4.4 Article

Optimization of the outlet unloading structure to prevent gaseous cavitation in a high-pressure axial piston pump

出版社

SAGE PUBLICATIONS LTD
DOI: 10.1177/09544062211043129

关键词

High-pressure axial piston pump; gaseous cavitation; unloading hole; structure optimization

资金

  1. National Key Research and Development Project [2020YFB2007100]
  2. Postdoctoral Research Program of Zhejiang Province [ZJ2021030]

向作者/读者索取更多资源

This study proposes a new method to reduce cavitation by changing the shape of unloading holes, which effectively redistributes the damaging power of cavitation. The crescent-shaped unloading hole design significantly improves the unloading rate and effectively decreases cavitation in the pump.
Raising the pressure rank of axial piston pumps is an effective way to enhance the power density. However, when hydraulic fluid switches between the suction and discharge areas in the valve plate at a high level of pressure, the effective delivery flow rates of pumps decrease and may cause vibrations, noise and gaseous cavitation. Increasing the inlet pressure is a common method used to reduce gaseous cavitation; however, this requires additional equipment to pressurize the inlet line, which reduces the power density of the pump. This study proposed a new approach to reduce gaseous cavitation by modifying the shape of the unloading holes for pumps. A computational fluid dynamics (CFD) model was established to examine the influences of the unloading holes of the valve plate on gaseous cavitation. The simulation results revealed that a crescent-shaped unloading hole in the valve plate can effectively decrease the gaseous cavitation by redistributing the damage power of cavitation. Moreover, the crescent-shaped design of the unloading hole can increase the unloading rate by 64.39% at an inlet pressure of 1.1 MPa and rotational speed of 1600 r/min compared to that of traditional unloading holes. As a result, cavitation in the pump can be reduced effectively by an improved unloading rate, which has great practical significance for suppressing the cavitation phenomenon and decreasing vibration and noise in the pump.

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