在高内部频率下工作的开关串联谐振电路的功率调节

J. Klaassens
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摘要

以高频链路运行的电子电源变换器正受到越来越多的关注。半导体开关中的电流强制中断将导致与电流导通间隔的导通损耗相比,功率的瞬时值过高,必须在这些开关元件中消散。开关损耗是由于开关重复频率的增加而导致半导体开关总损耗增加的根本原因。本文提出的理论和高内频电子电源变换器技术的发展是基于交换网络中谐振电路的特殊性质。一般来说,这种变换器由串联谐振电路组成。由一些电子控制(半导体)开关激发。该谐振电路插入到功率转换器能量传递的直接路径上。半导体开关中的(准)正弦电流允许通过开关的电流在过零点处中断,并且当与导通后和关断前电流上升速率的限制值相结合时,开关损耗可以降低到最小。然后可以将上述势垒的最大脉冲频率提高到数百千赫。能量可以从源(产生单极或双极波形的单相或多相电压源)发出,并以特定形式(单极或双极、单相或多相电压波形)传输到网络(负载)。
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Power Conditioning with a Switched Series-Resonant Circuit Operating at a High Internal Frequency
Electronic power converters operating with a high-frequency link are receiving an increasing amount of attention. A forced interruption in current in the semiconductor switches will lead to excessive momentary values of the power compared to the conduction losses for the current conduction interval, which must be dissipated in these switching elements. The switching losses are the fundamental reason for the increase in the total losses in the semiconductor switches for an increased repetition frequency of the switches. The development of the theory presented here and the technology of electronic power converters with high internal frequencies is based on the special properties of resonant circuits in switching networks. In general, such a converter consists of a series-resonant circuit. excited by a number of electronically controlled (semiconductor) switches. This resonant circuit is inserted in the direct path of the energy transfer of the power converter. The (quasi) sinusoidal currents in the semiconductor switches allow the current conducted through the switch to be interrupted at the zero crossing and, when combined with the limited value for the rate of rise of the current after turn-on and before turn-off, the switching losses can be reduced to a minimum. It is then possible to increase the above-mentioned barrier for the maximum pulse frequency up to hundreds of kHz. The energy can be emanated from a source (single or polyphase voltage source generating unipolar or bipolar waveforms) and is transmitted to a network (load) in a specific form (unipolar or bipolar, single or polyphase voltage waveforms).
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