Design and Implementation of a Human Machine Interface Control System for Power Plants
DOI:
https://doi.org/10.15282/mekatronika.v6i2.10822Keywords:
HMI, Programmable Logic Controller, Motor, IR 4.0Abstract
The Industrial Revolution (IR) 4.0 gave birth to various kinds of technology that can be used in applications in various industrial sectors, electricity, energy, and so on. One of them is the world of automation which can make it easier to handle a complex system. Virtual operation and monitoring technology has become a mainstay today, one of which is the Human Machine Interface (HMI). In this research, we will discuss the design and implementation of HMI in electrical power installation system applications which include a three-phase induction motor starting system. The aim of this research is to change the conventional installation system to an integrated digital system where later the system can be operated and monitored with the same devices. The research method used was the initial stage of designing hardware and software in the power system wiring section along with the HMI and PLC programs, and then the final stage was through testing at both stages. The results show that the system can operate the induction motor starting system and provide a trouble alarm with four notifications displayed on the HMI layer when a system failure occurs.
References
[1] P. Diekhake and E. Schnieder, “Online monitoring of a distributed building automation system to verify large sequences of bus messages by causal Petri net models,” in IECON Proceedings (Industrial Electronics Conference), 2013, pp. 3651–3655. doi: 10.1109/IECON.2013.6699716.
[2] F. Yu, W. Zhuang, and M. Sun, “Research and application of operating monitoring and evaluation for dispatching automation and control system,” in Proceedings of 2016 IEEE Advanced Information Management, Communicates, Electronic and Automation Control Conference, IMCEC 2016, 2017, pp. 1638–1641. doi: 10.1109/IMCEC.2016.7867495.
[3] M. Z. Shaikh et al., “State-of-the-Art Wayside Condition Monitoring Systems for Railway Wheels: A Comprehensive Review,” IEEE Access, vol. 11, no. January, pp. 13257–13279, 2023, doi: 10.1109/ACCESS.2023.3240167.
[4] R. Alcarria, D. M. De Andres, B. Bordel, D. S. De Rivera, A. Sanchez-Picot, and T. Robles, “A service-oriented monitoring system based on rule evaluation for Home Automation,” 2017 IEEE Int. Conf. Consum. Electron. ICCE 2017, pp. 329–330, 2017, doi: 10.1109/ICCE.2017.7889341.
[5] W. Liao, N. Dong, and T. Fan, “Design of the embedded remote monitor system for building automation system based on the VxWorks,” in PACIIA 2009 - 2009 2nd Asia-Pacific Conference on Computational Intelligence and Industrial Applications, 2009, vol. 1, pp. 436–438. doi: 10.1109/PACIIA.2009.5406396.
[6] D. C. Karia, V. Adajania, M. Agrawal, and S. Dandekar, “Embedded web server application based automation and monitoring system,” in 2011 - International Conference on Signal Processing, Communication, Computing and Networking Technologies, ICSCCN-2011, 2011, no. 2, pp. 634–637. doi: 10.1109/ICSCCN.2011.6024628.
[7] I. Lita, D. A. Visan, I. B. Cioc, A. G. Mazare, and R. M. Teodorescu, “Indoor environmental parameters monitoring for building automation systems,” in Proceedings of the 8th International Conference on Electronics, Computers and Artificial Intelligence, ECAI 2016, 2017, pp. 8–11. doi: 10.1109/ECAI.2016.7861083.
[8] M. Sahani, S. K. Rout, and A. Mandal, “Remote monitoring in home automation using low cost microcontroller,” in International Conference on Communication and Signal Processing, ICCSP 2014 - Proceedings, 2014, pp. 925–929. doi: 10.1109/ICCSP.2014.6949979.
[9] P. Papcun, E. Kajáti, and J. Ĝ. Koziorek, “Human Machine Interface in Concept,” in 2018 World Symposium on Digital Intelligence for Systems and Machines (DISA), 2017, pp. 289–296.
[10] T. Zabiński and T. Ma̧cZka, “Human system interface for manufacturing control - Industrial implementation,” in 3rd International Conference on Human System Interaction, HSI’2010 - Conference Proceedings, 2010, pp. 350–355. doi: 10.1109/HSI.2010.5514547.
[11] V. Paelke, “Augmented reality in the smart factory: Supporting workers in an industry 4.0. environment,” 19th IEEE Int. Conf. Emerg. Technol. Fact. Autom. ETFA 2014, 2014, doi: 10.1109/ETFA.2014.7005252.
[12] M. R. Anwar, O. Anwar, S. F. Shamim, and A. A. Zahid, “HUMAN MACHINE INTERFACE USING OPC (OLE FOR PROCESS CONTROL),” in Student Conference On Engineering, Sciences and Technology, 2004, pp. 1–8.
[13] L. P. S. M. F. Andea, “Human machine interface for a SCADA Systems applied on a District Heating Power Plant,” in The International Conference on Information and Digital Technologies, 2015, pp. 272–277.
[14] S. H. Raman, M. A. M. Hanafiah, M. R. Ab Ghani, and W. N. S. E. W. Jusoh, “A human machine interface (HMI) framework for Smart Grid system,” in 2014 IEEE Innovative Smart Grid Technologies - Asia, ISGT ASIA 2014, 2014, pp. 318–322. doi: 10.1109/ISGT-Asia.2014.6873810.
[15] C. M. Vinga, F. Demeter, V. Vatau, F. M. Frigura-Iliasa, M. Mirica, and M. Iorga, “Human Machine Interface for a Photovoltai Electricity Station,” in Proceedings of the International Conference on Information and Digital Technologies 2019, IDT 2019, 2019, pp. 532–535. doi: 10.1109/DT.2019.8813435
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