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Dynamic flow behavior during fuel-offloaded process in control valve for unit pump fuel system

机译:单元泵燃油系统控制阀中燃油卸载过程中的动态流动行为

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As an important part of high-pressure fuel systems, the control valve adjusts the pressure by regulating the fuel delivery quantity and the withdrawal of fuel. This study presents both experimental and numerical investigations into the flow characteristics within the control valve of a diesel unit pump fuel system (UPS). To observe the fuel flow within the control valve, an optical test rig based on a baseline UPS is built. Further, numerical simulations based on Computational Fluid Dynamics (CFD) method are conducted based on the homogenous two-phase unsteady flow model using dynamic mesh. The results show that during the valve opening period cavitation occurs, directly affecting the fuel-offloading process of the high-pressure fuel line and delaying the time for injector needle seating to cut off fuel injection. There are two cavitation regions: the conical region and the downstream of the conical region. Due to great pressure differential between the inlet and outlet of the control valve, the cavitation in the conical region induces choking flow. Once choking flow occurs, the mass flow rate maintains stable even as the pressure differential continues rising, but the discharge coefficient (C-d) declines. This choking flow increases the time delay of stop fuel injection. (C) 2016 Elsevier Ltd. All rights reserved.
机译:作为高压燃油系统的重要组成部分,控制阀通过调节燃油输送量和燃油抽取来调节压力。这项研究提供了对柴油单体泵燃油系统(UPS)的控制阀内流动特性的实验和数值研究。为了观察控制阀内的燃油流动,建立了基于基准UPS的光学测试台。此外,基于均质两相非定常流动模型,使用动态网格,基于计算流体动力学(CFD)方法进行了数值模拟。结果表明,在阀打开期间发生气穴现象,直接影响高压燃油管路的燃油卸载过程,并延迟了喷油器针阀座切断燃油喷射的时间。有两个空化区域:圆锥形区域和圆锥形区域的下游。由于控制阀的入口和出口之间存在很大的压力差,因此锥形区域中的气蚀会引起节流。一旦发生cho流,即使压差继续上升,质量流量仍保持稳定,但排放系数(C-d)下降。这种阻塞流增加了停止燃油喷射的时间延迟。 (C)2016 Elsevier Ltd.保留所有权利。

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