Bulletin of the American Physical Society
60th Annual Meeting of the APS Division of Plasma Physics
Volume 63, Number 11
Monday–Friday, November 5–9, 2018; Portland, Oregon
Session UO12: DPP/GEC Joint Session: Low Temperature Plasmas II
2:00 PM–5:00 PM,
Thursday, November 8, 2018
OCC
Room: A105
Chair: Pascal Chabert, LPP, Ecole Polytechnique
Abstract ID: BAPS.2018.DPP.UO12.3
Abstract: UO12.00003 : Modeling Gas Breakdown in High Quality-Factor Resonators at GHz to THz Frequencies
2:24 PM–2:36 PM
Presenter:
Dylan Pederson
(The University of Texas at Austin)
Authors:
Dylan Pederson
(The University of Texas at Austin)
Laxminarayan L Raja
(The University of Texas at Austin)
Recently, there has been an effort to explore and incorporate plasmas into electromagnetically resonating components, for applications in plasma generation, wave control, and sensing, among other things. High quality factor (High-Q) resonators are desirable for gas breakdown because they operator with relatively low input power. Gas breakdown in a resonator is highly dependent upon the operating frequency and the geometry of the resonator. An important characterization of high-Q resonators is the frequency response generated by numerical simulation. However, in order to resolve a high-Q resonance, the number of simulated wave periods must be greater than Q. As the Q-factor is not known a priori, this can lead to very long simulation times of greater than 10^6 wave periods. Considering that the computation mesh must also resolve small geometrical features, the problem can become unwieldy quickly. We present a method of numerical simulation based on the Finite-Difference Time-Domain (FDTD) method that reduces the computational cost of simulating gas breakdown. We demonstrate the technique of using a time-step operator representation of the electromagnetic simulation to obtain the steady-state plasma response under a diffusive flux assumption.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DPP.UO12.3
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