On the Self-Quenching of Relativistic Runaway Electron Avalanches Producing Terrestrial Gamma Ray Flashes

被引:3
作者
Gourbin, P. [1 ]
Celestin, S. [1 ]
机构
[1] Univ Orleans, CNRS, LPC2E, Orleans, France
关键词
Terrestrial gamma-ray flashes; runaway; simulation; electron avalanche; particle-in-cell; RREA;
D O I
10.1029/2023GL107488
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Terrestrial gamma ray flashes (TGFs) are short bursts of gamma rays occurring during thunderstorms. They are believed to be produced by relativistic runaway electron avalanches (RREAs). It is usually admitted that the number of high-energy electrons produced in the brightest TGFs remains mostly confined within a range from 1017 to 1019. To understand the constraints in the development of RREAs, we perform self-consistent simulations using a newly developed model with a finite acceleration region and various injection rates. We find that RREAs should naturally self-quench for a fixed total number of runaway electrons, and hence a fixed number of bremsstrahlung photons. From the idea that TGF sources quench themselves, we derive a simple equation controlling the total number of runaway electrons. In this framework, the existence of a saturation in the electron density discovered in a previous work places a lower limit on TGF durations. Terrestrial gamma ray flashes (TGFs) are short bursts of high-energy photons occurring during thunderstorms. They are believed to be produced by energetic electrons accelerating due to the intense electric field, forming a Relativistic Runaway Electron Avalanche (RREA). Discovered fairly recently, many of the TGF features remain unexplained. In this article, we aim to understand the constraint on the number of high-energy electrons produced during TGFs, that always remains confined between 1017 and 1019. Using a newly developed simulation model, we find that RREAs naturally quench themselves when the number of high-energy electrons and photons reach the range previously mentioned. Based on a limited number of fundamental processes, we were able to derive a simple equation controlling the total number of runaway electrons and deduce a lower limit for TGF durations. There is a maximum low-energy electron density reachable in Terrestrial Gamma Ray Flashe (TGF) sources when relativistic runaway electron avalanches (RREAs) reach saturation: nesat similar to 1015 ${n}_{e}<^>{\mathit{sat}}\sim 1{0}<^>{15}$ m-3 There exists a minimum TGF timescale equal to the RREA timescale: tau min similar to 1 mu s The self-quenching of the TGF sources implies a maximum number of electrons Ne similar to 1017
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页数:8
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共 46 条
[41]   Analysis of global Terrestrial Gamma Ray Flashes distribution and special focus on AGILE detections over South America [J].
Fabro, Ferran ;
Montanya, Joan ;
Marisaldi, Martino ;
van der Velde, Oscar A. ;
Fuschino, Fabio .
JOURNAL OF ATMOSPHERIC AND SOLAR-TERRESTRIAL PHYSICS, 2015, 124 :10-20
[42]   Conceptual design of the radial gamma ray spectrometers system for α particle and runaway electron measurements at ITER [J].
Nocente, M. ;
Tardocchi, M. ;
Barnsley, R. ;
Bertalot, L. ;
Brichard, B. ;
Croci, G. ;
Brolatti, G. ;
Di Pace, L. ;
Fernandes, A. ;
Giacomelli, L. ;
Lengar, I. ;
Moszynski, M. ;
Krasilnikov, V. ;
Muraro, A. ;
Pereira, R. C. ;
Cippo, E. Perelli ;
Rigamonti, D. ;
Rebai, M. ;
Rzadkiewicz, J. ;
Salewski, M. ;
Santosh, P. ;
Sousa, J. ;
Zychor, I. ;
Gorini, G. .
NUCLEAR FUSION, 2017, 57 (07)
[43]   How simulated fluence of photons from terrestrial gamma ray flashes at aircraft and balloon altitudes depends on initial parameters [J].
Hansen, R. S. ;
Ostgaard, N. ;
Gjesteland, T. ;
Carlson, B. .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2013, 118 (05) :2333-2339
[44]   Source Altitude of Energetic In-Cloud Pulses Inside Thunderstorms and Implication for the Intrinsic Brightness of Terrestrial Gamma-Ray Flashes [J].
Lyu, Fanchao ;
Qin, Zilong ;
Cummer, Steven A. ;
Zheng, Yu ;
Jiang, Sulin ;
Zheng, Tianxue ;
Liu, Yan ;
Xu, Wei ;
Lyu, Weitao .
GEOPHYSICAL RESEARCH LETTERS, 2024, 51 (20)
[45]   Terrestrial gamma-ray flash electron beam geometry, fluence, and detection frequency [J].
Carlson, B. E. ;
Gjesteland, T. ;
Ostgaard, N. .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2011, 116
[46]   The 3rd AGILE Terrestrial Gamma-ray Flashes Catalog. Part II: Optimized Selection Criteria and Characteristics of the New Sample [J].
Maiorana, C. ;
Marisaldi, M. ;
Lindanger, A. ;
Ostgaard, N. ;
Ursi, A. ;
Sarria, D. ;
Galli, M. ;
Labanti, C. ;
Tavani, M. ;
Pittori, C. ;
Verrecchia, F. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2020, 125 (11)