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Assessment of engine thermal management through advanced system engineering modeling

机译:通过高级系统工程模型评估发动机热管理

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摘要

A physically based approach to model vehicle dynamics, transient engine performance and engine thermal management system is presented. This approach enables modeling dynamic processes in the individual components and is the dynamic interaction of all relevant domains. The modeling framework is based on a common innovative solver, where all processes are solved using tailored numerical techniques suited to account for characteristic time scales of individual domains. This approach enables achieving very short computational times of the overall model. The paper focuses on the integration of cooling and lubrication models into the framework of a vehicle dynamics simulation including transient engine performance demonstrated on a modern passenger car featuring split cooling functionality. A validated model with a mechanically driven coolant pump provides the base for analyzing the impact of introducing an electrically driven coolant pump. Analyses are performed for two drive cycles featuring significantly different velocity profiles to reveal their influences on the operational principles of the powertrain components and their interaction. The results show for both drive cycles fuel saving due to the application of the electric water pump is relatively small and amounts between 0.75% and 1.1%. However, it is important to address that application of the electric coolant pump results in higher turbine outlet temperatures and thus in faster catalyst heat-up. Detailed analyses of the interaction between vehicle dynamics, transient engine performance and engine thermal management system provide insight into the underlying mechanisms. This is made possible by the application of physically based system level model.
机译:提出了一种基于物理的方法来对车辆动力学,瞬态发动机性能和发动机热管理系统进行建模。这种方法可以对单个组件中的动态过程进行建模,并且是所有相关领域的动态交互。建模框架基于通用的创新求解器,其中所有过程都使用量身定制的数字技术来求解,这些数字技术适合于说明各个域的特征时间尺度。这种方法可以使整个模型的计算时间非常短。本文着重于将冷却和润滑模型集成到车辆动力学仿真框架中,包括在具有分离式冷却功能的现代乘用车上演示的瞬态发动机性能。具有机械驱动冷却剂泵的经过验证的模型为分析引入电动冷却剂泵的影响提供了基础。对两个具有明显不同速度分布的驱动周期进行分析,以揭示它们对动力总成组件的工作原理及其相互作用的影响。结果表明,在两个驱动循环中,由于使用电动水泵而节省的燃料相对较小,并且在0.75%至1.1%之间。然而,重要的是要解决的是,电动冷却剂泵的应用会导致更高的涡轮出口温度,从而导致更快的催化剂升温。车辆动力学,瞬态发动机性能和发动机热管理系统之间的相互作用的详细分析提供了对潜在机制的了解。通过基于物理的系统级模型的应用,这成为可能。

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