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Title: Choice of a process design for simultaneous detritiation and upgrading of heavy water for the Advanced Neutron Source

Journal Article · · Nuclear Technology
OSTI ID:163191
;  [1];  [2]
  1. Atomic Energy of Canada Ltd. Research, Chalk River, Ontario (Canada). Chalk River Labs.
  2. Oak Ridge National Lab., TN (United States)

Tritium removal and heavy water upgrading are essential components of the heavy water-moderated reactor that is the heart of the Advanced Neutron Source (ANS) to be built at Oak Ridge National Laboratory. The technologies for these two processes, which are closely related, are reviewed in the context of the ANS requirements. The evolution of the design of the Heavy Water Upgrading and Detritiation Facility (HWUDF) for ANS is outlined, and the final conceptual design is presented. The conceptual design of HWUDF has two main component systems: (a) a front-end combined electrolysis and catalytic exchange (CECE) system and (b) a back-end cryogenic distillation (CD) system. The CECE process consists of a countercurrent exchange column for hydrogen-water exchange over a wetproofed catalyst and electrolysis to convert water into hydrogen. It accepts all the tritiated heavy water streams of the reactor and performs an almost total separation into a protium (light hydrogen) stream containing tritium and deuterium at only natural abundance and a deuterium stream containing all the tritium and almost no protium. The tritium-containing deuterium stream is then processed by a CD unit, which removes over 90% of the tritium and concentrates it to >99% tritium for indefinite storage as a metal tritide. Deuterium gas with a small residue of tritium is recombined with oxygen from the electrolytic cells and returned as heavy water to the reactor.

DOE Contract Number:
AC05-84OR21400
OSTI ID:
163191
Journal Information:
Nuclear Technology, Vol. 112, Issue 2; Other Information: PBD: Nov 1995
Country of Publication:
United States
Language:
English