Development of an HMI in the LabVIEW Environment for Data Acquisition and Monitoring of Virtual Level Control

Authors

DOI:

https://doi.org/10.33448/rsd-v12i6.42033

Keywords:

PID controller; Human-machine interface; Level and flow control; Systems automation.

Abstract

The purpose of the work is the use of the Level Control scene of the Factory I/O software for level and flow control, as well as the realization of communication with the CodeSys software for the development of an automation and the creation of a Human Machine Interface (HMI), in a LabVIEW environment, which allows decision-making, monitoring and acquisition of level plant data in real time. For this, a virtual environment will be set up in charge of controlling the level of a tank using the PID controller, responsible for keeping the tank level close to the value defined in the setpoint. The controller regulates the liquid flow that will be maintained by the filling valve. Therefore, this work presents the study and literary review of control techniques, identification, automation of industrial processes and HMI development, as well as the methodology, objectives and results of the work.

Author Biography

Luiz Felipe Pugliese, Universidade Federal de Itajubá

Graduated in Control and Automation Engineering from the Federal University of Itajubá (UNIFEI). Master (2015) and PhD (2019) in Electrical Engineering with emphasis on Automation and Industrial Electrical Systems from the Federal University of Itajubá. Professor at the Federal University of Itajubá, Itabira campus. Researcher at the Research Group on Dynamical Systems (GPDIN).

References

Aguirre, L. A. (2007). Introduçaoa identificaçao de sistemas–Técnicas lineares enao-lineares aplicadas a sistemas reais. Editora da UFMG. 3a ediçao.

Dorofeev, K., & Zoitl, A. (2018). Skill-based engineering approach using opc ua programs. In 2018 IEEE 16th international conference on industrial informatics (INDIN) (pp. 1098-1103). IEEE.

Garcia, C. (2021). Controle de processos industriais: estratégias convencionais (Vol. 1). Editora Blucher.

Grandinetti, F. N., Pugliese, L. F., Braga, R. A. da S., Oliveira, T. G. de, Silva, D. L. F. da, & Rodor, F. F. (2022). Development and Implementation of Hardware to trigger I/O of a PLC via Wireless Network. Research, Society and Development, 11(10), e345111032542. https://doi.org/10.33448/rsd-v11i10.32542.

Hanssen, D. H. (2015). Programmable logic controllers: a practical approach to IEC 61131-3 using CODESYS. John Wiley & Sons.

Howimanporn, S., Chookaew, S., & Silawatchananai, C. (2022). Implementation of Real Time Data Collection Process Automation Control Using IIoT Applications. Journal of Advances in Information Technology Vol, 13(2).

Köche, J. C. (2016). Fundamentos de metodologia científica. Editora Vozes.

Lumkes Jr, J. H. (2001). Control strategies for dynamic systems: design and implementation. CRC Press.

Morais, A. V. de., Boschi, S. R. M. da S.., Moura, L. de A.., Moniz, Y. F.., Martini, S. C., Scardovelli, T. A., & Silva, A. P. da. (2022). Parallel bar device with vibratory stimulus controlled via Human Machine Interface (HMI) for Neuropathologies rehabilitation. Research, Society and Development, 11(7), e28411729964. https://doi.org/10.33448/rsd-v11i7.29964.

Nise, N. S. (2009). Engenharia de sistemas de controle. (5a ed.). Editora LTC.

Ogata, K. (2011). Engenharia de controle moderno. Prentice Hall.

Oliveira, M. D. M., Silva, R. C. M., & Souza, D. L. de. (2020). Multi objective optimization in the level controller project in a pilot plant. Research, Society and Development, 9(7), e743974794. https://doi.org/10.33448/rsd-v9i7.4794.

Özerdem, Ö. C. (2016). Design of two experimental setups for programmable logic controller (PLC) laboratory. International Journal of Electrical.

Petruzella, F. D. (2014). Controladores lógicos programáveis. AMGH Editora.

Pinho, A. G., Olímpio, E. J. S., Cabral, L. M., Oliveira Filho, R. M. de, Silva, B. C. R., Furriel, G. P., & Melo Junior, G. de. (2021). Development of a teaching bench containing multiple sensors and actuators. Research, Society and Development, 10(13), e222101321165. https://doi.org/10.33448/rsd-v10i13.21165.

Pugliese, L. F., Oliveira, T. G. de, Silva, D. L. F. da, Rodor, F. F., Braga, R. A. da S., & Amorim, G. F. (2022). Modeling and development of a low-cost didactic plant for teaching in multivariable systems. Research, Society and Development, 11(7), e33011730249. https://doi.org/10.33448/rsd-v11i7.30249.

Pugliese, L. F., Oliveira, T. G. de, Rodor, F. F., Braga, R. A. da S., & Silva, D. L. F. da. (2023). Identificação e implementação de um Controle Preditivo em um Sistema Térmico. Research, Society and Development, 12(1), e27312139862. https://doi.org/10.33448/rsd-v12i1.39862.

Ramanathan, R. (2014). The IEC 61131-3 programming languages features for industrial control systems. In 2014 World Automation Congress (WAC) (pp. 598-603). IEEE.

Silva Neto, M. F., Silva, A. M. B. da, Teixeira, E. P., & Lucas, M. (2020). Fuzzy pH control of sugarcane juice for sugar production. Research, Society and Development, 9(9), e13996321. https://doi.org/10.33448/rsd-v9i9.6321.

Soares, E. V., & Campos, R. J. (2020). Implementation of portable electroencephalographic signal conditioning system. Research, Society and Development, 9(3), e17930737. https://doi.org/10.33448/rsd-v9i3.737.

Teixeira, E. H. C. G. (2010). Controles típicos de equipamentos e processos industriais. Editora Blucher.

Tripp, D. (2005). Action research: a methodological introduction. Educação e pesquisa, 31(3), 443-466.

Published

09/06/2023

How to Cite

ABREU, L. L. C.; PUGLIESE, L. F. .; OLIVEIRA, T. G. de .; RODOR, F. F.; BRAGA, R. A. da S.; SILVA, D. L. F. da . Development of an HMI in the LabVIEW Environment for Data Acquisition and Monitoring of Virtual Level Control. Research, Society and Development, [S. l.], v. 12, n. 6, p. e7812642033, 2023. DOI: 10.33448/rsd-v12i6.42033. Disponível em: https://rsdjournal.org/index.php/rsd/article/view/42033. Acesso em: 17 nov. 2024.

Issue

Section

Engineerings