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Glass strategy: Hanford’s enhanced waste glass program
The mission of the Department of Energy’s Office of River Protection (ORP) is to complete the safe cleanup of waste resulting from decades of nuclear weapons development. One of the most technologically challenging responsibilities is the safe disposition of approximately 56 million gallons of radioactive waste historically stored in 177 tanks at the Hanford Site in Washington state.
ORP has a clear incentive to reduce the overall mission duration and cost. One pathway is to develop and deploy innovative technical solutions that can advance baseline flow sheets toward higher efficiency operations while reducing identified risks without compromising safety. Vitrification is the baseline process that will convert both high-level and low-level radioactive waste at Hanford into a stable glass waste form for long-term storage and disposal.
Although vitrification is a mature technology, there are key areas where technology can further reduce operational risks, advance baseline processes to maximize waste throughput, and provide the underpinning to enhance operational flexibility; all steps in reducing mission duration and cost.
Tore Supra Team
Fusion Science and Technology | Volume 29 | Number 4 | July 1996 | Pages 417-448
Technical Paper | First-Wall Technology | doi.org/10.13182/FST96-A30688
Articles are hosted by Taylor and Francis Online.
In view of high-power, long-pulse steady-state operation, Tore Supra has incorporated in its design the active control of heat and particles in a realistic environment. In the early experimental phase of Tore Supra, the first generation of plasma-facing components was tested, and these tests provided much physics and technological information and illuminated various operational difficulties. In particular, these experiments revealed the weakness of the graphite-to-metal brazing process originally adopted for actively cooled high-heat-flux components. Consequently, a new inner-wall technology was developed in 1994 and is to be tested in 1995–1996 with a totally rebuilt 40-deg toroidal sector. A carbon-fiber—reinforced carbon-metal compound is based on the newest brazing technology and rigorous quality control. Components such as the toroidal pump limiter and the guard limiters of plasma-heating antennas are being developed in the same way. For structures where brazing is difficult, boron carbide-coated components have been developed and installed in Tore Supra. For lower heat fluxes, a bolted concept has been designed and tested. The influence of inner-first-wall misalignment in Tore Supra on the power exhaust limitation of brazed components has been studied. Results from the technological development for the different power exhaust systems and the associated experimental knowledge obtained during plasma operation in Tore Supra are presented.