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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Development And Application Of Acomplete Multijet Common-rail Injection-system Mathematical Model For Hydrodynamic Analysis And Diagnostics
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Development And Application Of Acomplete Multijet Common-rail Injection-system Mathematical Model For Hydrodynamic Analysis And Diagnostics

机译:完整的多喷嘴共轨喷射系统流体力学分析与诊断数学模型的开发与应用

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摘要

A rather complete mathematical model for a common-rail injection-system dynamics numerical simulation was developed to support experimentation, layout, and control design, as well as performance optimization. The thermofluid dynamics of the hydraulic-system components, including rail, connecting pipes, and injectors was modeled in conjunction with the solenoid-circuit electromagnetics and the mechanics of mobile elements. One-dimensional flow equations in conservation form were used to simulate wave propagation phenomena throughout the high-pressure connecting pipes, including the feeding pipe of the injector nozzle. In order to simulate the temperature variations due to the fuel compressibility, the energy equation was used in addition to mass conservation and momentum balance equations. Besides, the possible cavitation phenomenon effects on the mass flow rate through the injector bleed orifice and the nozzle holes were taken into account. A simple model of the electromagnetic driving circuit was used to predict the temporal distribution of the force acting on the pilot-valve anchor. It was based on the experimental time histories of the current through the solenoid and of the associated voltage that is provided by the electronic control unit to the solenoid. The numerical code was validated through the comparison of the prediction results with experimental data, that is, pressure, injected flow rate, and needle lift time histories, taken on a high performance test bench Moehwald-Bosch MEP2000-CA4000. The novel injection-system mathematical model was applied to the analysis of transient flows through the hydraulic circuit of a commercial multijet second-generation common-rail system, paying specific attention to the wave propagation phenomena, to their dependence on solenoid energizing time and rail pressure, as well as to their effects on system performance. In particular, an insight was also given into the model capability of accurately predicting the wave dynamics effects on the rate and mass of fuel injected when the dwell time between two consecutive injections is varied.
机译:开发了一个用于共轨喷射系统动力学数值模拟的相当完整的数学模型,以支持实验,布局和控制设计以及性能优化。液压系统组件(包括导轨,连接管和喷油器)的热流体动力学与电磁回路电磁学和移动元件的力学原理一起进行了建模。采用守恒形式的一维流动方程来模拟波在整个高压连接管中的传播现象,包括喷嘴的进料管。为了模拟由于燃料可压缩性引起的温度变化,除了质量守恒和动量平衡方程式之外,还使用了能量方程式。此外,可能的气蚀现象对通过喷射器排放孔的质量流率产生影响,并考虑了喷嘴孔。使用电磁驱动电路的简单模型来预测作用在先导阀锚上的力的时间分布。它基于流经螺线管的电流和电子控制单元提供给螺线管的相关电压的实验时间历史记录。通过将预测结果与实验数据进行比较,验证了该数字代码,这些实验数据是在高性能试验台Moehwald-Bosch MEP2000-CA4000上获得的压力,注射流速和针头提升时间历史记录。将新型喷射系统数学模型应用于分析商用多喷嘴第二代共轨系统的液压回路中的瞬态流量,特别注意波的传播现象,以及它们对电磁阀通电时间和轨压的依赖性,以及它们对系统性能的影响。特别是,当两次连续喷射之间的停留时间发生变化时,模型能力还可以准确预测波动动力学对所喷射燃料的速率和质量的影响。

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