推挽式等离子电源-一种提高稳定性的组合技术

P. Krupski, H. Stryczewska, G. Komarzyniec
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引用次数: 2

摘要

滑行电弧放电(GAD)双电极非热等离子体(NTP)反应器在运行过程中存在许多技术难点[1]。电抗器是具有强烈非线性特性的电阻能量接收器。此外,点火过程中预电离需要10kv以上的高压,而点火后的维持电压要低几倍。为了保持反应堆的非热状态,还需要立即限制电流。这里使用的等离子体反应器在波兰专利[2]中有简要描述。为了满足电抗器供电的要求,强烈建议使用开关模式电源(SMPS),其结构结合了许多不常见的有趣特性。推拉拓扑在此类应用中并不常用。作为标准,它用于处理低输入电压的逆变器。这种拓扑结构需要一个具有特殊对称性的初级绕组,而次级侧的交流电是通过将初级线圈的两半之间的初级电流切换,通过将电流输送到初级线圈的中心抽头来获得的。在这种情况下,一次电流由IGBT晶体管开关。该控制既可以由单片机控制,也可以由集成模拟控制器控制,其优点是可以抵抗辐射干扰。电源可以成功实现功率在1kw以上;然而,当使用微滑动电弧等离子体反应器(MGAPR)时,不需要这样的功率范围[3]。此外,该项目被认为具有广泛的科学发展前景。利用开关过电压的研究成果,得到了点火性能的改进。电源具有功率和频率调节。它们都可以在控制反馈回路中工作,但在实验中没有使用它们。上述特性对于电源来说是特殊的,并为非热等离子体反应堆的供电提供了广泛的可能性。在13-26 kHz的范围内有非常宽的调整特性,并且已被证明在实现其目的方面非常有效。
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The Push-Pull Plasma Power Supply - A Combining Technique for Increased Stability
During the operation with a double-electrode Non-thermal Plasma (NTP) reactor with a Gliding Arc Discharge (GAD) there are many technical difficulties [1]. The reactor is the resistance energy receiver with a strongly non-linear characteristics. What is more, high voltages above 10 kV are needed for pre-ionisation during the ignition process, while after ignition, the maintaining voltage is several times less. There is also a need to limit the current immediately for keeping non-thermal conditions in the reactor. A plasma reactor used here is briefly described in the Polish patent [2]. In order to meet the requirements of the reactor's supply, there is a strong suggestion to use a Switched- Mode Power Supply (SMPS), the construction of which combines many interesting features that are not commonly encountered. The push-pull topology is not commonly used in such applications. As a standard, it is used in inverters where the low input voltage is processed. The topology requires a primary winding with special symmetry and the alternating current on the secondary side is obtained by switching the primary current between the two halves of the primary coil by delivering current to the centre tap of the primary coil. In this case, the primary current is switched by IGBT transistors. The control can take place both from the microcontroller and the integrated analogue controller, whose advantage is resistance to radiated disturbances. The power supply can successfully achieve power above 1 kW; however, when working with Micro Gliding Arc Plasma Reactor (MGAPR), such power ranges are not required [3]. In addition, the project is seen to have broad scientific perspectives of development. Improvements of ignition properties were obtained using achievements resulting from work on switching overvoltages. The power supply has a power and frequency regulation. Both of them can work in control feedback loops, but here in the experiment they are not used. The features mentioned are exceptional for the power supply and provide a wide range of possibilities in supplying the nonthermal plasma reactors. There are very wide adjustment properties in the range of 13–26 kHz and it has been proven to be exceptionally efficient in fulfilling its purposes.
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