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PID Controller Tuning and Adaptation of a Buck Converter.

机译:PID控制器的优化和Buck转换器的适配。

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摘要

Buck converters are electronic devices that changes a voltage from one level to a lower one and are present in many everyday applications. However, due to factors like aging, degradation or failures, these devices require a system identification process to track and diagnose their parameters. The system identification process should be performed on-line to not affect the normal operation of the device. Identifying the parameters of the system is essential to design and tune an adaptive proportional-integral-derivative (PID) controller. Three techniques were used to design the PID controller. Phase and gain margin still prevails as one of the easiest methods to design controllers. Pole-zero cancellation is another technique which is based on pole-placement. However, although these controllers can be easily designed, they did not provide the best response compared to the Frequency Loop Shaping (FLS) technique. Therefore, since FLS showed to have a better frequency and time responses compared to the other two controllers, it was selected to perform the adaptation of the system. An on-line system identification process was performed for the buck converter using indirect adaptation and the least square algorithm. The estimation error and the parameter error were computed to determine the rate of convergence of the system. The indirect adaptation required about 2000 points to converge to the true parameters prior designing the controller. These results were compared to the adaptation executed using robust stability condition (RSC) and a switching controller. Two different scenarios were studied consisting of five plants that defined the percentage of deterioration of the capacitor and inductor within the buck converter. The switching logic did not always select the optimal controller for the first scenario because the frequency response of the different plants was not significantly different. However, the second scenario consisted of plants with more noticeable different frequency responses and the switching logic selected the optimal controller all the time in about 500 points. Additionally, a disturbance was introduced at the plant input to observe its effect in the switching controller. However, for reasonable low disturbances no change was detected in the proper selection of controllers.
机译:降压转换器是一种电子设备,可将电压从一个电平转换为一个较低的电压,并且存在于许多日常应用中。但是,由于诸如老化,退化或故障之类的因素,这些设备需要系统识别过程来跟踪和诊断其参数。系统识别过程应在线执行,以不影响设备的正常运行。识别系统参数对于设计和调整自适应比例积分微分(PID)控制器至关重要。使用三种技术来设计PID控制器。相位和增益裕度仍然是设计控制器最简单的方法之一。零极点消除是另一种基于极点放置的技术。但是,尽管可以轻松设计这些控制器,但是与频率环路整形(FLS)技术相比,它们没有提供最佳响应。因此,由于与其他两个控制器相比,FLS具有更好的频率和时间响应,因此选择FLS来执行系统的自适应。使用间接自适应和最小二乘算法对降压转换器执行在线系统识别过程。计算估计误差和参数误差以确定系统的收敛速度。在设计控制器之前,间接适应需要大约2000点才能收敛到真实参数。将这些结果与使用鲁棒稳定性条件(RSC)和切换控制器执行的自适应进行比较。研究了由五个工厂组成的两个不同方案,这些工厂定义了降压转换器中电容器和电感器的劣化百分比。切换逻辑并不总是针对第一种情况选择最佳控制器,因为不同工厂的频率响应没有显着差异。但是,第二种情况是由具有更明显的不同频率响应的工厂组成,并且开关逻辑始终在大约500点中选择最佳控制器。此外,在工厂输入端引入了干扰,以观察其在开关控制器中的作用。但是,对于合理的低干扰,在正确选择控制器时未发现任何变化。

著录项

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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