Three-dimensional electromagnetic relativistic particle-in-cell code VLPL (Virtual Laser Plasma Lab)

Трёхмерный электромагнитный релятивистский код частиц в ячейках VLPL (Virtual Laser Plasma Lab)
A. Pukhov
1999-04-01

VLPLfast ignitor conceptrelativistic laser–plasma interactionsrelativistic self-focusingthree-dimensional electromagnetic PIC
The three-dimensional particle-in-cell (PIC) code VLPL (Virtual Laser Plasma Lab) allows, for the first time, direct fully electromagnetic simulations of relativistic laser–plasma interactions. Physical results on relativistic self-focusing in under-dense plasma are presented. It is shown that background plasma electrons are accelerated to multi-MeV energies and 10 4 T magnetic fields are generated in the process of self-focusing at high laser intensities. This physics is crucial for the fast ignitor concept in inertial confinement fusion. Advances in the numerical PIC algorithm used in the code VLPL are reviewed here.
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Background plasma electrons are accelerated to multi-MeV energies during relativistic self-focusing.
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Magnetic fields of approximately 10^4 T are generated during the self-focusing process.
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Simulations demonstrate relativistic self-focusing of intense lasers in underdense plasma.
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The paper reviews advances in the numerical PIC algorithms implemented in VLPL.
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These effects are identified as important for the fast-ignitor concept in inertial confinement fusion.
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VLPL enables fully electromagnetic three-dimensional particle-in-cell simulations of relativistic laser–plasma interactions.

Relativistic laser–plasma interaction in under-dense plasma during laser self-focusing

Self-focusing-induced acceleration of background plasma electrons to multi-MeV energies and generation of 10^4 T magnetic fields

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1999-04-01
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A. Pukhov
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