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Fusion energy: Progress, partnerships, and the path to deployment
Over the past decade, fusion energy has moved decisively from scientific aspiration toward a credible pathway to a new energy technology. Thanks to long-term federal support, we have significantly advanced our fundamental understanding of plasma physics—the behavior of the superheated gases at the heart of fusion devices. This knowledge will enable the creation and control of fusion fuel under conditions required for future power plants. Our progress is exemplified by breakthroughs at the National Ignition Facility and the Joint European Torus.
R. L. Hiller, C. G. Bathke, R. A. Krakowski, F. H. Heck, L. Green, J. S. Karbowski, J. H. Murphy, R. B. Tupper, R. A. Deluca, A. Moazed, R. A. Terry
Fusion Science and Technology | Volume 4 | Number 2 | September 1983 | Pages 1308-1313
Alternate Concepts | doi.org/10.13182/FST83-A23037
Articles are hosted by Taylor and Francis Online.
A conceptual design study of the Modular Stellarator Reactor is summarized. The physics basis of the approach is elucidated with emphasis on magnetics performance optimization. Key engineering features of the fusion power core are described. Comparisons with an analogous continuous-helical-coil (torsatron) system are made as the basis of a technical and economic assessment.