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Matt Russell

Publications and source records attributed to Matt Russell.

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Design and Commissioning of a Deuterium-Tritium Gas Delivery System for Muon Catalyzed Fusion in a Diamond Anvil Cell

We report the design, commissioning, and operation of deuterium-deuterium (DD) and deuterium-tritium (DT) gas delivery systems developed to load a diamond anvil cell (DAC) beam target for muon-catalyzed fusion (muCF). The DAC approach enables DT fuel to be compressed to GPa pressures at more than twice the liquid density and heated from cryogenic temperatures through 500 K, opening access to a substantially expanded parameter range for muCF kinetics and yield measurements. In this approach, DT is cryo-condensed to a liquid in a minichamber and then compressed in the DAC using a helium-driven pneumatic membrane, achieving high pressures in a millimeter-scale DT sample volume. A DD gas delivery system was designed and used to validate the experimental apparatus, measure the gas quantities needed for filling, develop operational experience, and collect kinetics and yield data with DD targets. The DT gas delivery system adds tritium-specific capabilities for inventory minimization, secondary containment, and activity monitoring. The DT system integrates depleted uranium storage beds and a liquid helium cryogenic condenser used for pressure building and cryopumping. High-purity delivery is provided by a rapid-response palladium permeator. The system is housed in a helium-atmosphere glovebox held at negative pressure with continuous cleanup. We present the process and instrumentation design, a failure modes and effects analysis (FMEA), and data from the experiment's in situ Raman spectrometer, which provides direct confirmation of target loading and composition through the optically clear diamond anvils. The 2024 and 2025 DT campaigns achieved repeatable target fills and operation with no measurable tritium releases to the stack, demonstrating safe, high-purity DT loading at novel density-temperature conditions for muCF studies.

physics.ins-det

Bennett Vorticity: A family of nonlinear Shear-Flow Stabilized Z-pinch equilibria

Plasma equilibria are typically treated as arising from distinct mechanisms across different regimes. Here we demonstrate that a single analytic axial flow profile, obtained by exchanging the Bennett nonlinearity from density to flow, generates a family of shear-flow stabilized Z-pinch equilibria in which the properties are determined directly by the flow. This analytic profile reconstructs the axial velocity, and magnetic structure of shear-flow stabilized fusion plasma experiments, reproduces the spatial structure of emission intensity in the front, wake, and needletip structures of an air plasma streamer head, and the current density of a toroidal pre-ELM edge pedestal. Explorations of nanoscale observables illustrate both the reach and limitations of the ideal model, while the emergence of sawtooth structures when multiple of these profiles are chained together further supports its internal consistency. These results suggest a common shear-organized component across disparate regimes, with potential implications for both laboratory and natural plasmas.

physics.plasm-ph