基于观测器的内燃机动力系统实时频率分析及其辨识与控制应用

A. Rauh, Juliane Ehret, H. Aschemann
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引用次数: 3

摘要

内燃机的典型运动,如四冲程奥托发动机,其特点是其扭矩在从动轴的旋转角度上的周期性变化。这种转矩变化导致了随时间变化的加速度和角速度的影响。用于实现相应发动机试验台控制策略的内燃机建模方法可以遵循两种不同的方法。首先,可以根据气缸内部的热力学过程来描述扭矩的变化。其次,黑箱模型可以在测量扭矩和/或测量角速度和加速度的频率分析的基础上推导出来。特别是,如果希望内燃机与作用于同一从动轴的电动机/发电机组同步,则属于第二类的黑匣子模型就足够了。然而,经典的频率分析技术,如快速傅立叶变换,通常只适用于离线。因此,本文开发了一种在线适用的观测器方法,该方法允许对测量的角速度进行实时频率分析。然后,将平稳和非平稳工作点的估计结果一方面用于系统辨识,另一方面用于内燃机试验台框架下控制策略的实施。数值稳定性分析和实验结果对本文进行了总结。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Observer-based real-time frequency analysis for combustion engine-based power trains with applications to identification and control
The typical motion of a combustion engine, such as the four-stroke Otto engine, is characterized by a periodic variation of its torque over the rotation angle of the driven shaft. This torque variation leads to the effect of time-varying accelerations and angular velocities. Modeling approaches for combustion engines that can be used for the implementation of control strategies for corresponding engine test rigs can follow two different approaches. Firstly, it is possible to describe the torque variations on the basis of the thermodynamic processes in the interior of the cylinder. Secondly, black box models can be derived on the basis of a frequency analysis of the measured torque and/ or the measured angular velocities and accelerations. Especially, black box models belonging to the second class are sufficient if a synchronization of a combustion engine with an electric motor/ generator unit acting on the same driven shaft is desired. However, classical frequency analysis techniques such as the Fast Fourier Transform are usually only applicable offline. Therefore, an online-applicable observer approach is developed in this paper which allows for the real-time frequency analysis of measured angular velocities. The estimation results, for both stationary and non-stationary operating points, are then applied on the one hand for a system identification and on the other hand for the implementation of control strategies in the framework of combustion engine test rigs. A numerical stability analysis and experimental results conclude this paper.
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