Demonstration of reduced neoclassical energy transport in Wendelstein 7-X
- C. D. Beidler
- H. M. Smith
- A. Alonso
- T. Andreeva
- J. Baldzuhn
- M. Beurskens
- M. Borchardt
- S. Bozhenkov
- K. J. Brunner
- H. Damm
- M. Drevlak
- O. Ford
- G. Fuchert
- J. Geiger
- P. Helander
- U. Hergenhahn
- M. Hirsch
- U. Höfel
- Ye. O. Kazakov
- R. Kleiber
- M. Krychowiak
- S. Kwak
- A. Langenberg
- H. P. Laqua
- U. Neuner
- N. Pablant
- E. Pasch
- A. Pavone
- T. S. Pedersen
- K. Rahbarnia
- J. Schilling
- E.R. Scott
- T. Stange
- J. Svensson
- H. Thomsen
- Y. Turkin
- F. Warmer
- R. C. Wolf
- D. Zhang
- the W7-X Team
- I. Abramovic
- S. Äkäslompolo
- J. A. Alcusón
- P. Aleynikov
- K. Aleynikova
- Adnan Ali
- A. Alonso
- G. Anda
- E. Ascasíbar
- J.-P. Bähner
- S. G. Baek
- M. Balden
- M. Banduch
- T. Barbui
- W. Behr
- A. Benndorf
- C. Biedermann
- W. Biel
- B. D. Blackwell
- E. Blanco
- M. Blatzheim
- S. Ballinger
- T. Bluhm
- D. Böckenhoff
- B. Böswirth
- L.-G. Böttger
- V. Borsuk
- J. Boscary
- H.-S. Bosch
- R. Brakel
- H. van den Brand
- C. Brandt
- T. Bräuer
- H. Braune
- S. Brezinsek
- K. J. Brunner
- R. Burhenn
- R. Bussiahn
- B. Buttenschön
- V. Bykov
- Jianqing Cai
- I. Calvo
- B. Cannas
- A. Cappa
- A. Carls
- L. Carraro
- B.B. Carvalho
- F. Castejón
- A. Charl
- N. Chaudhary
- D. Chauvin
- Ф. В. Чернышев
- M. Cianciosa
- Roberto Citarella
- G. Claps
- J.W. Coenen
- M. Cole
- M. J. Cole
- F. Cordella
- G. Cseh
- KIK. Ida
- KIK. Ida
Nature · 2021 · Nature Portfolio
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Abstract
Abstract Research on magnetic confinement of high-temperature plasmas has the ultimate goal of harnessing nuclear fusion for the production of electricity. Although the tokamak 1 is the leading toroidal magnetic-confinement concept, it is not without shortcomings and the fusion community has therefore also pursued alternative concepts such as the stellarator. Unlike axisymmetric tokamaks, stellarators possess a three-dimensional (3D) magnetic field geometry. The availability of this additional dimension opens up an extensive configuration space for computational optimization of both the field geometry itself and the current-carrying coils that produce it. Such an optimization was undertaken in designing Wendelstein 7-X (W7-X) 2 , a large helical-axis advanced stellarator (HELIAS), which began operation in 2015 at Greifswald, Germany. A major drawback of 3D magnetic field geometry, however, is that it introduces a strong temperature dependence into the stellarator’s non-turbulent ‘neoclassical’ energy transport. Indeed, such energy losses will become prohibitive in high-temperature reactor plasmas unless a strong reduction of the geometrical factor associated with this transport can be achieved; such a reduction was therefore a principal goal of the design of W7-X. In spite of the modest heating power currently available, W7-X has already been able to achieve high-temperature plasma conditions during its 2017 and 2018 experimental campaigns, producing record values of the fusion triple product for such stellarator plasmas 3,4 . The triple product of plasma density, ion temperature and energy confinement time is used in fusion research as a figure of merit, as it must attain a certain threshold value before net-energy-producing operation of a reactor becomes possible 1,5 . Here we demonstrate that such record values provide evidence for reduced neoclassical energy transport in W7-X, as the plasma profiles that produced these results could not have been obtained in stellarators lacking a comparably high level of neoclassical optimization.
