电磁屏蔽和电枢齿对10mw风力发电机直接驱动超导发电机短路性能的影响

Dong Liu, H. Polinder, A. Abrahamsen, J. Ferreira
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引用次数: 8

摘要

为了降低海上风能转换的能源成本,10兆瓦或更高功率水平的大型单个风力涡轮机正受到越来越多的关注,并有望成为理想的选择。传统的风力发电系统如果扩大到10兆瓦,将会相当庞大和昂贵。直接驱动超导发电机已被提出,以减少发电机的尺寸,因为电机与超导绕组能够实现更高的转矩密度。然而,超导电机由于电抗小,在短路时容易产生过大的转矩。转子和定子之间的电磁屏蔽以及铁或无磁复合电枢齿会影响超导电机的亚瞬变电抗,从而对超导风力发电机的短路性能起作用。本文介绍了一种10mw超导发电机的设计,研究了电磁屏蔽材料、厚度和位置以及NMC和铁电枢齿对发电机终端三相短路时转矩和场电流密度的影响。结果表明,改变电磁屏蔽和电枢齿的材料不能有效地减小短路转矩。另一个结果表明,虽然电磁屏蔽材料和电枢齿材料有一定的影响,但短路时的场电流密度很可能超过其临界值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of an electromagnetic shield and armature teeth on the short-circuit performance of a direct drive superconducting generator for 10 MW wind turbines
To reduce the cost of energy of offshore wind energy conversion, large individual wind turbines of 10 MW or higher power levels are drawing more attention and expected to be desirable. Conventional wind generator systems would be rather large and costly if scaled up to 10 MW. Direct drive superconducting generators have been proposed to reduce the generator size, because the electrical machines with superconducting windings are capable of achieving a higher torque density. However, a superconducting machine is likely to produce an excessive torque during a short circuit because of its small reactance. An electromagnetic (EM) shield between the rotor and the stator as well as iron or non-magnetic composite (NMC) armature teeth affects the sub-transient reactance of a superconducting machine so that they play a role in the short-circuit performance of a superconducting wind generator. This paper presents a 10 MW superconducting generator design and studies the effects of material, thickness and position of an EM shield and the effects of NMC and iron armature teeth on the torque and the field current density during a three-phase short circuit at the generator terminal. One result shows that the short circuit torque is not able to be effectively reduced by varying the EM shield and the armature tooth material. The other result shows that the field current density is likely to exceed its critical value during a short circuit although the EM shield material and the armature tooth material take some effect.
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