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High Temperature Superconducting Partial Core Transformer and Fault Current Limiter

机译:高温超导部分铁心变压器和故障电流限制器

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摘要

The thesis begins with an introduction to transformer theory. The partial core transformer is then introduced and compared with a full core design. A brief introduction to superconductors and high temperature superconductors is then presented. High temperature superconducting fault current limiters are then examined and the advantage of a high temperature superconducting partial core transformer and fault current limiter as a single unit is highlighted.The reverse design model is discussed followed by the model parameters that are used in designing the high temperature superconducting partial core transformer. Partial core transformers with copper windings and high temperature superconductor windings at the University of Canterbury were then tested and the measured results compared with the results calculated from the reverse design model, to validate the model. The high temperature superconducting partial core transformer failed during an endurance run and the investigation of the failure is then presented. The results of the failure investigation prompted an alternative winding insulation design. A model to calculate the time at which the high temperature superconducting winding of the partial core transformer would melt at different currents was then built. The time was calculated to be used in the operation of the quench detection mechanism and it could also be used in choosing a circuit breaker with a known operating time.The design of the high temperature superconducting partial core transformer and fault current limiter is then presented. Design configurations with different core length and winding length are examined. The idea behind choosing the final design for the high temperature superconducting partial core transformer and fault current limiter is then discussed. The final design of the high temperature superconducting partial core transformer and fault current limiter is then presented.A new 7.5 kVA, 230-248 V high temperature superconducting partial core transformer and fault current limiter was designed, built and tested. The windings are layer wound with first generation Bi2223 high temperature superconductor. A series of electrical tests were performed on the new device including open circuit, short circuit, resistive load, overload and fault ride through. These tests were performed to determine the operational characteristics of the new high temperature superconducting partial core transformer and fault current limiter. The measured results from the tests were compared with the calculated results. The fault ride through test results were then compared to a 15 kVA high temperature superconducting partial core transformer that was designed and built at the University of Canterbury. Since the resistive component of the silver matrix in Bi2223 high temperature superconductor plays a very little role in controlling the fault current, the current limited by the leakage reactance is compared between the two devices. The high temperature superconducting partial core transformer and fault current limiter was found to be 99.1% efficient at rated power with 5.7% regulation and fault current limiting ability of 500 % over the 15 kVA high temperature superconductor partial core transformer from University of Canterbury.
机译:本文首先介绍了变压器理论。然后介绍了部分铁芯变压器,并将其与全铁芯设计进行比较。然后简要介绍了超导体和高温超导体。然后研究了高温超导故障限流器,并强调了高温超导部分铁心变压器和故障限流器作为一个单元的优势。讨论了反向设计模型,然后讨论了用于设计高温的模型参数超导部分铁心变压器。然后,对坎特伯雷大学的带有铜绕组和高温超导体绕组的部分铁芯变压器进行了测试,并将测量结果与反向设计模型计算出的结果进行比较,以验证该模型。高温超导部分铁芯变压器在耐久试验中发生故障,然后进行了故障研究。故障调查的结果提示了一种替代的绕组绝缘设计。然后建立一个模型来计算部分铁芯变压器的高温超导绕组在不同电流下熔化的时间。该时间经计算可用于失超检测机构的运行,也可用于选择已知运行时间的断路器。然后介绍了高温超导部分铁心变压器和故障限流器的设计。检查了具有不同铁芯长度和绕组长度的设计配置。然后讨论了为高温超导部分铁心变压器和故障限流器选择最终设计的想法。然后介绍了高温超导部分铁心变压器和故障限流器的最终设计。设计,制造和测试了一种新的7.5 kVA,230-248 V高温超导部分铁心变压器和故障限流器。绕组用第一代Bi2223高温超导体进行层绕。在新设备上进行了一系列电气测试,包括开路,短路,电阻性负载,过载和故障穿越。进行这些测试以确定新型高温超导部分铁心变压器和故障限流器的工作特性。将测试的测量结果与计算结果进行比较。然后将故障穿越测试结果与由坎特伯雷大学设计和制造的15 kVA高温超导部分铁芯变压器进行了比较。由于Bi2223高温超导体中银基质的电阻成分在控制故障电流中仅起很小的作用,因此在这两种器件之间比较了受漏电抗限制的电流。与坎特伯雷大学的15 kVA高温超导体部分铁芯变压器相比,该高温超导部分铁芯变压器和故障限流器在额定功率下的效率为99.1%,调节率为5.7%,故障电流限制能力为500%。

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    ShamJit Kumar;

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  • 年度 2015
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