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Investigation of high load operation of spark-ignited over-expanded Atkinson cycle engine

机译:火花点火超膨胀阿特金森循环发动机的高负荷运行研究

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摘要

A boosted spark-ignited over-expanded engine was investigated through 1-D engine simulation. A conventional 4-stroke turbocharged spark-ignited engine with 10.5:1 compression ratio (CR) was selected as the baseline engine. The Atkinson cycle engine model was developed and calibrated based on a multi-link mechanism. The compression ratio (CR) and over expansion ratio (OER) of the Atkinson cycle engine are 10.5 and 1.5, respectively. Two speed and load conditions of 1500 rpm, 13 bar net indicated mean effective pressure (IMEPnet) and 3500 rpm, 20 bar IMEPnet with valve timing optimization were investigated. Results depict that the increase in indicated efficiency of Atkinson cycle engine was from both portions of over-expansion and non-over-expansion portion of the cycle. Atkinson cycle engine benefits from lower knock propensity and lower exhaust temperature. At 1500 rpm, 13 bar IMEPnet, the simulation results indicated that energy loss due to combustion phasing was 2.1% and 0.4% for baseline and Atkinson cycle engine. Net indicated efficiency of Atkinson cycle engine was increased by 16%. At 3500 rpm, 20 bar IMEPnet, baseline engine was operated at knock limited spark timing and fuel enrichment to reduce the turbine-inlet temperature. Net indicated efficiency of optimized Atkinson cycle engine at 3500 rpm 20 bar IMEPnet was higher by 27% in comparison to the optimized baseline engine. The combustion phasing loss was 1.2% and 0.6% for baseline and Atkinson cycle engine, respectively. The energy loss due to fuel enrichment was 6.0% and 1.6% for baseline engine and Atkinson cycle engine, respectively, indicating that the Atkinson cycle engine was beneficial to maximize its efficiency.
机译:通过一维发动机仿真研究了增压火花点火过度膨胀发动机。选择具有10.5:1压缩比(CR)的常规四冲程涡轮增压火花点火发动机作为基准发动机。 Atkinson循环引擎模型是基于多链接机制开发和校准的。阿特金森循环发动机的压缩比(CR)和过度膨胀比(OER)分别为10.5和1.5。研究了1500 rpm,13 bar净指示平均有效压力(IMEPnet)和3500 rpm,20 bar IMEPnet的两种速度和负载条件,并优化了气门正时。结果表明,阿特金森循环发动机的指示效率的提高来自循环的过度膨胀和非过度膨胀两个部分。阿特金森循环发动机受益于较低的爆震倾向和较低的排气温度。仿真结果表明,在1500 rpm,13 bar IMEPnet的情况下,基线和阿特金森循环发动机的燃烧定相导致的能量损失分别为2.1%和0.4%。阿特金森循环发动机的净指示效率提高了16%。在3500 rpm,20 bar IMEPnet的情况下,基准发动机在爆震受限的点火正时和燃油富集状态下运行,以降低涡轮进气温度。与优化的基准发动机相比,优化的Atkinson循环发动机在3500 rpm 20 bar IMEPnet的净指示效率提高了27%。基线和阿特金森循环发动机的燃烧定相损失分别为1.2%和0.6%。对于基准发动机和阿特金森循环发动机,由于燃料富集导致的能量损失分别为6.0%和1.6%,这表明阿特金森循环发动机有利于最大程度地提高效率。

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