A Nonisothermal Fluid-Structure Interaction Analysis on the Piston/Cylinder Interface Leakage of High-Pressure Fuel Pump

Author:

Qian Dexing1,Liao Ridong1

Affiliation:

1. School of Mechanical Engineering, Beijing Institute of Technology, 5 South Zhongguancun Street, Haidian District, Beijing 100081, China e-mail:

Abstract

In this paper, a nonisothermal fluid-structure interaction mathematical model for the piston/cylinder interface leakage is presented. Full account is taken of the piston eccentricity, elastic deformations of the piston pair, the nonisothermal flow in the interface, and the physical properties of the fluid such as the pressure-viscosity and temperature-viscosity effects. The numerical method for the solution of the model is given, which can simultaneously solve for the fluid pressure distribution and leakage rate in the interface. The model is validated by comparing the calculated leakage rates with the measurements. Results show the good accuracy of the model. The impacts of parameters such as the piston diameter, the initial clearance between the piston pair, and the piston velocity on the leakage rate are discussed. Some of the conclusions provide good guidance for the design of high-pressure fuel pumps.

Publisher

ASME International

Subject

Surfaces, Coatings and Films,Surfaces and Interfaces,Mechanical Engineering,Mechanics of Materials

Reference19 articles.

1. An Elastohydrodynamic Analysis of the Sleeve Type High Pressure Seal;ASME J. Tribol.,1972

2. A Ringless Hydrodynamic Seal of High Efficiency up to 1 GPa;J. Tsinghua Univ. (Sci &. Tech),2000

3. Design and Experimental Investigation on the Plunger Coupled Parts of Electronically Controlled Common Rail High-Pressure Fuel Pump;Trans. CSICE.,2006

4. Investigation on the Radial Micro-Motion About Piston of Axial Piston Pump;Chin. J. Mech. Eng.,2012

5. Huang, C., and Ivantysynova, M., 2006, “An Advanced Gap Flow Model Considering Piston Micro Motion and Elastohydrodynamic Effect,” 4th FPNI PhD Symposium, Sarasota, FL, June 13–17.

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