Thermal conductivity and contraction of single and fifty-stacked 2G HTS tapes for the design of a superconducting fusion magnet

IF 1.8 3区 工程技术 Q3 PHYSICS, APPLIED
Tomoyuki Naito , Tetsuhiro Obana , Makoto Takayasu
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引用次数: 0

Abstract

We measured the thermal conductivity, κ(T), of the single GdBa2Cu3O7δ coated conductor (GdBCO-CC) tape and a bundled sample prepared by soldering fifty GdBCO-CC tapes, to design the thermal stability of a next high-temperature superconducting fusion magnet. A low-temperature peak for κ(T) was observed for the single GdBCO-CC tape at 28.6 K. A simple heat-flow model for the layered sample demonstrated that the applied heat flowed mainly through the high purity metal such as the Cu and Ag-stabilizing layers. The κ(T) of the bundled sample was similar to that of the single tape, suggesting that the contribution of the soldering layers to the heat flow was negligible and the κ(T) of fifty or more bundled samples can be estimated using the κ(T) of the single tape. We also measured the thermal contraction of the single tape along the length and of the fifty-stacked tape along the stacking direction, and then found that the stacking structure caused the large shrinkage along the stacking direction, which should be useful to optimize the structure of magnet at the operating low-temperature.
用于超导核聚变磁体设计的单和50层2G高温超导磁带的导热性和收缩性
我们测量了单个GdBa2Cu3O7−δ涂层导体(GdBCO-CC)带和通过焊接50个GdBCO-CC带制备的捆绑样品的导热系数κ(T),以设计下一个高温超导聚变磁体的热稳定性。在28.6 K时,单个GdBCO-CC条带的κ(T)出现低温峰。层状样品的简单热流模型表明,施加的热量主要流经高纯度金属,如Cu和ag稳定层。捆绑样品的κ(T)与单个胶带的相似,表明焊接层对热流的贡献可以忽略不计,并且可以使用单个胶带的κ(T)估计50个或更多捆绑样品的κ(T)。我们还测量了单条胶带沿长度方向和50条堆叠胶带沿堆叠方向的热收缩,然后发现堆叠结构导致沿堆叠方向的大收缩,这应该有助于在工作低温下优化磁体结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cryogenics
Cryogenics 物理-热力学
CiteScore
3.80
自引率
9.50%
发文量
0
审稿时长
2.1 months
期刊介绍: Cryogenics is the world''s leading journal focusing on all aspects of cryoengineering and cryogenics. Papers published in Cryogenics cover a wide variety of subjects in low temperature engineering and research. Among the areas covered are: - Applications of superconductivity: magnets, electronics, devices - Superconductors and their properties - Properties of materials: metals, alloys, composites, polymers, insulations - New applications of cryogenic technology to processes, devices, machinery - Refrigeration and liquefaction technology - Thermodynamics - Fluid properties and fluid mechanics - Heat transfer - Thermometry and measurement science - Cryogenics in medicine - Cryoelectronics
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