Published 1997 | Version v1
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Modelling of two-phase flow based on separation of the flow according to velocity

  • 1. VTT Energy, Espoo (Finland). Nuclear Energy

Description

The thesis concentrates on the development work of a physical one-dimensional two-fluid model that is based on Separation of the Flow According to Velocity (SFAV). The conventional way to model one-dimensional two-phase flow is to derive conservation equations for mass, momentum and energy over the regions occupied by the phases. In the SFAV approach, the two-phase mixture is divided into two subflows, with as distinct average velocities as possible, and momentum conservation equations are derived over their domains. Mass and energy conservation are treated equally with the conventional model because they are distributed very accurately according to the phases, but momentum fluctuations follow better the flow velocity. Submodels for non-uniform transverse profile of velocity and density, slip between the phases within each subflow and turbulence between the subflows have been derived. The model system is hyperbolic in any sensible flow conditions over the whole range of void fraction. Thus, it can be solved with accurate numerical methods utilizing the characteristics. The characteristics agree well with the used experimental data on two-phase flow wave phenomena Furthermore, the characteristics of the SFAV model are as well in accordance with their physical counterparts as of the best virtual-mass models that are typically optimized for special flow regimes like bubbly flow. The SFAV model has proved to be applicable in describing two-phase flow physically correctly because both the dynamics and steady-state behaviour of the model has been considered and found to agree well with experimental data This makes the SFAV model especially suitable for the calculation of fast transients, taking place in versatile form e.g. in nuclear reactors

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Additional details

Publishing Information

ISBN
951-38-5071-4
Imprint Pagination
143 p.
Report number
VTT-PUB--319

INIS

Country of Publication
Finland
Country of Input or Organization
Finland
INIS RN
29000999
Subject category
S42: ENGINEERING; S21: SPECIFIC NUCLEAR REACTORS AND ASSOCIATED PLANTS;
Resource subtype / Literary indicator
Thesis
Descriptors DEI
FLOW MODELS; MATHEMATICAL MODELS; NUCLEAR POWER PLANTS; NUMERICAL SOLUTION; TRANSIENTS; TWO-PHASE FLOW; VELOCITY
Descriptors DEC
FLUID FLOW; NUCLEAR FACILITIES; POWER PLANTS; THERMAL POWER PLANTS

Optional Information

Notes
45 refs. The thesis includes also five previous publications by author.