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Research on Harmonic Generation Mechanism of PSM High-Voltage Power Supply in Dynamic Operation | IEEE Journals & Magazine | IEEE Xplore

Research on Harmonic Generation Mechanism of PSM High-Voltage Power Supply in Dynamic Operation


Abstract:

To study the harmonic generation mechanism of high-voltage power supply (HVPS) in dynamic operation, the mathematical model of the PSM HVPS is built. The mathematical mod...Show More

Abstract:

To study the harmonic generation mechanism of high-voltage power supply (HVPS) in dynamic operation, the mathematical model of the PSM HVPS is built. The mathematical model of the equivalent circuit is established by analyzing the basic operational unit of the HVPS. The initial parameters of the mathematical model are updated according to the number of the modules in series on the load side, and the key electrical parameters set in the mathematical model are obtained. After that, according to the number and the position of the series modules in the HVPS, the current superposition and phase shift calculation are carried out to obtain the harmonic current content in the power grid. This article also verified the accuracy of the mathematical model and calculating method by building a module simulation and HVPS simulation model. Furthermore, the harmonic generation characteristics in the dynamic operation of the HVPS are studied in this article.
Published in: IEEE Transactions on Plasma Science ( Volume: 50, Issue: 9, September 2022)
Page(s): 3085 - 3092
Date of Publication: 11 August 2022

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I. Introduction

The auxiliary heating system of Tokamak normally means lower hybrid current drive (LHCD), electron cyclotron resonant heating (ECRH), ion cyclotron resonance heating (ICRH), and so on. The technology of pulse step modulation (PSM) switching power supply is widely used in the high-voltage power supply (HVPS) which plays an important role in the auxiliary heating system [1]–[3]. The HVPS based on PSM technology has the advantages of fast opening and closing, high reliability, and modularization, etc [4], [5]. Due to the modules of HVPS being in series, the output voltage can be achieved by controlling fast semiconductor switches [6]. As is shown in Fig. 1, the PSM technology is applied in a 4.6 GHz LHCD system. The system consists of four identical power supplies. For one power source, the 10 kV is sent to two multi-circle winding tap transformers after ±7.5° phase shifts, and the secondary windings are connected to the rectifier. So the 24 pluses rectification circuit consists of four modules can largely decrease the ripple wave of the output voltage [7]. The transformer of one HVPS has 32 delta- and 32 wye-connected secondary windings [8], [9]. As the load’s demand for dc voltage changes, the harmonic current of 10 kV changes frequently with the dynamic operation of module number. It has a great negative impact on the normal running of the sensitive equipment in the tokamak. Even worse, the parallel resonance caused by the effect of the system impedance and the filter device may amplify the specific harmonic current, which will lead to more serious consequences such as protection actions and equipment trouble [10].

PSM technology of cathode HVPS for a 4.6 GHz LHCD system.

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