Title :
Numerical calculation of ampacity of cable laying in ventilation tunnel based on coupled fields as well as the analysis on relevant factors
Author :
Yiyuan Chen ; Pan Duan ; Peng Cheng ; Fan Yang ; Yongming Yang
Author_Institution :
Chongqing Electr. Power Coll., Chongqing, China
Abstract :
Forced ventilation of cable tunnel is one of the important ways to improve the cable ampacity which is one of important parameters to guarantee safe and reliable operation of underground cable system. According to the theory of fluid dynamics and heat transfer, the 3-D physical and mathematical models of cable tunnel ventilation system for fluid and temperature analysis were established, which were calculated numerically by using finite element method, based on some corresponding assumptions, control equations and boundary conditions. In this process, the fluid field distribution inside axial ventilation tunnel and temperature field distribution were calculated and analyzed, and the strong coupling relationship between fluid field and temperature field was proved. Based on the highest temperature of cable surface calculated above, cable ampacity was computed by using equivalent thermal circuit method and numerical iterative method. Moreover, some influences on cable ampacity were analyzed, and some valuable conclusions were obtained.
Keywords :
cables (mechanical); finite element analysis; fluid dynamics; heat transfer; iterative methods; tunnels; ventilation; 3D physical models; axial ventilation tunnel; boundary conditions; cable laying ampacity; cable tunnel ventilation system; control equations; coupled fields; equivalent thermal circuit method; finite element method; fluid analysis; fluid dynamics; fluid field distribution; forced ventilation; heat transfer; mathematical models; numerical calculation; numerical iterative method; temperature analysis; temperature field distribution; underground cable system; Finite element analysis; Fluids; Heating; Power cable insulation; Power cables; Ventilation; Cable ampacity; Equivalent thermal circuit method; Finite element method; Forced ventilation; Numerical iterative method;
Conference_Titel :
Intelligent Control and Automation (WCICA), 2014 11th World Congress on
DOI :
10.1109/WCICA.2014.7053303