Modeling and Analysis of Hydrostatic Pockets in the Cylinder Block–Valve Plate Lubricating Interface of a Floating Piston Pump
DOI:
https://doi.org/10.13052/ijfp1439-9776.2715Keywords:
Contact, cylinder block, efficiency, hydrostatic, lubrication, piston-type pump, simulation, valve plateAbstract
Piston-type positive displacement machines are used across diverse applications and operating conditions, posing a critical design challenge to minimize solid-body contact while maintaining high efficiency. This study investigates the potential of hydrostatic pockets between the cylinder block and valve plate to provide dynamically and passively controlled pressure forces, mitigating contact issues at low speeds without excessive losses at high speeds.
Simulations of a baseline pump design revealed persistent solid-body contact under low-speed and high-pressure conditions, indicating the need for enhanced lubrication strategies. Retaining the baseline design, the study examined multiple hydrostatic pocket configurations through simulation, varying their location, quantity, and size. Furthermore, this study also investigates the size of the grooves, which act as constant-area orifices connecting the hydrostatic pockets and displacement chambers. Although the primary focus is on low-speed high-pressure and high-speed high-pressure scenarios, additional operating points at low-speed low-pressure, high-speed low-pressure, and medium-speed medium-pressure are also considered.
The effectiveness of each design is evaluated on the basis of film thickness, contact pressure, leakage, torque, and viscous losses under key operating conditions. The simulation results are then compared with the experimental findings reported in prior literature, and they suggest that placing the hydrostatic pockets farther from the displacement chambers leads to greater improvements, particularly in reducing leakage, minimizing viscous losses, and avoiding metal-to-metal contact. This paper seeks to deliver a better understanding of the hydrostatic pockets and the corresponding groove orifices, offering design guidance for optimizing the lubrication management for future piston-type positive displacement machines and informing strategies for improved efficiency and longevity in demanding applications.
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References
J. Ivantysyn and M. Ivantysynova. Hydrostatic Pumps and Motors, Principles, Designs, Performance, Modeling, Analysis, Control and Testing. Academia Books International, New Delhi, India, 2001. ISBN 8185522162.
P. Achten, R. Mommers, J. Potma, and J. Achten. Experimental investigation of a hydrostatic bearing between barrels and port plates in floating cup axial piston pumps. In BATH/ASME 2020 Symposium on Fluid Power and Motion Control, 2020. https://doi.org/10.1115/FPMC2020-2712.
Liselott Ericson and Jonas Forssell. A novel axial piston pump/motor principle with floating pistons: Design and testing. In BATH/ASME 2018 Symposium on Fluid Power and Motion Control, FPMC2018. American Society of Mechanical Engineers, 2018. https://doi.org/10.1115/FPMC2018-8937.
P. Achten and S. Eggenkamp. Barrel tipping in axial piston pumps and motors. In Proceedings of the 14th International Fluid Power Conference, volume 144, pages 381–391, 2017. https://ep.liu.se/ecp/144/038/ecp17144038.pdf.
M. Ernst and A. Vacca. Hydrostatic vs. hydrodynamic components of fluid pressure in the tribological interfaces of axial piston machines. Tribology International, 157:106878, 2021. https://doi.org/10.1016/j.triboint.2021.106878.
R. Chacon and M. Ivantysynova. An investigation of the impact of the elastic deformation of the endcase/housing on axial piston machines cylinder block/valve plate lubricating interface. In Proceedings of the 10th IFK International Conference on Fluid Power, volume 1, pages 283–294, Dresden, Germany, 2016. https://core.ac.uk/download/pdf/236373067.pdf.
Daniel Hasko, Lizhi Shang, Eric Noppe, and Emmanuel Lefrançois. Virtual assessment and experimental validation of power loss contributions in swash plate type axial piston pumps. Energies, 12(16), 2019. https://doi.org/10.3390/en12163096.
Ahmed Shorbagy, Roman Ivantysyn, and Jürgen Weber. Holistic analysis of the tribological interfaces of an axial piston pump – focusing on the pump efficiency. Chemical Engineering and Technology, 46(1):5–13, 2023. https://doi.org/10.1002/ceat.202200450.
Svenja Horn, Roman Ivantysyn, and Jürgen Weber. Tribo-optimized lubricating interfaces in hydrostatic pumps with surface shaped slippers. In The 13th International Fluid Power Conference, 13. IFK, June 13-15, 2022, Aachen, Germany, pages 37–51, 2022.
Roman Ivantysyn, Svenja Horn, and Jürgen Weber. Design of a lead-free slipper bearing for low speed axial piston pump applications. International Journal of Fluid Power, 25(2):183–202, 2024. https://doi.org/10.13052/ijfp1439-9776.2524.
Ashley Busquets. An Investigation of Micro-Surface Shaping on the Piston / Cylinder Interface of Axial Piston Machines. Phd thesis, Purdue University, 2018.
Stephan Wegner, Stefan Gels, and Hubertus Murrenhoff. Vergleich analytischer berechnungsmethoden des entlastungsgrades im kolbentrommel-steuerspiegel-kontakt in axialkolbenmaschinen. O+P Fluidtechnik, 11-12/2017:60–69, 2017.
N. D. Manring. Tipping the cylinder block of an axial-piston swash-plate type hydrostatic machine. Transactions of the ASME, 122:216–221, 2000. https://doi.org/10.1115/1.482445.
Andrea Vacca and Germano Franzoni. Hydraulic Fluid Power: Fundamentals, Applications, and Circuit Design. John Wileys and Sons, 2021. ISBN 9781119569138.
M. Zecchi and M. Ivantysynova. A novel approach to predict the cylinder block/valve plate interface performance in swash plate type axial piston machines. In Bath/ASME Symposium on Fluid Power and Motion Control, Bath, UK, 2012.
Jonathan Baker and Monika Ivantysynova. Advanced surface design for reducing power losses in axial piston machines. In The 11th Scandinavian International Conference on Fluid Power, SICFP’09, June 2-4, 2009, Linköping, Sweden, 2009.
Monika Ivantysynova and Jonathan Baker. Power loss in the lubricating gap between cylinder block and valve plate of swash plate type axial piston machines. International Journal of Fluid Power, 10(2):29–43, 2009. https://doi.org/10.1080/14399776.2009.10780976.
Raghavendra Reddy, Roman Ivantysyn, Mathias Rauschenberger, and Jürgen Weber. Advanced micro-surfacing: Tribological optimization for variable-speed hydraulic drives. In Proceedings of the ASME 2025 International Desing Engineering Technical Conferences and Computers and Information in Engineering Conferences IDETC-CIE2025, August 17–20, 2025, Anaheim, CA, USA, 2025.
P. A. J. Achten, T. L. v. d. Brink, and G. E. M. Vael. A robust hydrostatic thrust bearing for hydrostatic machines. In Proc. 7th International Fluid Power Conference (IFK), pages 100–112, Aachen, Germany, March 22–24 2010.
T. Ransegnola. A strongly coupled simulation model of positive displacement machines for design and optimization. PhD Dissertation, Purdue University, West Lafayette, Indiana, 2020.
Linköping University (Division of Fluid and Mechatronic Systems). Hopsan. https://liu.se/en/research/hopsan, accessed 2025-02-17.
Thomas Heeger. Design of Electro-Hydraulic Energy Converters : With Focus on Integrated Designs and Valve Plate Rotation, volume 1971 of Linköping Studies in Science and Technology. Licentiate Thesis. Linköping University Electronic Press, Linköping, 2023. ISBN 9789180752435, 10.3384/9789180752442, https://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-194262.
B. J. Hamrock, B. J. Schmid, and B. O. Jacobson. Fundamentals of Fluid Film Lubrication. CRC Press, 2004. https://ntrs.nasa.gov/api/citations/19910021217/downloads/19910021217.pdf.
N. Patir and H. S. Cheng. An average flow model for determining effects of three-dimensional roughness on partial hydrodynamic lubrication. J. Lubr. Technol., 100(1):12–17, 1978. https://doi.org/10.1115/1.3453103.
N. Patir and H. S. Cheng. Application of average flow model to lubrication between rough sliding surfaces. J. Lubr. Technol., 101(2):220–229, 1979. https://doi.org/10.1115/1.3453329.
C. Wu and L. Zheng. An average reynolds equation for partial film lubrication with a contact factor. J. Tribol., 111(1):188–191, 1989. https://doi.org/10.1115/1.3261872.
A. Schenk and M. Ivantysynova. An investigation of the impact of elastohydrodynamic deformation on power loss in the slipper swashplate interface. In Proc. 8th JFPS International Symposium on Fluid Power, Okinawa, Japan, October 2011. https://jfps.or.jp/souko/proceedings/okinawa2011/pdf/1C2-5.pdf.

