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Transient analysis of an FHR coupled to a helium Brayton power cycle

  • Minghui Chen
  • , In Hun Kim
  • , Xiaodong Sun
  • , Richard Christensen
  • , Vivek Utgikar
  • , Piyush Sabharwall

Research output: Contribution to journalArticlepeer-review

24 Scopus citations

Abstract

The Fluoride salt-cooled Higherature Reactor (FHR) features a passive decay heat removal system and a high-efficiency Brayton cycle for electricity generation. It typically employs an intermediate loop, consisting of an intermediate heat exchanger (IHX) and a secondary heat exchanger (SHX), to couple the primary system with the power conversion unit (PCU). In this study, a preliminary dynamic system model is developed to simulate transient characteristics of a prototypic 20-MWth Fluoride salt-cooled Higherature Test Reactor (FHTR). The model consists of a series of differential conservation equations that are numerically solved using the MATLAB platform. For the reactor, a point neutron kinetics model is adopted. For the IHX and SHX, a fluted tube heat exchanger and an offset strip-fin heat exchanger are selected, respectively. Detailed geometric parameters of each component in the FHTR are determined based on the FHTR nominal steady-state operating conditions. Three initiating events are simulated in this study, including a positive reactivity insertion, a step increase in the mass flow rate of the PCU helium flow, and a step increase in the PCU helium inlet temperature to the SHX. The simulation results show that the reactor has inherent safety features for those three simulated scenarios. It is observed that the increase in the temperatures of the fuel pebbles and primary coolant is mitigated by the decrease in the reactor power due to negative temperature feedbacks. The results also indicate that the intermediate loop with the two heat exchangers plays a significant role in the transient progression of the integral reactor system.

Original languageEnglish
Pages (from-to)283-293
Number of pages11
JournalProgress in Nuclear Energy
Volume83
DOIs
StatePublished - Aug 1 2015

Keywords

  • FHR
  • Intermediate heat exchanger (IHX)
  • Modeling and simulation
  • Secondary heat exchanger (SHX)
  • Transient thermal-hydraulic analysis

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