Have a personal or library account? Click to login
Analysis and Graphical Evaluation of Pressure Changes in Pneumatic Circuits for Industrial Applications Cover

Analysis and Graphical Evaluation of Pressure Changes in Pneumatic Circuits for Industrial Applications

By: Marek Vagas and  Ondrej Majercak  
Open Access
|Sep 2025

References

  1. Pandian, S., Takemura, F., Hayakawa, Y., Kawamura, S. (2002). Pressure observer-controller design for pneumatic cylinder actuators. IEEE/ASME Transactions on Mechatronics, 7 (4), 490–499. https://doi.org/10.1109/TMECH.2002.805624.
  2. Unger, M., Radgen, P. (2018). Energy efficiency in compressed air systems – a review of energy efficiency potentials, technological development, energy policy actions and future importance. In Proceedings of the 10th International Conference on Energy Efficiency in Motor Driven Systems. Luxembourg: Publications Office of the European Union, 207–233. ISBN 978–92–79–79364–6. https://doi.org/10.2760/345473.
  3. Feng, B., Liu, Z., Zhang, H., Fan, H. (2024). Research on the measurement system and remote calibration technology of a dual linear array camera. Measurement Science Review, 24 (3), 105–112. https://doi.org/10.2478/msr-2024-0015.
  4. Borg, M., Refalo, P., Francalanza, E. (2024). Pneumatic fault monitoring and control for sustainable compressed air systems. Procedia CIRP, 122, 217–222. https://doi.org/10.1016/j.procir.2024.01.032.
  5. Shi, Y., Cai, M., Xu, W., Wang, Y. (2019). Methods to evaluate and measure power of pneumatic system and their applications. Chinese Journal of Mechanical Engineering, 32, 42. https://doi.org/10.1186/s10033-019-0354-6.
  6. Wang, Z., Yang, B., Ma, Q., Wang, H., Carriveau, R., Ting, D., Xiong, W. (2023). Facilitating energy monitoring and fault diagnosis of pneumatic cylinders with exergy and machine learning. International Journal of Fluid Power, 24 (4), 643–682. https://doi.org/10.13052/ijfp1439-9776.2442.
  7. Abela, K., Refalo, P., Francalanza, E. (2022). Analysis of pneumatic parameters to identify leakages and faults on the demand side of a compressed air system. Cleaner Engineering and Technology, 6, 100355. https://doi.org/10.1016/j.clet.2021.100355.
  8. Cagman, S., Soylu, E., Unver, U. (2022). A research on the easy-to-use energy efficiency performance indicators for energy audit and energy monitoring of industrial compressed air systems. Journal of Cleaner Production, 365, 132698. https://doi.org/10.1016/j.jclepro.2022.132698.
  9. Dindorf, R., Wos, P. (2021). Universal programmable portable measurement device for diagnostics and monitoring of industrial fluid power systems. Sensors, 21 (10), 3440. https://doi.org/10.3390/s21103440.
  10. Caruana, L., Refalo, P. (2018). Sustainability analysis of a compressed air system. In Engineering Sustainability & Sustainable Energy 2018 (ESSE'18) Conference. ISBN 978-99957-853-2-1.
  11. Mousavi, S., Kara, S., Kornfeld, B. (2014). Energy efficiency of compressed air systems. Procedia CIRP, 15, 313–318. https://doi.org/10.1016/j.procir.2014.06.026.
  12. Gauchel, W., Streichert, T., Wilhelm, Y. (2020). Predictive maintenance with a minimum of sensors using pneumatic clamps as an example. In 12th International Fluid Power Conference. Technische Universität Dresden, 175–183. https://doi.org/10.25368/2020.81.
  13. Borg, M., Refalo, P., Francalanza, E. (2024). Fault condition indicators along the demand side of a sustainable compressed air system. Procedia CIRP, 126, 283–288. https://doi.org/10.1016/j.procir.2024.08.340.
  14. Zhu, H., Wang, Z., Wang, H., Zhao, Z., Xiong, W. (2023). Leakage fault diagnosis of two parallel cylinders in pneumatic system with a minimal number of sensors. Electronics, 12 (15), 3261. https://doi.org/10.3390/electronics12153261.
  15. Xu, M., Wang, H., Wang, Y., Tian, H. (2023). Design and experimental study of a probe for crankshaft full-automatic measuring machine. Measurement Science Review, 23 (2), 72–79. https://doi.org/10.2478/msr-2023-0009.
  16. Li, X., Kao, I. (2005). Analytical fault detection and diagnosis (fdd) for pneumatic systems in robotics and manufacturing automation. In 2005 IEEE/RSJ International Conference on Intelligent Robots and Systems. IEEE, 2517–2522. https://doi.org/10.1109/IROS.2005.1545573.
  17. Krejcčí, J., Babiuch, M., Babjak, J., Suder, J., Wierbica, R. (2023). Implementation of an embedded system into the internet of robotic things. Micromachines, 14 (1), 113. https://doi.org/10.3390/mi14010113.
  18. Kundu, P., Cohen, I., Dowling, D. (2011). Fluid Mechanics. Academic Press, ISBN 978-0123821003.
  19. Dindorf, R., Takosoglu, J., Wos, P. (2023). Review of compressed air receiver tanks for improved energy efficiency of various pneumatic systems. Energies, 16 (10), 4153. https://doi.org/10.3390/en16104153.
Language: English
Page range: 223 - 228
Submitted on: May 12, 2025
|
Accepted on: Jul 28, 2025
|
Published on: Sep 10, 2025
In partnership with: Paradigm Publishing Services
Publication frequency: Volume open

© 2025 Marek Vagas, Ondrej Majercak, published by Slovak Academy of Sciences, Institute of Measurement Science
This work is licensed under the Creative Commons Attribution-NonCommercial 4.0 License.