfers the commands to the appropriate sensor gatherer through RS-485 and Zigbee.

키워드

과제정보

This research was supported by the Korea Institute of Marine Science & Technology (KIMST). (Grant number: 20180352)

참고문헌

  1. Y. J. Mallya, H. Thorarensen, "The Effect of Dissolved Oxygen on Fish Growth in Aquaculture," The United Nations University Fisheries Training Programme, Final Project, 2007.
  2. D. L. Kramer, "Dissolved Oxygen and Fish Behavior," Environmental biology of fishes, Vol. 18, No. 2, pp. 81-92, 1987. https://doi.org/10.1007/BF00002597
  3. T. D. An, V. D. Anne A, J. W. Schrama, "Feed Intake, Growth and Metabolism of Nile Tilapia (Oreochromis Niloticus) in Relation to Dissolved Oxygen Concentration," Aquaculture Research, Vol. 43, No. 5, pp. 730-744, 2012. https://doi.org/10.1111/j.1365-2109.2011.02882.x
  4. K. J. Shin, M. Akbar, "Design of Remote Operating for Smart Fish Farm Using MQTT," International Journal of Trend in Research and Development, Vol. 4, No. 3, pp. 170-175, 2017
  5. J. H. Jeon, N. E. Lee, Y. H. Lee, J. M. Jang, M. G. Joo, J. D. Yoo, B. H. Yoo, "An Implementation of a Monitoring System of a Smart Fish Farm," Proceedings of IEMEK, fall, pp. 115-117, 2019 (in Korean).
  6. J. H. Jeon, Y. H. Lee, M. G. Joo, B. H. Yoo, J. H. Sul, "An Implementation of Smart Fish Farm Monitoring System Using MQTT," proceedings of IEMEK, fall, pp. 18-20, 2020 (in Korean).
  7. N. E. Lee, Y. H. Lee, J. H. Jeon, M. G. Joo, J. H. Sul, "Development of Water Quality Data Gathering Module," The 15th IEMEK Symposium on Embedded Technology, pp. 22-24, 2020 (in Korean).
  8. T. Yokotani, Y. Sasaki, "Comparison with HTTP and MQTT on Required Network Resources for IoT", 2016 International Conference on Control, Electronics, Renewable Energy and Communications, pp. 1-6, 2016
  9. B. Wukkadada, K. Wankhede, R. Nambiar, A. Nair, "Comparison with HTTP and MQTT in Internet of Things (IoT)", 2018 International Conference on Inventive Research in Computing Applications, pp. 249-253, 2018
  10. H. J. Jia, Z. H. Guo, "Research on the Technology of RS485 over Ethernet," 2010 International Conference on E-Product E-Service and E-Entertainment, pp. 1-3, 2010.
  11. D. Gislason, "Zigbee wireless networking," Newnes, 2008.