Ion drift instability in a strongly coupled collisional complex plasma
arXiv:2007.13806 · doi:10.1088/1361-6587/aba7f8
Abstract
We investigate the low-frequency wave mode associated with heavy particles and its instability in a collisional complex plasma with drifting ions. The effect of the ion drift on the sound velocity of this mode is discussed. The general condition of the instability is derived for subthermal ion drifts, taking into account strong coupling of the particle component. As a general tendency, strong coupling effects reduce the sound velocity and facilitate the occurrence of the ion drift instability. A wide parameter range is considered from the weakly collisional to strongly collisional regimes for the ion and particle components. The chosen plasma parameters are representative to the PK-4 experiment, currently operational on board the International Space Station.
8 pages, 6 figures; to be published in Plasma Physics and Controlled Fusion
References in corpus (11)
- Dynamical correlations and collective excitations of Yukawa liquids
- Coupling Strength in Coulomb and Yukawa One-Component Plasmas
- Fluid approach to evaluate sound velocity in Yukawa systems (complex plasmas)
- Practical expressions for the internal energy and pressure of Yukawa fluids
- Practical thermodynamics of Yukawa systems at strong coupling
- Particle charge in PK-4 dc discharge from ground-based and microgravity experiments
- Onset of transverse (shear) waves in strongly-coupled Yukawa fluids
- Isomorph-based empirically modified hypernetted-chain approach for strongly coupled Yukawa one-component plasmas
- Practical dispersion relations for strongly coupled plasma fluids
- Unified description of sound velocities in strongly coupled Yukawa systems of different spatial dimensionality
- Fingerprints of different interaction mechanisms on the collective modes in complex (dusty) plasmas