Numerical study on direct contact condensation of countercurrent subcooled water-steam flow in a steam-filled vertical rectangular narrow channel

A two-dimensional computational fluid dynamics (CFD) model was developed to investigate direct contact condensation (DCC) during counter-current flow of subcooled water and steam in a steam-filled vertical rectangular narrow channel. The model incorporates the Volume of Fluid (VOF) method, Lee phase-change model, Continuum Surface Force (CSF) model, and RNG k–ε turbulence model. The effects of subcooled-water and steam inlet velocities on flow evolution, pressure response, and counter-current flow limitation (CCFL) were systematically analyzed. The results show that the channel pressure exhibits pronounced periodic pulsations. Increasing the inlet velocities of both phases strengthens interfacial shear and flow disturbances, thereby intensifying interfacial instability, promoting condensation-induced water hammer (CIWH), and increasing the pressure oscillation intensity. The maximum pressure is mainly controlled by the subcooled-water inlet velocity and increases monotonically with it, while steam injection markedly amplifies the pressure peak compared with single-phase liquid injection. The average pressure increases with either inlet velocity, with the liquid velocity exerting a stronger effect. Flooding and liquid-bridge formation are observed during counter-current flow, triggering CCFL. As the subcooled-water-to-steam velocity ratio increases, CCFL weakens, whereas higher steam velocities lead to earlier liquid-bridge formation.

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Publication Details

Journal
Annals of Nuclear Energy
Published
2026-09-30
DOI
https://doi.org/10.1016/j.anucene.2026.112876
Primary Topic
Nuclear Engineering Thermal-Hydraulics
Type
article
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Numerical study on direct contact condensation of countercurrent subcooled water-steam flow in a steam-filled vertical rectangular narrow channel

Yan Li, Tao Lu, Gaokui Xie, Jihang Ouyang
Annals of Nuclear Energy
Nuclear Engineering Thermal-Hydraulics
article

Numerical study on direct contact condensation of countercurrent subcooled water-steam flow in a steam-filled vertical rectangular narrow channel

Yan Li, Tao Lu, Gaokui Xie, Jihang Ouyang
article en

Abstract

A two-dimensional computational fluid dynamics (CFD) model was developed to investigate direct contact condensation (DCC) during counter-current flow of subcooled water and steam in a steam-filled vertical rectangular narrow channel. The model incorporates the Volume of Fluid (VOF) method, Lee phase-change model, Continuum Surface Force (CSF) model, and RNG k–ε turbulence model. The effects of subcooled-water and steam inlet velocities on flow evolution, pressure response, and counter-current flow limitation (CCFL) were systematically analyzed. The results show that the channel pressure exhibits pronounced periodic pulsations. Increasing the inlet velocities of both phases strengthens interfacial shear and flow disturbances, thereby intensifying interfacial instability, promoting condensation-induced water hammer (CIWH), and increasing the pressure oscillation intensity. The maximum pressure is mainly controlled by the subcooled-water inlet velocity and increases monotonically with it, while steam injection markedly amplifies the pressure peak compared with single-phase liquid injection. The average pressure increases with either inlet velocity, with the liquid velocity exerting a stronger effect. Flooding and liquid-bridge formation are observed during counter-current flow, triggering CCFL. As the subcooled-water-to-steam velocity ratio increases, CCFL weakens, whereas higher steam velocities lead to earlier liquid-bridge formation.

Annals of Nuclear EnergyVol. 241
Beijing University of Chemical Technology (CN)
Clean water and sanitation
Openalex Percentile: Top 8%
Nuclear Engineering Thermal-Hydraulics
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Numerical study on direct contact condensation of countercurrent subcooled water-steam flow in a steam-filled vertical rectangular narrow channel — Yan Li, Tao Lu, et al. · Annals of Nuclear Energy (2026) | TGRS Research Map | TGRS