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Simulation of Cycle-to-Cycle Variation in Dual-Fuel Engines

机译:双燃料发动机的逐周期变化模拟

摘要

Standard practices of internal combustion (IC) engine experiments are to conduct the measurements of quantities averaged over a large number of cycles. Depending on the operating conditions, the cycle-to-cycle variation (CCV) of quantities, such as the indicated mean effective pressure (IMEP) are observed at different levels. Accurate prediction of CCV in IC engines is an important but challenging task. Computational fluid dynamics (CFD) simulations using high performance computing (HPC) can be used effectively to visualize such 3D spatial distributions. In the present study, a dual fuel large engine is considered, with natural gas injected into the manifold accompanied with direct injection of diesel pilot fuel to trigger ignition. Multiple engine cycles in 3D are simulated in series as in the experiments to investigate the potential of HPC based high fidelity simulations to accurately capture the cycle to cycle variation in dual fuel engines. Open cycle simulations are conducted to predict the combined effect of the stratification of fuel-air mixture, temperature and turbulence on the CCV of pressure. The predicted coefficient of variation (COV) of pressure compared to the results from closed cycle simulations and the experiments.
机译:内燃(IC)发动机实验的标准做法是对大量循环中的平均量进行测量。根据运行条件,可以在不同的水平上观察到量的逐周期变化(CCV),例如指示的平均有效压力(IMEP)。 IC发动机CCV的准确预测是一项重要但具有挑战性的任务。使用高性能计算(HPC)的计算流体动力学(CFD)模拟可以有效地用于可视化此类3D空间分布。在本研究中,考虑使用双燃料大型发动机,将天然气注入歧管,并直接注入柴油引燃燃料以触发点火。如在实验中一样,对3D的多个发动机循环进行串行模拟,以研究基于HPC的高保真度模拟在双燃料发动机中准确捕获各个循环之间的差异的潜力。进行开式循环模拟以预测燃料-空气混合物分层,温度和湍流对压力CCV的综合影响。预测的压力变化系数(COV)与闭环模拟和实验的结果相比。

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