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Power electronic building-block using an inverse coupled inductor based on tape-wound cores

机译:使用基于绕带磁芯的反向耦合电感器的功率电子积木

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For renewable energies power electronics is a key technology whereas much of the power conversion in the future grid or power plants is done using power electronic converters. By establishing cheaper and smaller solutions to solve the problems dealing with high power transmission the expansion of renewable energies can be advanced. As highly efficient actuators these converters have to be properly designed to meet the standards in every possible issue. One commonly used topology element is the so called “hard switched” half bridge converter (two quadrant chopper, inverter leg) consisting of two semiconductor switches and a single filter inductance to limit current and voltage ripple. In high current applications this inductor is the largest and an expensive part. Thus reducing the size of this inductance will be a very important goal in future power electronic designs. This paper presents a new power electronic building block to use in many hard switched power electronic devices especially for high current applications. To reduce size and therefore increase power density an inverse coupled inductor (CI) is implemented and experimentally verified. Size and cost reduction are achieved by canceling out part of the magnetic DC-flux in the coupled inductor core. To do so the coupled inductor needs to be driven by two 180 degrees phase shifted inverter legs, resulting also in a reduced output capacitance. The converter corresponds to the principals of a two quadrant chopper hence bidirectional use. Renewable energy technologies will strongly benefit since the common hard switched converter legs can be replaced in nearly every wind, solar, storage etc. application by a smaller, cheaper CI solution. The system is operated at full duty cycle range (0...1), elevated power levels and can be controlled by commonly used control theory.
机译:对于可再生能源,电力电子技术是一项关键技术,而未来的电网或发电厂中的大部分电力转换都是使用电力电子转换器完成的。通过建立更便宜和更小的解决方案来解决与高功率传输有关的问题,可再生能源的发展可以得到推进。作为高效执行器,这些转换器必须经过适当设计才能在所有可能出现的问题上均符合标准。一种常用的拓扑元素是所谓的“硬开关”半桥转换器(两个象限斩波器,逆变器桥臂),它由两个半导体开关和一个滤波器电感组成,以限制电流和电压纹波。在大电流应用中,该电感器是最大,最昂贵的部分。因此,减小此电感的尺寸将是未来功率电子设计中非常重要的目标。本文提出了一种新的电力电子构件,可用于许多硬开关电力电子设备,尤其是大电流应用。为了减小尺寸并因此增加功率密度,实施了反向耦合电感器(CI)并进行了实验验证。通过抵消耦合电感器芯中的部分磁性直流磁通,可以实现尺寸和成本的降低。为此,耦合电感器需要由两个180度相移逆变器桥臂驱动,这也导致了输出电容的减小。转换器对应于两个象限斩波器的原理,因此可以双向使用。可再生能源技术将大大受益,因为几乎可以在所有风能,太阳能,储能等应用中使用较小的,更便宜的CI解决方案来替代通用的硬开关转换器支路。该系统在满占空比范围(0 ... 1),高功率级别下运行,并且可以通过常用的控制理论进行控制。

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