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FLUID-STRUCTURE INTERACTION ANALYSIS ON THE PERFORMANCE OF THE HIGH-PRESSURE FUEL PUMP FOR DIESEL ENGINES

机译:柴油机高压燃油泵性能的流固耦合分析

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In this paper, a 3-D fluid-structure interaction (FSI) analysis on the performance of the high-pressure fuel pump for diesel engines is presented. The fluid and structure are two-way coupled and several complex factors are taken into accounts in the FSI model. For instance, the fluid model includes not only the high-pressure fuel pump but also the rail and pressure-control valve which are used to maintain a stable delivery pressure of the pump; Gap boundary condition is adopted to simulate the opening and closing of the valve; The flow is assumed to be nonisothermal and the physical properties of the fuel such as dynamic viscosity and density are functions of pressure and temperature. While in the structure model, the spring force on the valve and the contacts between the valve and the valve seat as well as the top block are considered. The calculated volumetric efficiency losses agree well with the experiments, which indicates that the FSI model established in this study could well predict the physical phenomenon taking place in the high-pressure fuel pump. Several new conclusions can be drawn from the discussions on the results such as the suction efficiency loss due to the delay closing of the inlet valve is extremely small while the suction loss due to the expansion of the high-pressure fuel entrapped in the dead volume is very large.
机译:本文对柴油机高压燃油泵的性能进行了三维流体-结构相互作用(FSI)分析。流体和结构是双向耦合的,在FSI模型中考虑了几个复杂因素。例如,流体模型不仅包括高压燃油泵,还包括用于维持泵的稳定输送压力的导轨和压力控制阀。采用间隙边界条件模拟阀门的开启和关闭;假定流动是非等温的,并且燃料的物理特性(例如动态粘度和密度)是压力和温度的函数。在结构模型中,考虑阀上的弹簧力以及阀与阀座之间以及顶盖之间的接触。计算得到的容积效率损失与实验吻合得很好,这表明本研究建立的FSI模型可以很好地预测高压燃油泵中发生的物理现象。从关于结果的讨论中可以得出一些新的结论,例如,由于进气门延迟关闭而引起的吸力效率损失非常小,而由于滞留在死体积中的高压燃油膨胀引起的吸力损失却很小。很大。

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