The piston/cylinder interface of swash plate–type axial piston machines represents one of the most critical design elements for this type of pump and motor. Oscillating pressures and inertia forces acting on the piston lead to its micro-motion, which generates an oscillating fluid film with a dynamically changing pressure distribution. Operating under oscillating high load conditions, the fluid film between the piston and cylinder has simultaneously to bear the external load and to seal the high pressure regions of the machine. The fluid film interface physical behavior is characterized by an elasto-hydrodynamic lubrication regime. Additionally, the piston reciprocating motion causes fluid film viscous shear, which contributes to a significant heat generation. Therefore, to fully comprehend the piston/cylinder interface fluid film behavior, the influences of heat transfer to the solid boundaries and the consequent solid boundaries’ thermal elastic deformation cannot be neglected. In fact, the mechanical bodies’ complex temperature distribution represents the boundary for nonisothermal fluid film flow calculations. Furthermore, the solids-induced thermal elastic deformation directly affects the fluid film thickness. To analyze the piston/cylinder interface behavior, considering the fluid-structure interaction and thermal problems, the authors developed a fully coupled simulation model. The algorithm couples different numerical domains and techniques to consider all the described physical phenomena. In this paper, the authors present in detail the computational approach implemented to study the heat transfer and thermal elastic deformation phenomena. Simulation results for the piston/cylinder interface of an existing hydrostatic unit are discussed, considering different operating conditions and focusing on the influence of the thermal aspect. Model validation is provided, comparing fluid film boundary temperature distribution predictions with measurements taken on a special test bench.
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e-mail: mpelosi@purdue.edu
e-mail: mivantys@purdue.edu
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October 2012
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Heat Transfer and Thermal Elastic Deformation Analysis on the Piston/Cylinder Interface of Axial Piston Machines
Matteo Pelosi,
Matteo Pelosi
Maha Fluid Power Research Center, Department of Agricultural and Biological Engineering and School of Mechanical Engineering,
e-mail: mpelosi@purdue.edu
Purdue University
, 1500 Kepner Drive, Lafayette, IN 47905
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Monika Ivantysynova
Monika Ivantysynova
Maha Fluid Power Research Center, Department of Agricultural and Biological Engineering and School of Mechanical Engineering,
e-mail: mivantys@purdue.edu
Purdue University
, 1500 Kepner Drive, Lafayette, IN 47905
Search for other works by this author on:
Matteo Pelosi
Maha Fluid Power Research Center, Department of Agricultural and Biological Engineering and School of Mechanical Engineering,
Purdue University
, 1500 Kepner Drive, Lafayette, IN 47905e-mail: mpelosi@purdue.edu
Monika Ivantysynova
Maha Fluid Power Research Center, Department of Agricultural and Biological Engineering and School of Mechanical Engineering,
Purdue University
, 1500 Kepner Drive, Lafayette, IN 47905e-mail: mivantys@purdue.edu
J. Tribol. Oct 2012, 134(4): 041101 (15 pages)
Published Online: August 21, 2012
Article history
Received:
December 16, 2011
Accepted:
May 20, 2012
Online:
August 21, 2012
Published:
August 21, 2012
Citation
Pelosi, M., and Ivantysynova, M. (August 21, 2012). "Heat Transfer and Thermal Elastic Deformation Analysis on the Piston/Cylinder Interface of Axial Piston Machines." ASME. J. Tribol. October 2012; 134(4): 041101. https://doi.org/10.1115/1.4006980
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