As a first step for the modelling of the plasma-wall interaction of the proposed Dynamic Ergodic Divertor (DED) of TEXTOR-94, the topology of the magnetic field lines of the divertor is analysed. Despite the strong ergodization, the magnetic field lines intersecting the wall in one poloidal turn for
The Dynamic Ergodic Divertor (DED) for TEXTOR-94
β Scribed by K.H. Finken; Th. Eich
- Publisher
- John Wiley and Sons
- Year
- 2000
- Tongue
- English
- Weight
- 758 KB
- Volume
- 40
- Category
- Article
- ISSN
- 0005-8025
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β¦ Synopsis
A Dynamic Ergodic Divertor (DED) is under construction for TEXTOR-94. The ergodization will be achieved by a set of 16 in-vessel perturbation -plus two compensation -coils located at the high field side of TEXTOR-94. The coils follow helically the magnetic field lines for one toroidal turn of a preselected "resonant" magnetic flux surface and are individually fed outside the vessel allowing a large flexibility for possible interconnections. The DED-system will operate at DC or several fixed frequencies up to 10 kHz. Different and adapted modelling efforts have been undertaken both for the ergodic area and the laminar zone. The basic techniques for the ergodic zone are field line mapping and field line tracing; the analysis provides the magnetic field structure in form of PoincarΓ© plots and the transport coefficients for the magnetic field lines. For the laminar zone a modelling is used which takes into account the typical aspects of the scrape-off layer physics. A low frequency operation of the DED will distribute the heat flux over the relatively large area of the divertor target plate. The calculations show that the high frequency operation should impose a torque on the plasma edge which is of similar size as the one imposed by tangential NBI.
π SIMILAR VOLUMES
The convex set M a of quasi-invariant measures on a locally convex space E with given ``shift''-Radon Nikodym derivatives (i.e., cocycles) a=(a tk ) k # K 0 , t # R is analyzed. The extreme points of M a are characterized and proved to be non-empty. A specification (of lattice type) is constructed s