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The effects of LIVC Miller cycle on the combustion characteristics and thermal efficiency in a stoichiometric operation natural gas engine with EGR

机译:LiVC米勒周期对具有EGR的化学计量运行天然气发动机燃烧特性及热效率的影响

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In this study, experiments were conducted to improve the thermal efficiency by increasing the geometric compression ratio (GCR) to obtain higher expansion ratio, and using late intake valve closing (LIVC) Miller cycle to keep the effective compression ratio (ECR) within knock limit, in a stoichiometric operation natural gas engine with exhaust gas recirculation (EGR). The results indicate that, in a wide range of operating conditions, since the necessary exhaust gas recirculation dilution level leads to a large spark advance, the effective compression level around the spark timing has large difference and weak correlation with the effective compression ratio; in this case, the effect of the retarded intake valve closure (IVC) timing on lowering the compression temperature around the spark timing becomes much more significant; in addition, the increased geometric compression ratio could result in higher heat transfer loss around top dead center (TDC) due to the increased surface/volume (S/V) ratio. Consequently, even the effective compression ratio can be restored or further increased with higher geometric compression ratio compared to the baseline, the combustion rate is inevitably lowered or hardly increased. As engine speed and load increase, the adverse effect of the retarded intake valve closure timing on combustion rate could be further enhanced, mainly due to the increased cooling effect of the introduced and expelled charge on the cylinder wall. Through the thermodynamic analysis, it is observed that the adverse effect of the increased effective compression ratio on heat transfer loss is much more obvious compared to its positive effect on combustion rate, even within knock limit. All these factors restrict the thermal efficiency improvement potential obtained by the increased expansion ratio with higher geometric compression ratio. Finally, the net indicated thermal efficiency (ITEn) can be improved by nearly 2% at each tested operating condition with the optimization. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在该研究中,进行实验以通过增加几何压缩比(GCR)来提高热效率,以获得更高的膨胀比,并使用晚进气门关闭(LIVC)米勒循环以使有效的压缩比(ECR)保持在敲入极限内,在具有废气再循环的化学计量操作天然气发动机(EGR)。结果表明,在各种操作条件下,由于必要的废气再循环稀释水平导致大火花升高,所以围绕火花正时的有效压缩水平具有很大的差异和与有效压缩比的相关性较弱;在这种情况下,延迟进气门闭合(IVC)时序对降低火花正时的压缩温度的影响变得更加重要;另外,由于增加的表面/体积(S / V)比率,增加的几何压缩比可能导致顶部死点(TDC)周围的热传递损耗更高。因此,与基线相比,甚至可以通过更高的几何压缩比恢复或进一步提高有效的压缩比,燃烧速率不可避免地降低或难以增加。随着发动机速度和负载增加,可以进一步增强延迟进气门闭合时序对燃烧速率的不利影响,主要是由于在汽缸壁上引入的冷却和排出的电荷增加的冷却效果增加。通过热力学分析,观察到,与其对燃烧速率的阳性效果相比,增加有效压缩比对传热损失的增加更明显,即使在爆震限制内。所有这些因素限制了通过较高的几何压缩比增加的膨胀比而获得的热效率改善电位。最后,通过优化,可以在每个测试的操作条件下提高净指示的热效率(ITEN)。 (c)2017 Elsevier Ltd.保留所有权利。

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