Fully coupled control of a spark-ignited engine in driving cycle simulations

Manuel Dorsch, Jens Neumann, Christian Hasse
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引用次数: 1

Abstract

The fuel consumption of vehicles with spark-ignited (SI) gasoline engines in transient driving cycles depends greatly on the thermodynamics and its interplay with the calibration of the engine control. For the simulation of these complex phenomena covering engine physics and applied control, a new methodology is presented. A functional model of the engine control unit is introduced together with a driver control. It is coupled to a physical modeling framework consisting of a crank angle-based engine model and a vehicle drivetrain model. As a key feature, a novel predictive SI combustion sub-model is integrated, using quasi-dimensional modeling approaches for flame propagation, turbulence, and ignition delay. In a modular validation process, each sub-model and its interaction in the coupled simulation environment are evaluated successfully. The fully coupled model is then used to predict the fuel consumption in driving cycles under varying calibration strategies of the engine control.

Abstract Image

火花点火式发动机驾驶循环仿真中的全耦合控制
火花点火式(SI)汽油发动机车辆在瞬态行驶循环中的燃料消耗在很大程度上取决于热力学及其与发动机控制校准的相互作用。为了模拟这些涉及发动机物理和应用控制的复杂现象,提出了一种新的方法。介绍了发动机控制单元的功能模型以及驾驶员控制。它耦合到一个物理建模框架,该框架由基于曲轴转角的发动机模型和车辆传动系模型组成。作为一个关键特征,集成了一个新的预测SI燃烧子模型,使用火焰传播、湍流和点火延迟的准维建模方法。在模块化验证过程中,每个子模型及其在耦合仿真环境中的交互都得到了成功的评估。然后,在发动机控制的不同校准策略下,使用全耦合模型来预测驾驶循环中的燃料消耗。
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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