首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Semi-empirical power dissipation modelling of mechanical hybrid powertrain components
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Semi-empirical power dissipation modelling of mechanical hybrid powertrain components

机译:机械混合动力总成组件的半经验功率耗散建模

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Accurate modelling is of key importance for the model-based design of controlled systems. The overall system complexity can be limited by using simple component models that represent only the main characteristics, where smooth characteristics are preferred to avoid unnecessary irregularities in the design optimization and in the controlled signals. This paper presents the design of such control-oriented models to describe the power dissipation in a mechanical hybrid powertrain. The two key powertrain components are the continuously variable transmission for mechanical power transmission and a flywheel system for kinetic energy storage. The power dissipation in these components is modelled by parametric functions, which are suitable for describing smooth characteristics in a relatively simple format with only a few coefficients. The functions are selected on the basis of the physical understanding of the systems, whereas the coefficients are identified from dedicated test rig experiments. The results show that the power dissipations are modelled very accurately for both the continuously variable transmission and the flywheel system, with a modelling error of less than 75 W for 80% of the operating conditions in a wide operating range between -25 kW and 38 kW. The continuously variable transmission model is also validated under dynamic driving conditions, showing an overall error for the transmission efficiency of less than 1%.
机译:准确的建模对于受控系统基于模型的设计至关重要。可以通过使用仅代表主要特征的简单组件模型来限制整个系统的复杂性,其中优选使用平滑特征,以避免设计优化和受控信号中出现不必要的不​​规则性。本文介绍了这种面向控制的模型的设计,以描述机械混合动力总成中的功耗。动力传动系统的两个关键组件是用于机械动力传递的无级变速器和用于动能存储的飞轮系统。这些组件中的功耗是通过参数函数建模的,这些参数函数适用于以相对简单的格式(只有几个系数)描述平滑特性。根据对系统的物理理解来选择功能,而系数是从专用的试验台实验中确定的。结果表明,对无级变速器和飞轮系统的功耗进行了非常精确的建模,在-25 kW至38 kW的宽工作范围内,80%的工作条件下的建模误差均小于75 W 。无级变速箱模型还在动态驾驶条件下得到了验证,显示出总效率低于1%的总误差。

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