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Heat Loss Analysis for Various Piston Geometries in a Heavy-Duty Methanol PPC Engine

机译:重型甲醇PPC发动机中各种活塞几何形状的热损失分析

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Partially premixed combustion (PPC) in internal combustion engine as a low temperature combustion strategy has shown great potential to achieve high thermodynamic efficiency. Methanol due to its unique properties is considered as a preferable PPC engine fuel. The injection timing to achieve methanol PPC conditions should be set very close to TDC, allowing to utilize spray-bowl interaction to further improve combustion process in terms of emissions and heat losses. In this study CFD simulations are performed to investigate spray-bowl interaction for a number of different piston designs and its impact on the heat transfer and the overall piston performance. The validation case is based on a single cylinder heavy-duty Scania D13 engine with a compression ratio 15. The operation point is set to low load 5.42 IMEPg bar with SOI -3 aTDC. After satisfactory agreement with experiments in terms of combustion phasing, in-cylinder pressure and heat release rate, the effect of piston bowl geometry is investigated by performing several CFD simulations with modified piston bowl geometry while keeping the compression ratio, CA50 and injection conditions the same as the baseline case. The influence of the wall temperature gradient, the near wall effective conductivity and the piston bowl area on the heat transfer is studied. It was observed that the flow structures that re-direct the hot vapor away from the in-cylinder walls will reduce the wall area that actively transfer the heat. The final piston performance comparison showed that piston bowl designs with a reduced area to volume ratio does not guarantee lower heat loss. Therefore, the mixing process as the result of the spray-bowl interaction and the resulting fuel distribution are considered as the main mechanisms to minimize the total heat losses.
机译:由于低温燃烧策略,内燃机中的部分预混燃烧(PPC)显示出高热力学效率的巨大潜力。由于其独特的性质,甲醇被认为是优选的PPC发动机燃料。实现甲醇PPC条件的喷射正时应非常接近TDC,允许利用喷雾碗相互作用,以进一步改善排放和热损失方面的燃烧过程。在该研究中,CFD模拟进行了研究,以研究许多不同的活塞设计的喷雾碗相互作用及其对传热和整体活塞性能的影响。验证案例基于具有压缩比15的单个汽缸重型斯堪尼亚D13发动机。操作点与SOI -3 ATDC设置为低负载5.42 IMEPG棒。在与燃烧相位的实验中的令人满意的协议之后,通过在保持压缩比,CA50和喷射条件的同时进行多种CFD模拟,研究了活塞碗几何形状的效果。作为基线案例。研究了壁温梯度,近壁有效电导率和活塞碗面积的影响。观察到从缸壁重新引导热蒸汽的流动结构将减少主动转移热的壁区域。最终活塞性能比较显示,活塞碗设计具有降低的体积比,不保证较低的热量损失。因此,作为喷雾碗相互作用和所得燃料分布的结果的混合过程被认为是最小化总热量损失的主要机制。

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