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E. T. Meier

Publications and source records attributed to E. T. Meier.

3 recordsLinked to original sources

Effects of transitional orbit magnetization on transport and current in Z pinches

The azimuthal self-magnetic field of the ideal Z pinch contains a central magnetic null. Trajectories around this null govern transport in the core. Particles follow cyclotron orbits when the guiding-center approximation holds. Approaching the field null, where the ordinary guiding-center regime breaks down, particles exhibit trajectories called, in some historical contexts, betatron orbits. We quantify transitional magnetization between cyclotron and betatron orbits by a magnetization parameter that decomposes phase space into these orbit regimes. Considering the distribution of all orbits, this phase-space decomposition reveals a transitional magnetization region wherein both populations coexist. Classical magnetized transport theory fails within this region, where the diamagnetic drift reverses. The drift flux is instead supported by the flux of betatron orbits. Kinematic diffusivity remains approximately constant rather than diverging at the null. These transport modifications are governed solely by the number density per unit length in the ideal pinch.

physics.plasm-ph

Z Pinch Kinetics II -- A Continuum Perspective: Betatron Heating and Self-Generation of Sheared Flows

Adiabatic compression of a self-magnetizing current filament (a Z pinch) is analyzed via the adiabatic invariants of its constituent cyclotron and betatron motions. Chew-Goldberger-Low (CGL) models are recovered for both trajectories but with distinct anisotropy axes, about the magnetic field for cyclotron fluid and about the electric current for betatron fluid. In particular, betatron heating produces agyrotropic anisotropy which balances with gyrophase mixing. A hybrid CGL model is proposed based on the local densities of cyclotron and betatron orbits, then validated by numerical experiments. The relation between anisotropy and shear is explored by constructing the kinetic equilibrium of a flow expanded in the flux function. Flow as a linear flux function is simply bi-Maxwellian, while higher powers display higher-moment deviations. Next, weakly collisional gyroviscosity (magnetized pressure-strain) is considered in a forward process (forced flow) and an inverse process (forced anisotropy). The forward process phase-mixes flow into a simple flux function, freezing flow into flux and inducing anisotropy. In the inverse process, betatron heating-induced anisotropy self-generates a sheared flow to resist changes in flux. This flow, arising from momentum diffusion, is concentrated in the betatron region.

physics.plasm-ph

Whole Device Modeling of the FuZE Sheared-Flow-Stabilized Z Pinch

The FuZE sheared-flow-stabilized Z pinch at Zap Energy is simulated using whole-device modeling employing an axisymmetric resistive magnetohydrodynamic formulation implemented within the discontinuous Galerkin WARPXM framework. Simulations show formation of Z pinches with densities of approximately 10^22 m^-3 and total DD fusion neutron rate of 10^7 per μs for approximately 2 μs. Simulation-derived synthetic diagnostics show peak currents and voltages within 10% and total yield within approximately 30% of experiment for similar plasma mass. The simulations provide insight into the plasma dynamics in the experiment and enable a predictive capability for exploring design changes on devices built at Zap Energy.

physics.plasm-ph