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Designing closed-loop controllers using a MatlabP#x00AE; dynamic model of the Zeta converter in DCM

机译:使用DCM中Zeta转换器的MatlabP ®动态模型设计闭环控制器

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As is well known the Zeta converter is a fourth-order system. Therefore, the selection of the type of feedback controllers and its design, it is not an easy task. Usually many restrictions must be met in closed-loop control systems. For instance, it is necessary ensure system stability, as well as, guarantee that transient and steady-state responses are under preset limits. In order to design a controller (P, I, PD, PI, PID, Lead, Lag, Lead-Lag), is usually necessary to know the system plant. However, unfortunately, the system plant is not always available and even when it is accessible, designers must have good knowledge of control systems theory in order to design properly the controllers. Aiming to make the compensators design a simpler task to everyone this paper presents a computational model of the dynamic behavior of the Zeta converter working in discontinuous conduction mode, as well as, two design examples of feedback controllers. Two compensators were designed using MATLAB® and SIMULINK® specifically by means of the design optimization library, which could be used thanks to the computational model of the Zeta converter. It was performed a set of simulations using the PSIM® software, in order to validate the proposed computational model. The obtained results confirm that the computational model of the dynamic behavior of the Zeta converter in DCM is useful to design feedback controllers and also to reduce the development time of the compensators.
机译:众所周知,Zeta转换器是四阶系统。因此,选择反馈控制器的类型及其设计并非易事。通常,在闭环控制系统中必须满足许多限制。例如,必须确保系统的稳定性,并确保瞬态和稳态响应处于预设的限制内。为了设计控制器(P,I,PD,PI,PID,超前,滞后,超前滞后),通常必须了解系统工厂。但是,不幸的是,系统工厂并非总是可用,即使可以访问,设计人员也必须具有控制系统理论的丰富知识,才能正确设计控制器。为了使补偿器的设计对每个人来说都更简单,本文提出了在不连续导通模式下工作的Zeta转换器动态行为的计算模型,以及两个反馈控制器的设计实例。使用MATLAB ®和SIMULINK ®专门通过设计优化库设计了两个补偿器,这要归功于Zeta转换器的计算模型。为了验证所提出的计算模型,使用PSIM ®软件对其进行了一系列仿真。获得的结果证实了Zeta转换器在DCM中的动态行为的计算模型对于设计反馈控制器以及减少补偿器的开发时间是有用的。

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