Research on Pressure Control Material Based on Granular System in Current Transfer

Yu Zhu, Enyuan Dong, Mingjie Li, Huan He, Zirong Zhang, X. Guo
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引用次数: 1

Abstract

TiB2 granules have the characteristics of high hardness, small volume resistance and not easy to be oxidized. As a pressure control material, its contact resistance will change significantly under the external pressure. It can be applied in the field of current transfer due to its fast change in resistance, including transfer current limiting and DC transfer breaking. In this paper, the pressure-resistance characteristics of the pressure control material are measured, and the relationship between pressure and resistance is obtained and fitted into a function. Then, a mathematical model of the pressure control material is established in the PSCAD, and the model is series connected with a vacuum interrupter to form a current transfer module. The module is connected in parallel with the current limiting reactor to form a new type of fault current limiter and connected in parallel with the IGBT module to form a DC circuit breaker. The current transfer during the resistance change is studied. The simulation results show that the current can be quickly transferred within a few milliseconds. During the current transfer, overvoltage will generate. Therefore, overvoltage protection and timing control need to be considered.
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基于颗粒系统的电流传递压力控制材料研究
TiB2颗粒具有硬度高、体积阻力小、不易氧化等特点。作为一种压力控制材料,其接触电阻在外界压力作用下会发生显著变化。由于其电阻变化快,可应用于电流转移领域,包括转移限流和直流转移分断。本文测量了压力控制材料的耐压特性,得到了压力与阻力的关系,并拟合成函数。然后,在PSCAD中建立了压力控制材料的数学模型,并将该模型与真空灭流器串联成电流传输模块。该模块与限流电抗器并联构成新型故障限流器,与IGBT模块并联构成直流断路器。研究了电阻变化过程中的电流传递。仿真结果表明,该方法可以在几毫秒内快速传递电流。在电流传递过程中,会产生过电压。因此,需要考虑过压保护和定时控制。
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