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May 28, 2026Heat Transfer0 citations

Assessment of Second Moment Closure Models for Modelling of Natural Convection in a Tall Cavity and Displacement Ventilation

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AAA. Sibo AnthonyManipur UniversityHSHuirem Neeranjan SinghNational Institute of Technology ManipurTVTikendra Nath VermaMaulana Azad National Institute of Technology

Key Points

  • The study aims to evaluate various turbulence models for predicting natural convection in a tall cavity and a displacement-ventilated room. It assesses their performance in terms of temperature and velocity predictions.
  • Investigated turbulence models including elliptic blending Reynolds stress model (EBRSM) and differential flux model (DFM) in two scenarios: a tall cavity and a displacement-ventilated room.
  • Conducted transient simulations for the tall cavity and steady-state simulations for the displacement ventilation scenario to assess model predictions.
  • Compared model performance by analyzing turbulence and heat flux predictions near walls and in secondary motion.
  • EBRSM shows improved predictions of turbulent and mean quantities near walls in the tall cavity.
  • Both EBRSM and RSM models provide better representation of secondary motions in the cavity, especially at the corners.
  • In the displacement ventilation scenario, EBRSM combined with EBDFM yields superior predictions of temperature and velocity fields, capturing sharper gradients and a stronger plume structure.

Abstract

ABSTRACT This study examines turbulence models for predicting natural convection in two scenarios: a differentially heated cavity (AR = 28.68) and a displacement‐ventilated room. For the tall cavity, the elliptic blending Reynolds stress model (EBRSM), the standard Reynolds stress model (RSM), the model, and the model are investigated. In contrast, in the displacement‐ventilated room scenario, EBRSM and are examined. For the EBRSM, the elliptic blending differential flux model (EBDFM) computes the turbulent heat flux. The RSM employs a differential flux model (DFM), while the and models use the Simple Gradient Diffusion Hypothesis (SGDH). Transient simulation is conducted for the tall cavity, whereas a steady‐state simulation is performed for displacement ventilation. The simulation results indicate that the EBRSM delivers improved predictions of both the turbulent and mean quantities near the wall in the 2D case. Both EBRSM and RSM provide a better representation of the secondary motions in the cavity, particularly at the corners. Except for the model, all models yield good predictions of the wall heat flux. In the displacement ventilation scenario, the EBRSM and EBDFM combination provides better predictions of the temperature and velocity fields, capturing sharper gradients than the model. Additionally, it predicts a stronger, more pronounced plume structure compared to the model.

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Cite This Study

Anthony et al. (2026) studied this question.

synapsesocial.com/papers/6a17ddab3fad632b0f9da5cbhttps://doi.org/10.1002/htj.70282
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