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相关论文: Magnetic shielding in MgB2/Fe superconducting wire…

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We have fabricated a series of iron-sheathed superconducting wires prepared by the powder-in-tube technique from (MgB_2)_{1-x}:(Mg+2B)_x initial powder mixtures taken with different proportions, so that x varies from 0 to 1. It turned out…

超导电性 · 物理学 2007-05-23 Alexey V Pan , Sihai Zhou , Huakun Liu , Shixue Dou

We theoretically predict that the critical current $I_c$ and magnetization $M$ of hybrid superconductor/normal-metal (SN) strip may have nonmonotonous dependence on perpendicular magnetic field - so called peak effect. In contrast to…

超导电性 · 物理学 2022-04-13 P. M. Marychev , D. Yu. Vodolazov

The magnetoresistivity and critical current density of well characterized Si-nanoparticle doped and undoped Cu-sheathed MgB$_{2}$ tapes have been measured at temperatures $T\geq 28$ K in magnetic fields $B\leq 0.9$ T. The irreversibility…

超导电性 · 物理学 2009-11-10 I. Kusevic , E. Babic , O. Husnjak , S. Soltanian , X. L. Wang , S. X. Dou

Superconducting performance is tunable not only via chemical modification or defect engineering, but also through external parameters such as pressure, though this method remains less readily accessible. In this work, we study how…

超导电性 · 物理学 2026-01-06 Jiangteng Liu , Alex Lopez , Zhaoyu liu , Jiun-Haw Chu , Serena Eley

A relatively high critical temperature, Tc, approaching 40 K, places the recently-discovered superconductor magnesium diboride (MgB2) intermediate between the families of low- and copper-oxide-based high-temperature superconductors (HTS).…

超导电性 · 物理学 2009-11-07 Y. Bugoslavsky , L. F. Cohen , G. K. Perkins , M. Polichetti , T. J. Tate , R. Gwilliam , A. D. Caplin

We have studied the evolution of superconducting and normal state properties of neutron irradiated Mg(B$_{.962}$C$_{.038}$)$_2$ wire segments as a function of post exposure annealing time and temperature. The initial fluence fully…

Recent theoretical and experimental research on low-bulk-pinning superconducting strips has revealed striking dome-like magnetic-field distributions due to geometrical edge barriers. The observed magnetic-flux profiles differ strongly from…

超导电性 · 物理学 2010-08-31 Andrey A. Elistratov , Denis Yu. Vodolazov , Igor L. Maksimov , John R. Clem

The recently-discovered MgB2 super-conductor has a transition temperature Tc approaching 40K, placing it intermediate between the families of low and high temperature super-conductors (LTS and HTS). In practical applications,…

超导电性 · 物理学 2007-05-23 Y. Bugoslavsky , G. K. Perkins , X. Qi , L. F. Cohen , A. D. Caplin

Magnetic field of up to 12 T was applied during the sintering process of pure MgB2 and carbon nanotube (CNT) doped MgB2 wires. We have demonstrated that magnetic field processing results in grain refinement, homogeneity and significant…

超导电性 · 物理学 2009-11-11 S. X. Dou , W. K. Yeoh , O. Shcherbakova , J. Horvat , M. J. Qin , Y. Li , Z. M. Ren , P. Munroe

We prepared and characterized monofilamentary MgB2 wires with a mechanically reinforced composite sheath of Ta(Nb)/Cu/steel, which leads to dense filaments and correspondingly high transport currents up to Jc = 10^5 A/cm^2 at 4.2 K, self…

超导电性 · 物理学 2009-11-07 W. Goldacker , S. I. Schlachter , S. Zimmer , H. Reiner

Using small-angle neutron scattering we have studied the vortex lattice in superconducting MgB$_2$ with the magnetic field applied along the $c$-axis, doped with either manganese or carbon to achieve a similar suppression of the critical…

In this paper we have investigated the effects of sintering time and temperature on the formation and critical current densities of Fe-clad MgB2 wires. MgB2 wires were fabricated using the powder-in-tube process and sintered for different…

超导电性 · 物理学 2015-06-24 X. L. Wang , S. Soltanian , J. Horvat , M. J. Qin , H. K. Liu , S. X. Dou

We have studied the phase diagram of MgB$_2$ superconductor using a single crystal for ${\bf H}\parallel c$-axis. For the first time we report the existence of peak effect in the screening current in MgB$_{2}$ single crystal for ${\bf…

超导电性 · 物理学 2009-11-07 M. Pissas , S. Lee , A. Yamamoto , S. Tajima

We study the behavior of the critical current, Ic(H,T), of pure and Fe doped NbSe2 crystals in the denominated disordered vortex region, limited by the critical field Hc2(T) and the field Hp(T) at which the peak effect in Ic(H,T) is…

超导电性 · 物理学 2009-11-07 M. Menghini , Yanina Fasano , F. de la Cruz

Measurements of the superconducting upper critical field, H_{c2}, and critical current density, J_c, have been carried out for MgB_2 doped with Ti and/or C in order to explore the problems encountered if these dopants are used to enhance…

Superconducting $MgB_2$ wires in Cu, GlidCop or Monel sheath with Nb or Fe barrier are prepared. Wires vary by sheath material, number of superconducting cores and their chemical composition. Wires are HIP-ed (Hot Isostatic Pressing) at…

超导电性 · 物理学 2014-06-10 T. Cetner , A. Morawski , M. Rindfleisch , M. Tomsic , A. Presz , D. Gajda , A. Zaleski , O. Tkachenko

The effect of doping MgB2 with carbon nanotubes on transition temperature, lattice parameters, critical current density and flux pinning was studied for MgB2-xCx with x = 0, 0.05, 0.1, 0.2 and 0.3. The carbon substitution for B was found to…

超导电性 · 物理学 2007-05-23 S. X. Dou , W. K. Yeoh , J. Horvat , M. Ionescu

A review of current developments in the study of chemical doping effect on the superconducting properties of MgB2 wires and tapes is presented, based on the known literature data and our own results. The critical current density of MgB2 can…

超导电性 · 物理学 2015-05-14 Zhaoshun Gao , Yanwei Ma , Dongliang Wang , Xianping Zhang

The enhancement of the critical current density (Jc(H)) of carbon and nano-SiC doped MgB2 is presented and compared. The upper critical field (Hc2) being determined from resistivity under magnetic field experiments is though improved for…

Recently, we showed that the self-field transport critical current, Ic(sf), of a superconducting wire can be defined in a more fundamental way than the conventional (and arbitrary) electric field criterion, Ec = 1 microV/cm. We defined…