Published September 2017 | Version v1
Journal article

Preconceptual design of a fluoride high temperature salt-cooled engineering demonstration reactor: Motivation and overview

Description

Highlights: • Engineering demonstration reactors are built as proof of concept for technology options. • This paper details a preconcept for a fluoride salt-cooled engineering demonstration reactor (FHR DR). • The motivation, philosophy, and system design of the FHR DR preconcept have been evaluated. • Development and operation of the FHR DR is an intermediate step to reduce deployment risk of near-term commercial FHRs. - Abstract: Engineering demonstration reactors are nuclear reactors built to establish proof of concept for technology options that have never been built. Examples of engineering demonstration reactors include Peach Bottom 1 for high temperature gas-cooled reactors and the Experimental Breeder Reactor-II for sodium-cooled fast reactors. Engineering demonstrations have historically played a vital role in advancing the technology readiness level of reactor concepts. This paper details a preconceptual design for a fluoride salt-cooled engineering demonstration reactor. The fluoride salt-cooled high-temperature reactor (FHR) demonstration reactor (DR) is a concept for a salt-cooled reactor with 100 megawatts of thermal output. It would use tristructural-isotropic (TRISO) particle fuel in compacts within prismatic graphite blocks. FLiBe (2 7LiF-BeF2) is the reference primary coolant. The FHR DR is designed to be small, simple, and affordable. Development of the FHR DR is an intermediate step to enable near-term commercial FHRs. The design philosophy of the FHR DR was focused on safety, near-term deployment, and flexibility. Lower risk technologies are purposely included in the initial FHR DR design to ensure that the reactor can be built, licensed, and operated as an engineering demonstration with minimal risk and cost. These technologies include TRISO particle fuel, replaceable core structures, and consistent structural material selection for core structures and the primary and intermediate loops, and tube-and-shell primary-to-intermediate heat exchangers. Important capabilities to be demonstrated by building and operating the FHR DR include: • core design methodologies, • heat exchanger performance (including passive decay heat removal), • pump performance, • reactivity control, • salt chemistry control to maximize plant life, • salt procurement, handling, maintenance and ultimate disposal, and • tritium management. Non-nuclear separate and integral test efforts (e.g., heated salt loops or loops using simulant fluids) are necessary to develop the technologies that will be demonstrated in the FHR DR.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.anucene.2016.11.021

Additional details

Identifiers

DOI
10.1016/j.anucene.2016.11.021;
PII
S0306-4549(16)30593-X;

Publishing Information

Journal Title
Annals of Nuclear Energy (Oxford)
Journal Volume
107
Journal Page Range
p. 144-155
ISSN
0306-4549
CODEN
ANENDJ

Optional Information

Copyright
Copyright (c) 2016 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.