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Colin S. Adams

Publications and source records attributed to Colin S. Adams.

4 recordsLinked to original sources

Impulse-driven transport of liquid metal from z-pinch electrodes and implications for fusion fuel contamination

The Liquid Electrode eXperiment is a surrogate environment to study the dynamic behavior of liquid metal plasma facing components relevant to a z-pinch device. Current pulses with amplitudes between 50 and 200 kA produce magnetic fields up to 30 T at the surface of a wire 1.5 to 2.5 mm in radius, mounted with one end submerged in a pool of liquid metal. The resulting forces generate a fast-moving annular jet surrounding the wire, preceded in some cases by small ejected droplets of varying sizes. High-speed videography records the motion of the liquid metal free surface upon exposure to magnetic pressures between 0.5 and 10 MPa. The vertical velocity of the resulting jets ranged from 0.6 to 5.3 m/s with consistent radial expansion. The velocities of the ejecta ranged from -3.1 to +18.9 m/s in the vertical direction and from -14.3 to +6.3 m/s in the radial direction. We investigate the likelihood and severity of z-pinch core contamination for repetitively-pulsed plasmas in the context of the observed droplets for liquid metal plasma facing component candidate materials: lithium, gallium, silver, tin, lead, FLiBe, and FLiNaK.

physics.flu-dyn

HVDC Surface Flashover in Compressed Air for Various Dielectrics

This study measures the voltage at which flashover occurs in compressed air for a variety of dielectric materials and lengths in a uniform field for DC voltages up to 100 kV. Statistical time lag is recorded and characterized, displaying a roughly exponential dependence on breakdown voltage. Of the materials tested, acrylic is observed to be the most resistant to flashover. These data are intended to facilitate the design of compressed-air insulated high voltage systems as an alternative to SF6 insulated systems.

physics.ins-det

Observation of Rayleigh-Taylor-Instability Evolution in a Plasma with Magnetic and Viscous Effects

We present time-resolved observations of Rayleigh--Taylor-instability (RTI) evolution at the interface between an unmagnetized plasma jet colliding with a stagnated, magnetized plasma. The observed instability growth time ($\sim 10$~$μ$s) is consistent with the estimated linear RTI growth rate calculated using experimentally inferred values of density ($\sim 10^{14}$~cm$^{-3}$) and deceleration ($\sim 10^9$~m/s$^2$). The observed mode wavelength ($\gtrsim 1$~cm) nearly doubles within a linear growth time. Theoretical estimates of magnetic and viscous stabilization and idealized magnetohydrodynamic simulations including a physical viscosity model both suggest that the observed instability evolution is subject to magnetic and/or viscous effects.

physics.plasm-ph

Experimental evidence for collisional shock formation via two obliquely merging supersonic plasma jets

We report spatially resolved measurements of the oblique merging of two supersonic laboratory plasma jets. The jets are formed and launched by pulsed-power-driven railguns using injected argon, and have electron density $\sim 10^{14}$ cm$^{-3}$, electron temperature $\approx 1.4$ eV, ionization fraction near unity, and velocity $\approx 40$ km/s just prior to merging. The jet merging produces a few-cm-thick stagnation layer, as observed in both fast-framing camera images and multi-chord interferometer data, consistent with collisional shock formation [E. C. Merritt et al., Phys. Rev. Lett. {\bf 111}, 085003 (2013)].

physics.plasm-ph