Title :
Analysis of TF Insert Coil
Author :
Khodak, Andrei E. ; Martovetsky, Nicolai N. ; Smirnov, A.V. ; Titus, Peter H.
Author_Institution :
Princeton Plasma Phys. Lab., Princeton, NJ, USA
Abstract :
The United States ITER Project Office (USIPO) is responsible for the design of the oroidal Field (TF) insert coil, which will allow validation of the performance of significant lengths of the conductors to be used in the full scale TF coils in relevant conditions of field, current density and mechanical strain. The Japan Atomic Energy Agency (JAEA) will build the TF insert which will be tested at the central solenoid model coil (CSMC) test facility at JAEA, Naka, Japan. Three dimensional mathematical model of TF insert was created based on the initial design geometry data, and included the following features: orthotropic material properties of superconductor material and insulation; external magnetic field from CSMC, temperature dependent properties of the materials; precompression and plastic deformation in lap joint. Major geometrical characteristics of the design were preserved including cable jacket and insulation shape, mandrel outline, and support clamps and spacers. The model is capable of performing coupled structural, thermal, and electromagnetic analysis using ANSYS. Numerical simulations were performed for room temperature conditions; cool down to 4 K, and the operating regime with 68 kA current at 11.8 Tesla background field. Numerical simulations led to the final design of the coil producing the required strain levels on the cable, while simultaneously satisfying the ITER magnet structural design criteria.
Keywords :
cable insulation; cable sheathing; current density; finite element analysis; plastic deformation; superconducting magnets; thermal analysis; ANSYS software; CSMC; ITER magnet structural design; JAEA; Japan Atomic Energy Agency; Naka; TF insert coil analysis; USIPO; United States ITER Project Office; cable jacket; central solenoid model coil; clamp; current density; electromagnetic analysis; external magnetic field; lap joint; mechanical strain; oroidal field insert coil design; orthotropic material property; plastic deformation; precompression; spacer; superconductor insulation; superconductor material; temperature dependent property; thermal analysis; three dimensional mathematical model; Coils; Copper; Magnetic fields; Numerical models; Solid modeling; Strain; Superconducting cables; Computational modeling; finite element methods; numerical analysis; superconducting magnets;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2013.2284433