Tritium inventory and permeation in TFTR
The control of tritium in TFTR has both important safety and environmental implications. Current modelling techniques allow realistic predictions of the tritium inventory in and permeation through in-torus components. The source of the tritium was computed using a three-dimensional description of the neutral particle flux on the TFTR vacuum vessel wall from the neutral transport code DEGAS, under plasma conditions modelled with the one-dimensional transport code BALDUR. The movable limiter (graphite) was modelled using an extension of the Local Mixing Model for hydrogen retention and isotope exchange. In particular, the calculations consider the inventory and recyling for the movable limiters (which are expected to experience transient temperatures up to 2000/sup 0/C) as well as the bumper limiters and protective plates which will remain somewhat cooler. Transient effects are included. The tritium transport in the stainless steel wall was modelled using the DIFFUSE code with materials parameters taken from the most recent literature. It appears that for the expected material properties, specifically the hydrogen recombination constant measured in a clean TFTR environment, and operating scenario, there will be essentially no tritium permeation through the stainless steel walls or bellows and less than 0.1 kCi of tritium inventory in the stainless steel first wall. The limiters contain as much as 5 kCi of tritium.
- Research Organization:
- Sandia National Labs., Livermore, CA (USA); Sandia National Labs., Albuquerque, NM (USA); Princeton Univ., NJ (USA). Plasma Physics Lab.
- DOE Contract Number:
- AC04-76DP00789
- OSTI ID:
- 7092498
- Report Number(s):
- SAND-84-1135C; CONF-840520-10; ON: DE84013802
- Country of Publication:
- United States
- Language:
- English
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ALLOYS
BELLOWS
BETA DECAY RADIOISOTOPES
BETA-MINUS DECAY RADIOISOTOPES
CARBON
CHROMIUM ALLOYS
CORROSION RESISTANT ALLOYS
DIFFUSION
ELEMENTAL MINERALS
ELEMENTS
GRAPHITE
HAZARDS
HEALTH HAZARDS
HYDROGEN ISOTOPES
INVENTORIES
IRON ALLOYS
IRON BASE ALLOYS
ISOTOPES
LIGHT NUCLEI
LIMITERS
MATHEMATICAL MODELS
MECHANICAL STRUCTURES
MINERALS
NONMETALS
NUCLEI
ODD-EVEN NUCLEI
PERMEABILITY
RADIATION HAZARDS
RADIOISOTOPES
SAFETY
STAINLESS STEELS
STEELS
TFTR REACTORS
THERMONUCLEAR REACTOR WALLS
THERMONUCLEAR REACTORS
TOKAMAK TYPE REACTORS
TRITIUM
YEARS LIVING RADIOISOTOPES