Optimized finite- tokamak-stellarator hybrid configurations achieved by planar dipole-field coils
arXiv:2607.14146
The paper presents a method for designing tokamak‑stellarator hybrid configurations using planar dipole‑field coils, optimizing coil currents and plasma parameters to achieve finite‑beta, quasi‑axisymmetric equilibria with good stability and reduced external current drive.
Abstract
Tokamak--stellarator hybrids seek to combine tokamak-like compactness and confinement with stellarator-like externally generated rotational transform and steady-state operation. In this work, we build on the recent tokamak--stellarator hybrid study using planar dipole-field coils (PDCs) [Yu et al., arXiv:2605.03599], in which the fixed-position, programmable coils on an axisymmetric winding surface generate flexible three-dimensional shaping fields. Using single-stage free-boundary optimization of coil currents and plasma-equilibrium parameters, we construct vacuum and finite- configurations. The vacuum cases show controllable external transform and magnetic well. The finite- cases accommodate various density, temperature, and pressure profiles, producing quasi-axisymmetric (QA) equilibria with self-consistent bootstrap current, favorable Mercier stability, and reduced demand for external current drive. Re-optimization enables ramp-up and access to different field-period QA branches with moderate coil-current changes. At large rotational transform, a toroidally omnigenous (TO)-like configuration exhibits more favorable infinite- ideal-ballooning behavior than a QA reference with matched profiles, even though ballooning stability is not directly optimized for. These results demonstrate that PDCs provide a flexible platform for achieving optimized finite- hybrid configurations.