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Integrated multi-scale approach combining global homogenization and local refinement for multi-field analysis of high-temperature superconducting composite magnets

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Xingzhe WANG, E-mail: xzwang@lzu.edu.cn

Received date: 2024-01-04

  Online published: 2024-04-26

Supported by

the National Natural Science Foundation of China(11932008);the National Natural Science Foundation of China(12272156);the Fundamental Research Funds for the Central Universities(lzujbky-2022-kb06);the Gansu Science and Technology Program and Lanzhou City's Scientific Research Funding Subsidy to Lanzhou University of China;Project supported by the National Natural Science Foundation of China (Nos. 11932008 and 12272156), the Fundamental Research Funds for the Central Universities (No. lzujbky-2022-kb06), and the Gansu Science and Technology Program and Lanzhou City's Scientific Research Funding Subsidy to Lanzhou University of China

Copyright

Editorial Department of Applied Mathematics and Mechanics (English Edition), 2024,

Abstract

Second-generation high-temperature superconducting (HTS) conductors, specifically rare earth-barium-copper-oxide (REBCO) coated conductor (CC) tapes, are promising candidates for high-energy and high-field superconducting applications. With respect to epoxy-impregnated REBCO composite magnets that comprise multilayer components, the thermomechanical characteristics of each component differ considerably under extremely low temperatures and strong electromagnetic fields. Traditional numerical models include homogenized orthotropic models, which simplify overall field calculation but miss detailed multi-physics aspects, and full refinement (FR) ones that are thorough but computationally demanding. Herein, we propose an extended multi-scale approach for analyzing the multi-field characteristics of an epoxy-impregnated composite magnet assembled by HTS pancake coils. This approach combines a global homogenization (GH) scheme based on the homogenized electromagnetic T-A model, a method for solving Maxwell's equations for superconducting materials based on the current vector potential T and the magnetic field vector potential A, and a homogenized orthotropic thermoelastic model to assess the electromagnetic and thermoelastic properties at the macroscopic scale. We then identify "dangerous regions" at the macroscopic scale and obtain finer details using a local refinement (LR) scheme to capture the responses of each component material in the HTS composite tapes at the mesoscopic scale. The results of the present GH-LR multi-scale approach agree well with those of the FR scheme and the experimental data in the literature, indicating that the present approach is accurate and efficient. The proposed GH-LR multi-scale approach can serve as a valuable tool for evaluating the risk of failure in large-scale HTS composite magnets.

Cite this article

Hanxiao GUO, Peifeng GAO, Xingzhe WANG . Integrated multi-scale approach combining global homogenization and local refinement for multi-field analysis of high-temperature superconducting composite magnets[J]. Applied Mathematics and Mechanics, 2024 , 45(5) : 747 -762 . DOI: 10.1007/s10483-024-3112-8

References

1 YAO,C., andMA,Y.Superconducting materials: challenges and opportunities for large-scale applications.iScience,24(6),102541(2021)
2 ZHOU,Y. H.,PARK,D., andIWASA,Y.Review of progress and challenges of key mechanical issues in high-field superconducting magnets.National Science Review,10,nwad001(2023)
3 ABRAHAMSEN,A. B.,MAGNUSSON,N.,JENSEN,B. B., andRUNDE,M.Large superconducting wind turbine generators.Energy Procedia,24,60-67(2012)
4 ADETOKUN,B. B.,OGHORADA,O., andAKAR,S. J.Superconducting magnetic energy storage systems: prospects and challenges for renewable energy applications.Journal of Energy Storage,55,105663(2022)
5 BRUZZONE,P.,FIETZ,W. H.,MINERVINI,J. V.,NOVIKOV,M.,YANAGI,N.,ZHAI,Y., andZHENG,J.High temperature superconductors for fusion magnets.Nuclear Fusion,58,103001(2018)
6 SOTELO,G. G.,DOS SANTOS,G.,SASS,F.,FRANCA,W. B.,DIAS,D. H. N.,FORTES,Z. M.,POLASEK,A., andDE ANDRADE,R., JR.A review of superconducting fault current limiters compared with other proven technologies.Superconductivity,3,100018(2022)
7 LIU,J.,WANG,Q.,QIN,L.,ZHOU,B.,WAMH,K.,WANG,Y.,WANG,L.,ZHANG,L.,DAI,Y., andLIU,H.World record 32.35 tesla direct-current magnetic field generated with an all-superconducting magnet.Superconductor Science and Technology,33,03LT01(2020)
8 SONG,J. B.,CHOI,Y. H.,YANG,D. G.,KIM,Y. G.,KIM,K. L., andLEE,H. G.Review of core technologies for development of 2G HTS NMR/MRI magnet: a status report of progress in Korea University.Results in Physics,7,3264-3276(2017)
9 WEIJERS,H. W.,MARKIEWICZ,W. D.,GAVRILIN,A. V.,VORAN,A. J.,VIOUCHKOV,Y. L.,GUNDLACH,S. R.,NOYES,D. P.,ABRAIMOV,D. V.,BAI,H.,HANNAHS,S. T., andMURPHY,T. P.Progress in the development and construction of a 32-T superconducting magnet.IEEE Transactions on Applied Superconductivity,26,4300807(2016)
10 AWAJI,S.,WATANABE,K.,OGURO,H.,MIYAZAKI,H.,HANAI,S.,TOSAKA,T., andLOKA,S.First performance test of a 25 T cryogen-free superconducting magnet.Superconductor Science and Technology,30,065001(2017)
11 TROCIEWITZ,U. P.,DALBAN-CANASSY,M.,HANNION,M.,HILTON,D. K.,JAROSZYNSKI,J.,NOYES,P.,VIOUCHKOV,Y.,WEIJIERS,H. W., andLARBALESTIER,D. V.35.4 T field generated using a layer-wound superconducting coil made of (RE)Ba2Cu3O7-x (RE=rare earth) coated conductor.Applied Physics Letters,99,202506(2011)
12 HAHN,S.,KIM,K.,KIM,K.,HU,H.,PAINTER,T.,DIXON,L.,KIM,S.,BHATTARAU,K. B.,NOGUCHI,S.,JAROSZYNSKI,J., andLARBALESTIER,D. C.45.5-tesla direct-current magnetic field generated with a high-temperature superconducting magnet.nature,570,496-499(2019)
13 OSAMURA,K.,SUGANO,M.,MACHIYA,S.,ADACHI,H.,OCHIAI,S., andSATO,M.Internal residual strain and critical current maximum of a surrounded Cu stabilized YBCO coated conductor.Superconductor Science and Technology,22,065001(2009)
14 SHIN,H. S., andDEDICATORIA,M.Review of progress in electromechanical properties of REBCO coated conductors for electric device applications.Progress in Superconductivity and Cryogenics,16,7-16(2014)
15 ILIN,K.,YAGOTINTSEV,K. A.,ZHOU,C.,GAO,P.,KOSSE,J.,OTTEN,S. J.,WESSEL,W. A. J.,HAUGAN,T. J.,LAAN,D. C., andNIJHUIS,A.Experiments and FE modeling of stress-strain state in ReBCO tape under tensile, torsional and transverse load.Superconductor Science and Technology,28,055006(2015)
16 TANG,S.,PENG,X., andYONG,H.Numerical simulation of the mechanical behavior of superconducting tape in conductor on round core cable using the cohesive zone model.Applied Mathematics and Mechanics (English Edition),44(9),1511-1532(2023)
17 HARTNETT,W. N.,RAMIREZ,J.,OLSON,T. E. R.,HUPP,C. T.,JEWELL,M. C.,KNOLL,A. R.,HAZELTON,D. W., andZHANG,Y.Characterization of edge damage induced on REBCO superconducting tape by mechanical slitting.Engineering Research Express,3,035007(2021)
18 ZHOU,Y. H.,LIU,C.,SHEN,L., andZHANG,X.Probing of the internal damage morphology in multilayered high-temperature superconducting wires.Nature Communications,12,3110(2021)
19 GAO,P.,MAO,J.,CHEN,J.,WANG,X., andZHOU,Y.Electromechanical degradation of REBCO coated conductor tapes under combined tension and torsion loading.International Journal of Mechanical Sciences,223,107314(2022)
20 ZHANG,X.,SUO,H.,ZHANG,Z.,STUART,C. W.,MA,L.,LIU,M.,JI,Y.,WANG,X.,LI,M., andWANG,Q.Synergetic evolution of the microscopic crystal orientation and macroscopic superconducting properties of REBCO tape under sever deformation.Acta Materialia,244,118586(2023)
21 TAKAHASHI,S.,SUETOMI,Y.,TAKAO,T.,YANAGISAWA,Y.,MAEDA,H.,TAKEDA,T., andSHIMOYAMA,J.Hoop stress modification, stress hysteresis and degradation of a REBCO coil due to the screening current under external magnetic field cycling.IEEE Transactions on Applied Superconductivity,30,4602607(2020)
22 WU,J.,LIU,D.,ZHANG,X., andYONG,H.Mechanical response of conductor on round core (CORC) cables under electromagnetic force.Acta Mechanica Solida Sinica,36,418-427(2023)
23 YANG,Z.,SONG,P.,GUAN,M.,FENG,F., andQU,T.Critical current degradation and delamination crack observation of epoxy-coated REBCO superconducting tapes after thermal cycles in liquid nitrogen.Ceramics International,47,29824-29831(2021)
24 DIAZ,M. A., andSHIN,H. S.Characterization of electromechanical delamination behaviors in practical REBCO coated conductor tapes under transverse tension at 77 K.IEEE Transactions on Applied Superconductivity,33,6601105(2023)
25 GAO,P.,GENG,X.,ZHANG,H.,MAN,G., andWANG,X.Measurement of transverse tensile interfacial strength of REBCO-coated conductors.Acta Mechanica Solida Sinica,35,40-50(2022)
26 TAKEMATSU,T.,HU,R.,TAKAO,T.,YANAGISAWA,Y.,NAKAGOME,H.,UGLIETTI,D.,KIYOSHI,T.,TAKAHASHI,M., andMAEDA,H.Degradation of the performance of a YBCO-coated conductor double pancake coil due to epoxy impregnation.Physica C: Superconductivity and Its Applications,470,674-677(2010)
27 MATSUDA,T.,OKAMURA,T.,HAMADA,M.,MATSUMOTO,S.,UENO,T.,PIAO,R.,YANAGISAWA,Y., andMAEDA,H.Degradation of the performance of an epoxy-impregnated REBCO solenoid due to electromagnetic forces.Cryogenics,90,47-51(2018)
28 NIU,M.,XIA,J., andYONG,H.Numerical analysis of the electromechanical behavior of high-field REBCO coils in all-superconducting magnets.Superconductor Science and Technology,34,115005(2021)
29 ZHOU,W., andZHOU,Y.Electric-magnetic-force characteristics of rare earth barium copper oxide superconductor high-field coils based on screening effect and strain sensitivity.Applied Mathematics and Mechanics (English Edition),43(8),1249-1268(2022)
30 KAJITA,K.,IGUCHI,S.,XU,Y.,NAWA,M.,HAMADA,M.,TAKAO,T.,NAKAGOME,H.,MATSUMOTO,S.,NISHIJIMA,G.,SUEMATSU,H.,TAKAHASHI,M., andYANAGISAWA,Y.Degradation of a REBCO coil due to cleavage and peeling originating from an electromagnetic force.IEEE Transactions on Applied Superconductivity,26,4301106(2016)
31 ALLEN,N. C.,CHIESA,L., andTAKAYASU,M.Structural modeling of HTS tapes and cables.Cryogenics,80,405-418(2016)
32 GAO,P.,GUAN,M.,WANG,X., andZHOU,Y.Electromagnetic-thermal-structure multi-layer nonlinear elastoplastic modelling study on epoxy-impregnated REBCO pancake coils in high-field magnets.Superconductivity,1,100002(2022)
33 LIU,D.,WEI,W.,TANG,Y.,YONG,H., andZHOU,Y.Delamination behaviors of an epoxy-impregnated REBCO pancake coil during a quench.Engineering Fracture Mechanics,281,109074(2023)
34 KANG,X.,TONG,Y.,WU,W., andWANG,X.Transient multi-physics behavior of an insert high temperature superconducting no-insulation coil in hybrid superconducting magnets with inductive coupling.Applied Mathematics and Mechanics (English Edition),44(2),255-272(2023)
35 GAO,P.,ZHANG,H., andWANG,X.Numerical investigation on delamination induced by thermal mismatch in epoxy impregnated REBCO pancake coils.IEEE Transactions on Applied Superconductivity,30(4),4603005(2020)
36 GAO,P.,WEI,X.,WU,B.,XIN,C.,LIAO,T.,WU,W., andGUAN,M.Numerical investigation on decreasing radial stress in epoxy impregnated REBCO pancake coils by overband.Cryogenics,103,102971(2019)
37 LIU,D.,LI,D.,ZHANG,W.,YONG,H., andZHOU,Y.Electromagnetic-thermal-mechanical characteristics with active feedback control in a high-temperature superconducting no-insulation magnet.Science China-Physics, Mechanics & Astronomy,65,294612(2022)
38 WANG,Y., andJING,Z.Multiscale modelling and numerical homogenization of the coupled multiphysical behaviors of high-field high temperature superconducting magnets.Composite Structures,313,116863(2023)
39 KOKKINOS,C.,APOSTOLIDIS,I.,CARMICHAEL,J.,GORTSAS,T.,KOKKINOS,S.,LOUKAS,K.,NOVITSKI,L.,POLYZOS,D.,RODAPOULOS,D.,SCHOERLING,D.,TOMMASINI,D., andZLOBIN,A. V.FEA model and mechanical analysis of the Nb3Sn 15-T dipole demonstrator.IEEE Transactions on Applied Superconductivity,28,4007406(2018)
40 SARASOLA,X.,BRUZZONE,P.,BOTTURA,L.,FERRACIN,P.,ARAUJO,D. M.,RIJI,G.,CAU,F.,PORTONE,A.,TESTONI,P.,PRESTEMON,S.,SABBI,G., andMINERVINI,J.Magnetic and mechanical design of a 15-T large aperture dipole magnet for cable testing.IEEE Transactions on Applied Superconductivity,29,4001405(2019)
41 BERROSPE-JUAREZ,E.,TRILLAUD,F.,ZERME NO,V. M. R., andGRILLI,F.Advanced electromagnetic modeling of large-scale high-temperature superconductor systems based on H and T-A formulations.Superconductor Science and Technology,34,044002(2021)
42 RHYNER,J.Magnetic properties and AC-losses of superconductors with power law current-voltage characteristics.Physica C: Superconductivity,212,292-300(1993)
43 HILTON,D. K.,GAVRILIN,A. V., andTROCIEWITZ,U. P.Practical fit functions for transport critical current versus field magnitude and angle data from (RE)BCO coated conductors at fixed low temperatures and in high magnetic fields.Superconductor Science and Technology,28,074002(2015)
44 SHEN,X.,ZHANG,S.,LIU,X.,GONG,L., andDONG,S.Prediction of the thermo-mechanical properties of the SiCf/SiC RVE model via FEM and asymptotic homogenization method: process and implementation details.Archives of Computational Methods in Engineering,28,3067-3085(2021)
45 CHARALAMBAKIS,N.Homogenization techniques and micromechanics: a survey and perspectives.ASME Applied Mechanics Reviews,63,030803(2010)
46 WANG,X.,TSUJI,Y.,ISHIYAMA,A.,YAMAKAWA,H.,WATANABE,T., andNAGAYA,S.Experiment and numerical analysis on the YOROI structure for high-strength REBCO coil.IEEE Transactions on Applied Superconductivity,26,4600804(2016)
47 HU,Y.,HE,Z., andXUAN,H.Impact resistance study of three-dimensional orthogonal carbon fibers/BMI resin woven composites.Materials,13,4376(2020)
48 LIU,J. T.,CAI,H. N.,WANG,F. C., andFAN,Q. B.Multiscale numerical simulation of the shaped charge jet generated from tungsten-copper powder liner.Journal of Physics: Conference Series,419,012045(2013)
49 IWASA,Y., andHAHN,S.First-cut design of an all-superconducting 100-T direct current magnet.Applied Physics Letters,103,253507(2013)
50 GAO,P.,GENG,X.,MAN,G., andWANG,X.Measurement of shear delamination strength of REBCO coated conductors.IEEE Transactions on Applied Superconductivity,32,6600305(2021)
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