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Full Operating Range Robust Hybrid Control of a Coal-Fired Boiler/Turbine Unit

机译:燃煤锅炉/涡轮机组的全工作范围鲁棒混合控制

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Multi-input-multi-output robust controllers recently designed for the megawatt output/ throttle pressure control in a coal-fired power plant boiler/turbine unit have demonstrated performance robustness noticeably superior to that of the currently employed nonlinear PID-based controller. These controllers, however, have been designed only for the range of 150-185 MW around the 185 MW nominal operating point, exhibiting a significant loss of performance in the lower range of 120-150 MW. Through system identification, the reason for this performance loss is demonstrated in the current work to be a pronounced dependence of the boiler/turbine unit steady state gains on the operating point. This problem is addressed via a hybrid control law consisting of two robust controllers and a robust switch between them activated by the set point change. The controllers are designed to cover the corresponding half-ranges of the full operating range. This permits attainment of the desired overall performance as well as reduction of modeling uncertainty induced by the operating point change to approximately 25% of that associated with the previous designs. Robust switching is accomplished through a novel hybrid mode of behavior - robustly controlled discrete transition. The latter mode is produced through realizing that the off-line transfer speedup suggested by Zaccarian and Teel (2005, "The L{sub}2(l{sub}2) bumpless Transfer Problem for Linear Parts: Its Definition and Solution," Auto-matica, 41, pp. 1273-1280) can be taken to the limit and incorporating the result into a robust bumpless transfer technique recently developed by the authors. As demonstrated by simulation results, the proposed strategy provides an adequate solution to the problem of robust boiler/turbine unit performance over the full operating range. This fact combined with numerical algorithm tractability, relative ease of its design, its insensitivity to implementation nonidealities, and accompanying identification methodology for nominal model generation makes it a viable candidate for industrial acceptance.
机译:最近为燃煤电厂锅炉/涡轮机中的兆瓦输出/节气门压力控制而设计的多输入多输出鲁棒控制器已证明其性能鲁棒性明显优于当前采用的基于非线性PID的控制器。但是,这些控制器仅针对在185 MW标称工作点附近的150-185 MW范围设计,在120-150 MW的较低范围内表现出明显的性能损失。通过系统识别,在当前工作中证明了这种性能损失的原因是锅炉/涡轮机稳态增益明显依赖于工作点。通过混合控制定律解决了这个问题,该定律包括两个鲁棒控制器和一个由设定值更改激活的鲁棒切换。控制器设计为覆盖整个工作范围的相应半范围。这可以实现所需的总体性能,并将工作点变化引起的建模不确定性降低到与先前设计相关的建模不确定性的大约25%。通过新颖的行为混合模式-鲁棒控制的离散过渡来实现鲁棒切换。后一种模式是通过了解Zaccarian和Teel(2005,“线性零件的L {sub} 2(l {sub} 2)无扰动传输问题:其定义和解决方案”,Auto -matica,41,pp。1273-1280)可以发挥到极致,并将结果整合到作者最近开发的强大的无扰动传输技术中。仿真结果表明,所提出的策略为整个运行范围内的强劲锅炉/涡轮机性能提供了适当的解决方案。这个事实与数值算法的易处理性,相对容易的设计,对实现非理想性的不敏感性以及伴随的用于名义模型生成的识别方法相结合,使其成为工业接受的可行候选者。

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