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March 3, 2026International Communications in Heat and Mass Transfer1 citationsOpen Access

Energy storage and thermal management using a micropolar nano-encapsulated phase-change material in a vented cavity

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SHShafqat HussainACA.K. ChattopadhyayMAMusaad S. Aldhabani

Key Points

  • Thermal radiation enhances the average Nusselt number by approximately 56.5% with minimal mass transfer change.
  • Micropolar effects improve average Nusselt and Sherwood numbers by 12.7% and 20.6%, respectively, enhancing transport.
  • The Dufour effect reduces heat transfer by nearly 19%, while the Soret effect weakens mass transfer by about 21%.
  • Optimal transport in magnetized NEPCM-based systems showcases the balance of radiation, microrotation, and cross-diffusive effects.

Abstract

This numerical investigation optimizes coupled heat and mass transfer in advanced thermal management systems. Thermosolutal mixed convection of a magnetized micropolar suspension containing nano-encapsulated phase change materials, NEPCMs, is analyzed in a vented cavity with an adiabatic cylindrical obstacle. The work uniquely integrates double-diffusive convection, specifically Soret and Dufour effects, thermal radiation via the Rosseland approximation, and magnetohydrodynamics within a single framework. The governing equations are solved using the finite element method to quantify the individual and combined impacts of key dimensionless parameters on transport characteristics. A systematic numerical simulation strategy is adopted by varying the cylinder radius from the absence of an obstacle ( R = 0 ) to larger configurations ( R = 0 . 15 –0.3), Richardson number ( R i = 1 –10), Reynolds number ( R e = 10 –200), nanoparticle volume fraction ( ϕ = 0 . 01 –0.05), micropolar parameter ( Γ = 0 . 1 –2.0) and buoyancy ratio ( N r = 1 –20), enabling a comprehensive assessment of both geometric and flow-induced effects on thermal and solutal performance. The results indicate that thermal radiation is the dominant heat transfer mechanism, producing an enhancement of approximately 56.5% in the average Nusselt number, while causing only a marginal change in mass transfer. Micropolar effects significantly improve overall transport, increasing the average Nusselt and Sherwood numbers by about 12.7% and 20.6%, respectively. In contrast, the Dufour effect reduces heat transfer by nearly 19%, whereas the Soret effect weakens mass transfer by approximately 21% within the investigated parameter ranges. These findings demonstrate that heat and mass transfer in magnetized NEPCM-based micropolar systems can be effectively tailored through a careful balance of radiation, microrotation, and cross-diffusive mechanisms, providing quantitatively reliable design guidelines for compact heat exchangers and modular thermal energy storage applications.

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Cite This Study

Hussain et al. (2026) studied this question.

synapsesocial.com/papers/69a76007c6e9836116a2c716https://doi.org/10.1016/j.icheatmasstransfer.2026.110712
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