会议论文详细信息
Cryogenic Engineering Conference 2015
Solid-cryogen-stabilized, cable-in-conduit (CIC) superconducting cables
材料科学;物理学
Voccio, J.P.^1 ; Michael, P.C.^1 ; Bromberg, L.^1 ; Hahn, S.^2
MIT Plasma Science and Fusion Center, Cambridge
MA, United States^1
Applied Superconductivity Center, NHMFL, Tallahassee
FL, United States^2
关键词: Atmospheric conditions;    Chlorofluorocarbons (CFCs);    Generator stator windings;    Magnesium diborides;    Mechanical deformation;    Operating temperature;    Superconducting strands;    Volumetric expansion;   
Others  :  https://iopscience.iop.org/article/10.1088/1757-899X/101/1/012120/pdf
DOI  :  10.1088/1757-899X/101/1/012120
学科分类:材料科学(综合)
来源: IOP
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【 摘 要 】

This paper considers the use of a solid cryogen as a means to stabilize, both mechanically and thermally, magnesium diboride (MgB2) superconducting strands within a dual-channel cable-in-conduit (CIC) cable for use in AC applications, such as a generator stator winding. The cable consists of two separate channels; the outer channel contains the superconducting strands and is filled with a fluid (liquid or gas) that becomes solid at the device operating temperature. Several options for fluid will be presented, such as liquid nitrogen, hydrocarbons and other chlorofluorocarbons (CFCs) that have a range of melting temperatures and volumetric expansions (from solid at operating temperature to fixed volume at room temperature). Implications for quench protection and conductor stability, enhanced through direct contact with the solid cryogen, which has high heat capacity and thermal conductivity (compared with helium gas), will be presented. Depending on the cryogen, the conductor will be filled initially either with liquid at atmospheric conditions or a gas at high pressure (~100 atm). After cooldown, the cryogen in the stranded-channel will be solid, essentially locking the strands in place, preventing strand motion and degradation due to mechanical deformation while providing enhanced thermal capacity for stability and protection. The effect of cryogen porosity is also considered. The relatively high heat capacity of solid cryogens at these lower temperatures (compared to gaseous helium) enhances the thermal stability of the winding. During operation, coolant flow through the open inner channel will minimize pressure drop.

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