Analysis of subcooled boiling with the two-fluid particle interaction method
- 1. Toshiba Power and Industrial Sysems R and D Center, Kawasaki, Kanagawa (Japan)
- 2. Toshiba IT-Solutions Corporation, Kawasaki, Kanagawa (Japan)
- 3. University of Aizu, University-Business Innovation Center, Aizu-wakamatsu, Fukushima (Japan)
Description
A particle interaction method called MPS (the Moving Particle Semi-implicit method), which formulates the differential operators in Navier-Stokes' equation as interactions between particles characterized by a kernel function, has been developed in recent years. We have extended this method to a two-fluid system with a potential-type surface tension in order to analyze the two-phase flow without experimental correlation. This extended method (Two-Fluid MPS: TF-MPS) was successfully applied to a subcooled boiling experiment. The most important element in any effective subcooled boiling model is to be able to accurately calculate where significant void fraction appears, that is, the location of the void departure point. The location of the initial void ejection into the subcooled liquid core can be determined fairly well experimentally and conventionally is given in terms of a critical subcooling. We investigated the relation between Stanton and Peclet numbers at the void departure point in the calculated results with TF-MPS method, varying the inlet water velocity to change Peclet number. (author)
Additional details
Publishing Information
- Journal Title
- Journal of Nuclear Science and Technology (Tokyo)
- Journal Volume
- 40
- Journal Issue
- 3
- Journal Page Range
- p. 125-135
- ISSN
- 0022-3131
INIS
- Country of Publication
- Japan
- Country of Input or Organization
- Japan
- INIS RN
- 34054321
- Subject category
- S42: ENGINEERING;
- Descriptors DEI
- COMPUTER CALCULATIONS; COMPUTERIZED SIMULATION; FORCED CONVECTION; HEAT TRANSFER; MONTE CARLO METHOD; NUSSELT NUMBER; SUBCOOLED BOILING; TWO-PHASE FLOW; VOID FRACTION; VOIDS
- Descriptors DEC
- BOILING; CALCULATION METHODS; CONVECTION; ENERGY TRANSFER; FLUID FLOW; HEAT TRANSFER; MASS TRANSFER; PHASE TRANSFORMATIONS; SIMULATION
Optional Information
- Notes
- 30 refs., 10 figs.