Entropy generation in concentric annuli of 400 kV gas-insulated transmission line

被引:29
作者
Hashemi-Tilehnoee, M. [1 ]
Tashakor, S. [2 ]
Dogonchi, A. S.
Seyyedi, Seyyed Masoud [1 ]
Khaleghi, M. [3 ]
机构
[1] Islamic Azad Univ, Dept Mech Engn, Aliabad Katoul Branch, Aliabad Katoul, Iran
[2] Islamic Azad Univ, Dept Renewable Energy, Shiraz Branch, Shiraz, Iran
[3] Sirjan Univ Technol, Dept Mech Engn, Kerman, Iran
关键词
GIL; ANSYS Fluent; Turbulent natural convection; Entropy generation; TURBULENT NATURAL-CONVECTION; HEAT-TRANSFER; SQUARE CAVITY; ASPECT RATIO; SIMULATION; RADIATION; LOOP; FLOW; WALL;
D O I
10.1016/j.tsep.2020.100614
中图分类号
O414.1 [热力学];
学科分类号
摘要
The object of this study is entropy generation analysis in the concentric annuli of a gas insulation transmission line enclosure (GIL) loaded with air and SF6-N-2 mixture gas. The inner and outer cylinders of the cavity are hot and cold, respectively. Because of symmetric conditions the 1/2 cylinder is considered for modeling. The standard k-epsilon turbulence model, the equation of entropy generation, and the conservation equations are transformed from dimensional form to non-dimensional form utilizing the definition of dimensionless parameters, stream function, and vorticity. Then dimensionless governing equations are solved by a finite volume method (FVM) using an innovative ANSYS Fluent non-dimensionalization scheme. Inflated layers applied to the fine grids to improve the simulation capability for turbulent modeling. The effects of the Rayleigh number at Ra = 2.5 x 10(6), 1.7 x 10(9), 2.1 x 10(9), 4.2 x 10(9) and 5.7 x 10(9) are investigated. The results demonstrate that the Nusselt number grows as the Rayleigh number grows and entropy generation number and the Bejan number decreases as the Rayleigh number increases. The GILs have a proper morphology in geometry that reducing the high irreversibility in higher Rayleigh numbers conditions.
引用
收藏
页数:8
相关论文
共 34 条
[1]  
[Anonymous], 2007, 3LSEVIER SCI
[2]  
Arici M, 2015, ACTA PHYS POL A, V128, pB197, DOI [10.12693/APhysPolA.128.B-197, 10.12693/APhysPolA.127.B-197]
[3]   NATURAL-CONVECTION FLOW IN A SQUARE CAVITY REVISITED - LAMINAR AND TURBULENT MODELS WITH WALL FUNCTIONS [J].
BARAKOS, G ;
MITSOULIS, E ;
ASSIMACOPOULOS, D .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 1994, 18 (07) :695-719
[4]  
Bejan A., 2013, Convective heat transfer
[5]   Study of a turbulent natural convection in cylindrical annuli of gas-insulated transmission lines 400 kV [J].
Chakir, A ;
Souli, M ;
Aquelet, N .
APPLIED THERMAL ENGINEERING, 2003, 23 (10) :1197-1208
[6]  
Chakir A, 2001, 2001 POWER ENGINEERING SOCIETY SUMMER MEETING, VOLS 1-3, CONFERENCE PROCEEDINGS, P162, DOI 10.1109/PESS.2001.970003
[7]   Numerical modeling of solid-liquid phase change in a closed 2D cavity with density change, elastic wall and natural convection [J].
Dallaire, Jonathan ;
Gosselin, Louis .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 114 :903-914
[8]   Investigation of magneto-hydrodynamic fluid squeezed between two parallel disks by considering Joule heating, thermal radiation, and adding different nanoparticles [J].
Dogonchi, A. S. ;
Waqas, Muhammad ;
Afshar, S. R. ;
Seyyedi, Seyyed Masoud ;
Hashemi-Tilehnoee, M. ;
Chamkha, Ali J. ;
Ganji, D. D. .
INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2020, 30 (02) :659-680
[9]   Effects of nanoparticles diameter and concentration on natural convection of the Al2O3-water nanofluids considering variable thermal conductivity around a vertical cone in porous media [J].
Ghalambaz, M. ;
Behseresht, A. ;
Behseresht, J. ;
Chamkha, A. .
ADVANCED POWDER TECHNOLOGY, 2015, 26 (01) :224-235
[10]   Magnetohydrodynamic natural convection and entropy generation analyses inside a nanofluid-filled incinerator-shaped porous cavity with wavy heater block [J].
Hashemi-Tilehnoee, M. ;
Dogonchi, A. S. ;
Seyyedi, Seyyed Masoud ;
Chamkha, Ali J. ;
Ganji, D. D. .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2020, 141 (05) :2033-2045