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Evaluation of wall heat flux calculation methods for CFD simulations of an internal combustion engine under both motored and HCCI operation

机译:电动和HCCI运转下内燃机CFD模拟的壁热通量计算方法的评估

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In the present work, a study of different numerical heat transfer models is presented used for Homogeneous Charge Compression Ignition (HCCI) internal combustion engine simulations. Since the heat loss through the walls of an engine is an important parameter during engine optimization, as it influences power, efficiency and emissions, accurate modeling techniques need to be available. In this work, the predictive capability of different Computational Fluid Dynamics (CFD) models has been assessed, by using data obtained from experiments on a Cooperative Fuel Research (CFR) engine, a simple single cylinder pancake engine, which has been probed with local heat flux sensors into the combustion chamber walls. The open-source software OpenFOAM (R) was used to perform simulations of this engine, under both motored and HCCI operation, with a specific focus on the performance of different heat flux models. Due to the simple engine geometry, more numerically demanding heat flux modeling methods could be used, maintaining an acceptable computation time. This allowed a full comparison between the equilibrium wall models as in standard use, an improved empirical heat flux correlation and a numerically intensive low Reynolds formulation. The numerical results considering all aspects of the heat flux - both its progress in time as well as quantitative aspects such as the peak heat flux or the total heat loss - have then been compared to an extensive experimental database. This allowed a full analysis of the performance of the different methods. It was found that the low Reynolds formulation described the physical behavior near the wall the best, while predicting acceptable results concerning the heat flux through the engine walls. The best heat flux prediction was however obtained with an improved empirical model, which additionally has a much shorter computation time. This is crucial when moving on to heat flux simulations of more complex production type engines. Lastly, the equilibrium models were never capable of accurately predicting the wall heat flux.
机译:在当前的工作中,提出了用于均质充量压缩点火(HCCI)内燃机模拟的不同数值传热模型的研究。由于通过发动机壁的热量损失是发动机优化期间的重要参数,因为它会影响功率,效率和排放,因此需要精确的建模技术。在这项工作中,通过使用在合作燃料研究(CFR)发动机(一种简单的单缸煎饼发动机)上进行的实验获得的数据,评估了不同计算流体动力学(CFD)模型的预测能力,该发动机已通过局部热探测通量传感器进入燃烧室壁。开源软件OpenFOAM(R)用于在电动和HCCI操作下对该发动机进行仿真,特别关注于不同热通量模型的性能。由于简单的发动机几何形状,可以使用在数值上要求更高的热通量建模方法,并保持可接受的计算时间。这样就可以在标准使用的平衡壁模型之间进行全面比较,改进的经验热通量相关性,以及数值密集的低雷诺公式。然后,将考虑了热通量所有方面的数值结果(包括时间的进展以及定量方面(例如峰值热通量或总热损失))与广泛的实验数据库进行了比较。这样就可以对不同方法的性能进行全面分析。已经发现,低的雷诺公式最好地描述了靠近壁的物理行为,同时预测了有关通过发动机壁的热通量的可接受结果。但是,通过改进的经验模型可以获得最佳的热通量预测,该模型还具有更短的计算时间。在继续进行更复杂的生产型发动机的热通量仿真时,这一点至关重要。最后,平衡模型永远无法准确预测壁的热通量。

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