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High Strength Silver/Alumina Sheath for Bismuth Strontium Calcium Copper Oxide Conductor.

机译:铋锶钙铜氧化物导体的高强度银/氧化铝护套。

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摘要

Ongoing advances in high energy physics depend on developing high field superconducting (HTS) magnets capable of producing fields in excess of 20 T. These HTS magnets have the potential to be transformative for a variety of applications, including magnets for future high-energy physics accelerators. Neither NbTi nor Nb3Sn can provide fields greater than 18 T in dipole magnets or 20-22 T in solenoids, so future devices require HTS materials capable of generating high magnetic field. The potential candidates are YBa2Cu 3O7-delta (YBCO) coated conductor tapes and Bi2Sr 2CaCu2O8+x (Bi2212) round wire. YBCO tapes are highly anisotropic, constraining magnet design and adding complexity to its fabrication. Bi2212 is the only HTS material available as an isotropic multifilamentary round wire with high critical current density (Jc), which is preferred for magnets.;Ag/0.20wt%Mg is the most commonly used alloy for the outer sheath of Bi2212 wire. Despite the recent successes with Ag/0.20wt%Mg sheathed Bi2212, the use of Ag/0.20wt%Mg for the outer alloy sheath poses some challenges and limitations, including increased difficulty in conductor manufacturing. The alloy has low strength in the un-reacted condition and loses ductility rapidly as it is drawn, necessitating frequent anneals. Annealing restores ductility, but it must be done in an inert atmosphere or MgO will precipitate on the grain boundaries and embrittle the alloy, making further cold working impossible.;In this work, we report on dispersion-strengthened (DS) Ag/Al alloys with various compositions as potential candidates for sheathing Bi2212 wire. The fabrication of Ag/Al alloys by powder metallurgy, their internal oxidation heat treatment to form DS Ag/Al alloy, the relationship between microstructure, physical and mechanical properties of the DS Ag/Al alloys are studied in detail. Next, the Ag/Al alloys are used for making Bi2212 wire. Heat treatment, microstructure, mechanical and electrical properties of Bi2212/AgAl wires having various Al content are studied to improve the strain sensitivity of Bi2212 after partial melt processing (PMP). The properties of Ag/Al alloys and Bi2212/AgAl wires are compared with Ag/0.20wt%Mg alloy and Bi2212/AgMg wire.;The non-optimized DS Ag/0.50wt%Al alloy showed high yield strength and tensile strength in the annealed condition at both room temperature and 4.0 K. The DS Ag/0.50wt%Al alloy also showed significant ductility at 4.0 K, i.e., a temperature at which Ag and Ag/0.20wt%Mg have little measurable ductility. Transport measurements showed that the Bi2212/Ag0.50Al wires outperform Bi2212/Ag0.20Mg wires by nearly 50%, indicating that the Al2O3 precipitates in the sheath have neither any significant effect on oxygen solubility or oxygen diffusion through the sheath, nor any detrimental reactions with the Bi2212 filaments. Tensile studies showed that the as-drawn Bi2212/Ag0.50Al wire has very high strength. After PMP, the Bi2212/Ag0.50Al wire not only had yield and tensile strength that were slightly higher than those of Bi2212/Ag0.20Mg wire but also exhibited > 2% elongation, which was several times higher than that of Bi2212/Ag0.20Mg. The internal oxidation heat treatment was optimized to maximize the strength and modulus of DS Ag/Al alloy and it was found that the Ag/Al alloy oxidized at 675-700°C for 4 hours gave the highest tensile strength and hardness after PMP. In addition, this alloy could retain its fine grain size and strength during PMP in oxygen.;Scanning transmission electron microscope studies demonstrated the formation of nanosize MgO and Al2O3 precipitates via internal oxidation. Large spherical MgO precipitates were formed on the Ag grain boundaries of Ag/0.20wt%Mg alloy sheath, whereas the Al2O3 precipitates were distributed homogenously in the DS Ag/Al alloy. These large MgO precipitates made the Bi2212/Ag0.20Mg wire more brittle than Bi2212/AgAl wire. EDS elemental mappings demonstrated that less Cu diffused-out of the Bi2212 filament cores in the Bi2212/Ag0.75Al wire during PMP than that of Bi2212/Ag0.20Mg.
机译:高能物理学的不断进步取决于开发能够产生超过20 T磁场的高场超导(HTS)磁体。这些HTS磁体具有在各种应用中具有变革性的潜力,包括用于未来高能物理加速器的磁体。 NbTi和Nb3Sn都不能在偶极磁体中提供大于18 T的磁场,在螺线管中也不能提供20-22 T的磁场,因此未来的设备需要能够产生高磁场的HTS材料。潜在的候选材料是YBa2Cu3O7-δ(YBCO)涂层的导体带和Bi2Sr 2CaCu2O8 + x(Bi2212)圆线。 YBCO磁带具有高度的各向异性,从而限制了磁体的设计并增加了其制造的复杂性。 Bi2212是唯一可作为具有高临界电流密度(Jc)的各向同性多丝圆线的HTS材料,对于磁体来说是首选.Ag / 0.20wt%Mg是Bi2212线外护套最常用的合金。尽管最近用Ag / 0.20wt%Mg包覆的Bi2212取得了成功,但将Ag / 0.20wt%Mg用作外合金护套却带来了一些挑战和局限性,包括导体制造难度的增加。该合金在未反应状态下强度低,并且在拉伸时会迅速失去延展性,因此需要频繁退火。退火可以恢复延展性,但必须在惰性气氛中进行,否则MgO会在晶界上沉淀并使合金脆化,从而无法进行进一步的冷加工。;在这项工作中,我们报道了弥散强化的(DS)Ag / Al合金具有各种成分,可作为Bi2212护套的潜在候选材料。详细研究了粉末冶金法制备Ag / Al合金,对其内部进行氧化热处理以形成DS Ag / Al合金,研究了DS Ag / Al合金的微观结构,物理机械性能之间的关系。接下来,将Ag / Al合金用于制造Bi2212线。研究了具有不同Al含量的Bi2212 / AgAl线材的热处理,显微组织,机械和电性能,以提高部分熔融加工(PMP)后Bi2212的应变敏感性。将Ag / Al合金和Bi2212 / AgAl焊丝的性能与Ag / 0.20wt%Mg合金和Bi2212 / AgMg焊丝的性能进行了比较。在室温和4.0 K的退火条件下。DS Ag / 0.50wt%Al合金在4.0 K,即Ag和Ag / 0.20wt%Mg几乎没有可测量的延性的温度下也显示出显着的延展性。传输测量表明,Bi2212 / Ag0.50Al焊丝的性能优于Bi2212 / Ag0.20Mg焊丝的近50%,这表明Al2O3沉淀在护套中对氧气的溶解度或氧气在护套中的扩散没有明显影响,也没有有害的反应Bi2212灯丝。拉伸研究表明,拉伸后的Bi2212 / Ag0.50Al焊丝具有很高的强度。 PMP后,Bi2212 / Ag0.50Al焊丝不仅具有比Bi2212 / Ag0.20Mg焊丝稍高的屈服强度和拉伸强度,而且伸长率大于2%,是Bi2212 / Ag0的几倍。 20毫克优化内部氧化热处理以最大化DS Ag / Al合金的强度和模量,发现在675-700°C下氧化4小时的Ag / Al合金在PMP之后具有最高的拉伸强度和硬度。此外,该合金还可以在氧气中PMP期间保持其细小的晶粒尺寸和强度。扫描透射电子显微镜研究表明,通过内部氧化形成了纳米级MgO和Al2O3沉淀。在Ag / 0.20wt%Mg合金外皮的Ag晶界上形成大的球形MgO析出物,而Al2O3析出物在DS Ag / Al合金中均匀分布。这些大量的MgO沉淀使Bi2212 / Ag0.20Mg焊丝比Bi2212 / AgAl焊丝更脆。 EDS元素映射显示,在PMP期间,Bi2212 / Ag0.75Al丝中Bi2212丝芯中的Cu扩散出的铜比Bi2212 / Ag0.20Mg少。

著录项

  • 作者

    Kajbafvala, Amir.;

  • 作者单位

    North Carolina State University.;

  • 授予单位 North Carolina State University.;
  • 学科 Engineering Materials Science.;Physics High Temperature.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 202 p.
  • 总页数 202
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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