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Design and implementation of closed-loop control system for buck converter using different techniques

机译:采用不同技术的降压变换器闭环控制系统的设计与实现

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Comparing between different techniques for the design and implementation of closed-loop control systems for buck converters is carried out. Controllers used for this comparison are integral, proportional plus integral (PI) controllers and artificial intelligence are represented in fuzzy logic controller (FLC) and tuned fuzzy logic controller (TFLC). Design and implementation of a control system demand the role of effective techniques that offer simple and pragmatic solutions in society to meet the performance requirements despite system disturbances and uncertainties. The occurrence of nonlinear phenomena in buck converters makes their analysis and control difficult. Classical linear techniques have stability limitations around the operating points . Hence digital and nonlinear stabilizing control methods must be applied to ensure large-signal stability. Fuzzy control has also been employed to control buck converters because of its simplicity, simplicity of design and simplicity of implementation. Fuzzy controllers are easily suited to nonlinear time-variant systems and do not require an accurate mathematical model for the system being controlled. They are usually designed based on expert knowledge of the converters. In this survey, the design procedures of integral, proportional plus integral, fuzzy logic, and tuned fuzzy logic controllers are presented.
机译:在用于降压转换器的闭环控制系统的设计和实现的不同技术之间进行了比较。用于此比较的控制器为积分,比例加积分(PI)控制器,人工智能以模糊逻辑控制器(FLC)和调谐模糊逻辑控制器(TFLC)表示。控制系统的设计和实现需要有效的技术作用,这些技术应能为社会提供简单实用的解决方案,以满足系统的性能要求,而不管系统是否受到干扰和不确定性。降压转换器中非线性现象的出现使它们的分析和控制变得困难。经典的线性技术在工作点附近具有稳定性限制。因此,必须采用数字和非线性稳定控制方法来确保大信号的稳定性。由于模糊控制的简单性,设计的简单性和实现的简单性,模糊控制也已被用于控制降压转换器。模糊控制器很容易适用于非线性时变系统,并且不需要精确的数学模型来控制系统。它们通常是基于转换器的专业知识而设计的。在这项调查中,提出了积分,比例加积分,模糊逻辑和调谐模糊逻辑控制器的设计程序。

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