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Numerical modeling of high-voltage circuit breaker arcs and their interraction with the power system.

机译:高压断路器电弧及其与电力系统相互作用的数值模型。

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In this work the interaction between series connected gas and vacuum circuit breaker arcs has been studied. The breakdown phenomena in vacuum interrupters during the post arc current period have been of special interest.; Numerical models of gas and vacuum arcs were developed in the form of black box models. Especially, the vacuum post arc model was implemented by combining the existing transition model with an ion density function and expressions for the breakdown mechanisms. The test series studied reflect that for electric fields on the order of 10{dollar}sp7{dollar}V/m over the anode, the breakdown of the vacuum gap can result from a combination of both thermal and electrical stresses. For a particular vacuum device, the vacuum model helps to find the interruption limits of the electric field and power density over the anode.; The series connection of gas and vacuum interrupters always performs better than the single gas device. Moreover, to take advantage of the good characteristics of both devices, the time between the current zero crossing in each interrupter can be changed. This current zero synchronization is controlled by changing the capacitance in parallel to the gas device. This gas/vacuum interrupter is suitable for interruption of very stressful short circuits in which the product of the dI/dt before current zero and the dV/dt after current zero is very high. Also, a single SF6 interrupter can be replaced by an air circuit breaker of the same voltage rating in series with a vacuum device without compromising the good performance of the SF6 device.; Conceptually, a series connected vacuum device can be used for high voltage applications with equal distribution of electrical stresses between the individual interrupters. The equalization can be made by a sequential opening of the individual contact pairs, beginning with the interruptors that are closer to ground potential. This could eliminate the use of grading capacitors.
机译:在这项工作中,已经研究了串联连接的气体电弧与真空断路器电弧之间的相互作用。电弧后电流期间真空灭弧室的击穿现象引起了人们的特别关注。以黑匣子模型的形式开发了气体和真空电弧的数值模型。特别地,真空后电弧模型是通过将现有的过渡模型与离子密度函数和击穿机理的表达式相结合而实现的。所研究的测试系列反映出,对于阳极上方10 {dollar} sp7 {dollar} V / m量级的电场,真空间隙的破坏可能是由热应力和电应力共同导致的。对于特定的真空装置,真空模型有助于找出阳极上电场和功率密度的中断极限。气体和真空灭弧室的串联连接始终比单个气体装置的性能更好。此外,为了利用两个设备的良好特性,可以更改每个中断器中电流过零之间的时间。该电流零同步通过改变与气体设备并联的电容来控制。这种气体/真空灭弧室适用于中断非常有应力的短路,其中电流零之前的dI / dt与电流零之后的dV / dt的乘积非常高。同样,单个SF6灭弧室可以由与真空装置串联的相同额定电压的空气断路器代替,而不会损害SF6装置的良好性能。从概念上讲,可以将串联的真空设备用于高压应用,并在各个灭弧室之间均匀分配电应力。可以通过依次断开各个触点对来实现均衡,首先从更接近接地电位的中断器开始。这样可以消除对分级电容器的使用。

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