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具有增强控制拓扑的创新型单相直接交流-交流双极电压降压转换器的设计与实现

Design and implementation of an innovative single-phase direct AC-AC bipolar voltage buck converter with enhanced control topology.

作者信息

Ashraf Naveed, Abbas Ghulam, Mushtaq Zohaib, Rehman Ateeq Ur, Ouahada Khmaies, Hamam Habib

机构信息

Department of Electrical Engineering, The University of Lahore, Lahore, 54000, Pakistan.

Department of Electrical Engineering, College of Engineering and Technology, University of Sargodha, Sargodha, 40100, Pakistan.

出版信息

Sci Rep. 2024 Jul 10;14(1):15971. doi: 10.1038/s41598-024-66626-5.

Abstract

Direct AC-AC converters are strong candidates in the power converting system to regulate grid voltage against the perturbation in the line voltage and to acquire frequency regulation at discrete step levels in variable speed drivers for industrial systems. All such applications require the inverted and non-inverted form of the input voltage across the output with voltage-regulating capabilities. The required value of the output frequency is gained with the proper arrangement of the number of positive and negative pulses of the input voltage across the output terminals. The period of each such pulse for low-frequency operation is almost the same as the half period of the input grid or utility voltage. These output pulses are generated by converting the positive and negative input half cycles in noninverting and inverting forms as per requirement. There is no control complication to generate control signals used to adjust the load frequency as the operating period of the switching devices is normally greater than the period of the source voltage. However, high-frequency pulse width modulated (PWM) control signals are used to regulate the output voltage. The size of the inductor and capacitor is inversely related to the value of the switching frequency. Similarly, the ripple contents of voltage and currents in these filtering components are also inversely linked with PWM frequency. These constraints motivate the circuit designer to select high PWM frequency. However, the alignment of the high-frequency control input with the variation in the input source voltage is a big challenge for a design engineer as the switching period of a high-frequency signal normally lies in the microsecond. It is also required to operate some high-frequency devices for various half cycles of the source voltage, creating control complications as the polarities of the half cycles are continuously changing. This requires at least the generation of two high-frequency signals for different intervals. The interruption of the filtering inductor current is a big source of high voltage surges in circuits where the high-frequency transistors operate in a complementary way. This may be due to internal defects in the switching transistors or some unnecessary inherent delay in their control signals. In this research work, a simplified AC-AC converter is developed that does not need alignment of high-frequency control with the polarity of the source voltage. With this approach, high-frequency signals can be generated with the help of any analog or digital control system. By applying this technique, only one high-frequency control signal is generated and applied in AC circuits, as in a DC converter, without applying a highly sensitive polarity sensing circuit. So, controlling complications is drastically simplified. The circuit and configuration always avoid the current interruption problem of filtering the inductor. The proposed control and circuit topology are tested both in computer-based simulation and practically developed circuits. The results obtained from these platforms endorse the effectiveness and validation of the proposed work.

摘要

直接交流-交流转换器是电力转换系统中的有力候选方案,可用于调节电网电压以抵御线路电压的扰动,并在工业系统的变速驱动器中实现离散步长的频率调节。所有这些应用都需要输出端具有调压能力的输入电压的正、反相形式。通过适当安排输出端输入电压的正、负脉冲数量可获得所需的输出频率值。对于低频运行,每个此类脉冲的周期几乎与输入电网或市电电压的半周期相同。这些输出脉冲是通过根据需要将输入正、负半周期转换为同相和反相形式而产生的。由于开关器件的工作周期通常大于源电压的周期,因此生成用于调节负载频率的控制信号不存在控制复杂性问题。然而,高频脉冲宽度调制(PWM)控制信号用于调节输出电压。电感和电容的大小与开关频率值成反比。同样,这些滤波元件中电压和电流的纹波含量也与PWM频率成反比。这些限制促使电路设计者选择高PWM频率。然而,对于设计工程师来说,使高频控制输入与输入源电压的变化同步是一个巨大的挑战,因为高频信号的开关周期通常在微秒级。还需要在源电压的不同半周期内操作一些高频器件,由于半周期的极性不断变化,这会产生控制复杂性。这至少需要为不同的时间间隔生成两个高频信号。在高频晶体管以互补方式工作的电路中,滤波电感电流的中断是高压浪涌的一个重要来源。这可能是由于开关晶体管的内部缺陷或其控制信号中一些不必要的固有延迟。在这项研究工作中,开发了一种简化的交流-交流转换器,它不需要高频控制与源电压的极性同步。通过这种方法,可以借助任何模拟或数字控制系统生成高频信号。通过应用该技术,在交流电路中仅生成并应用一个高频控制信号,就像在直流转换器中一样,而无需应用高度敏感的极性传感电路。因此,控制复杂性大大简化。该电路和配置始终避免了滤波电感的电流中断问题。所提出的控制方法和电路拓扑在基于计算机的仿真和实际开发的电路中都进行了测试。从这些平台获得的结果证实了所提出工作的有效性和正确性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f755/11237075/6c6abb7242fb/41598_2024_66626_Fig1_HTML.jpg

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