Electromagnetic System Conceptual Design for a Negative Triangularity Tokamak
Abstract
Negative triangularity (NT) tokamak configurations have several key benefits including sufficient core confinement, improved power handling, and reduced edge pressure gradients that allow for edge-localized mode (ELM) free operation. We present the design of a compact NT device for testing sophisticated simulation and control software, with the aim of demonstrating NT controllability and informing power plant operation. The TokaMaker code is used to develop the basic electromagnetic system of the = 1 m, = 0.27 m, = 3 T, = 0.75 MA tokamak. The proposed design utilizes eight poloidal field coils with maximum currents of 1 MA to achieve a wide range of plasma geometries with and . Scenarios with strong negative triangularity and high elongation are particularly susceptible to vertical instability, necessitating the inclusion of high-field side and/or low-field side passive stabilizing plates which together reduce vertical instability growth rates by 75%. Upper limits for the forces on poloidal and toroidal field coils are predicted and mechanical loads on passive structures during current quench events are assessed. The 3 T on-axis toroidal field is achieved with 16 demountable copper toroidal field coils, allowing for easy maintenance of the vacuum vessel and poloidal field coils. This pre-conceptual design study demonstrates that the key capabilities required of a dedicated NT tokamak experiment can be realized with existing copper magnet technologies.
Keywords
Cite
@article{arxiv.2501.14682,
title = {Electromagnetic System Conceptual Design for a Negative Triangularity Tokamak},
author = {Sophia Guizzo and Mikhail A. Drabinskiy and Christopher Hansen and Aleksandr G. Kachkin and Eduard N. Khairutdinov and Andrew O. Nelson and Maxim R. Nurgaliev and Matthew Pharr and Georgy F. Subbotin and Carlos Paz-Soldan},
journal= {arXiv preprint arXiv:2501.14682},
year = {2025}
}