A PIC-MCC code for simulation of streamer propagation in air

被引:154
作者
Chanrion, O. [1 ]
Neubert, T. [1 ]
机构
[1] Tech Univ Denmark, Natl Space Inst, DTU Space, DK-2100 Copenhagen, Denmark
关键词
PIC-MCC; streamer; discharge; sprite;
D O I
10.1016/j.jcp.2008.04.016
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
A particle code has been developed to study the distribution and acceleration of electrons in electric discharges in air. The code can follow the evolution of a discharge from the initial stage of a single free electron in a background electric field to the formation of an electron avalanche and its transition into a streamer. The code is in 2D axi-symmetric coordinates, allowing quasi 3D simulations during the initial stages of streamer formation. This is important for realistic simulations of problems where space charge fields are essential such as in streamer formation. The charged particles are followed in a Cartesian mesh and the electric field is updated with Poisson's equation from the charged particle densities. Collisional processes between electrons and air molecules are simulated with a Monte Carlo technique, according to cross section probabilities. The code also includes photoionisation processes of air molecules by photons emitted by excited constituents. The paper describes the code and presents some results of streamer development at 70 km altitude in the mesosphere where electrical discharges (sprites) are generated above severe thunderstorms and at similar to 10 km relevant for lightning and thundercloud electrification. The code is used to study acceleration of thermal seed electrons in streamers and to understand the conditions under which electrons may reach energies in the runaway regime. This is the first study in air, with a particle model with realistic spatial dependencies of the electrostatic field. It is shown that at 1 atm pressure the electric field must exceed similar to 7.5 times the breakdown field to observe runaway electrons in a constant electric field. This value is close to the field where the electric force on an electron equals the maximum frictional force on an electron - found at similar to 100 eV. It is also found that this value is reached in a negative streamer tip at 10 km altitude when the background electric field equals similar to 3 times the breakdown field. At higher altitudes, the background electric field must be relatively larger to create a similar field in a streamer tip because of increased influence of photoionisation. It is shown that the role of photoionization increases with altitude and the effect is to decrease the space charge fields and increase the streamer propagation velocity. Finally, effects of electrons in the runaway regime on negative streamer dynamics are presented. It is shown the energetic electrons create enhanced ionization in front of negative streamers. The simulations suggest that the thermal runaway mechanism may operate at lower altitudes and be associated with lightning and thundercloud electrification while the mechanism is unlikely to be important in sprite generation at higher altitudes in the mesosphere. (c) 2008 Elsevier Inc. All rights reserved.
引用
收藏
页码:7222 / 7245
页数:24
相关论文
共 52 条
[1]  
Anderson E, 1999, LAPACK USERS GUIDE
[2]   Observation of the initial stage in the development of an avalanche of relativistic runaway electrons under normal atmospheric conditions [J].
Babich, LP ;
Donskoy, EN ;
Zelenskii, KF ;
Il'kaev, RI ;
Kutsyk, IM ;
Loiko, TV ;
Roussel-Dupré, RA .
DOKLADY PHYSICS, 2002, 47 (01) :1-4
[3]  
BABICH LP, 1982, SOV PHYS DOKL, V263, P7679
[4]  
Birdsall C. K., 2018, Plasma Physics via Computer Simulation
[5]   PARTICLE-IN-CELL CHARGED-PARTICLE SIMULATIONS, PLUS MONTE-CARLO COLLISIONS WITH NEUTRAL ATOMS, PIC-MCC [J].
BIRDSALL, CK .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 1991, 19 (02) :65-85
[6]   SPRITES, ELF TRANSIENTS, AND POSITIVE GROUND STROKES [J].
BOCCIPPIO, DJ ;
WILLIAMS, ER ;
HECKMAN, SJ ;
LYONS, WA ;
BAKER, IT ;
BOLDI, R .
SCIENCE, 1995, 269 (5227) :1088-1091
[7]  
BOEUF JP, SIGLO CROSS SECTIONS
[8]   Efficient models for photoionization produced by non-thermal gas discharges in air based on radiative transfer and the Helmholtz equations [J].
Bourdon, A. ;
Pasko, V. P. ;
Liu, N. Y. ;
Celestin, S. ;
Segur, P. ;
Marode, E. .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 2007, 16 (03) :656-678
[9]   Measurement of charge transfer in sprite-producing lightning using ELF radio atmospherics [J].
Cummer, SA ;
Inan, US .
GEOPHYSICAL RESEARCH LETTERS, 1997, 24 (14) :1731-1734
[10]   X-ray bursts produced by laboratory sparks in air [J].
Dwyer, JR ;
Rassoul, HK ;
Saleh, Z ;
Uman, MA ;
Jerauld, J ;
Plumer, JA .
GEOPHYSICAL RESEARCH LETTERS, 2005, 32 (20) :1-4