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Bin Ahn

Publications and source records attributed to Bin Ahn.

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Plasma dynamics near the magnetic X-point of the two-wire model: Theory and Simulation

The two-wire model (TWM) is a magnetic configuration generated by two parallel current-carrying wires, and it contains an X-point at its center and a separatrix. Since the TWM magnetic field is described by a closed-form analytic expression and contains no guide field, it offers a tractable setting for studying how a true magnetic null shapes plasma dynamics. This work investigates two complementary regimes: collisionless charged particle dynamics and collisional low temperature plasma transport. In the collisionless regime, a Lagrangian analysis identifies two particle motion invariants: the total kinetic energy and the base field line value, which is derived from the conserved axial canonical momentum. Collisionless test particle simulations show that the magnetic moment undergoes shifts when the particle traverses the large gradient region near the null. These shifts enable particles to migrate, the phenomenon in which a particle gyrating about one branch of a base field line jumps to the corresponding branch on the other side of the X-point. A threshold energy for migration is derived, and an empirical expression for the migration confinement time is formulated. In the collisional regime, reduced drift-diffusion models for low temperature plasmas are developed in a conformal field-aligned coordinate system, and they predict density plateau formation near the separatrix in the strongly magnetized regime. Self-consistent particle-in-cell simulations are performed to verify the predicted density plateau. The two complementary studies establish a fundamental understanding of plasma dynamics near a true magnetic null for both the collisionless and collisional regimes.

physics.plasm-ph

Inference of the degree of dissociation of weakly collisional hydrogen plasmas using collisional-radiative models

A new analysis technique for the inference of degree of dissociation of weakly collisional hydrogen plasmas was developed and tested with an experiment. Neutrals in low temperature plasmas are critical to a wide range of plasma-based technologies, and thus, it is important to investigate their properties. The most important physical parameter for neutrals in hydrogen plasmas is the degree of dissociation, and the technique for its inference was developed in this work. To improve the accuracy of the analysis, the collisional-radiative models for hydrogen atom and molecule were constructed and modified to handle bi-Maxwellian electron energy distribution and radiation trapping effect. An additional analysis of Fulcher-alpha transitions was conducted to obtain gas temperature and ground vibrational temperature from rotational-vibrational distribution of excited molecules. The technique involves multiple steps to generate calculated excited state distributions from experimental data, which are then compared to measured distributions to infer the most probable degree of dissociation. To test and verify the analysis technique, experiments were conducted. Hydrogen plasmas were generated in a large cylindrical chamber named MAXIMUS, by DC discharge with a hot cathode. Various diagnostics including the optical emission and absorption spectroscopy, and the Langmuir probe measurement were performed to obtain spectra and electron parameters. The degrees of dissociation for the generated plasmas were inferred, based on the measured data and the analysis technique. Several problems and implications were discussed and improvement strategies were outlined. Overall, the analysis technique developed in this work is expected to play a valuable role in future diagnostic and analytical studies of hydrogen plasmas.

physics.plasm-ph