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Resistively insulated (RI) REBCO magnets feature short ramp times and low ramp losses while maintaining the advantages of no-insulation coils with high engineering current density and tolerance for defects in the REBCO conductor. Control of…

In a no-insulation (NI) REBCO magnet, the turn-to-turn contact resistivity (Rc) determines its quench self-protection capability, charging delay time and the energy loss during field ramps. Therefore it is critically important to be able to…

应用物理 · 物理学 2020-04-22 Jun Lu , Yan Xin , Eric Lochner , Kyle Radcliff , Jeremy Levitan

Rare Earth Barium Copper Oxide (REBCO) coated conductors (CCs) have emerged for future high field magnets in fields and temperatures inaccessible for Nb based superconductors. However, their exceptionally high current densities pose…

Unlike low temperature superconducting cables, there is so far no perfect solution for REBCO coated conductors to form a fully transposed high current cable. Every REBCO cable concept must import a stack of tapes to achieve an operating…

应用物理 · 物理学 2023-02-15 Rui Kang , Juan Wang , Ze Feng , Qingjin Xu

The REBCO coated conductor has the potential to be widely used in ultrahigh field magnets. It is well known, however, that it is not mechanically strong against delamination in the direction normal to its surface due to its intrinsic…

超导电性 · 物理学 2025-12-19 Jun Lu , Iain Dixon , Kwangmin Kim , Yan Xin , Hongyu Bai

Advances on no-insulation REBCO coil technology has made understanding and controlling contact resistivity increasingly im-portant. Praffin (wax) impregnation is a process that has been used for improving mechanical stability of insulated…

超导电性 · 物理学 2023-02-15 Jeremy W. Levitan , Jun Lu , Brent Jarvis , Hongyu Bai

No-insulation (NI) coils are known for their high thermal stability and self-protection features due to turn-to-turn contacts. Parallel co-winding is a promising method to reduce the charging delay of NI coils while maintaining thermal…

应用物理 · 物理学 2025-07-14 Yulong Liu , Peng Song , Mianjun Xiao , Liangjun Shao , Ziyang Xu , Cedric Korte , Timing Qu

Residual resistance ratio (RRR) of Cu stabilizer in REBCO coated conductor is an important design parameter for REBCO magnets. In this work, we measured RRR of electroplated Cu stabilizer in commercial REBCO tapes. Over 130 samples were…

Development of REBCO cables that carry high electrical current in high magnetic field is crucial for future large-scale magnet applications. This experimental work presents the critical current measurements of two different REBCO cables by…

超导电性 · 物理学 2023-02-20 H. Yu , J. Lu , J. D. Weiss , D. C. van der Laan

Stacks of REBCO tapes can trap large amounts of magnetic fields and can stay magnetized for long periods of times. This makes them an interesting option for major engineering applications such as motors, generators and magnetic bearings.…

应用物理 · 物理学 2020-05-19 Anang Dadhich , Enric Pardo , Milan Kapolka

Rare-earth-barium-copper-oxide (REBCO) tapes are now available from several industrial manufacturers and are very promising conductors in high field applications. Due to diverging materials and deposition processes, these manufacturers'…

超导电性 · 物理学 2015-02-25 Christian Barth , Giorgio Mondonico , Carmine Senatore

REBCO coated conductor has great potential to be used in ultra-high field magnets. Commercial REBCO tapes are strong in the longitudinal direction but prone to delamination by tensile stress in the thickness direction. For high field magnet…

超导电性 · 物理学 2025-07-30 Jun Lu , Jeremy Levitan , Yu Suetomi , Iain Dixon , Jan Jaroszynski

REBCO tape has successfully used in ultra-high field magnets. Mechanically, it is very strong in its length direction but is prone to delamination in the thickness direction. In an epoxy impregnated REBCO magnet, thermal strain alone could…

超导电性 · 物理学 2024-10-15 Jun Lu , Jeremy Levitan , Aliya Hutley , Hongyu Bai

Calorimetric measurements of AC loss and hence interstrand contact resistance (ICR), were measured on three samples of Rutherford cable wound with Cu-stabilized jelly-roll type unplated Nb3Al strand. One of the cable types was furnished…

超导电性 · 物理学 2018-07-04 M. D. Sumption , R. M. Scanlan , A. Nijhuis , E. W. Collings

Critical current (Ic) of REBCO tapes is strongly aniso-tropic with respect to the orientation of the magnetic field. Usually, Ic is at maximum when the ab-plane of the REBCO crystal is parallel to the magnetic field. In commercial REBCO…

超导电性 · 物理学 2023-05-03 Jun Lu , Yan Xin , Yifei Zhang , Hongyu Bai

REBCO high-temperature superconductors are promising for fully superconducting high-field magnets, including ultra-high field magnets. Non-insulated (NI) and metal-insulated (MI) windings are a good solution for protection against…

应用物理 · 物理学 2025-02-18 Enric Pardo , Philippe Fazilleau

Scaling relations describing the electromagnetic behaviour of coated conductors (CCs) greatly simplify the design of REBCO-based devices. The performance of REBCO CCs is strongly influenced by fabrication route, conductor architecture and…

超导电性 · 物理学 2015-12-08 Carmine Senatore , Christian Barth , Marco Bonura , Miloslav Kulich , Giorgio Mondonico

High temperature superconducting motors are very promising for hydrogen-electric aircraft thanks to their high specific power, specific torque, and efficiency. High temperature superconductor REBCO offer high cryogenic flexibility, but a…

应用物理 · 物理学 2026-02-24 Enric Pardo , Alexandre Colle , Remi Dorget , Mohamed Essam Ahmed

REBCO coated conductor is a high temperature superconductor that has a wide range of applications, one of which is the current leads of magnet systems. In the design of current leads, it is crucial to minimize their thermal conduction while…

超导电性 · 物理学 2024-10-15 Jun Lu , Yan Xin , Yifei Zhang

The scaling of transistors to sub-10 nm dimensions is strongly limited by their contact resistance (Rc). Here we present a systematic study of scaling MoS2 devices and contacts with varying electrode metals and controlled deposition…

介观与纳米尺度物理 · 物理学 2016-06-22 Chris D. English , Gautam Shine , Vincent E. Dorgan , Krishna C. Saraswat , Eric Pop
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