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Permanent-Magnet Optimization for Stellarators as Sparse Regression

delete2022-10-04
delete13
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OA
AI
A
Alan A. Kaptanoglu *
T
Tony Qian
F
Florian Wechsung
M
Matt Landreman
DOI:10.1103/PhysRevApplied.18.044006delete
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摘要

摘要

En 中文
A common scientific inverse problem is the placement of magnets that produce a desired magnetic field inside a prescribed volume. This is a key component of stellarator design and recently permanent magnets have been proposed as a potentially useful tool for magnetic field shaping. Here, we take a closer look at possible objective functions for permanent-magnet optimization, reformulate the problem as sparse regression, and propose an algorithm that can efficiently solve many convex and nonconvex variants. The algorithm generates sparse solutions that are independent of the initial guess, explicitly enforces maximum strengths for the permanent magnets, and accurately produces the desired magnetic field. The algorithm is flexible, and our implementation is open source and computationally fast. We conclude with two permanent-magnet configurations for the NCSX and MUSE stellarators. Our methodology can be additionally applied for effectively solving permanent-magnet optimizations in other scientific fields, as well as for solving quite general high-dimensional constrained sparse-regression problems, even if a binary solution is required.
Keyword:
EQUATIONS

期刊

Physical Review Applied 封面图
Physical Review Applied
IF:
4.4
论文数:
7.1K
被引数:
2.8W

机构

P
Princeton University
学者数:
2.1W
论文数: 2.3W
被引数: 5.1W
University System of Maryland 封面图
University System of Maryland
学者数:
6.5W
论文数: 5.6W
被引数: 113
引用论文

引用论文

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