Transient particle transport studies at the W7-AS stellarator
Description
One of the crucial problems in fusion research is the understanding of the transport of particles and heat in plasmas relevant for energy production. Extensive experimental transport studies have unraveled many details of heat transport in tokamaks and stellarators. However, due to larger experimental difficulties, the properties of particle transport have remained much less known. In particular, very few particle transport studies have been carried out in stellarators. This thesis summarises the transient particle transport experiments carried out at the Wendelstein 7-Advanced Stellarator (W7-AS). The main diagnostics tool was a 10-channel microwave interferometer. A technique for reconstructing the electron density profiles from the multichannel interferometer data was developed and implemented. The interferometer and the reconstruction software provide high quality electron density measurements with high temporal and sufficient spatial resolution. The density reconstruction is based on regularization methods studied during the development work. An extensive program of transient particle transport studies was carried out with the gas modulation method. The experiments resulted in a scaling expression for the diffusion coefficient. Transient inward convection was found in the edge plasma. The role of convection is minor in the core plasma, except at higher heating power, when an outward directed convective flux is observed. Radially peaked density profiles were found in discharges free of significant central density sources. Such density profiles are usually observed in tokamaks, but never before in W7-AS. Existence of an inward pinch is confirmed with two independent transient transport analysis methods. The density peaking is possible if the plasma is heated with extreme off-axis Electron Cyclotron Heating (ECH), when the temperature gradient vanishes in the core plasma, and if the gas puffing level is relatively low. The transport of plasma particles and heat is coupled. This can be described with two-fluid transport dynamics, and the coupling effects are important in many phenomena observed in tokamaks and stellarators. Therefore, a numerical code for solving the time-dependent coupled density-temperature transport equation was developed. The novelty of the code is that it fits the transport coefficients to actual experimental data. Cold pulse experiments were carried out at the W7-AS. The carbon impurity injection was observed to cause a density increase. The increase of the density is important in describing the propagation of the cold front after the impurity injection. Unlike in tokamaks, no core temperature rise is observed. (orig.)
Availability note (English)
Available from INIS in electronic form
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Additional details
Publishing Information
- ISBN
- 951-22-5096-9
- Imprint Pagination
- 131 p.
- Report number
- TKK-F-A--800
INIS
- Country of Publication
- Finland
- Country of Input or Organization
- Finland
- INIS RN
- 32001791
- Subject category
- S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
- Resource subtype / Literary indicator
- Thesis, Numerical Data
- Descriptors DEI
- ELECTRON DENSITY; EXPERIMENTAL DATA; INTERFEROMETERS; MEASURING METHODS; PARTICLES; PLASMA CONFINEMENT; TRANSPORT; WENDELSTEIN-7 STELLARATOR
- Descriptors DEC
- CLOSED PLASMA DEVICES; CONFINEMENT; DATA; INFORMATION; MEASURING INSTRUMENTS; NUMERICAL DATA; STELLARATORS; THERMONUCLEAR DEVICES
Optional Information
- Notes
- 110 refs. The thesis includes also seven previous publications by author