Multi-objective stellarator optimization studies
POSTER
Abstract
The realization of stellarator fusion power plants relies on the use of optimization techniques to provide 3-D magnetic field configurations with excellent plasma confinement properties. Optimization activities are reported in targeted areas of plasma physics dedicated to improving the stellarator concept. In this work, both quasi-isodynamic (QI) and quasi-symmetric (QS) configurations are considered. An emerging area of emphasis is the need to improve the turbulent transport properties of stellarators. Optimization schemes are developed using reduced models to monitor the efficacy of turbulent transport reduction. Configurations produced through optimization using reduced models for turbulent transport are assessed using gyrokinetic based transport modeling. Turbulent improved configurations are sought consistent with excellent neoclassical and energetic particle transport, self-consistent bootstrap current, robust MHD equilibrium, local and global MHD stability and simplified coil design. Consistency of these designs with scalable divertor solutions are also addressed.
Presenters
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Chris C Hegna
University of Wisconsin - Madison, Type One Energy, University of Wisconsin-Madison
Authors
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Chris C Hegna
University of Wisconsin - Madison, Type One Energy, University of Wisconsin-Madison
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Aaron Bader
University of Wisconsin - Madison, Type One Energy, Type One Energy
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John M Canik
Oak Ridge National Lab, Type One Energy, Type One Energy Group
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Antoine Cerfon
Type One Energy
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Benjamin J Faber
University of Wisconsin - Madison, University of Wisconsin
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Walter Guttenfelder
Type One Energy
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Bharat Medasani
Type One Energy
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John C Schmitt
Type One Energy, Auburn University, Type One Energy
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Luquant Singh
University of Wisconsin-Madison, University of Wisconsin