Mechanical Properties as an Indicator of Interstitials in Niobium for Superconducting Accelerator Cavities

被引:1
|
作者
Ricker, R. E. [1 ]
Pitchure, D. J. [1 ]
Myneni, G. R. [2 ]
机构
[1] NIST, Mat Measurement Lab, Gaithersburg, MD 20899 USA
[2] Thomas Jefferson Natl Accelerator Facil, Newport News, VA 23606 USA
关键词
HYDROGEN; TEMPERATURE; DEFORMATION; DIFFUSION; OXYGEN; STEEL;
D O I
10.1063/1.4935319
中图分类号
O59 [应用物理学];
学科分类号
摘要
A preliminary investigation was conducted into the feasibility of using simple mechanical properties experiments to evaluate interstitial impurity uptake from processing environments. Two types of tests were examined: tensile tests and complex modulus measurements using a dynamic mechanical analyzer (DMA). For the tensile tests, samples were cut from a single crystal of niobium, with the same orientation, and then prepared following different procedures. Significant differences were observed during tensile tests, with yielding strength and strain-to-failure clearly related to interstitial uptake. When the strain rate was reduced by an order of magnitude, the strain-to-failure was reduced by 18 % indicating that interstitial hydrogen is responsible for this behavior. For the complex modulus measurement, polycrystalline samples from different locations of two different ingots were examined at a frequency of 1.0 Hz while the temperature was increased at the rate of 1.0 degrees C per minute. Anaelastic peaks were found for C, N, and O in all samples, but the lower limit of the system did not allow for detection of a peak for H. It is concluded that mechanical properties could be developed as a measurement tool to guide the development of processing methods for producing reduced interstitial content material, but additional research, and uncertainty analysis, is required for these tools to be reliable in this application.
引用
收藏
页数:7
相关论文
共 50 条
  • [31] Q-MEASUREMENTS OF NIOBIUM SUPERCONDUCTING CAVITIES
    ANDROSOV, VV
    SVETLOV, VM
    SHCHEDRIN, IS
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1979, 26 (03) : 4271 - 4273
  • [32] SUPERCONDUCTING NIOBIUM CAVITIES PREPARED BY ELECTROPOLISHING AND ANODIZING
    DIEPERS, H
    MARTENS, H
    SCHMIDT, O
    SCHNITZKE, K
    UZEL, Y
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1973, NS20 (03) : 68 - 70
  • [33] Proximity breakdown of hydrides in superconducting niobium cavities
    Romanenko, A.
    Barkov, F.
    Cooley, L. D.
    Grassellino, A.
    SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2013, 26 (03):
  • [34] MINIATURE SAPPHIRE WINDOWS FOR SUPERCONDUCTING NIOBIUM CAVITIES
    MANN, AG
    BLAIR, DG
    CRYOGENICS, 1982, 22 (08) : 415 - 416
  • [35] Progress on the Development of a Superconducting Connection for Niobium Cavities
    Kneisel, Peter
    Ciovati, Gianluigi
    Sekutowicz, Jacek
    Turlington, Larry
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2009, 19 (03) : 1416 - 1418
  • [36] Physical Properties and Structure of Large Grain/Single Crystal Niobium for Superconducting RF Cavities
    Ermakov, A.
    Jelezov, I.
    Singer, X.
    Singer, W.
    Viswanathan, G. B.
    Levit, V.
    Fraser, H. L.
    Wen, H.
    Spiwek, M.
    8TH EUROPEAN CONFERENCE ON APPLIED SUPERCONDUCTIVITY (EUCAS'07), 2008, 97
  • [37] MEASUREMENTS OF SUPERCONDUCTING NIOBIUM CAVITIES AT 700-MHZ
    YOSHIDA, K
    YOSHIOKA, M
    HALBRITTER, J
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1979, 26 (03) : 4114 - 4116
  • [38] SUPERCONDUCTING CAVITIES FROM NIOBIUM-COPPER MATERIAL
    PADAMSEE, H
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1983, 30 (04) : 3354 - 3356
  • [39] INFLUENCE OF SOLUTE OXYGEN AND NITROGEN ON SUPERCONDUCTING NIOBIUM CAVITIES
    GIORDANO, S
    HAHN, H
    HALAMA, HJ
    VARMAZIS, C
    RINDERER, L
    JOURNAL OF APPLIED PHYSICS, 1973, 44 (09) : 4185 - 4190
  • [40] SUPERCONDUCTING NIOBIUM CAVITIES OF IMPROVED THERMAL CONDUCTIVITY.
    Lengeler, H.
    Weingarten, W.
    Mueller, G.
    Piel, H.
    IEEE Transactions on Magnetics, 1984, MAG-21 (02)