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Investigations on Mixture Formation during Start-UP Process of a Two-Stage Direct Injection Gasoline Engine for HEV Application

机译:用于HEV应用的两阶段直喷汽油发动机的启动过程中混合形成的研究

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A cycle-resolved test system was designed in a Two Stage Direct Injection (TSDI) Gasoline engine to simulate the engine quick start process in an Integrated Start and Generator (ISG) Hybrid Electric Vehicle (HEV) system. Based on the test system, measurement of the in cylinder HC concentrations near the spark plug under different engine coolant temperature and cranking speed conditions were conducted using a Fast Response Flame Ionization Detector (FFID) with Sampling Spark Plug (SSP) fits, then the in-cylinder equivalence ratio near the spark plug was estimated from the measured HC concentrations. In addition, the effects of the 1 st injection timing, 2 nd injection timing, and total equivalence ratio on the mixture formation near the spark plug were analyzed by means of experiments. Results showed that coolant temperature, cranking speed, fuel injection timing especially the 2 nd injection timing and total equivalence ratio play a substantial part in the mixture formation of the TSDI engine. Compared with that under the condition of 10°C, peak HC concentrations increased by 30% at the coolant temperature of 85°C and equivalence ratio near the spark plug at TDC get s an increase. HC concentrations near the spark plug at TDC is decreased by 51.7% and equivalence ratio near the spark plug at TDC has got a reduction at the cranking speed of 1400r/min, compared with that at 400r/min. HC concentrations increased with the advance of the 1 st and the 2 nd injection timing BTDC. Peak HC concentrations increase obviously and equivalence ratio near the spark plug at TDC increases when the 1 st injection timing advanced from 190°CA BTDC to 290°CA BTDC and the 2 nd injection timing advanced from 20° CA BTDC to 80°CA BTDC. When the total equivalence ratio increases from 0.85 to 1.19, equivalence ratio near the spark plug at TDC gets an increase. Based on these measurements the optimal parameter setting for every subsequent ignition during the engine start-up can be derived.
机译:循环分辨的测试系统设计在两级直喷(TSDI)汽油发动机中设计,以模拟集成的开始和发电机(ISG)混合电动车(HEV)系统中的发动机快速启动过程。基于测试系统,使用快速响应火焰电离检测器(FFID)使用采样火花塞(SSP)配合,测量在不同发动机冷却剂温度和起动速度条件下的火花塞附近的汽缸HC浓度附近的测量。然后 - 从测量的HC浓度估计火花塞附近的曲线等效率。另外,通过实验分析了第1个ST注射正时,2 ND喷射正时和总等效比在火花塞附近的混合物形成上的效果。结果表明,冷却剂温度,起动速度,燃料喷射正时特别是2 ND喷射正时和总等效比在TSDI发动机的混合形成中起着大部分。与在10℃的条件下,峰值HC浓度在85°C的冷却剂温度下增加30%,在TDC的火花塞附近的等效比率增加。 TDC的火花塞附近的HC浓度降低了51.7%,TDC的火花塞附近的等效比率在1400r / min的曲柄速度下降,与400r / min相比。 HC浓度随着第1步和2 ND注射正时BTDC的进展而增加。峰值HC浓度显然增加,TDC的火花塞附近的等效比在190°CA BTDC至290°CA BTDC高达290°CO BTDC和20°CA BTDC至80°CA BTDC中提出的2 ND喷射正时,增加。当总等效率从0.85增加到1.19时,TDC在火花塞附近的等效比率增加。基于这些测量,可以推导出发动机启动期间每次后续点火的最佳参数设置。

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