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Physics-informed energy-balanced modeling and active disturbance rejection control for circulating fluidized bed units

机译:用于循环流化床单元的物理知识的能量平衡建模和主动扰动控制

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摘要

Circulating fluidized bed (CFB) units, with many advantages such as low emission and wide fuel adaptability, have been extensively applied to the power and thermal supply. To analyze their dynamic characteristics and design a suitable control strategy, a physics-informed model is derived, which is suitable for the direct energy balance (DEB) structure. By dividing the unit into three modules, a 9th-order nonlinear dynamic model is obtained based on energy conservation and mass conservation principles. The model accuracy is verified by the field running data. The nonlinearity, coupling property and high-order dynamics of the coordinated control system (CCS) are analyzed, and then the advantages of the DEB structure for CFB units are derived theoretically. Finally, the control performance of the DEB structure with proportional-integral-derivative control and active disturbance rejection control (ADRC) is compared based on the field running data. This physics-informed model can offer a solid foundation for a control strategy design under the DEB structure. The advantages of ADRC are validated quantitatively, which shows a promising future in power units.
机译:循环流化床(CFB)单元,具有诸如低发射和宽燃料适应性的许多优点,已被广泛地应用于电力和热源。为了分析它们的动态特性和设计合适的控制策略,得出了物理信息的模型,适用于直接能量平衡(Deb)结构。通过将单元划分为三个模块,基于节能和大规模保护原理获得第9阶非线性动态模型。模型准确性由现场运行数据验证。分析了协调控制系统(CCS)的非线性,耦合性和高阶动态,从理论上推导了CFB单位的DEB结构的优势。最后,基于现场运行数据比较了具有比例 - 积分衍生物控制和有源干扰抑制控制(ADRC)的DEB结构的控制性能。该物理知情模型可为DEB结构提供控制策略设计的坚实基础。 ADRC的优点是数量验证,其显示电力单元的未来。

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