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An Experimental Study on the Interaction between Flow and Spark Plug Orientation on Ignition Energy and Duration for Different Electrode Designs

机译:不同电极设计点火能量和持续时间的流动和火花塞取向相互作用的实验研究

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The effect of flow direction towards the spark plug electrodes on ignition parameters is analyzed using an innovative spark aerodynamics fixture that enables adjustment of the spark plug gap orientation and plug axis tilt angle with respect to the incoming flow. The ignition was supplied by a long discharge high energy 110 mJ coil. The flow was supplied by compressed air and the spark was discharged into the flow at varying positions relative to the flow. The secondary ignition voltage and current were measured using a high speed (10MHz) data acquisition system, and the ignition-related metrics were calculated accordingly. Six different electrode designs were tested. These designs feature different positions of the electrode gap with respect to the flow and different shapes of the ground electrodes. The resulting ignition metrics were compared with respect to the spark plug ground strap orientation and plug axis tilt angle about the flow direction. Analysis of the experimental data indicates that the position of the ground strap with respect to the flow is a primary factor that causes variations in ignition discharge energy and discharge duration. The different types of electrodes are influenced differently as the incoming air flow direction changes with respect to the electrode gap. Double fine wire electrodes produce a wide constant ignition energy and duration window; while side electrode gap has a great variation in gap energy output. The experimental results show that the normalized gap energy increased by 67.7% as the incoming flow changes from 0° index angle to 90° angle.
机译:使用创新的火花气流体夹具分析流动方向朝向火花塞电极对火花塞电极进行分析,这是通过创新的火花空气流体夹具来调节火花塞间隙取向和插头轴倾斜角度相对于进入的流量。点火通过长放电高能量110 MJ线圈提供。通过压缩空气供应流动,并且火花在相对于流动的不同位置排出到流中。使用高速(10MHz)数据采集系统测量二次点火电压和电流,相应地计算点火相关的指标。测试了六种不同的电极设计。这些设计具有相对于接地电极的流动和不同形状的电极间隙的不同位置。将得到的点火指标相对于所述火花塞接地母线取向和插头轴倾斜角度围绕流动方向进行比较。对实验数据的分析表明,地带相对于流动的位置是引起点火放电能量和放电持续时间的变化的主要因素。当进入的空气流动方向相对于电极间隙改变时,不同类型的电极受到不同的影响。双细丝电极产生宽恒定点火能量和持续时间窗口;虽然侧电极间隙具有间隙能量输出的巨大变化。实验结果表明,由于进入流量从0°指数角变为90°角,归一化间隙能量增加了67.7%。

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