MHD beta limits for advanced scenarios on JET
Ideal MHD limits to beta and bootstrap fraction are computed for pressure profiles similar to those of JET discharges with both internal and H mode transport barriers. Several non-monotonic current profiles are tested, and the pressure profile is constrained so that no negative current drive is requ...
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Published in | Nuclear fusion Vol. 39; no. 11; pp. 1523 - 1533 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
Published |
IOP Publishing
01.11.1999
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Subjects | |
Online Access | Get full text |
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Summary: | Ideal MHD limits to beta and bootstrap fraction are computed for pressure profiles similar to those of JET discharges with both internal and H mode transport barriers. Several non-monotonic current profiles are tested, and the pressure profile is constrained so that no negative current drive is required in steady state. Calculations are made both with and without an ideally conducting wall. The main result is that, for such peaked pressure profiles, the limits to beta and bootstrap action improve at low internal inductance, in particular when wall stabilization is taken into account. The highest limits to beta, and often also to normalized beta, occur for the maximum plasma current. There is also a weak dependence on q sub(min), for which three favourable regions have been identified. A highly advantageous region is found at q sub(min) approximately 1.6, where the limits to beta * are 7.0% with, and 4.8% without, wall stabilization. The corresponding limits are 68 and 50%, respectively, for the bootstrap fraction and 4.0 and 2.9 for the normalized beta. These equilibria have low internal inductance, l sub(i) identical with 0.62. For higher inductance, an optimum occurs when q sub(min) approximately 1.2, where the limit to beta * is 5.3% with a wall and 4.7% without. The corresponding bootstrap fractions are about 46 and 38%, respectively. A third type of equilibrium that is interesting for steady state operation has q sub(min) approximately 2.1 and low inductance. Here the beta * limits are lower, 4.9 and 3.4%, but the bootstrap fractions are higher, 77 and 60%. |
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Bibliography: | ObjectType-Article-2 SourceType-Scholarly Journals-1 ObjectType-Feature-1 content type line 23 |
ISSN: | 0029-5515 1741-4326 |
DOI: | 10.1088/0029-5515/39/11/303 |