Computational Study of a Multiple Fuel Injector Concept under High-Load and High-EGR Conditions

R. Babayev, Gustav Nyrenstedt, B. Johansson
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引用次数: 6

Abstract

A new concept utilizing multiple fuel injectors was proven effective at reducing heat transfer losses by directing spray plumes further away from the combustion chamber walls. In this concept, two injectors are mounted close to the rim of the piston bowl and point in opposite directions to generate swirling in-cylinder bulk motion. Moreover, a new flat-bowl piston design was also proposed in combination with the multiple fuel injectors for even larger improvements in thermal efficiency. However, all tests were performed at low-to-medium load conditions with no significant EGR. Modern engine concepts, such as the double compression-expansion engine (DCEE), have demonstrated higher thermal efficiency when operated at high-load conditions with a large amount of EGR for NOx control. Thus, this study aims to assess the effectiveness of the multiple-fuel-injector system under such conditions. In this study, a number of 3-D CFD simulations are performed using the RANS technique in CONVERGE. The computational domain is based on the modified Volvo D13 engine geometry that is used as a combustor unit of the DCEE. The results of this study show that the injection strategies used previously with the multiple-fuel-injector concept perform poorly at high-load conditions due to inadequate mixing. Moreover, the flat-bowl piston design proposed previously does not seem to improve heat transfer losses at these conditions. Thus, several alternative piston bowl designs are investigated, some of which are shown to reduce heat losses and improve mixing. Finally, a number of perspective strategies are recommended to be implemented with the multiple-fuel-injector concept for efficiency maximization.
高负荷、高egr工况下多喷油器概念的计算研究
一个利用多个燃油喷射器的新概念被证明可以有效地减少传热损失,通过将喷雾羽流引导到远离燃烧室壁的地方。在这个概念中,两个喷油器安装在靠近活塞碗的边缘,并指向相反的方向,以产生旋转的缸内散装运动。此外,还提出了一种新的平碗活塞设计与多个燃油喷射器相结合,以进一步提高热效率。然而,所有的测试都是在低至中等负荷条件下进行的,没有明显的EGR。现代发动机概念,如双压缩膨胀发动机(DCEE),在高负荷条件下使用大量EGR来控制NOx时,已经证明了更高的热效率。因此,本研究旨在评估在这种条件下多喷油器系统的有效性。在本研究中,使用CONVERGE中的RANS技术进行了大量的三维CFD模拟。计算域基于改装后的沃尔沃D13发动机的几何形状,该发动机用作DCEE的燃烧室单元。研究结果表明,由于混合不充分,先前使用的多喷油器概念的喷射策略在高负荷条件下表现不佳。此外,先前提出的平碗活塞设计似乎并不能改善这些条件下的传热损失。因此,几种备选活塞碗设计进行了研究,其中一些显示减少热损失和改善混合。最后,针对多喷油器的效率最大化问题,提出了一些可行的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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