Design and Application Research of Synchronous Temporary Block Function between Valve Groups on Modular Multilevel Converter Ultra High Voltage Direct Current System

Qinlei Chen, Xuehua Lin, Zhijiang Liu, Qi Guo, Libin Huang, Guanming Zeng, Shuyong Li, Deyang Chen, Chao Luo
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Abstract

Compared with the half controlled power electronic devices such as thyristor, the over-current ability of fully controlled power electronic devices such as insulated gate bipolar transistor (IGBT) is weak. In order to ensure that bridge arm current does not exceed the bearing range of modular multilevel converter (MMC) switching devices under AC fault ride through and other scenarios, MMC high voltage direct current (HVDC) system projects are equipped with temporary block (TB) function, IGBTs are protected by suspending the trigger pulse before bridge arm current reaches the maximum safe current of the switch. The structure of high side and low side valve group (VG) in series are adopted in ultra high voltage direct current (UHVDC) system. For line commuted converter (LCC) UHVDC system, the converter is current source type, During normal operation, there is no need to control the voltage balance between high side and low side VG, and after one VG is disturbed by commutation failure, the impact on another VG is relatively small. For MMC-UHVDC system, the converter is voltage source type, during normal operation, the voltage balance between high side and low side VG should be controlled. When a transient disturbance such as AC fault occurs, if one VG is temporary blocked due to bridge arm over-current, and another VG is not temporary blocked or the time of temporary blocked is later, the VG blocked first may tripped due to sub-module (SM) overall over-voltage or bridge arm over-current, and the scope of the accident is expanded, which is not conducive to the flexible and reliable operation of MMC-UHVDC. Therefore, the impact of non synchronous temporary block of MMC-UHVDC VGs is firstly analyzed in this paper, and then synchronous temporary block (STB) function between VGs is proposed, and the hardware interface scheme, STB signal sending and receiving logic, enable conditions and other aspects between VGs are elaborated. Finally, taking kunliulong project, the world’s first multi terminal Hybrid (MTH) UHVDC project, as the application background, a real-time simulation (RTS) test system for control and protection (C&P) system is established. The enable conditions of the STB function are verified. The response and dynamic characteristics of the system under abnormal measurement of bridge arm current, AC fault and VG short circuit fault when enabling or disabling STB function are compared. The simulation results show that the reliability of MMC-UHVDC can be improved by enabling STB function.
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模块化多电平变换器特高压直流系统阀组间同步暂堵功能的设计与应用研究
与可控硅等半受控电力电子器件相比,绝缘栅双极晶体管(IGBT)等全受控电力电子器件的过流能力较弱。为了确保桥臂电流在交流故障穿越等场景下不超过模块化多电平变换器(MMC)开关设备的承载范围,MMC高压直流(HVDC)系统项目配备了临时阻塞(TB)功能,igbt通过在桥臂电流达到开关的最大安全电流之前暂停触发脉冲来保护。特高压直流(UHVDC)系统采用高、低侧阀组串联的结构。对于线路整流变流器(LCC)特高压直流系统,变流器为电流源型,在正常运行时,不需要控制高侧和低侧VG之间的电压平衡,当一个VG被整流故障扰动后,对另一个VG的影响相对较小。对于mmc -特高压直流系统,变流器为电压源型,在正常运行时,应控制高侧VG和低侧VG之间的电压平衡。当发生交流故障等暂态扰动时,如果一个VG因桥臂过流而被暂堵,而另一个VG未被暂堵或暂堵时间较晚,则先被堵的VG可能因子模块(SM)整体过压或桥臂过流而跳闸,扩大事故范围,不利于mmc -特高压直流灵活可靠运行。因此,本文首先分析了MMC-UHVDC VGs非同步临时阻塞的影响,然后提出了VGs之间的同步临时阻塞(STB)功能,并对VGs之间的硬件接口方案、STB信号收发逻辑、使能条件等方面进行了阐述。最后,以世界首个多终端混合(MTH)特高压直流工程——昆六龙工程为应用背景,建立了控制与保护(C&P)系统实时仿真(RTS)测试系统。验证机顶盒功能的使能条件。比较了机顶盒功能使能或使能时,系统在桥臂电流测量异常、交流故障和VG短路故障下的响应和动态特性。仿真结果表明,启用机顶盒功能可以提高MMC-UHVDC的可靠性。
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