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First and second law analyses of a naturally aspirated, Miller cycle, SI engine with late intake valve closure

机译:第一和第二法律分析天然吸气,米勒循环,具有晚进气门闭合的SI发动机

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A naturally aspirated, Miller cycle, Spark-Ignition (SI) engine that controls output with variable intake valve closure is compared to a conventionally throttled engine using computer simulation. Based on First and Second Law analyses, the two-load control strategies are compared in detail through one thermodynamic cycle at light-load conditions and over a wide range of loads at 2000 rpm. The Miller cycle engine can use late intake valve closure (LIVC) to control indicated output down to 35% of the maximum, but requires supplemental throttling at lighter loads. The First Law analysis shows that the Miller cycle increases indicated thermal efficiency at light loads by as much as 6.8%, primarily due to reductions in pumping and compression work while heat transfer losses are comparable. The Second Law analysis shows that the throttling process in the conventional engine destroys up to 3% of the available energy in the fuel, and that the phasing of the heat transfer losses is more costly to its work-producing potential. Overall, the availability analysis recognizes that the higher pressure in the LIVC intake manifold leads to a notable thermomechanical advantage, which the throttled engine has to overcome by consuming more chemical availability to meet the same load.
机译:使用计算机模拟将通过可变进气门闭闭的输出控制输出的自然吸气的米勒循环,火花点火(SI)发动机,与传统的节流发动机进行比较。基于第一和第二法律分析,通过一个热力动力学循环和2000rpm的各种载荷进行了一种热力学循环,将双重控制策略详细进行了详细。米勒循环发动机可以使用后期进气门闭合(LIVC)控制指示的输出下降至最大值的35%,但需要在较轻的载荷时补充节流。第一法律分析表明,米勒循环在光负载下增加了明显的热效率,主要是由于泵送和压缩工作的减少,而传热损失是可比的。第二法律分析表明,传统发动机中的节流过程可破坏燃料中可用能量的高达3%,并且传热损耗的相位在其工作的潜力上更昂贵。总的来说,可用性分析认识到LIVC进气歧管中的较高压力导致了一个值得注意的热机械优势,该优点是通过消耗更多化学物质来满足相同负载的节流发动机来克服。

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