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Control of Vacuum Arcs in High-Voltage Vacuum Interrupters by Suitable Stroke Trajectories of Opening AMF Contacts

机译:通过打开AMF触点的合适行程轨迹控制高压真空灭弧室中的真空电弧

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Vacuum circuit breakers switch off high short-circuit currents during faults on electrical distribution and transmission systems. Vacuum interrupter (VI) contacts suitable for large contact gaps, as demanded for high-voltages (HV), often use axial magnetic fields (AMF) to force the switching arc to remain in a diffuse mode. Because the AMF amplitude decreases significantly with increasing contact gap, the constriction threshold of the vacuum arc and thus the interruption capability of a HV VI are sensitively influenced by the time dependence of the opening stroke of the movable contact piece. This work is devoted to the influence of the time-stroke curve of separating AMF contacts (CuCr) on the mode characteristics of the switching arc for contact gaps of up to several 10 mm as required for rated voltages exceeding 72.5 kV (rms). The spatial AMF distribution in the contact gap is varied during a 50 Hz current half-cycle by means of well controlled contact travel curves for currents ranging up to several 10 kA (rms). The resulting arc evolution is studied with a high-speed, high-resolution CCD video camera using a demountable vacuum chamber with optical access. The experimental data are compared to transient 3D numerical simulations of the vacuum arc plasma based on magneto-hydrodynamic modeling. Opening stroke trajectories of the contact are identified that enable minimum AMF amplitudes needed to suppress arc constriction and anode spot formation. The investigations demonstrate that the contact travel curve is a key characteristic of large-gap AMF contact designs enabling high-current interruption performance at high voltages.
机译:在配电和传输系统出现故障时,真空断路器会切断高短路电流。根据高压(HV)的需求,适合于较大接触间隙的真空灭弧室(VI)触点通常使用轴向磁场(AMF)来迫使开关电弧保持在扩散模式。由于AMF振幅会随着接触间隙的增加而显着降低,因此真空电弧的收缩阈值以及HV VI的中断能力会受到可动接触件打开行程的时间依赖性的敏感影响。这项工作专门针对分离AMF触点(CuCr)的时间行程曲线,对于额定电压超过72.5 kV(rms)所需的高达10 mm的接触间隙,对开关电弧的模式特性产生影响。接触间隙中的空间AMF分布在50 Hz的电流半周期内通过良好控制的接触行程曲线而变化,最大电流范围为10 kA(rms)。使用带有光学通道的可拆卸真空室,通过高速,高分辨率CCD摄像机研究了产生的电弧。将实验数据与基于磁流体动力学模型的真空电弧等离子体的瞬态3D数值模拟进行了比较。确定触点的打开行程轨迹,以实现抑制电弧收缩和阳极斑点形成所需的最小AMF振幅。研究表明,触点行程曲线是大间隙AMF触点设计的关键特性,可在高电压下实现大电流中断性能。

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