Design of the Superconducting AC and DC Distribution for the ASCEND Demonstrator at Airbus

超导电机 交流电 低温恒温器 电气工程 推进 电力航天器推进 单相电力 汽车工程 电力 直流电 功率(物理) 电压 电动机 材料科学 计算机科学 超导磁体 超导电性 物理 超导磁储能 航空航天工程 工程类 功率因数 电磁线圈 量子力学
作者
Emelie Nilsson,Jean Rivenc,Jean-François Rouquette,M. Tassisto,C. Fallouh,Ludovic Ybanez,A. Delarche,Frederick Berg,Sven A. Dönges,Jeremy Weiss,Kyle Radcliff,D C van der Laan,S. Otten,M. Dhallé,Herman H.J. ten Kate
出处
期刊:IEEE Transactions on Applied Superconductivity [Institute of Electrical and Electronics Engineers]
卷期号:33 (5): 1-6 被引量:5
标识
DOI:10.1109/tasc.2023.3247990
摘要

The ground-based Advanced Superconducting and Cryogenic Experimental power train Demonstrator (ASCEND) at Airbus intends to demonstrate the potential and feasibility of a cryogenic and superconducting powertrain as a breakthrough electric propulsion solution on future electric aircraft. A direct current distribution network is used in a propulsion chain to transfer 500 kW of power from the source to an electrical converter, which transforms the power into an alternating voltage/current to drive a superconducting motor. The working point of 1,700 A and 300 V is chosen for safety and installation reasons by operating at relatively low voltage. The direct current (DC) bus of ASCEND will be formed by a pair of high-temperature superconducting CORC cables inserted into a 10-meter-long narrow cryostat, resulting in a compact and lightweight solution. The 2-meter-long alternating current (AC) bus between the inverter and the electric motor is formed by a three-phase CORC cable. The challenge associated with 500 Hz operation in which a balance between AC loss in the cable and the size and mass of the system needs to be found, will be outlined. The AC and DC buses include several devices that connect the liquid nitrogen cooled power cables with the other system components that, in the case of the room temperature generator, operate at significantly higher temperatures. These devices thus include conduction-cooled current leads that are dimensioned to minimize the heat inleak from the warm to the cold environment. An overview of the design of the AC and DC buses and connecting devices will be provided and some of the design and operational challenges will be outlined.
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