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DOE OSTI · 2372903

Flexible Stellarator Physics Facility

Abstract

We propose to build a Flexible Stellarator Physics Facility to explore promising regions of the vast parameter space of disruption-free stellarator solutions for Fusion Pilot Plants (FPPs). The FESAC Long Range Plan recognized the quasi-symmetric stellarator as “the leading US approach to developing disruption-free, low-recirculating-power fusion configurations”. To deliver the ambitious Decadal Vision for Commercial Fusion Energy, we must establish a persuasive stellarator program in parallel to the tokamak one: the stellarator will prove to be a better path to a reactor if theoretical predictions are confirmed and novel optimization techniques and strategies work as desired. Since the release of the Long Range Plan in 2020, stellarators have arguably made the most significant advances of all fusion concepts. Groundbreaking results from W7-X demonstrated low neoclassical transport and the successful operation of the island divertor. Advances in theory and modeling now allow us to minimize turbulent transport, to achieve equilibria with precise quasisymmetry, to reduce neoclassical transport and fast ion loss to levels far below what has been previously achieved, and to minimize the effect of coil manufacturing errors. If realized, these advances will lead to cost-effective stellarator designs with confinement comparable to tokamaks but without the fundamental challenges of disruptions and current drive.

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Parra Diaz, Felix, Baek, Seung Gyou, Churchill, Michael, Demers, Diane R., Dudson, B., Ferraro, Nathaniel M., Geiger, Benedikt, Gerhardt, Stefan, Hammond, Kenneth C., Hudson, Stuart, Jorge, R., Kolemen, Egemen, Kriete, David M., Kumar, S. T. A., Landreman, M., Lowe, C., Maurer, David A., Nespoli, Federico, Pablant, Novimir, Pueschel, M. J., Punjabi, A., Schwartz, Jacob A., Swanson, C. P. S., Wright, Adelle M.. 2024-06-14. Flexible Stellarator Physics Facility. https://doi.org/10.2172/2372903

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