DocumentCode :
1444510
Title :
Steady-state thermal analysis of power cable systems in ducts using streamline-upwind/petrov-galerkin finite element method
Author :
Liang, Yongchun
Author_Institution :
Sch. of Electr. & Inf., Hebei Univ. of Sci. & Technol., Shijiazhuang, China
Volume :
19
Issue :
1
fYear :
2012
fDate :
2/1/2012 12:00:00 AM
Firstpage :
283
Lastpage :
290
Abstract :
In this paper, numerical steady-state thermal analysis and ampacity evaluation of underground power cable systems placed in PVC ducts are presented. Between the outer surface of the cable and inner surface of the duct, there are three heat transfer modes, thermal conduction, thermal natural convection and thermal radiation. A Streamline-upwind/Petrov-Galerkin (SUPG) stabilized finite element method is proposed to solve the air governing formulas including the mass conservation equation, the momentum conservation equation and the energy conservation equation in the region between the cables and the containment ducts. During the numerical thermal field analysis, the Newton-Raphson iteration method is used to solve the weak electromagnetic-thermal coupling of underground power cable systems. The radiation heat exchange between the outer surface of the cable and inner surface of the duct is solved by the Newton-Raphson iteration method too. An experiment with several holes and three cables was conducted and the test results were compared with the results of analytical method and SUPG finite element method. The comparison reveals that the convection induced heat exchange is much stronger than the conduction induced heat exchange in the air between the outer cable surface and inner duct surface and calculation accuracy of SUPG finite element method is better than the analytical method. Finally, the Newton-Raphson iteration method is used to evaluate the ampacity of power cable systems placed in PVC ducts.
Keywords :
Galerkin method; Newton-Raphson method; electric conduits; electromagnetic coupling; energy conservation; finite element analysis; heat conduction; heat radiation; natural convection; thermal analysis; underground cables; Newton-Raphson iteration method; PVC ducts; SUPG stabilized finite element method; ampacity evaluation; containment ducts; electromagnetic-thermal coupling; energy conservation equation; heat transfer modes; mass conservation equation; momentum conservation equation; numerical steady-state thermal analysis; numerical thermal field analysis; radiation heat exchange; streamline upwind-Petrov-Galerkin finite element method; thermal conduction; thermal natural convection; thermal radiation; underground power cable systems; Conductors; Ducts; Equations; Finite element methods; Mathematical model; Power cables; Thermal analysis; Finite element method; SUPG stabilized formulation; Thermal field; cable ampacity; coupling analysis; underground cable system;
fLanguage :
English
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
Publisher :
ieee
ISSN :
1070-9878
Type :
jour
DOI :
10.1109/TDEI.2012.6148529
Filename :
6148529
Link To Document :
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