工业换热过程是蒸汽与循环水在换热器中进行热交换,使供水温度达到工艺规定的目标范围内的复杂工业过程.由于存在蒸汽压力、回水流量波动以及换热器内管壁结垢的扰动,导致被控对象模型参数发生未知随机的大范围变化,使控制器积分作用失效,造成内环蒸汽流量和外环供水温度波动,相互影响,甚至谐振.针对上述问题,利用工业换热过程运行在工作点附近的特点,用确定性低阶线性模型和虚拟未建模动态来描述被控过程.将自适应信号法与双率控制技术相结合,提出了以蒸汽流量为内环输出、以供水温度为外环输出的双率自适应控制器,并给出了该控制器的稳定性和收敛性分析.本文将工业换热过程机理模型作为被控对象,进行了半实物仿真.结果表明,对于工业换热过程,在模型参数大范围变化时,本文提出的控制方法可以将供水温度控制在工艺要求的目标范围内.%Industrial heat exchanging process is a complex industrial process,in which of heat exchange between steam and circulating water aims to ensure water temperature within the target range formatted by users.As a result of steam pressure fluctuation,returned water flow-rate fluctuation and fouling in heat exchanger,the parameters of a plant model may vary frequently,which is why the integral action loses its effectiveness.When the above disturbances occur violently and frequently,the integral action of cascade control would fail.This would cause fluctuations on the steam flow-rate and the supplied water temperature,or even lead to serve system resonance.To solve the above problems,in this paper,considering the heat exchange process runs near its operating point,low-order linear models and virtual unmodeled dynamics are used to express plant model.By combining the dual-rate control technique and adaptive signal method,an adaptive dual-rate controller is proposed,whose inner loop feedback variable is the steam flow and whose outer loop feedback variable is the supply water temperature.The stability of the control system ia analyzed theoretically.A semi-physical simulation experiment using the mechanism model as the virtual plant.The result shows that the control method proposed in this paper has adaptive capacity without any identification,and that the supply water temperature can also be controlled within the target range of process requirements.
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