scholarly journals Numerical modeling of body force induced by corona discharge

Author(s):  
Rafał GAŁEK
Author(s):  
Reza Baghaei Lakeh ◽  
Majid Molki

Corona discharge is widely known as an effective method for improving the characteristics of the flow field and enhancing heat transfer. Distribution of charge density and electric field form a Coulomb body force which acts on the charged particles within the fluid and generates a secondary flow field. The thermal enhancing effects of corona wind are normally dominant in low Reynolds numbers or free convection problems. Although the governing differential equations of corona discharge are relatively simple, solving these equations by conventional computational methods does not yield a smooth solution for charge density and electric field. In particular, the results obtained from finite-volume method suffer from dispersion errors and fluctuations which lead to distorted values of electric body force, and consequently a distorted secondary flow. In this study, the corona discharge in a circular tube with the electrode positioned at the tube centerline is considered. An exact solution for charge density, electric field, and potential distribution along the radius of the tube has been derived analytically using a Lagrangian formulation for the charge density and the Method of Characteristics. It was found that the results of this method do not show any fluctuations or dispersion effects on charge density and electric field. The solution of the electric field provided a body force which was used in the Navier-Stokes equations to obtain the secondary flow in the cross section of the tube. In this paper, the electric and fluid flow fields are presented. The results are compared with those obtained by other computational methods and the differences are discussed.


2020 ◽  
Vol 4 (41) ◽  
pp. 17-28
Author(s):  
SERGEY VENDIN ◽  
◽  
SERGEY SOLOV’EV ◽  
STANISLAV KILIN ◽  
ALEXEY YAKOVLEV

The article presents the results of theoretical calculating the parameters of a corona discharge when protecting the territory of substations from direct lightning strikes using multi-drop lightning protection. The parameters of the corona discharge are important when calculating the energy losses in the wires of overhead power lines in bad weather. (Research purpose) The research purpose is in developing a computational model and analyze the processes of lightning protection of a substation by placing parallel grounded cables suspended on supports that are placed outside the substation territory. (Materials and methods) The solution is based on a well-known relation for a typical dipole model of a charged thundercloud cell. (Results and discussion) The article present the calculated theoretical dependences, mathematical formulation and algorithm for numerical calculation of the two-dimensional problem that form the basis for calculating multi-wire lightning protection, as well as the calculation results of cable lightning protection of a transformer substation based on two-dimensional numerical modeling and comparison of the results of calculations using analytical expressions with the results of two-dimensional numerical modeling. Despite the noticeable difference between the limit currents calculated by different methods, the difference between the average current between them is small compared to the currents themselves, so one can use its arithmetic mean to determine the actual current. (Conclusions) The obtained results allow to take into account changes in the parameters of the corona formed in the electric field of a thundercloud along its cable length due to its sag, since such changes in the input parameters have a noticeable effect on the corona process, in some cases it is more significant than the effect associated with the actual sag of the cables.


2006 ◽  
Vol 777 (1-3) ◽  
pp. 125-129 ◽  
Author(s):  
K. Yanallah ◽  
S. Hadj Ziane ◽  
A. Belasri ◽  
Y. Meslem

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