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Autores principales: Dame, Alejandro Mesa, Ochs, Ian E., Fisch, Nathaniel J.
Formato: Preprint
Publicado: 2024
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Acceso en línea:https://arxiv.org/abs/2412.05890
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author Dame, Alejandro Mesa
Ochs, Ian E.
Fisch, Nathaniel J.
author_facet Dame, Alejandro Mesa
Ochs, Ian E.
Fisch, Nathaniel J.
contents In a magnetic mirror fusion reactor, capturing the energy of fusion-produced alpha particles is essential to sustaining the reaction. However, since alpha particles are born at energies much higher than the confining potential, a substantial fraction are lost due to pitch-angle scattering before they can transfer their energy to the plasma via drag. The energy of lost alpha particles can still be captured through direct conversion, but designing an effective mechanism requires a description of the energies and times at which they become deconfined. Here we present analytical solutions for the loss velocity, energy, and time distributions of alpha particles in a magnetic mirror. After obtaining the Fokker-Planck collision operator, we asymptotically solve for the eigenfunctions of the Legendre operator to reveal a closed-form solution. Our framework applies to any high-energy species, for any applied potential and mirror ratio R > 1, making this work broadly applicable to mirror devices.
format Preprint
id arxiv_https___arxiv_org_abs_2412_05890
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Energy Spectrum of Lost Alpha Particles in Magnetic Mirror Confinement
Dame, Alejandro Mesa
Ochs, Ian E.
Fisch, Nathaniel J.
Plasma Physics
In a magnetic mirror fusion reactor, capturing the energy of fusion-produced alpha particles is essential to sustaining the reaction. However, since alpha particles are born at energies much higher than the confining potential, a substantial fraction are lost due to pitch-angle scattering before they can transfer their energy to the plasma via drag. The energy of lost alpha particles can still be captured through direct conversion, but designing an effective mechanism requires a description of the energies and times at which they become deconfined. Here we present analytical solutions for the loss velocity, energy, and time distributions of alpha particles in a magnetic mirror. After obtaining the Fokker-Planck collision operator, we asymptotically solve for the eigenfunctions of the Legendre operator to reveal a closed-form solution. Our framework applies to any high-energy species, for any applied potential and mirror ratio R > 1, making this work broadly applicable to mirror devices.
title Energy Spectrum of Lost Alpha Particles in Magnetic Mirror Confinement
topic Plasma Physics
url https://arxiv.org/abs/2412.05890