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Design, modelling and simulation of controlled sepic DC-DC converter-based genetic algorithm

机译:基于控制的SEPIC DC-DC转换器遗传算法的设计,建模与仿真

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This paper discusses various aspects of a single-ended primary inductance DC-DC converter (SEPIC). The focus is on design, modelling, and simulation results of a SEPIC converter. The study analyses the principle of SEPIC operation when operated in continuous conduction mode (CCM). Additionally, the mathematical equations for the design modules are calculated as per converter requirements. State-space equations are used to formulate the state-space model of the SEPIC converter. To satisfy the best-performance criterion of the system, the parameters for controller (Ksubp/sub, Ksubi/sub, Ksubd/sub) should be tuned or optimized using the genetic algorithm (GA) optimization technique. Controller parameters are determined using an objective function that minimises the integral time absolute error (ITAE). Simulations performed on a closed-loop system reveal that the step response with a PID controlled based GA displayed superior performance. A closed-loop system has a substantially bigger stability region compared to an open-loop system. The simulation optimised performance metrics like maximum overshoot percentage (Msubp/sub), rise time (tsubr/sub), and settling time (tsubs/sub). MATLAB/Simulink R2018a? and m-file code are used for the system modelling, simulation, and optimization of the PID controller parameters based on the GA.
机译:本文讨论了单端初级电感DC-DC转换器(SEPIC)的各个方面。重点是SEPIC转换器的设计,建模和仿真结果。该研究分析了在连续传导模式(CCM)操作时腐蚀操作的原理。另外,根据转换器要求计算设计模块的数学方程。状态空间方程用于制定SEPIC转换器的状态空间模型。为了满足系统的最佳性能标准,应调整控制器的参数(k p ,k i ,k d )使用遗传算法(GA)优化技术进行优化。使用目标函数确定控制器参数,其最小化积分时间绝对误差(ITAE)。在闭环系统上执行的模拟表明,具有PID控制的GA的阶梯响应显示出优异的性能。与开环系统相比,闭环系统具有基本上更大的稳定区域。模拟优化性能度量,如最大过冲百分比(M p ),上升时间(t r )和稳定时间(t s )。 matlab / simulink r2018a?和M文件代码用于基于GA的PID控制器参数的系统建模,仿真和优化。

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