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February 17, 20260 citations

Numerical study of enhanced nanofluid heat transfer in an open cavity with heated obstacles using LBM

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AMAbdelilah MakaouiELEl Bachir LahmerJBJaouad Benhamou

Key Points

  • The study aims to explore how nanoparticle concentration and obstacle orientation affect heat transfer in a cavity.
  • Utilized the lattice Boltzmann method to simulate fluid flow and heat transfer.
  • Analyzed the effects of Reynolds number, nanoparticle size fraction, and obstacle orientation.
  • Examined temperature distribution and calculated Nusselt number for different configurations.
  • Horizontal configuration of obstacles enhances heat transfer significantly compared to vertical configuration.
  • Heat transfer improves by 17.5% with horizontal and 16.5% with vertical configurations at 5% nanoparticle concentration.
  • Increasing Reynolds number from 100 to 500 boosts Nusselt number by approximately 152.4%.

Abstract

This paper employs the lattice Boltzmann method to investigate the heat transfer properties of a nanofluid circulating within an open square cavity that contains three heated obstacles. The nanofluid is introduced into the system via a lower inlet and exits the system via an outlet located at the top of the opposite wall, flowing along the cavity walls. The study examines the effects of Reynolds number, nanoparticle size fraction and the orientation of the obstacles on both temperature distribution and the Nusselt number. The results indicate that the horizontal configuration of the barriers markedly enhances heat transfer in comparison to the vertical configuration. Furthermore, an increase in the volume fraction of nanoparticles results in enhanced heat transfer, with improvements of 16.5% for the vertical configuration and 17.5% for the horizontal configuration at a nanoparticle concentration of 5%. It is noteworthy that there is a considerable increase of approximately 152.4% in the Nusselt number when the Reynolds number is increased from 100 to 500. This study highlights the pivotal role of nanoparticle concentration and obstacle orientation in optimising the thermal management of microfluidic devices and electronic cooling systems.

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Cite This Study

Makaoui et al. (2025) studied this question.

synapsesocial.com/papers/699405bb4e9c9e835dfd69cfhttps://doi.org/10.1051/e3sconf/202560100021/pdf
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