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Development of the internal matrix reinforcement bronze processed Nb_3Sn multicore wires using Cu-Sn-In ternary alloy matrix for fusion magnet application

机译:使用Cu-Sn-In三元合金基体开发内部基体增强青铜处理的Nb_3Sn多芯线,用于融合磁体应用

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We approached the solid solution strength process for the high mechanical strength bronze processed Nb3Sn wires by the internal matrix reinforcement. Previously, we already reported the mechanical strength improvement of the Nb3Sn wire by the increasing of the amount of Zn element composition of the Cu-Sn-Zn ternary alloy matrix. However, there was also a trade-off relationship between the Sn and Zn compositions of the ternary matrix on the mechanical strength and superconducting properties. A Cu-Sn system ternary alloy containing Indium (In) element as a solute element (Cu-Sn-In), which is thought to be more effective solute element compared with Zn, was casted in order to improve mechanical strength beyond Cu-Sn-Zn ternary alloy matrix samples on the solid solution strength process. We fabricated various Cu-Sn-In-(Ti)/Nb precursor wires having 19 Nb multicores. The In element remained in the matrix after the Nb3Sn synthesis through the diffusion reaction, and then the Vickers hardness of the Cu-Sn-In matrices after the Nb3Sn synthesis heat treatment was higher than that of the conventional bronze and Cu-Sn-Zn matrices. We also confirmed that critical current density (J(c)) property of the Nb3Sn wires using Cu-Sn-In-(Ti) was drastically increased at low and middle magnetic field below 15 T. These suggested that the In solute element in the matrix contributed the solid solution strengthening of the matrix after Nb3Sn synthesis and also improve J(c)-B performance.
机译:通过内部基体增强,我们对高机械强度青铜加工的Nb3Sn焊丝进行了固溶强度处理。以前,我们已经报道了通过增加Cu-Sn-Zn三元合金基体中Zn元素组成的数量来提高Nb3Sn线的机械强度。然而,三元基体的Sn和Zn组成之间在机械强度和超导性能上也存在折衷关系。铸造含有铟(In)元素作为溶质元素(Cu-Sn-In)的Cu-Sn系三元合金,与Zn相比,它被认为是比Zn更有效的溶质元素,目的是提高Cu-Sn以外的机械强度-Zn三元合金基体样品的固溶强度过程。我们制造了具有19 Nb多芯的各种Cu-Sn-In-(Ti)/ Nb前驱线。 Nb3Sn合成后,通过扩散反应将In元素保留在基体中,然后Nb3Sn合成热处理后的Cu-Sn-In基体的维氏硬度高于传统的青铜和Cu-Sn-Zn基体。我们还证实,在15 T以下的中低磁场下,使用Cu-Sn-In-(Ti)的Nb3Sn线的临界电流密度(J(c))特性急剧增加。这表明, Nb3Sn合成后,基体有助于固溶体的强化,并且还改善了J(c)-B的性能。

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