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Design Challenges of Direct-Drive Permanent Magnet Superconducting Wind Turbine Generators

机译:直驱永磁超导风力涡轮发电机的设计挑战

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In recent years, permanent magnet superconducting (PMSC) generators have become a candidate for applying superconducting (SC) generators in large direct-drive wind turbines. This configuration keeps the SC armature winding and its cooling system stationary and eliminates rotational cooling couplings. However, the low excitation by permanent magnets may lead to poor power factors if the armature current is high. Furthermore, the permanent magnets are prone to demagnetization when the armature reaction is strong. This paper investigates the design challenges regarding the power factor, demagnetization and short circuit characteristics by analyzing two PMSC generator designs. The results show that the power factor cannot be as high as 0.9 and a low power factor such as 0.6 can take advantage of the high current carrying capability of the SC armature winding. However, this low power factor will cause demagnetization. The armature current may cause quenching of the SC wires during a three-phase short circuit. Demagnetization of the permanent magnets during the short circuit is strong and could be an intrinsic weakness of a PMSC generator.
机译:近年来,永磁体超导(PMSC)发电机已成为在大型直接驱动风力涡轮机中施加超导(SC)发电机的候选者。这种配置保持SC电枢绕组及其冷却系统固定,并消除旋转冷却联轴器。然而,如果电枢电流高,则永磁体的低激发可能导致电源因素差。此外,当电枢反应强时,永久磁铁容易发生去除。本文通过分析两个PMSC发生器设计来调查关于功率因数,退磁和短路特性的设计挑战。结果表明,功率因数不能高达0.9,诸如0.6的低功率因数可以利用SC电枢绕组的高电流承载能力。但是,这种低功率因数将导致退磁。在三相短路期间,电枢电流可能导致SC导线淬火。在短路期间永磁体的去磁力强大,并且可以是PMSC发生器的内在弱点。

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