DocumentCode :
1759827
Title :
Numerical Simulation of the Mechanical Properties of the \\hbox {Nb}_{3}\\hbox {Sn} CICCs Under Transverse Cyclic Loads
Author :
Shuming Jia ; Dengming Wang ; Xiaojing Zheng
Author_Institution :
Dept. of Mech. & Eng. Sci., Lanzhou Univ., Lanzhou, China
Volume :
24
Issue :
1
fYear :
2014
fDate :
Feb. 2014
Firstpage :
134
Lastpage :
139
Abstract :
Based on an improved discrete dynamical model, the mechanical properties of the cable in the Nb3Sn CS1 conductor cross section under transverse cyclic mechanical loads are analyzed in this work. The first cyclic-load-displacement curve is numerically obtained and compared with existing measurements, and excellent agreement is achieved. It is obtained from further simulation results that the rearrangements of strands´ positions are very obvious, and the local void of petals significantly decreases after the first few cycles, which lead to the macroscopic plastic deformation of the cable. With the increase in load cycles, such plastic deformation may gradually tend to stability because of the enhancing constraints between strands under low local void fraction. Apparently, the microscopic rearrangement of strands is a critical factor in determining its macroscopic mechanical properties. Once such rearrangement of strands ends, the transverse stiffness and the mechanical loss also tend to be stable, and the cable in the CS1 conductor cross section is closer to elasticity.
Keywords :
cables (electric); elastic constants; elasticity; niobium alloys; numerical analysis; plastic deformation; tin alloys; Nb3Sn; cable; cable-in-conduit conductors; cyclic-load-displacement curve; discrete dynamical model; elasticity; macroscopic mechanical properties; macroscopic plastic deformation; mechanical loss; numerical simulation; transverse cyclic mechanical loads; transverse stiffness; void fraction; Conductors; Loading; Mechanical cables; Mechanical factors; Niobium-tin; Plastics; Superconducting cables; $hbox{Nb}_{3}hbox{Sn}$ cable-in-conduit conductor (CICC); Cyclic loading; discrete element method (DEM); displacement-driven boundary conditions; local void fraction;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2013.2287058
Filename :
6665067
Link To Document :
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