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Online PSO‑tuned phase shift angle controller for dual active bridge DC–DC converter

机译:用于双有源桥式DC-DC转换器的在线PSO调谐相移角控制器

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摘要

The deep concern towards efficient and green energy has brought to the development of intermediate energy storagesystem. Electric vehicles (EVs), for example, is an application where the energy storage devices are vital. In EV, the bidirectionalDC–DC converter is high in demand due to its nature EV of having two or more separate DC sources. A recenttechnology called the dual active bridge (DAB) converter has quickly become popular in DC–DC converter thanks toits inherent galvanic isolation via a high-frequency transformer. Furthermore, DAB topology allows for high-efficiencyconversion and soft switching adaption. This paper presents the optimization of the phase shift angle controller of DABusing Particle Swarm Optimization (PSO). From the preliminary study, it was found out that the optimization performswell until there are abrupt changes in the system. The system is not able to respond to the reference voltage step changeas the traditional one-time execution PSO have local optima entrapped in react to the changes. The paper proposes areset function to allow PSO to identify that its current optimized value is not optimal anymore. This drives PSO to look fora new optimal value to improve DAB’s overall dynamic performance. Simulation of the modified PSO is done on a 200 kWDAB system with 20 kHz switching frequency is developed in MATLAB/Simulink environment. Simulation has been carriedout with the objective to minimize the steady-state error as well as to improve the dynamic performance of the DAB. TheDAB performance with the proposed solution is evaluated in terms of steady-state error and transient response by testingthe system under various reference voltage and step-change input voltage. The self-excited re-exploration PSO alsohave been presented as to respond to the reference voltage step change as the basic PSO have local optima entrappedin react to the changes. In order to validate the simulation results, a hardware-in-the-loop (HIL) experimental circuit isbuilt in Typhoon HIL-402 to verify the dynamic response and the steady state performance of the system.
机译:对高效和绿色能源的深切关注促进了中间储能的发展系统。例如,电动汽车(EV)是储能设备至关重要的应用。在EV中,双向由于DC-DC转换器具有两个或多个单独的DC电源,因此其需求很高。最近由于具有以下优点,称为双有源桥(DAB)转换器的技术已在DC-DC转换器中迅速普及。通过高频变压器实现固有的电流隔离。此外,DAB拓扑可实现高效率转换和软开关适配。本文提出了DAB相移角控制器的优化使用粒子群优化(PSO)。从初步研究中发现,优化执行直到系统发生突然变化。系统无法响应参考电压阶跃变化由于传统的一次性执行PSO会陷入局部最优以对变化做出反应。本文提出了一个重置功能,允许PSO识别其当前的最佳值不再是最佳值。这驱使PSO寻找一个新的最佳值,以改善DAB的整体动态性能。修改后的PSO的仿真是在200 kW上完成的在MATLAB / Simulink环境中开发了具有20 kHz开关频率的DAB系统。模拟已经进行目的是最大程度地减少稳态误差并改善DAB的动态性能。的通过测试,对所提出解决方案的DAB性能进行了稳态误差和瞬态响应方面的评估系统在各种参考电压和阶跃输入电压下工作。自激式再探索PSO由于基本PSO已陷入局部最优状态,因此已被提出来响应参考电压阶跃变化对变化做出反应。为了验证仿真结果,硬件在环(HIL)实验电路是内置台风HIL-402以验证系统的动态响应和稳态性能。

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