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- W3118587764 abstract "Numerical simulations of atmospheric air streamers at 300 K are performed using a one-dimensional model with a local field approximation. Transport equations for electrons and ions, including drift, diffusive, and reactive processes are solved via a spectral deferred correction (MISDC) method, which is used to advance the solution with time steps of size comparable to the drift time scales. A simplified chemistry model based on a quasi-steady state assumption accounting for electron impact ionization, electron-ion and ion-ion recombination, electron attachment, electron detachment, and seed charge generation is employed. An improved set of boundary conditions for the electrons and ions are used to model ion and electron fluxes at the electrode boundaries. In order to test the performance of the algorithm, a suite of steady-state solutions to a boundary value problem are formulated. It is found that for simulations with a strong applied electric field (E/N ≈ 100 Td), the time step size required for the solution to converge is limited by the electron drift velocity when the electron drift is solved explicitly. The improved boundary conditions are found to produce sharp gradients near the electrodes that require grid resolution finer than what is typically used in streamer modeling (sub-micron grid spacing). This is found to impose severe numerical restrictions given the explicit handling of the advective terms." @default.
- W3118587764 created "2021-01-18" @default.
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- W3118587764 date "2021-01-04" @default.
- W3118587764 modified "2023-09-23" @default.
- W3118587764 title "Steady-State Streamer Simulations Using a Spectral Deferred Correction Strategy" @default.
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- W3118587764 doi "https://doi.org/10.2514/6.2021-0685" @default.
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