ijact-book-coverT

Iot Based Smart Aquaculture Monitoring and Anchor Worm Eradtication System

© 2025 by IJCEET

Volume 3 Issue 1

Year of Publication : 2025

Author :Ms.S.Asha, Siva Ganesh A C, Shakir Deen A, Sethu Ragunathan G, Saran kumar V

:10.56472/25839217/IJCEET-V3I1P105

Citation :

M.Mohamed Shahid Afridhi, Mr.S.Paramasamy, Dr.K.Arun Balasubramaniyan, 2025. "Iot Based Smart Aquaculture Monitoring and Anchor Worm Eradtication System" ESP International Journal of Communication Engineering & Electronics Technology (ESP-IJCEET)  Volume 3, Issue 1: 25-31.

Abstract :

Fish aquaculture needs to maintain optimal water quality to ensure healthy growth and productivity. An intelligent system based on Arduino is proposed in this project to monitor and regulate water parameters such as pH, turbidity, and temperature. The system consists of two motors for Bluetooth-controlled water input and outlet control, an LCD for real-time data display, and a servo motor for the automatic injection of water-qualityenhancing substances when pH levels reach critical levels. This automatic system reduces the need for manual intervention, increases monitoring efficiency, and ensures a stable aquatic environment. Other applications for the servo motor include fish feeding and the addition of potassium permanganate, which helps eradicate anchor worms. A camera will also be incorporated to keep an eye on the aquatic environment.

References :

[1] S. Han, Y. Kang, K. Park and M. Jang, "Design of Environment Monitoring System for Aquaculture Farms," 2007 Frontiers in the Convergence of Bioscience and Information Technologies, Jeju, Korea (South), 2007, pp. 889-893, doi: 10.1109/FBIT.2007.77.

Selvaganesh M, J. A, K. B and P. S, "IoT Based Real-Time Prototype Design for Smart Aquaculture Ecosystem Monitoring Using ESP32," 2024 Second International Conference on Intelligent Cyber Physical Systems and Internet of Things (ICoICI), Coimbatore, India, 2024, pp. 303-310, doi: 10.1109/ICoICI62503.2024.10696610.

[3] W. -T. Sung, J. -H. Chen and H. -C. Wang, "Remote fish aquaculture monitoring system based on wireless transmission technology," 2014 International Conference on Information Science, Electronics and Electrical Engineering, Sapporo, Japan, 2014, pp. 540-544, doi: 10.1109/InfoSEEE.2014.6948171.

[4] T. Abinaya, J. Ishwarya and M. Maheswari, "A Novel Methodology for Monitoring and Controlling of Water Quality in Aquaculture using Internet of Things (IoT)," 2019 International Conference on Computer Communication and Informatics (ICCCI), Coimbatore, India, 2019, pp. 1-4, doi: 10.1109/ICCCI.2019.8821988.

[5] Xiaomei Xu and Xiaokang Zhang, "A remote acoustic monitoring system for offshore aquaculture fish cage," 2007 14th International Conference on Mechatronics and Machine Vision in Practice, Xiamen, China, 2007, pp. 86-90, doi: 10.1109/MMVIP.2007.4430721.

[6] Li Xiaoman and Lu Xia, "Design of a ZigBee wireless sensor network node for aquaculture monitoring," 2016 2nd IEEE International Conference on Computer and Communications (ICCC), Chengdu, China, 2016, pp. 2179-2182, doi: 10.1109/CompComm.2016.7925086.

[7] M. A. Kumar and G. Aravindh, "An Efficient Aquaculture Monitoring Automatic System for Real Time Applications," 2020 3rd International Conference on Intelligent Sustainable Systems (ICISS), Thoothukudi, India, 2020, pp. 150-153, doi: 10.1109/ICISS49785.2020.9316072.

[8] C. Dupont, P. Cousin and S. Dupont, "IoT for Aquaculture 4.0 Smart and easy-to-deploy real-time water monitoring with IoT," 2018 Global Internet of Things Summit (GIoTS), Bilbao, Spain, 2018, pp. 1-5, doi: 10.1109/GIOTS.2018.8534581

[9] Bo Chang and Xinrong Zhang, "Aquaculture monitoring system based on fuzzy-PID algorithm and intelligent sensor networks," 2013 Cross Strait Quad-Regional Radio Science and Wireless Technology Conference, Chengdu, China, 2013, pp. 385-388, doi: 10.1109/CSQRWC.2013.6657435.

[10] Y. Chen, G. Hou and J. Ou, "WSN-based monitoring system for factory aquaculture," 2014 IEEE 5th International Conference on Software Engineering and Service Science, Beijing, China, 2014, pp. 439-442, doi: 10.1109/ICSESS.2014.6933600.

[11] Y. Fu et al., "Design and Implementation of an Intelligent Monitoring System for Internet of Things Aquaculture Based on ZigBee Technology," 2023 IEEE 11th Joint International Information Technology and Artificial Intelligence Conference (ITAIC), Chongqing, China, 2023, pp. 1695-1699, doi: 10.1109/ITAIC58329.2023.10408905.

[12] N. Thai-Nghe, T. T. Hung and N. C. Ngon, "A Forecasting Model for Monitoring Water Quality in Aquaculture and Fisheries IoT Systems," 2020 International Conference on Advanced Computing and Applications (ACOMP), Quy Nhon, Vietnam, 2020, pp. 165-169, doi: 10.1109/ACOMP50827.2020.00033.

[13] F. L. Valiente, N. B. A. Morilla, A. A. M. Olsem and E. M. Vergara, "Application of Cloud-based Monitoring and Feeding System for Smart Aquaculture Farming," 2024 16th International Conference on Computer and Automation Engineering (ICCAE), Melbourne, Australia, 2024, pp. 124-129, doi: 10.1109/ICCAE59995.2024.10569913

[14] Y. Ma and W. Ding, "Design of Intelligent Monitoring System for Aquaculture Water Dissolved Oxygen," 2018 IEEE 3rd Advanced Information Technology, Electronic and Automation Control Conference (IAEAC), Chongqing, China, 2018, pp. 414-418, doi: 10.1109/IAEAC.2018.8577649.

[15] Z. Shareef and S. R. N. Reddy, "Design and wireless sensor Network Analysis of Water Quality Monitoring System for Aquaculture," 2019 3rd International Conference on Computing Methodologies and Communication (ICCMC), Erode, India, 2019, pp. 405-408, doi: 10.1109/ICCMC.2019.8819844.

[16] T. Joseph, S. Naik, A. Shaikh, W. Pereira, B. Ingle and Y. S. Rao, "Aquaculture Monitoring and Feedback System," 2019 IEEE International Symposium on Smart Electronic Systems (iSES) (Formerly iNiS), Rourkela, India, 2019, pp. 326-330, doi: 10.1109/iSES47678.2019.00082.

[17] Minghu Wu, Xiangmei Zhang and Tiezhou Wu, "Research on the aquaculture multi-parameter monitoring system," 2010 2nd International Asia Conference on Informatics in Control, Automation and Robotics (CAR 2010), Wuhan, China, 2010, pp. 76- 79, doi: 10.1109/CAR.2010.5456773

[18] M. Lafont, S. Dupont, P. Cousin, A. Vallauri and C. Dupont, "Back to the future: IoT to improve aquaculture : Real-time monitoring and algorithmic prediction of water parameters for aquaculture needs," 2019 Global IoT Summit (GIoTS), Aarhus, Denmark, 2019, pp. 1-6, doi: 10.1109/GIOTS.2019.8766436

[19] B. Shi, D. Zhao, S. Duan and P. Wang, "Implements of a monitoring and control system for freshwater intensive aquaculture," 2018 37th Chinese Control Conference (CCC), Wuhan, China, 2018, pp. 5004-5009, doi: 10.23919/ChiCC.2018.8483308.

Keywords :

Arduino,pH Regulation,Turbidity Control, Temperature Monitoring,Bluetooth Communication ,Automated System, Servo Motor, Potassium Permanganate Treatment, Real-Time Monitoring.