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Parameter identification and observer-based control for distributed heating systems - the basis for temperature control of solid oxide fuel cell stacks

机译:分布式加热系统的参数识别和基于观测器的控制-固体氧化物燃料电池堆温度控制的基础

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The control of high-temperature fuel cell stacks is the prerequisite to guarantee maximum efficiency and lifetime under both constant and varying electrical load conditions. Especially, for time-varying electrical load demands, it is necessary to develop novel observer-based control approaches that are robust against parameter uncertainties and disturbances that cannot be modelled a priori. Since we aim at real-time applicability of these control procedures, classical high-dimensional models - which result from a discretization of mathematical descriptions given by the partial differential equations for heat and mass transfer - cannot be applied. Furthermore, these models have to be linked to the electrochemical properties of the fuel cell. To reduce the order of these models to a degree that allows us to use them in real-time, information on both the temperature distribution in the fuel cell stack and the heat flow into its interior due to electrochemical reactions is required. However, a direct temperature measurement is not possible from a practical point of view. For that reason, it is essential to reliably estimate the temperature distribution and the heat flow on the basis of easily available measured data. These data have to be available not only during development stages but also in future series products. For such products, it is desirable to reduce the number of sensors to improve the system's reliability and to decrease the operating costs. The basic strategies that are applicable for model-based open-loop and closed-loop control of heating systems as well as for the identification of parameters, operating conditions and disturbances as well as for state monitoring are summarized in this article. They are demonstrated for exemplary set-ups in both simulation and experiment.
机译:在恒定和变化的电负载条件下,控制高温燃料电池堆是保证最大效率和寿命的前提。特别地,对于随时间变化的电负载需求,有必要开发新颖的基于观察者的控制方法,该方法对参数不确定性和无法先验建模的干扰具有鲁棒性。由于我们的目标是这些控制程序的实时适用性,因此无法应用经典的高维模型-由对传热和传质的偏微分方程给出的数学描述进行离散化得到的结果。此外,这些模型必须与燃料电池的电化学特性相关联。为了将这些模型的顺序降低到允许我们实时使用它们的程度,需要有关燃料电池堆中的温度分布以及由于电化学反应而流入内部的热量的信息。但是,从实际的角度来看,不可能直接进行温度测量。因此,必须根据容易获得的测量数据可靠地估算温度分布和热流。这些数据不仅在开发阶段而且在以后的系列产品中都必须可用。对于此类产品,希望减少传感器的数量以提高系统的可靠性并降低运营成本。本文总结了适用于加热系统的基于模型的开环和闭环控制以及参数,操作条件和干扰的识别以及状态监视的基本策略。它们在模拟和实验中都可以用于示范性设置。

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