Particle in cell simulation on mode conversion of Saturn's 20 kHz narrowband radio emission
arXiv:2509.15542 · doi:10.1029/2024JE008899
Abstract
The Z-to-O mode conversion at the density gradient is the prevailing mechanism of narrowband (NB) radio emission in planetary magnetosphere. Most previous numerical models were for NB emission observed in the Earth magnetosphere, using the cold plasma fluid approximation that excluded any kinetic effect. Here we investigate the Z-to-O conversion process underlying the Saturn's 20 kHz NB emission, using the fully-kinetic and electromagnetic particle-in-cell (PIC) simulation. We simulate the whole process starting from the pumping of the Z mode, to its propagation and reflection, and further conversion into the O mode radiation. The energy conversion rate of the Z-to-O process is estimated to be 10-20%. This provides the first quantitative estimate of such rate with PIC simulations.
References in corpus (5)
- An alternative form of the fundamental plasma emission through the coalescence of Z-mode waves with whistlers
- Statistical Study on Spatial Distribution and Polarization of Saturn Narrowband Emissions
- Verification of the standard theory of plasma emission with particle-in-cell simulations
- Plasma emission induced by ring-distributed energetic electrons in overdense plasmas
- Generation mechanism and beaming of Jovian nKOM from 3D numerical modeling of Juno/Waves observations