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Novel Type of Aluminum-Alloy Jacketed ${rm Nb}_{3}{rm Sn}$ Superconductors Manufactured by Friction Stir Welding Technique

机译:摩擦搅拌焊接技术制造的新型新型铝合金外套$ {rm Nb} _ {3} {rm Sn} $超导体

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New process to compose a reacted ${rm Nb}_{3}{rm Sn}$ superconducting cable with aluminum-alloys has been developed by using friction stir welding (FSW) technique. The FSW joining process, which takes place in the solid phase below the melting point of the materials, has considerable advantages such as a high strength of welding zone and much lower distortion due to both small heat affects and reliable control of joining depth as compared with conventional welding method. In order to realize practical aluminum-alloy jacketed ${rm Nb}_{3}{rm Sn}$ superconductors, we have carried out elemental researches by using FSW technique. For a fabrication of aluminum-alloy jacketed ${rm Nb}_{3}{rm Sn}$ superconductor of a dimension $17 {rm mm}^{rm w}times 4.9 {rm mm}^{rm t}$ a Rutherford type superconducting cable having 18 reacted ${rm Nb}_{3}{rm Sn}$ strands of diameter 1.0 mm was assembled into a set of channel and fitting-cover made of aluminum-alloy A6061-T6 with filling material indium. Then, their joining parts were connected by using the FSW technique. The measurement on critical current $(I_{c})$ of the fabricated ${rm Nb}_{3}{rm Sn}$ superconductor achieved over 9.5 kA at 8 T, 4.26 K even after bending with a radius of 150 mm in a flatwise direction, which showed no degradation in comparison with $I_{c}$ values multiplied by number of strands in the cable. As the results, we succeeded in developing novel type of aluminum-alloy j- cketed ${rm Nb}_{3}{rm Sn}$ superconductors manufactured by FSW technique, which have large current capacity, sufficient allowable bending strains for a coil winding and improved contact between a cable and an aluminum-alloy jacket. The developed superconductors will be applicable to react-and-wind superconducting magnets having very large current at high magnetic field such as nuclear fusion reactors and detectors for high energy physics of the next generation.
机译:通过使用搅拌摩擦焊(FSW)技术,开发了一种新的方法来构成由反应的$ {rm Nb} _ {3} {rm Sn} $与铝合金组成的超导电缆。 FSW焊接工艺在低于材料熔点的固相中进行,具有相当大的优势,例如,焊接区的强度高,并且由于热影响小以及与焊接深度相比的可靠控制,焊接区的变形小得多。常规的焊接方法。为了实现实用的铝合金护套$ {rm Nb} _ {3} {rm Sn} $超导体,我们通过使用FSW技术进行了基础研究。用于制造尺寸为$ 17 {rm mm} ^ {rm w}乘以4.9 {rm mm} ^ {rm t} $尺寸的铝套$ {rm Nb} _ {3} {rm Sn} $超导体将具有18个反应的直径为1.0 mm的$ {rm Nb} _ {3} {rm Sn} $股绞线的超导型超导电缆组装到一组通道中,该通道由铝合金A6061-T6和填充材料铟制成。然后,使用FSW技术将其连接零件连接起来。即使在弯曲半径为150 mm之后,在8 T,4.26 K时,对制造的$ {rm Nb} _ {3} {rm Sn} $超导体的临界电流$(I_ {c})$的测量也达到了9.5 kA以上在水平方向上,与$ I_ {c} $值乘以电缆中的股数相比,该值没有降低。结果,我们成功开发了通过FSW技术制造的新型铝合金护套$ {rm Nb} _ {3} {rm Sn} $超导体,该超导体具有大的电流容量和足够的线圈允许弯曲应变电缆和铝护套之间的缠绕和改善的接触。研制的超导体将适用于在高磁场下具有很大电流的反应和风超导磁体,例如核聚变反应堆和下一代高能物理探测器。

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