Electromagnetic coil optimization for reduced Lorentz forces
Siena Hurwitz, Matt Landreman, Alan Kaptanoglu

TL;DR
This paper introduces a new, efficient model for optimizing electromagnetic coils to reduce Lorentz forces in high-field devices, balancing force reduction with plasma confinement and coil safety.
Contribution
It implements a novel filamentary self-force model with automatic differentiation in stellarator design, enabling effective coil force optimization with practical trade-offs.
Findings
Significant reduction in coil forces achieved.
Trade-offs between force reduction, particle losses, and coil-plasma distance identified.
Model demonstrates applicability to various fusion devices.
Abstract
The reduction of magnetic forces on electromagnetic coils is an important consideration in the design of high-field devices such as the stellarator or tokamak. Unfortunately, these forces may be too time-consuming to evaluate by conventional finite element modeling within an optimization loop. Although mutual forces can be computed rapidly by approximating large-bore coils as infinitely thin, this approximation does not hold for self-forces as it leads to an unphysical divergence. Recently, a novel reduced model for the self-field, self-force, and self-inductance of electromagnetic coils based on filamentary models was rigorously derived and demonstrated to be highly accurate and numerically efficient to evaluate. In this paper, we present an implementation of the reduced self-force model employing automatic differentiation within the SIMSOPT stellarator design software and use it in…
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Taxonomy
TopicsElectric Motor Design and Analysis · Experimental and Theoretical Physics Studies
