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通过热等静压法制造超导电线和带材的进展

Progress on the Fabrication of Superconducting Wires and Tapes via Hot Isostatic Pressing.

作者信息

Lei Zhenyu, Yao Chao, Guo Wenwen, Wang Dongliang, Ma Yanwei

机构信息

Key Laboratory of Applied Superconductivity, Institute of Electrical Engineering, Chinese Academy of Sciences, Beijing 100190, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Materials (Basel). 2023 Feb 22;16(5):1786. doi: 10.3390/ma16051786.

Abstract

Fabrication of high-performance superconducting wires and tapes is essential for large-scale applications of superconducting materials. The powder-in-tube (PIT) method involves a series of cold processes and heat treatments and has been widely used for fabricating BSCCO, MgB, and iron-based superconducting wires. The densification of the superconducting core is limited by traditional heat treatment under atmospheric pressure. The low density of the superconducting core and a large number of pores and cracks are the main factors limiting the current-carrying performance of PIT wires. Therefore, to improve the transport critical current density of the wires, it is essential to densify the superconducting core and eliminate pores and cracks to enhance grain connectivity. Hot isostatic pressing (HIP) sintering was employed to improve the mass density of superconducting wires and tapes. In this paper, we review the development and application of the HIP process in the manufacturing of BSCCO, MgB, and iron-based superconducting wires and tapes. The development of HIP parameters and the performance of different wires and tapes are reviewed. Finally, we discuss the advantages and prospects of the HIP process for the fabrication of superconducting wires and tapes.

摘要

制造高性能超导电线和带材对于超导材料的大规模应用至关重要。管内粉末(PIT)法涉及一系列冷加工和热处理,已被广泛用于制造铋系铜氧化物(BSCCO)、硼化镁(MgB₂)和铁基超导电线。在大气压力下进行的传统热处理限制了超导芯的致密化。超导芯的低密度以及大量的孔隙和裂纹是限制PIT电线载流性能的主要因素。因此,为了提高电线的传输临界电流密度,致密化超导芯并消除孔隙和裂纹以增强晶粒连通性至关重要。采用热等静压(HIP)烧结来提高超导电线和带材的质量密度。在本文中,我们综述了HIP工艺在制造BSCCO、MgB₂和铁基超导电线和带材方面的发展与应用。综述了HIP参数的发展以及不同电线和带材的性能。最后,我们讨论了HIP工艺在制造超导电线和带材方面的优势和前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3cbd/10004655/7d83a3a4f925/materials-16-01786-g001.jpg

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