On modeling and real-time simulation of a robust adaptive controller applied to a multicellular power converter

R. Hamdi, A. Hadri Hamida, O. Bennis
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Abstract

Introduction. This paper describes the simulation and the robustness assessment of a DC-DC power converter designed to interface a dual-battery conversion system. The adopted converter is a Buck unidirectional and non-isolated converter, composed of three cells interconnected in parallel and operating in continuous conduction mode. Purpose. In order to address the growing challenges of high switching frequencies, a more stable, efficient, and fixed-frequency-operating power system is desired. Originality. Conventional sliding mode controller suffers from high-frequency oscillation caused by practical limitations of system components and switching frequency variation. So, we have explored a soft-switching technology to deal with interface problems and switching losses, and we developed a procedure to choose the high-pass filter parameters in a sliding mode-controlled multicell converter. Methods. We suggest that the sliding mode is controlled by hysteresis bands as the excesses of the band. This delay in state exchanges gives a signal to control the switching frequency of the converter, which, in turn, produces a controlled trajectory. We are seeking an adaptive current control solution to address this issue and adapt a variable-bandwidth of the hysteresis modulation to mitigate nonlinearity in conventional sliding mode control, which struggles to set the switching frequency. Chatter problems are therefore avoided. A boundary layer-based control scheme allows multicell converters to operate with a fixed-switching-frequency. Practical value. Simulation studies in the MATLAB / Simulink environment are performed to analyze system performance and assess its robustness and stability. Thus, our converter is more efficient and able to cope with parametric variation.
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多单元功率变换器鲁棒自适应控制器的建模与实时仿真
介绍。本文描述了一种用于双电池转换系统接口的DC-DC功率变换器的仿真和鲁棒性评估。所采用的变换器是一种Buck单向非隔离变换器,由三个并联并联的电池组成,以连续导通方式工作。目的。为了应对日益增长的高开关频率挑战,需要一种更稳定、高效和固定频率的工作电源系统。创意。由于系统元件的实际限制和开关频率的变化,传统的滑模控制器存在高频振荡。因此,我们探索了一种软开关技术来处理接口问题和开关损耗,并开发了一种程序来选择滑模控制的多胞变换器中的高通滤波器参数。方法。我们认为滑模是由迟滞带控制的,作为迟滞带的过剩量。状态交换中的这种延迟提供了一个信号来控制转换器的开关频率,从而产生一个受控的轨迹。我们正在寻求一种自适应电流控制解决方案来解决这个问题,并采用可变带宽的迟滞调制来缓解传统滑模控制中的非线性,这种控制难以设置开关频率。因此避免了颤振问题。基于边界层的控制方案允许多单元转换器以固定的开关频率运行。实用价值。在MATLAB / Simulink环境下进行仿真研究,分析系统性能并评估其鲁棒性和稳定性。因此,我们的转换器效率更高,能够处理参数变化。
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