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Finite Element Simulation of Volume Forming of High-Temperature Superconducting MgB2 Wire: Construction Through Constitutive Models of Metals and Powders
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1Institute of Superconducting Materials and Applied Technology, Northwestern Polytechnical University, Xi'an 710072, China;2Superconducting Materials Research Institute, Northwest Institute for Nonferrous Metal Research, Xi'an 710016, China;3Xi'an Juneng Medical Engineering Technologies Co., Ltd, Xi'an 710028, China

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Key Program of National Natural Science Foundation of China (U24A2068); National Key Research and Development Program of China (2021YFB3800200); Special Project for Functional Materials of the Shaanxi Provincial Finance Department (1101YC2303); National Natural Science Foundation of China (52172274); Qinchuangyuan Talent Introduction Project in Shaanxi Province of China (QCYRCXM-2023-160)

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    Abstract:

    Tensile mechanical tests at room temperature with varying strain rates (0.001, 0.01, and 0.07 s-1) were conducted on Cu tubes (as-processed state), Nb tubes (soft state), and Mg rods (extruded state) used for internal magnesium diffusion (IMD)-MgB2 single-core wires. Uniaxial unidirectional mechanical tests and cyclic compression mechanical tests at room temperature were performed on B powder to obtain the stress-strain curves. Based on the abovementioned analysis results, Johnson-Cook constitutive models for three metals at room temperature were established, as well as the function between the elastic modulus of B powder and its relative density. Furthermore, the bulk deformation of IMD-MgB2 single-core wires during room-temperature rolling was simulated using the DEFORM finite element software, and the deformation behavior and stress distribution of materials were analyzed. Results demonstrate that the Johnson-Cook models established for three metals and the elastic modulus-relative density function of B powder accurately describe the flow behavior of Cu, Nb, and Mg in IMD-MgB2 wires, as well as the elastic deformation of B powder. DEFORM finite element simulation results can also effectively reflect the deformation behavior of IMD-MgB2 single-core wires. The overall deformation during the rolling process is uniform with a homogeneous stress distribution; however, the surface still has defects. This study provides a theoretical basis for optimizing the plastic forming process of IMD-MgB2 superconducting wires.

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[Hu Le, Hou Hongli, Yang Fang, Wang Qingyang, Zhang Shengnan, Liu Jixing, Yan Guo, Zhang Pingxiang. Finite Element Simulation of Volume Forming of High-Temperature Superconducting MgB2 Wire: Construction Through Constitutive Models of Metals and Powders[J]. Rare Metal Materials and Engineering,2026,55(7):1692~1700.]
DOI:10.12442/j. issn.1002-185X.20250326

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History
  • Received:June 14,2025
  • Revised:November 17,2025
  • Adopted:November 18,2025
  • Online: May 21,2026
  • Published: May 15,2026