• Title/Summary/Keyword: 토출압 맥동

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The Analysis of Discharge Pressure Noise Characteristics Of Vane Pump for Automatic Transmission (자동변속기용 베인펌프의 토출압 노이즈 특성 해석)

  • Choi, Y.Y.;Choi, H.J.;Lee, S.H.;Jung, W.J.
    • 유공압시스템학회:학술대회논문집
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    • 2010.06a
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    • pp.33-38
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    • 2010
  • As for an oil hydraulic vane pump of vehicle hydraulic systems, the highest of planning technique required by the acquisition of optimum profile data which can be available to predict noises and vibrations. Pressure pulsation may result in considerable vibration and noise of pump component as well as cavitation in hydraulic system. The influences of the discharge pressure and rotating speed of the vane on the dynamic pressure in chamber surrounding a vane have been investigated. It is very important to predict pressure pulsation in vane pump. This paper presents analysis of technique of vane pump for automatic transmission. The predicted result using AMESim model were good agreement with the experimentally obtained results.

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Pressure Pulsation Characteristics of a Multiple-Delivery Radial Piston Hydrulic Pump (다중 토출 레이디얼 유압 피스톤 펌프의 압력 맥동 특성)

  • Choi, S.R.;Lim, J.C.;Lee, I.Y.
    • Journal of Drive and Control
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    • v.11 no.2
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    • pp.1-8
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    • 2014
  • In this study, the authors carried out experiments and numerical simulations in order to clarify the pressure pulsation characteristics in multiple-delivery rotating-cam and stationary-cylinder type radial piston pumps. Also, a tee filter was applied to the pump in order to mitigate the pressure pulsation. Through the experiments and simulations, it was known that pressure pulsation with a magnitude higher than 40% of the mean load pressure could occur in the pump used in the experiments. Moreover, it was confirmed that a tee filter designed in this study could effectively mitigate the pressure pulsation.

Numerical Study on Hydraulic Fluid Flows Within Axial Piston Pumps (액셜 피스톤 펌프내 유압유 유동에 대한 수치해석적 연구)

  • Jeong, Jong-Hyun;Kim, Jong-Ki;Suh, Yong Kweon
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.34 no.2
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    • pp.129-136
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    • 2010
  • Axial piston pumps have been widely used as power sources for hydraulic systems, but studies on the fluid flow within the pump have been usually performed using 1-D analysis because of the difficulties in considering the fluid compressibility, high-speed revolution, variation of the flow rate, and complicated geometry. The goal of this study was to understand the hydraulic fluid flow within axial piston pumps by using the 3-D numerical method and the process of generating discharge pressure ripples. To improve the convergence and robustness of the simulation model, a grid system was constructed with hexahedron-type grids around the valve plate. Furthermore, we employed an empirical formula to describe the relationship between the oil density and pressure. The CFD (computational fluid dynamics) results compared well with the experimental data.

Multiobjective optimization strategy based on kriging metamodel and its application to design of axial piston pumps (크리깅 메타모델에 기반한 다목적최적설계 전략과 액셜 피스톤 펌프 설계에의 응용)

  • Jeong, Jong Hyun;Baek, Seok Heum;Suh, Yong Kweon
    • Journal of Advanced Marine Engineering and Technology
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    • v.37 no.8
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    • pp.893-904
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    • 2013
  • In this paper, a Kriging metamodel-based multi-objective optimization strategy in conjunction with an NSGA-II(non-dominated sorted genetic algorithm-II) has been employed to optimize the valve-plate shape of the axial piston pump utilizing 3D CFD simulations. The optimization process for minimum pressure ripple and maximum pump efficiency is composed of two steps; (1) CFD simulation of the piston pump operation with various combination of six parameters selected based on the optimization principle, and (2) applying a multi-objective optimization approach based on the NSGA-II using the CFD data set to evaluate the Pareto front. Our exploration shows that we can choose an optimal trade-off solution combination to reach a target efficiency of the axial piston pump with minimum pressure ripple.