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Calculation of AC loss in an HTS wind turbine generator

机译:高温超导风力发电机的交流损耗计算

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In order to achieve lower cost of energy the typical power rating of large wind turbine generators has steadily increased over recent years. However, with the mast-top weight of multi-megawatt generators exceeding 100 tonnes, installation becomes increasingly costly and difficult. Direct drive turbine designs can give significant weight and cost reductions. We have developed a design for a lightweight direct drive transverse flux generator with a rating of 2 MW. The design features a multi-pole permanent magnet rotor with a single global HTS stator coil of between 4 and 6 m diameter for each phase. As one consequence of this design approach, the HTS conductor is exposed to leakage field from the magnets and the self-field of the generated current. The magnitude of the loss associated with these time-varying fields is crucial to the viability of the HTS generator concept. The stator design seeks to minimize exposure of the HTS tape to alternating magnetic fields perpendicular to the face of the tape in order to reduce the AC loss in the stator coils to an acceptable level. For a coil operating at 50 Hz, the total AC loss is calculated as 15.1 W/m. Thus, AC losses within each of the three 6 m diameter HTS global coils of a 2 MW generator would be 285 W. The thermal load for the cryogenic system of the 2 MW generator is estimated to total 936 W, with the majority (90%) due to AC loss. Assuming a cryogenic specific power of 20, the energy required to cool the 2 MW generator represents less than 1% of total output.
机译:为了实现较低的能源成本,近年来,大型风力发电机的额定功率一直在稳步提高。但是,随着多兆瓦特发电机的桅杆顶部重量超过100吨,安装变得越来越昂贵和困难。直接驱动式涡轮机设计可显着降低重量并降低成本。我们已经开发出一种额定功率为2 MW的轻型直接驱动横向磁通发生器的设计。该设计具有一个多极永磁体转子,每个相带有一个直径为4至6 m的整体HTS定子线圈。这种设计方法的结果是,高温超导导体暴露于磁铁的泄漏场和所产生电流的自场中。与这些时变场相关的损耗的大小对于HTS发生器概念的可行性至关重要。定子设计旨在使HTS胶带在垂直于胶带表面的交变磁场中的暴露最小,以便将定子线圈中的AC损耗降低到可接受的水平。对于工作频率为50 Hz的线圈,总的交流损耗为15.1 W / m。因此,一台2 MW发电机的三个6 m直径HTS全局线圈中的每个线圈内的AC损耗将为285W。2MW发电机的低温系统的热负荷估计总计为936 W,其中大部分(90% )由于交流损耗。假设低温比功率为20,则冷却2 MW发电机所需的能量不到总输出的1%。

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