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Dynamic Characteristics of Pressure Propagation According to Boundary Condition Changes in a Transmission Line  

나기대 (조선대학교 기계공학부)
유영태 (조선대학교 기계공학부)
김지환 (조선대학교)
Publication Information
Transactions of the Korean Society of Machine Tool Engineers / v.11, no.6, 2002 , pp. 75-82 More about this Journal
Abstract
Design for a quiet operation of fluid power system requires the understanding of noise and vibration characteristics of the system. It's not easy to analyze noise problem in hydraulic cylinder used in typical actuator Because they've got complex fluid dynamics. One of the fundamental problems associated with the hydraulic system is the pulsating flow in pipe lines, which can be tackled by the analysis under simplifying assumptions. The present study focuses on theoretic analysis and experimental study on the dynamics of laminar pulsating flow in a circular pipe. We analyze the propagation characteristics of the pressure pulse within a hydraulic pipe line taking into account the pulsating flow frequency variation. We also measure instantaneous pressure pulses within pipe line to identify the transfer functions. We conduct series of experiments to investigate the propagation characteristics of pressure pulse for various pressure of pulsating flow. The working fluid of the present study is ISO VG46 and the temperature ranges from 20 to $60^{\circ}$ with normal pressure at 4000kPa. The flow rate is measured by using an ultrasonic flow meter. Pressures at fixed upstream and downstream positions are measured concurrently. The electric signals of the pressure sensor are stored and analyzed using a system analyzer(PKE 983 series). The frequency is varied in the range of 10~500Hz. The Reynolds number is kept below 2,000. In the present study, boundary condition was varied by installing a surge tank and an orifice at the end of pipe. Experimental and theoretical results were compared each other under various boundary conditions.
Keywords
Fluid Power Systems; Hydraulic Pipeline Dynamics; Pressure Measurement; Unsteady Flow;
Citations & Related Records
Times Cited By KSCI : 3  (Citation Analysis)
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