Computational Model for Photoionization in Pure SF6 Streamer at 1-15 atm
arXiv:2505.04216 · doi:10.1088/1361-6595/ae259e
Abstract
Photoionization plays a crucial role in achieving accurate quantitative predictions in SF6 streamer simulations, but accurate models for SF6 photoionization remains limited, motivating this paper. First, we develop a computational model for SF6 photoionization and provide the detailed theoretical modeling process, as well as comparison between experiment and simulation. A concise summary of model parameters within the comprehensive pressure range of 1 - 15 atm is provided for direct reference. Then, we perform comparative studies against simplified approaches. The results demonstrate that the proposed model effectively captures the non-local effects of SF6 photoionization, enhancing both the spatial numerical convergence and the accuracy of the streamer structure. Finally, we perform comparative studies by artificially increasing the photoionization intensity through multiplying the photoionization source term Sph by a factor of 50 (50*Sph) relative to the baseline intensity. Regarding breakdown voltage prediction, 50*Sph leads to a significant underestimation of the breakdown voltage for positive streamers, introducing errors greater than 0.5 kV, while exerting a small impact on negative streamers. Regarding streamer propagation dynamics, the radius of the positive streamer head exhibits pronounced shrinking, and 50*Sph reduces this shrinking and significantly lowers the head field by more than 700 Td. In contrast, 50*Sph has little impact on the morphology of the negative streamers and slightly enhances the head field by less than 30 Td.
References in corpus (20)
- The physics of streamer discharge phenomena
- Positive and negative streamers in ambient air: modeling evolution and velocities
- Photoionization in negative streamers: fast computations and two propagation modes
- The multiscale nature of streamers
- Probing photo-ionization: simulations of positive streamers in varying N2:O2 mixtures
- The effect of the stochasticity of photoionization on 3D streamer simulations
- Numerical convergence of the branching time of negative streamers
- Quantitative modeling of streamer discharge branching in air
- A computational study of accelerating, steady and fading negative streamers in ambient air
- A computational study of steady and stagnating positive streamers in N2-O2 mixtures
- Improvements for drift-diffusion plasma fluid models with explicit time integration
- Investigation of positive streamers in CO: experiments and 3D particle-in-cell simulations
- 3D modeling of positive streamers in air with inhomogeneous density
- 3D particle-in-cell simulations of negative and positive streamers in C4F7N-CO2 mixtures
- Spatiotemporal dynamics of nanosecond pulsed discharge in the form of a fast ionization wave: self-consistent two-dimensional modeling and comparison with experiments under negative and positive polarity
- Microscopic characteristics of SF6 partial discharge induced by a floating linear metal particle
- A unified fluid model for nonthermal plasmas and reacting flows
- Macroscopic parameterization of positive streamer heads in air
- SF6 streamer breakdown induced by floating linear metal particles: Following streamers and side streamers
- Data-driven reduced modeling of streamer discharges in air