Title :
Variation of the Critical Properties of Alloyed Nb-Sn Wires After Proton Irradiation at 65 MeV and 24 GeV
Author :
Spina, T. ; Scheuerlein, C. ; Richter, D. ; Bordini, B. ; Bottura, L. ; Ballarino, A. ; Flukiger, R.
Author_Institution :
CERN, Geneva, Switzerland
Abstract :
A recent proton irradiation study on Ta and Ti alloyed industrial multifilamentary Nb3Sn wires has now been extended to fluences up to 1.38 × 1021 p/m2, the Bragg peak region being located outside of the wire. In the present work, magnetization measurements were performed up to 14 K and 10 T, to follow and determine with more precision the development of the upper critical field Bc2 with fluence. It was found that the critical temperature, Tc, decreases linearly with increasing fluences, about 3% up to the highest fluence 1.38 × 1021 p/m2. The transition width does not change after irradiation, thus reflecting a homogeneous damage in analogy to neutron irradiation. Both the critical current density, Jc, and the upper critical field, Bc2, were found to increase in the considered fluence range. It was obtained that the larger enhancement of Jc, (about 45% for Ta alloyed wires and 100% for Ti alloyed wires at 10 T) is not correlated to that of Bc2 (about 5% for Ti alloyed and 10% for Ta alloyed up to the highest fluence). The enhancement of Jc in Ta alloyed wires is very similar for both PIT and RRP processing, thus assigning a major importance to the nature of the additive. The present results after irradiation were analysed applying the two-mechanism model on the volume pinning force, taking into account both grain boundary pinning and point pinning. A comparison between the present results and those achieved after neutron irradiation on the same Nb3Sn wires shows that protons cause considerably higher damage than neutrons: the same effect on Jc and Tc is already observed at fluences being one order of magnitude smaller.
Keywords :
critical current density (superconductivity); flux pinning; magnetisation; niobium alloys; proton effects; superconducting critical field; superconducting tapes; superconducting transition temperature; tantalum alloys; tin alloys; titanium alloys; type II superconductors; Bragg peak region; Nb3SnTaTi; alloyed Nb-Sn wires; critical current density; critical temperature; grain boundary pinning; industrial multifilamentary wires; magnetization measurements; point pinning; proton irradiation; upper critical field; volume pinning force; Force; Neutrons; Niobium-tin; Protons; Radiation effects; Temperature measurement; Wires; Bragg-Williams LRO parameter; Bragg???Williams LRO parameter; HL-LHC upgrade; flux pinning induced by proton irradiation; magnetization; radiation damage;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2379116