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February 2, 2026Applied Sciences0 citationsOpen Access

Heat Transfer Correlations and Flow-Mode Transitions in Partitioned Cavities for Efficient Thermal Management

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RKRosa KimANAdarsh R. NairHYHyun Sik Yoon

Key Points

  • This study aims to analyze how partitioned cavities affect heat transfer and flow modes in thermal management systems.
  • Utilized a two-dimensional steady laminar model under the Boussinesq approximation.
  • Investigated a range of Rayleigh numbers from 10^3 to 10^6 and various partition heights and numbers.
  • Categorized flow fields into modes and created a flow-mode map.
  • Conducted thermal-field analysis to examine temperature stratification.
  • Strong confinement reduces global heat transfer by 75–85%, reaching 98% at Rayleigh number 10^6.
  • Intermediate partitions result in a 40–60% reduction in heat transfer.
  • Shallow partitions cause less than 20% heat transfer loss even at high Rayleigh numbers.

Abstract

Partitioned cavities are widely used in passive, compact thermal management systems (data-center liquid cooling, cryogenic hydrogen/LNG storage, and battery modules) where geometric confinement governs natural convection and heat transfer. This study examines buoyancy-driven convection using a two-dimensional steady laminar model with adiabatic partitions under the Boussinesq approximation over Ra = 103 to 106, partition heights H = 0.1 − 0.9, and partition numbers N = 0 − 7. The model is validated against benchmark data. Flow fields are categorized into four modes—single circulation, corner vortices, secondary vortices, and stagnant flow—and their combinations, yielding an integrated flow-mode map that captures regimes and transitions. Two transition mechanisms are identified: slot-scale transitions driven by nonlinear changes in localized vortices and partition-dominated transitions that reorganize the primary circulation. Thermal-field analysis shows how partitions reshape temperature stratification, while the dependence of the Nusselt number on flow modes and geometric parameters is quantitatively analyzed. Quantitatively, strong confinement (H = 0.9, N ≥ 6) reduces global heat transfer by 75–85%, reaching 98% at Ra = 106. Intermediate partitions (H ≈ 0.5, N = 3 − 4) yield 40–60% reduction. Shallow partitions (H ≤ 0.3) cause <20% loss even at high Ra. The framework links confinement, flow modes, and heat-transfer suppression for design. By unifying partition-induced flow modes and quantifying heat-transfer suppression, this study provides a framework for confined convection.

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Cite This Study

Kim et al. (2026) studied this question.

synapsesocial.com/papers/6980ff37c1c9540dea81213ehttps://doi.org/10.3390/app16031430
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