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Numerical Analysis and Experimental Investigation of a Common Rail-Type Diesel Injector

机译:共轨式柴油机喷油器的数值分析与实验研究

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A production common rail-type injector has been investigated via numerical simulation and experimentation. The functioning principle of the injector has been carefully analyzed so as to obtain a mathematical model of the device. A zero-dimensional approach has been used for modeling the injector, thus considering the variables as function of time only. The analysis of the hydraulic part of the injector resulted in the definition of an equivalent hydraulic scheme, on which basis both the equations of continuity in chambers and flow through nozzles were written. The connecting pipe between common rail and injector, as well as the injector internal line, were modeled according to a one-dimensional approach. The moving mechanical components of the injector, such as needle, pressure rod, and control valve have been modeled using the mass-spring-damper scheme, thus obtaining the equation governing their motion. An electromagnetic model of the control valve solenoid has also been realized, in order to work out the attraction force on the anchor, generated by the electric current when flowing into its coil. The model obtained has been implemented using the MATLAB~R toolbox SIMULINK~R; the ordinary differential equations were solved by means of an implicit scheme of the second1-order accuracy, suitable for problems with high level of stiffness, while the partial differential equations were integrated using the finite-difference Lax-Friedrichs method. The experimental investigation on the common-rail injection system was performed on a test bench at some standard test conditions. Electric current flowing through the injector coil, oil pressure in the common rail and at the injector inlet, injection rate, needle lift, and control valve lift were gauged and recorded during several injection phases. The mean reflux-flow rate and the mean quantity of fuel injected per stroke were also measured. Temperature and pressure of the feeding oil as well as pressure in the rail were continuously controlled during the experimental test. The numerical and experimental results were compared. Afterwards, the model was used to investigate the effect of control volume feeding and discharge holes and of their inlet fillet, as well as the effect of the control volume capacity, on the injector performance.
机译:通过数值模拟和实验研究了生产的共轨式喷油器。注射器的功能原理已经过仔细分析,以获得该装置的数学模型。零维方法已用于建模喷油器,因此仅将变量视为时间的函数。对喷油器液压部分的分析得出了等效液压方案的定义,在此基础上,编写了腔室连续性方程和通过喷嘴的流动方程。共轨和喷油器之间的连接管以及喷油器内部管线均根据一维方法建模。喷射器的运动机械组件(例如针,压力杆和控制阀)已使用质量弹簧-阻尼器方案进行了建模,从而获得了控制其运动的方程式。还已经实现了控制阀螺线管的电磁模型,以便计算出锚固件上的吸引力,该吸引力是由流入线圈中的电流产生的。所获得的模型已使用MATLAB〜R工具箱SIMULINK〜R实现;普通的微分方程通过二阶精度的隐式格式求解,适用于刚度较高的问题,而偏微分方程则采用有限差分Lax-Friedrichs方法进行积分。在某些标准测试条件下,在测试台上进行了共轨喷射系统的实验研究。在几个喷射阶段中,测量并记录流过喷射器线圈的电流,共轨中和喷射器入口处的油压,喷射速率,针阀升程和控制阀升程。还测量了平均回流流速和每个冲程喷射的平均燃油量。在实验测试期间,连续控制进料油的温度和压力以及导轨中的压力。比较了数值和实验结果。然后,该模型用于研究控制体积供料孔和排放孔及其入口圆角的影响,以及控制体积容量对喷射器性能的影响。

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