首页> 外文会议>ASME(American Society of Mechanical Engineers) Internal Combustion Engine Division Spring Technical Conference; 20060507-10; Aachen(DE) >NUMERICAL-EXPERIMENTAL STUDY AND SOLUTIONS TO REDUCE THE DWELL TIME THRESHOLD FOR FUSION-FREE CONSECUTIVE INJECTIONS IN A MULTIJET SOLENOID-TYPE C.R. SYSTEM
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NUMERICAL-EXPERIMENTAL STUDY AND SOLUTIONS TO REDUCE THE DWELL TIME THRESHOLD FOR FUSION-FREE CONSECUTIVE INJECTIONS IN A MULTIJET SOLENOID-TYPE C.R. SYSTEM

机译:减少多节电磁型C.R.系统无融合连续注射停留时间阈值的数值实验研究和解决方案

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In 'Multijet' Common Rail (C.R.) diesel injection systems, when two consecutive injection current-pulses are approached to each other, the fusion of the two injections can occur. This causes undesired excessive amount of injected fuel, which leads to worsening of particulate emissions and fuel consumption. In order to avoid such a phenomenon, lower limits to the values of dwell time are introduced in the control unit maps, by means of a conservatively overestimated threshold, limiting the flexible management of multiple injections and C.R. system capability to perform a larger number of injection shots. The reason of the injection fusion is mainly due to the time delay between the electrical signal to the solenoid and the needle lift at both valve opening and closure. In particular, the dwell-time range inside of which injection fusion occurs was shown to decrease by reducing the nozzle closure delay. Experimental tests were carried out on a high-performance Moehwald-Bosch MEP2000/CA4000 test bench for determining the functional dependence of nozzle closure and opening delays on solenoid energizing time and nominal rail pressure. Besides, a mathematical relation between the solenoid energizing time and the injection time interval was determined. A Multijet C.R. injection system mathematical model, that was previously developed, including thermodynamics of liquids, fluid dynamics, subsystem mechanics, and electromagnetism equations, was applied to better understand the cause and effect relationships for nozzle opening and closure delays. In particular, numerical results on the time histories of delivery- and control-chamber pressures, pilot- and needle-valve lifts, mass flow rates through Z and A holes, were obtained and analyzed in order to highlight the dependence of nozzle opening and closure delays on electro-injector internal geometric features and on the needle dynamics. For all the considered operating conditions, the model predictions were compared to the experimental injection flow-rate patterns and to the pressure data taken at the injector inlet, for assessment. The nozzle closure delay was shown to strongly depend on the needle dynamics. Parametric tests were carried out with the numerical code by changing needle and control plunger mass, needle spring preload and stiffness, maximum needle stroke, in order to identify configurations useful for minimizing the nozzle closure delay. On the basis of the indications derived from these numerical tests, a modified version of the commercial electro-injector was realized so as to achieve effectively reduced nozzle closure delays and very close sequential injections without any fusion between them.
机译:在“ Multijet”共轨(C.R.)柴油喷射系统中,当两个连续的喷射电流脉冲彼此接近时,会发生两次喷射的融合。这导致不期望的过量喷射燃料,这导致微粒排放和燃料消耗恶化。为了避免这种现象,通过保守地高估阈值,在控制单元图中引入了对停留时间值的下限,从而限制了多次进样的灵活管理以及CR系统执行更多次进样的能力镜头。注入熔合的原因主要是由于在阀打开和关闭时,给螺线管的电信号和针阀升程之间存在时间延迟。尤其是,通过减少喷嘴关闭延迟,可以减小发生注入熔合的停留时间范围。在高性能的Moehwald-Bosch MEP2000 / CA4000试验台上进行了实验测试,以确定喷嘴关闭和打开延迟对电磁阀通电时间和额定导轨压力的功能依赖性。此外,确定了螺线管通电时间与喷射时间间隔之间的数学关系。先前已开发的Multijet C.R.喷射系统数学模型包括液体的热力学,流体动力学,子系统力学和电磁方程式,用于更好地了解喷嘴打开和关闭延迟的因果关系。特别是,获得并分析了关于输送和控制腔压力,先导阀和针阀升程,通过Z和A孔的质量流率的时间历程的数值结果,以突出喷嘴打开和关闭的依赖性。延迟了电喷油器的内部几何特征和针头动力学。对于所有考虑的工况,将模型预测值与实验喷射流量模式以及喷射器进口处的压力数据进行比较,以进行评估。喷嘴关闭延迟显示出很大程度上取决于针头动力学。通过更改针头和控制柱塞的质量,针头弹簧的预紧力和刚度,最大针头冲程,使用数字代码进行参数测试,以便确定有助于最小化喷嘴关闭延迟的配置。根据从这些数值测试得出的指示,实现了商用电喷油器的改进版本,从而实现了有效减少的喷嘴关闭延迟和非常紧密的顺序喷射,而它们之间没有任何融合。

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