Particle Exhaust Scheme Using an In-Vessel Cryocondensation Pump in the Advanced Divertor Configuration of the DIII-D Tokamak
- 1 November 1992
- journal article
- research article
- Published by Taylor & Francis in Fusion Technology
- Vol. 22 (3) , 356-370
- https://doi.org/10.13182/fst92-a30095
Abstract
A particle exhaust scheme using a cryocondensation pump in the advanced divertor configuration of the DIII-D tokamak is described. In this configuration, the pump is located inside a baffle chamber within the tokamak, designed to receive particles reflected off the divertor strike region. A concentric coaxial loop with forced-convection flow of two-phase helium is selected as the cryocondensation surface. The pumping configuration is optimized by Monte Carlo techniques to provide maximum exhaust efficiency while minimizing the deleterious effects of impingement of energetic plasma particles on cryogenic surfaces. Heat loading contributions from various sources on the cryogenic surfaces are estimated, based on which the cryogenic flow loop for the pump is designed. The mechanical aspects of the pump, designed to meet the many challenging requirements of operating the cryopump internal to the tokamak vacuum and in close proximity with the high-temperature plasma, are also outlined.Keywords
This publication has 7 references indexed in Scilit:
- Particle exhaust modeling for the collaborative DIII-D advanced divertor programJournal of Nuclear Materials, 1990
- Recycling and neutral transport in the DIII-D tokamakJournal of Nuclear Materials, 1989
- Modeling of particle-surface reflections including surface roughness characterized by fractal geometryJournal of Nuclear Materials, 1989
- A Monte-Carlo model of neutral-particle transport in diverted plasmasJournal of Computational Physics, 1982
- Heat Transfer at Low TemperaturesPublished by Springer Nature ,1975
- Forced convection heat transfer to boiling helium in a tubeCryogenics, 1974
- Cryogenic heat transfer research at OxfordCryogenics, 1974