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Study on heat transfer characteristics of stainless steel wrapped YBCO strip under liquid nitrogen

机译:液氮下不锈钢包裹YBCO钢带的传热特性研究

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This paper mainly studies the heat transfer characteristics of stainless steel wrapped YBCO strip in the resistance superconducting current limiter under liquid nitrogen, and provides theoretical basis for the design and manufacture of superconducting current limiter through the study and comparative analysis of its electrical and thermal properties under out-of-state state.Based on the experiment, the characteristic curve of superconducting strip itself is established. On this basis, the temperature distribution of epoxy curing coil and non-epoxy curing coil in liquid nitrogen with different heat transfer coefficients and impact current is studied. For the superconducting strip without epoxy curing, the loss of superconductivity instantly generates a large amount of heat to conduct outwards. If the coil is directly in contact with liquid nitrogen, it will produce boiling phenomenon and quickly produce a large amount of gas. For different currents, the superconducting strip will eventually reach thermal equilibrium at different temperatures. The higher the current, the higher the thermal equilibrium temperature. Through simulation analysis, the current is controlled at 5 times Ic, the superconducting strip surface is in the state of nuclear boiling, and the temperature transfer is faster. The energy efficiency of the high-temperature superconducting coil cured by epoxy can limit the heat output, the heat conduction rate decreases, the coil cooling rate is slow, and the temperature difference between the surface of epoxy-liquid nitrogen decreases, and the boiling phenomenon is restrained to some extent. In this process, the heat transfer is less, which can be approximated as an adiabatic process, but the coil's tolerance time is only about 0.15s, beyond this time, the coil temperature is too high and easy to burn. In epoxy curing coil, different epoxy layer thickness has a great impact on subsequent quench recovery time. The epoxy layer thickness increases from 0.01mm to 0.2mm, and the time rapidly increases from 0.5s to 3s. If epoxy is used for curing, if the system does not consider the recovery time, epoxy can be used as thermal buffering material, but if the heat is generated too fast to be released, and the temperature exceeds the bearing limit of epoxy and strip, the strip will be damaged.As the performance of the current superconducting strip is fragile, it is a bottleneck problem in the current limiter. In order to protect the superconducting strip, in the design and manufacture of the current limiter, the scheme without epoxy curing coil is preferred.
机译:本文主要研究液氮下电阻超导限流器中不锈钢包裹的YBCO带的传热特性,通过对超导限流器的电学和热学性能的研究和比较分析,为超导限流器的设计和制造提供理论依据。在实验的基础上,建立了超导带材本身的特性曲线。在此基础上,研究了不同传热系数和冲击电流下液氮中环氧固化线圈和非环氧固化线圈的温度分布。对于没有环氧树脂固化的超导带材,超导性的丧失会立即产生大量热量向外传导。如果盘管直接与液氮接触,则会产生沸腾现象并迅速产生大量气体。对于不同的电流,超导带最终将在不同的温度下达到热平衡。电流越大,热平衡温度越高。通过仿真分析,将电流控制在5倍Ic,超导带材表面处于核沸腾状态,温度传递更快。用环氧树脂固化的高温超导线圈的能效会限制热量的输出,导热率降低,线圈的冷却速率慢,环氧-液氮表面之间的温差减小,并且沸腾现象在某种程度上受到限制。在此过程中,传热较少,可以近似为绝热过程,但线圈的容限时间仅为0.15s,超过此时间,线圈温度过高且容易燃烧。在环氧固化线圈中,不同的环氧层厚度对随后的淬火恢复时间有很大的影响。环氧层的厚度从0.01mm增加到0.2mm,时间从0.5s迅速增加到3s。如果使用环氧树脂进行固化,如果系统不考虑恢复时间,则可以将环氧树脂用作热缓冲材料,但是如果产生的热量太快而无法释放,并且温度超过了环氧树脂和带材的承受极限,由于当前超导带的性能很脆弱,这是限流器的瓶颈问题。为了保护超导带,在限流器的设计和制造中,优选没有环氧固化线圈的方案。

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