ASTEC–MAAP Comparison of a 2 Inch Cold Leg LOCA until RPV Failure
- 1. European Commission Joint Research Centre, Netherlands
- 2. Italian National Agency for New Technologies, Energy and Sustainable Economic Development, Italy
- 3. Fauske & Associates, LLC, USA
- 4. Institute for Radioprotection and Nuclear Safety, France
Description
A 2 inch, cold-leg loss-of-coolant accident (LOCA) in a 900 MWe generic Western PWR was simulated using ASTEC 2.1.1 and MAAP 5.02. The progression of the accident predicted by the two codes up to the time of vessel failure is compared. It includes the primary system depressurization, accumulator discharge, core heat-up, hydrogen generation, core relocation to lower plenum, and lower head breach. The purpose of the code comparison exercise is to identify modelling differences between the two codes and the user choices affecting the results. The two codes predict similar primary system depressurization behaviour until the accumulation injection, confirming similar break flow and primary system thermal-hydraulic response calculations between the two codes. The choice of the accumulator gas expansion model, either isentropic or isothermal, affects the rate and total amount of coolant injected and thereby determines whether the core is quenched or overheated and attains a noncoolable geometry during reflooding. A sensitivity case was additionally simulated by each code to allow comparisons to be made with either accumulator gas expansion models. The two codes predict similar amount of in-vessel hydrogen generated and core quench status for a given accumulator gas expansion model. ASTEC predicts much larger initial core relocation to lower plenum leading to an earlier vessel failure time. MAAP predicts more gradual core relocation to lower plenum, prolonging the lower plenum debris bed heat-up and time to vessel failure. Beside the effect of the code user in conducting severe accident simulations, some discrepancies are found in the modelling approaches in each code. The biggest differences are found in the in-vessel melt progression and relocation into the lower plenum, which deserve further research to reduce the uncertainties.
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Additional details
Identifiers
- DOI
- 10.1155/2018/9189010;
Publishing Information
- Journal Title
- Science and Technology of Nuclear Installations
- Journal Volume
- 2018
- Journal Page Range
- 1-24
- ISSN
- 1687-6075
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- Subject category
- S21: SPECIFIC NUCLEAR REACTORS AND ASSOCIATED PLANTS;
- Descriptors DEI
- ATWS; COMPUTERIZED SIMULATION; CORE FLOODING SYSTEMS; DEPRESSURIZATION SYSTEMS; EXPANSION; FAILURES; GEOMETRY; ISOLATION CONDENSERS; LOSS OF COOLANT; MELT-THROUGH; PRIMARY COOLANT CIRCUITS; PWR TYPE REACTORS; QUENCHING; REACTOR VESSELS; SAFETY INJECTION; THERMAL HYDRAULICS
- Descriptors DEC
- ACCIDENTS; BEYOND-DESIGN-BASIS ACCIDENTS; CONTAINERS; COOLING SYSTEMS; ECCS; ENERGY SYSTEMS; ENGINEERED SAFETY SYSTEMS; ENRICHED URANIUM REACTORS; FLUID MECHANICS; HYDRAULICS; MATHEMATICS; MECHANICS; MELTDOWN; POWER REACTORS; REACTOR ACCIDENTS; REACTOR COMPONENTS; REACTOR COOLING SYSTEMS; REACTOR PROTECTION SYSTEMS; REACTORS; SEVERE ACCIDENTS; SIMULATION; STEAM CONDENSERS; THERMAL REACTORS; VAPOR CONDENSERS; WATER COOLED REACTORS; WATER MODERATED REACTORS
Optional Information
- Copyright
- © Author(s)
- Notes
- Record automatically processed