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Application of Neural Networks and State-Space Averaging to DC/DC PWM Converters in Sliding-Mode Operation

机译:神经网络和状态空间平均在滑模运行中对DC / DC PWM转换器的应用

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A novel output feedback neural controller is presented in this paper for the implementation of sliding-mode control of dc/dc converters. The controller, which consists of a multilayer perceptron, has been trained in order to be robust for large variations of system parameters and state variables. Fast dynamic behavior is the other main advantage of the proposed controller, which allows realization of all beneficial features of the sliding-mode control technique. Other advantages of the controller are simplicity and low cost. Computer simulations have been carried out to investigate the effectiveness of the controller in voltage regulation for a relatively complex dc/dc converter topology of the Cuk converter. Simulation results confirm the excellent performance of the control system in response to large signal variations. In order to verify the simulation results, a controller prototype has been designed and built using analog components. The controller is applied to regulate the output voltage of the Cuk converter. Experimental results confirm the analytical and simulation achievements.
机译:本文提出了一种新颖的输出反馈神经控制器,用于实现dc / dc转换器的滑模控制。该控制器由多层感知器组成,已经过培训,以便对于系统参数和状态变量的较大变化具有鲁棒性。快速动态行为是所提出的控制器的另一个主要优点,它允许实现滑模控制技术的所有有益功能。控制器的其他优点是简单和低成本。已经进行了计算机仿真,以研究控制器在Cuk转换器的相对复杂的dc / dc转换器拓扑结构的电压调节中的有效性。仿真结果证实了响应较大信号变化的控制系统的出色性能。为了验证仿真结果,已使用模拟组件设计并构建了控制器原型。控制器用于调节Cuk转换器的输出电压。实验结果证实了分析和模拟的成就。

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