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Improvement of Thermal Efficiency in a Diesel Engine with High-Pressure Split Main Injection

机译:高压分型主注射柴油发动机中热效率的提高

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This study aims to utilize high-pressure split-main injection for improving the thermal efficiency of diesel engines. A series of experiments was conducted using a single-cylinder diesel engine under conditions of an engine speed of 2,250 rpm and a gross indicated mean effective pressure of 1.43 MPa. The injection pressure was varied in the range of 160–270 MPa. Split-main injection was applied to reduce cooling loss under the condition of high injection pressure, and the split ratio and the number of injection stages were varied. The dwell of the split main injection was set to near-zero in order to minimize the elongation of the total injection duration. As a result, thermal efficiency was improved owing to the combined increase in injection pressure, advanced injection timing, and split-main injection. According to the analysis of heat balance, a larger amount of the second part of the main injection decreased the cooling loss and increased the exhaust loss. Computational fluid dynamics calculations were performed to reveal the causes of the lower cooling loss; however, the results could not capture the experimental trend when using an ordinary spray cone angle. While using a wider spray angle for the second part of main injection, the calculated trend improved. The total cooling loss depends on the balance between the cooling losses by the first and second main sprays.
机译:本研究旨在利用高压分型喷射来提高柴油发动机的热效率。在发动机速度为2,250rpm的条件下使用单缸柴油发动机进行一系列实验,并且表明平均有效压力为1.43MPa。注射压力在160-270MPa的范围内变化。施加分裂主喷射以降低高注射压力条件下的冷却损失,并且变化比率和注射阶段的数量变化。分离主喷射的停留设定为接近零,以便最小化总喷射持续时间的伸长率。因此,由于注射压力,先进的注射正时和分裂式喷射的组合增加,热效率得到了改善。根据热平衡分析,主要喷射的较大量的第二部分降低了冷却损失并增加了排气损失。进行计算流体动力学计算以揭示冷却损失较低的原因;但是,当使用普通喷雾锥角时,结果无法捕获实验趋势。在使用更广泛的喷射角度的主喷射的第二部分时,计算出的趋势改善了。总冷却损失取决于第一和第二主喷雾剂的冷却损耗之间的平衡。

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