Otwarty dostęp

An Innovative Method of Measuring the Extension of the Piston Rod in Hydraulic Cylinders, Especially Large Ones Used in the Shipbuilding and Offshore Industry


Zacytuj

1. P.425099, “A device for measuring the extension of a hydraulic cylinder piston rod “. Patent granted in 2021. Search in Google Scholar

2. “Innovative Ship Relies on Smart Cylinders”, Power & Motion, Feb 1, 2003, https://www.powermotiontech.com/sensors-software/controls-instrumentation/article/21883570/innovative-ship-relies-on-smart-cylinders Search in Google Scholar

3. P. Boughton, “Measuring the displacement of hydraulic cylinders”, Design Engineer – Instrumentation, 5th February 2013 Search in Google Scholar

4. https://www.cpi-nj.com/hydraulic-cylinder-position-sensors/ Search in Google Scholar

5. https://www.cpi-nj.com/linear-position-sensors/ Search in Google Scholar

6. EP1620702B1 patent, “Piston rod position detection system” Search in Google Scholar

7. T. Vanthuyne, “An electrical thrust vector control system for the VEGA launcher”, Proceedings of 13th European space mechanisms and tribology symposium ESMATS’2009, Vienna, 23–25 September 2009 (ESA SP-670, July 2009). Search in Google Scholar

8. Dymarski, C., Dymarski, P., & Żywicki, J. (2017). Technology Concept of TLP Platform Towing and Installation in Waters with Depth of 60 m. Polish Maritime Research, 24(s1), 59-66. https://doi.org/10.1515/pomr-2017-0022 Search in Google Scholar

9. Dymarski, P., Dymarski, C., & Ciba, E. (2019). Stability Analysis of the Floating Offshore Wind Turbine Support Structure of Cell Spar Type During its Installation. Polish Maritime Research, 26, 109-116. https://doi.org/10.2478/pomr-2019-0072 Search in Google Scholar

10. Ciba, E. (2021). Heave Motion Of A Vertical Cylinder With Heave Plates. Polish Maritime Research, 28, 42-47. https://doi.org/10.2478/pomr-2021-0004 Search in Google Scholar

11. Ciba, E., Dymarski, P., & Grygorowicz, M. (2022). Heave Plates with Holes for Floating Offshore Wind Turbines. Polish Maritime Research, 29, 26-33. https://doi.org/10.2478/pomr-2022-0003 Search in Google Scholar

12. Matuszewski, L. (2019). New Designs of Centrifugal Magnetic Fluid Seals for Rotating Shafts in Marine Technology. Polish Maritime Research, 26(2). https://doi.org/10.2478/pomr-2019-0023 Search in Google Scholar

13. Sliwiński, P. (2020). The Influence of Water and Mineral Oil on Mechanical Losses in a Hydraulic Motor for Offshore and Marine Applications. Polish Maritime Research, 27(2). https://doi.org/10.2478/pomr-2020-0034 Search in Google Scholar

14. E. Hristoforoua, A. Ktenab, „Magnetostriction and magnetostrictive materials for sensing applications”, Journal of Magnetism and Magnetic Materials 316 (2007) 372–37810.1016/j.jmmm.2007.03.025 Search in Google Scholar

15. “Linear displacement transducer isn’t limited by stroke”. Power&Motion, March 6, 2013, https://www.powermotiontech.com/sensors-software/controls-instrumentation/article/21883571/linear-displacement-transducer-isnt-limited-by-stroke Search in Google Scholar

16. B. Zhang, B. Wang, Y. Li,W. Huang, Y. Li, “Magnetostrictive Tactile Sensor Array for Object Recognition”, IEEE Transactions on Magnetics, vol. 55, no. 7, July 201910.1109/TMAG.2019.2894016 Search in Google Scholar

17. J.J. Beato-López, I. Royo-Silvestre, C. Gómez-Polo, “Micrometric non-contact position magnetoimpedance sensor”, Journal of Magnetism and Magnetic Materials 465 (2018) 489–49410.1016/j.jmmm.2018.05.042 Search in Google Scholar

18. Y.W. Park, H.W. Song, E.J. Yoo and J.W. Kim, “Concept and Numerical Verification of Magnetostrictive Control Rod Position Identification,” The Korean Society of Mechanical Engineers Autumn Conference, pp. 3672-3673, 2013. Search in Google Scholar

19. E.J. Yoo, Y.W. Park, and M.D. Noh, “Characterization of Detection Signal for Sensing Coil Type in Magnetostrictive Control Rod Position Indicator,” Proc. of KSPE Spring Conference, pp. 219-219, 2016. Search in Google Scholar

20. A. Dorneich, M. Fritton, “Microwave Position Sensor for Hydraulic Drives”, 30th Eurosensors Conference, EUROSENSORS 2016, Procedia Engineering 168 (2016), pp. 1257–1260 Search in Google Scholar

21. A.S. Rana, R.S. Sayles, “An experimental study on the friction behaviour of aircraft hydraulic actuator elastomeric reciprocating seal”, Tribol. Interface Eng. Ser. 2005;48:507–515. doi: 10.1016/S0167-8922(05)80052-5. Open DOISearch in Google Scholar

eISSN:
2083-7429
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
Engineering, Introductions and Overviews, other, Geosciences, Atmospheric Science and Climatology, Life Sciences