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Experimental Investigation of the Loading Strategy of an Automotive Diesel Engine under Transient Operation Conditions

机译:瞬态工况下汽车柴油机负荷策略的实验研究

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Targeting the performance optimization of an automotive diesel engine under transient operation conditions, in this research, the effect of several non-linear loading strategies on diesel performance have been experimentally analyzed using a heavy-duty turbocharged diesel engine running under transient conditions based on the constant 1650 r/min speed, the load is increased from 10% to 100% in a 5 s transition time The results show that the larger the early loading rate and change point load, the better the dynamic torque response. The peak values of smoke and CO and the transient average of brake specific fuel consumption (BSFC), soot and CO can be decreased by increasing the early loading rate by the loading strategies with the appropriate change point load during transient operation. However, combustion deteriorates under the loading process with an overlarge change point load, causing emissions to increase, and the larger the early loading rate, the worse the worsening. Based on the trade-off consisting of torque dynamic response, transient total and transient average of the BSFC and brake specific emissions, peak values of smoke and CO emissions, it is concluded that the loading strategy with the early loading rate is the 50% load per second and the change point load in the 25% load is the most suitable in these strategies.
机译:针对汽车柴油发动机在瞬态运行条件下的性能优化,在本研究中,基于恒定值在瞬态条件下运行的重型涡轮增压柴油机,通过实验分析了几种非线性加载策略对柴油机性能的影响。在1650 r / min的速度下,负载在5 s的过渡时间内从10%增加到100%。结果表明,早期负载率和变化点负载越大,动态转矩响应越好。可以通过在过渡运行过程中采用适当的变化点负荷的负荷策略来提高早期负荷率,从而降低烟雾和一氧化碳的峰值以及制动比燃油消耗(BSFC),烟灰和一氧化碳的瞬时平均值。然而,在负荷过大的变化点负荷下,燃烧在负荷过程中恶化,导致排放增加,早期负荷率越大,恶化越严重。基于转矩动态响应,BSFC瞬时总和瞬时平均值和制动比排放,烟尘和CO排放峰值的权衡,得出的结论是,早期负荷率的负荷策略是50%负荷每秒和25%负载中的更改点负载最适合这些策略。

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