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September 10, 2025Journal of Plasma Physics18 citations

Confinement performance predictions for a high field axisymmetric tandem mirror

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SFSamuel J. FrankJVJesse ViolaYPYuri A. Petrov

Key Points

  • The model predicts a fusion gain Q exceeding 5 for a tandem mirror pilot plant using high temperature superconducting magnets.
  • Key evidence includes improved efficiency of neutral beam absorption and classical radial transport in influencing end plug stability.
  • The approach involves an advanced end plug simulation model integrating heating, equilibrium, and transport with machine learning techniques.
  • Significantly, the findings support operating points that require lower performance thresholds, enhancing feasibility for fusion pilot plants.

Abstract

This paper presents a Hammir tandem mirror confinement performance analysis based on Realta Fusion’s first-of-a-kind model for axisymmetric magnetic mirror fusion performance. This model uses an integrated end plug simulation model including, heating, equilibrium and transport combined with a new formulation of the plasma operation contours (POPCONs) technique for the tandem mirror central cell. Using this model in concert with machine learning optimization techniques, it is shown that an end plug utilizing high temperature superconducting magnets and modern neutral beams enables a classical tandem mirror pilot plant producing a fusion gain Q > 5. The approach here represents an important advance in tandem mirror design. The high-fidelity end plug model enables calculations of heating and transport in the highly non-Maxwellian end plug to be made more accurately. The detailed end plug modelling performed in this work has highlighted the importance of classical radial transport and neutral beam absorption efficiency on end plug viability. The central cell POPCON technique allows consideration of a wide range of parameters in the relatively simple near-Maxwellian central cell, facilitating the selection of more optimal central cell plasmas. These advances make it possible to find more conservative classical tandem mirror fusion pilot plant operating points with lower temperatures, neutral beam energies and end plug performance requirements than designs in the literature. Despite being more conservative, it is shown that these operating points have sufficient confinement performance to serve as the basis of a viable fusion pilot plant provided that they can be stabilized against magnetohydrodynamic and trapped particle modes.

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Cite This Study

Frank et al. (2025) studied this question.

synapsesocial.com/papers/68c19f7f54b1d3bfb60dabd0https://doi.org/10.1017/s002237782510055x
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