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Engineering prototype of a superconducting flywheel for long term energy storage

机译:长期储能的超导飞轮的工程原型

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We built a flywheel system with superconducting magnetic bearings. The bearing consists of six melt-textured YBCO pellets mounted inside a continuous flow LN2 cryostat. A disk measuring φ 190 mm×30 mm was safely rotated at speeds up to 15000 rpm. The disk was driven by a high speed three phase synchronous homopolar motor/generator. Maximum energy capacity was 4.8 Wh, maximum power was 1.5 kW. The dynamic behavior of the prototype was tested, characterized and evaluated with respect to axial and lateral stiffness, damping, decay torques (bearing drag), vibrational modes and critical speeds. Experimental data were found to be in agreement with a structural damping model. Rotor unbalance together with the hysteretic nature of the superconducting magnetic bearing gave a significant contribution to the overall losses. At a background pressure of 6×10-4 mbar, the coefficient of friction (drag-to-lift ratio) was measured to be μ=9×10-6. The experiments demonstrate the applicability of superconducting magnetic bearings in highly efficient, kinetic energy storage systems.
机译:我们构建了带有超导磁性轴承的飞轮系统。该轴承由安装在连续流动的LN2低温恒温器内的六个具有熔融织构的YBCO颗粒组成。安全地旋转直径为190 mm×30 mm的磁盘,转速高达15000 rpm。磁盘由高速三相同步单极电动机/发电机驱动。最大能量容量为4.8 Wh,最大功率为1.5 kW。针对轴向和横向刚度,阻尼,衰减扭矩(轴承阻力),振动模式和临界速度,测试,表征和评估了原型的动态行为。发现实验数据与结构阻尼模型一致。转子的不平衡以及超导磁轴承的磁滞特性对总损耗做出了重大贡献。在6×10-4 mbar的背景压力下,测得的摩擦系数(阻力与升力比)为μ= 9×10-6。实验证明了超导磁性轴承在高效的动能存储系统中的适用性。

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