Numerical Modeling of Electrical Discharges in Long Air Gaps Tested With Positive Switching Impulses

被引:28
作者
Diaz, Oscar [1 ]
Cooray, Vernon [1 ]
Arevalo, Liliana [2 ]
机构
[1] Uppsala Univ, Fac Engn Sci, Div Elect, Lightning Res Grp, S-77121 Uppsala, Sweden
[2] ABB AB, HVDC PGGI, Div Res & Dev, S-77180 Ludvika, Sweden
关键词
Electric breakdown; gas discharge; HVDC insulation; SPARK DISCHARGE; LEADER CHANNEL; ATMOSPHERIC-PRESSURE; SURGE STRENGTH; PROPAGATION; BREAKDOWN; INSULATION; STREAMERS; MECHANISM; INCEPTION;
D O I
10.1109/TPS.2018.2802039
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The numerical modeling of electrical discharges occurring in atmospheric air has been in continuous development during the past decades in different fields, such as high-voltage techniques and lightning protection. Different methodologies have been proposed to represent the physical phenomena taking place at a single full discharge event, departing both from experimental and theoretical approaches. The implementation of these methodologies in numerical routines combined with the use of numerical methods to determine the electric potential distribution permits the creation of models whose predictions closely agree with the real case situations, where electrode arrangements might have nonsymmetric geometries. In this paper, we present an improved version of a simulation methodology for representing electrical discharges in long air gaps. This simulation methodology includes new elements like: 1) the 3-D leader channel tortuosity based on laboratory experimental measurements and 2) two new methods for the estimation of the electric charge contained in the so-called leader-corona region based on the electrostatic potential of fictitious potential rings representing the active region in front of the leader tip. Results from the simulation were compared with experimental records and a reasonably good agreement is found between them.
引用
收藏
页码:611 / 621
页数:11
相关论文
共 56 条
[1]   Experimental study of the positive leader velocity as a function of the current in the initial and final-jump phases of a spark discharge [J].
Andreev, A. G. ;
Bazelyan, E. M. ;
Bulatov, M. U. ;
Kuzhekin, I. P. ;
Makalsky, L. M. ;
Sukharevskij, D. I. ;
Syssoev, V. S. .
PLASMA PHYSICS REPORTS, 2008, 34 (07) :609-615
[2]  
[Anonymous], 2008, THESIS
[3]   A consistent approach to estimate the breakdown voltage of high voltage electrodes under positive switching impulses [J].
Arevalo, L. ;
Wu, D. ;
Jacobson, B. .
JOURNAL OF APPLIED PHYSICS, 2013, 114 (08)
[4]  
Arevalo L., 2010, P INT C LIGHTN PROT, V2010, P1
[5]  
Arevalo L., 2010, P INT C LIGHTN PROT, P2
[6]  
Arevalo L., 2011, THESIS
[7]   A new static calculation of the streamer region for long spark gaps [J].
Arevalo, Liliana ;
Cooray, Vernon ;
Wu, Dong ;
Jacobson, Bjorn .
JOURNAL OF ELECTROSTATICS, 2012, 70 (01) :15-19
[8]   BREAKDOWN PHENOMENA OF LONG GAPS UNDER SWITCHING IMPULSE CONDITIONS INFLUENCE OF DISTANCE AND VOLTAGE LEVEL [J].
BALDO, G ;
GALLIMBERTI, I ;
GARCIA, HN ;
HUTZLER, B ;
JOUAIRE, J ;
SIMON, MF .
IEEE TRANSACTIONS ON POWER APPARATUS AND SYSTEMS, 1975, 94 (04) :1131-1140
[9]  
Baldo G., 1992, GUIDELINES EVALUATIO
[10]  
Bazelyan E. M., 1997, Spark Discharge