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A comparative study of phase margin based digital and analog controlled synchronous buck with optimum LC filter

机译:具有最佳LC滤波器的基于相位裕度的数字和模拟控制同步降压的比较研究

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Purpose Traditionally, industrial power supplies have been exclusively controlled through analog control to sustain high reliability with low cost. However, with the perpetual decrement in cost of digital controllers, the feasibility of a digitally controlled switch mode power supply has elevated significantly. This paper aims to outline the challenges related to the design of digital proportional-integral (PI) controlled synchronous rectifier (SR) buck converter by comparing controller performance in continuous and discrete time. The trapezoidal approximation-based digital PI control is designed for low voltage and high-frequency SR buck converter operating under continuous conduction mode. Design/methodology/approach The analog and digital controller are designed using a SISO tool of MATLAB. Here, zero-order hold transform is used to convert the transfer function from continuous to discrete time. Frequency and time domain analysis of continuous plant, discrete plant and close loop system is performed. The designed digital PI control is simulated in MATLAB Simulink. The simulated results is also verified on hardware designed around digital signal processing control. Findings The continuous and discrete control loops are validated with multiple tests in the time and frequency domain. The detailed steady state theoretical analysis and performance of the SR buck converter is presented and verified by simulation. It is found that the delay in digital control loop results in a low phase margin. This phase margin decreases with higher bandwidth. The hardware experiments with the digital control loop are carried out on a 10 W prototype. The chosen parameters for the SR buck converter are found to be optimum for steady and transient state response. Originality/value This paper compares the digital and analog control approach of compensator design. It focuses on the implications created at the time of transforming the control design from continuous to discrete time. Further, it also focuses on the selection of parameters such as phase margin, bandwidth and low pass filter.
机译:目的传统上,工业电源仅通过模拟控制进行控制,以低成本保持高可靠性。但是,随着数字控制器成本的不断降低,数字控制开关模式电源的可行性已大大提高。本文旨在通过比较连续时间和离散时间的控制器性能来概述与数字比例积分(PI)控制的同步整流器(SR)降压转换器的设计有关的挑战。基于梯形近似的数字PI控制适用于在连续导通模式下运行的低压和高频SR降压转换器。设计/方法/方法模拟和数字控制器是使用MATLAB的SISO工具设计的。在此,零阶保持变换用于将传递函数从连续时间转换为离散时间。进行连续工厂,离散工厂和闭环系统的频率和时域分析。设计的数字PI控件在MATLAB Simulink中进行了仿真。仿真结果也在围绕数字信号处理控制设计的硬件上得到了验证。结果通过在时域和频域中进行多次测试,验证了连续控制回路和离散控制回路的有效性。给出了SR降压转换器的详细稳态理论分析和性能,并通过仿真进行了验证。发现数字控制回路中的延迟导致较低的相位裕度。相位裕量随着带宽的增加而降低。数字控制回路的硬件实验是在10 W原型机上进行的。发现为SR降压转换器选择的参数对于稳态和瞬态响应是最佳的。创意/价值本文比较了补偿器设计的数字和模拟控制方法。它着重于将控制设计从连续时间转变为离散时间时所产生的含义。此外,它还专注于参数选择,例如相位裕度,带宽和低通滤波器。

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