DocumentCode :
1432092
Title :
Thermal Modeling of Helium Cooled High-Temperature Superconducting DC Transmission Cable
Author :
Souza, Jeferson A. ; Ordonez, Juan C. ; Hovsapian, Rob ; Vargas, José V C
Author_Institution :
Dept. of Mech. Eng., Florida State Univ., Tallahassee, FL, USA
Volume :
21
Issue :
3
fYear :
2011
fDate :
6/1/2011 12:00:00 AM
Firstpage :
947
Lastpage :
952
Abstract :
The recent increase in distributed power generation is highlighting the demand to investigate and implement better and more efficient power distribution grids. High-temperature superconducting (HTS) DC transmission cables have the potential to address the need for more efficient transmission and their usage is expected to increase in the future. Thermal modeling of HTS DC cables is a critical tool to have in order to better understand and characterize the operation of such transmission lines. This paper introduces a general computational model for a HTS DC cable. A physical model, based on fundamental correlations and principles of classical thermodynamics, mass and heat transfer, was developed and the resulting differential equations were discretized in space. Therefore, the combination of the physical model with the finite volume scheme for the discretization of the differential equations is referenced as Volume Element Model, (VEM). The model accounts for heat transfer by conduction, convection and radiation obtaining numerically the temperature distribution of superconductive cables operating under different environmental, operational and design conditions. As a result, the model is expected to be a useful tool for simulation, design, and optimization of HTS DC transmission cables.
Keywords :
DC transmission networks; differential equations; distributed power generation; distribution networks; finite volume methods; heat transfer; helium; high-temperature superconductors; mass transfer; optimisation; power transmission lines; superconducting cables; thermodynamics; conduction; convection; differential equations; distributed power generation; finite volume scheme; heat transfer; helium cooling; high-temperature superconducting DC transmission cable; mass transfer; optimization; power distribution grids; thermal modeling; thermodynamics; transmission lines; volume element model; Equations; Heat transfer; Heating; Helium; Mathematical model; Superconducting cables; Temperature; Cryogenics; helium cooling; mathematical model; transmission lines;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2010.2099196
Filename :
5696777
Link To Document :
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