Investigating the impact of magnetic air gap variations on short circuit characteristics of partially high temperature superconducting generator

IF 1.3 3区 物理与天体物理 Q4 PHYSICS, APPLIED
Mohamed Elhindi , Modawy Adam Ali Abdalla , Dong Liu
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Abstract

Partially high-temperature superconducting generators (PHTSGs) feature large magnetic air gaps imposed by using cryostats for HTS field windings. This increased air gap significantly affects end winding inductance and can lead to elevated fault torque levels. This study investigates the influence of magnetic air gap variation on generator design and end winding inductance and its implications for short-circuit faults in PHTSGs. Through a combination of numerical simulations and analytical analysis, the study explores how changes in the magnetic air gap affect end winding inductance and subsequently influence short-circuit fault behavior. The results reveal a direct correlation between magnetic air gap length, end winding inductance, and key short-circuit parameters such as stator current, field currents, and electromagnetic torque. Notably, an increase in the magnetic air gap is observed to elevate stator and field currents and electromagnetic torque during short-circuit events. These insights underscore the importance of considering magnetic air gap variation and its impact on end winding inductance and its relationship with short circuit characteristics in the design and operation of PHTSGs, providing valuable insights for enhancing the resilience and performance of high-temperature superconductor-based generator systems.

研究磁气隙变化对部分高温超导发电机短路特性的影响
部分高温超导发电机(PHTSG)的磁气隙较大,这是由于 HTS 场绕组使用了低温恒温器。这种增大的气隙会严重影响末端绕组电感,并可能导致故障转矩水平升高。本研究探讨了磁气隙变化对发电机设计和末端绕组电感的影响,以及其对 PHTSG 短路故障的影响。研究结合数值模拟和分析,探讨了磁气隙的变化如何影响端部绕组电感,进而影响短路故障行为。研究结果表明,磁气隙长度、端部绕组电感与定子电流、磁场电流和电磁转矩等关键短路参数之间存在直接关联。值得注意的是,在短路事件中,磁气隙的增加会提高定子电流、磁场电流和电磁转矩。这些见解强调了在 PHTSG 的设计和运行中考虑磁气隙变化及其对末端绕组电感的影响及其与短路特性的关系的重要性,为提高基于高温超导体的发电机系统的恢复能力和性能提供了宝贵的见解。
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来源期刊
CiteScore
2.70
自引率
11.80%
发文量
102
审稿时长
66 days
期刊介绍: Physica C (Superconductivity and its Applications) publishes peer-reviewed papers on novel developments in the field of superconductivity. Topics include discovery of new superconducting materials and elucidation of their mechanisms, physics of vortex matter, enhancement of critical properties of superconductors, identification of novel properties and processing methods that improve their performance and promote new routes to applications of superconductivity. The main goal of the journal is to publish: 1. Papers that substantially increase the understanding of the fundamental aspects and mechanisms of superconductivity and vortex matter through theoretical and experimental methods. 2. Papers that report on novel physical properties and processing of materials that substantially enhance their critical performance. 3. Papers that promote new or improved routes to applications of superconductivity and/or superconducting materials, and proof-of-concept novel proto-type superconducting devices. The editors of the journal will select papers that are well written and based on thorough research that provide truly novel insights.
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