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F Wan

Publications and source records attributed to F Wan.

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Ultra-low magnetization and hysteresis loss in APC Nb3Sn superconductors

For the accelerator magnets of the next hadron collider, reducing superconductor persistent-current magnetization is not only important for achieving the desired field quality, but also crucial for its sustainability because the magnetization loss is the major heat load to the magnet cold mass. For conventional Nb3Sn conductors this requires reduction of effective subelement size (Deff). For the restacked-rod-process (RRP) conductors a physical subelement size (Dsub) as small as 35 um (corresponding to a Deff close to 45 um) can be reached, but at a significant price in Jc. Another way to reduce the magnetization is by introducing artificial pinning centers (APC) using the internal oxidation approach. APC conductors outperform conventional Nb3Sn wires in two aspects: 1) higher Jc at high fields, and 2) much lower Jc and magnetization at low fields (e.g., below 5 T). In this work we explored the fabricability of APC wires with small Dsub. A 180-stack APC wire was produced and drawn to 0.7- and 0.5-mm diameters with good quality, with Dsubs of 34 and 24 um (Deffs of 36 and 25 um), respectively. For the 34-um-Dsub wire, its non-Cu Jc is higher than that of an RRP wire used for the High-Luminosity Large Hadron Collider (HL-LHC) project above 13 T (e.g., 36% higher at 4.2 K, 18 T), while its non-Cu magnetization at 1 T, {\Delta}M(1 T), is only 29% of the RRP wire. Its non-Cu hysteresis loss for a cycle between 1 and 14 T, Qh(1-14 T), is 37% of the RRP wire. For the 24-um-Dsub wire, its non-Cu Jc surpasses the HL-LHC RRP wire above 17.5 T, while its {\Delta}M(1 T) and Qh(1-14 T) are only 17% and 23% of the RRP wire, respectively. Its non-Cu Qh(+/-3 T) even meets the specification of the International Thermonuclear Experimental Reactor (ITER) project.

cond-mat.supr-con

APC Nb$_3$Sn superconductors based on internal oxidation of Nb-Ta-Hf alloys

In the last few years, a new type of Nb$_3$Sn superconducting composite, containing a high density of artificial pinning centers (APC) generated via an internal oxidation approach, has demonstrated a significantly superior performance relative to present, state-of-the-art commercial Nb$_3$Sn conductors. This was achieved via the internal oxidation of Nb-4at.%Ta-1at.%Zr alloy. On the other hand, our recent studies have shown that internal oxidation of Nb-Ta-Hf alloys can also lead to dramatic improvements in Nb$_3$Sn performance. In this work we follow up this latter approach, fabricating a 61-stack APC wire based on the internal oxidation of Nb-4at.%Ta-1at.%Hf alloy, and compare its critical current density (Jc) and irreversibility field (Birr) with APC wires made using Nb-4at.%Ta-1at.%Zr. A second goal of this work was to improve the filamentary design of APC wires in order to improve their wire quality and electromagnetic stability. Our new modifications have led to significantly improved RRR and stability in the conductors, while still keeping non-Cu Jc at or above the FCC Jc specification. Further improvement via optimization of the wire recipe and design is ongoing. Finally, additional work needed to make APC conductors ready for applications in magnets is discussed.

physics.app-ph