Extended mhd tool




















Copyright Statement. Other availability. Search WorldCat to find libraries that may hold this journal. LinkedIn Pinterest Tumblr. Reduction of ablated surface expansion in pulsed-power-driven experiments using an aerosol dielectric coating journal , July Evans, M. Physics of Plasmas, Vol. Observation of a Mg xi forbidden satellite line in an optically thick X -pinch plasma journal , May Pikuz, S.

Physical Review A, Vol. Adaptive mesh refinement for hyperbolic partial differential equations journal , March Berger, Marsha J. High current, 0. Ultra-intense laser pulse propagation in plasmas: from classic hole-boring to incomplete hole-boring with relativistic transparency journal , June Weng, S.

New Journal of Physics, Vol. Part I journal , April Pikuz, S. Plasma Physics Reports, Vol. X-pinch source of subnanosecond soft X-ray pulses based on small-sized low-inductance current generator journal , September Mesyats, G.

Journal of Experimental and Theoretical Physics, Vol. Evolution of the structure of the dense plasma near the cross point in exploding wire X pinches journal , July Shelkovenko, T. Enhancing cylindrical compression by reducing plasma ablation in pulsed-power drivers journal , April Gourdain, P.

Physical Review, Vol. Axial magnetic field injection in magnetized liner inertial fusion journal , October Gourdain, P. Three-dimensional calculations for a 4 kA, 3. Studies of plasma formation from exploding wires and multiwire arrays using x-ray backlighting journal , January Shelkovenko, T. Review of Scientific Instruments, Vol.

X-pinch dynamics: Neck formation and implosion journal , October Oreshkin, V. Simulations of electron transport and ignition for direct-drive fast-ignition targets journal , November Solodov, A. An oil-free compact X-pinch plasma radiation source: Design and radiation performance journal , June Shapovalov, Roman V.

Relaxation model for extended magnetohydrodynamics: Comparison to magnetohydrodynamics for dense Z-pinches journal , January Seyler, C. Snyder and H. Strauss and L. Edge pedestal height and the accompanying ELM crash are critical elements of ITER physics yet to be understood and predicted through high performance computing.

An entirely self-consistent first principles simulation is being pursued as a long term research goal, and the plan is planned for completion in time for ITER operation. However, a proof-of-principle work has already been established using a computational tool that employs the best first principles physics available at the present time. A kinetic edge equilibrium code XGC0, which can simulate the neoclassically dominant pedestal growth from neutral ionization using a phenomenological residual turbulence diffusion motion superposed upon the neoclassical particle motion is coupled to an extended MHD code M3D, which can perform the nonlinear ELM crash.

The stability boundary of the pedestal is checked by an ideal MHD linear peeling-ballooning code, which has been validated against many experimental data sets for the large scale type I ELMs onset boundary. The coupling workflow and scientific results to be enabled by it are described. Documents: Advanced Search Include Citations. Authors: Advanced Search Include Citations.

Park , J. Cummings , C. Chang , N. Podhorszki , S. Klasky , S.



0コメント

  • 1000 / 1000