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October 18, 2025Multidiscipline Modeling in Materials and Structures3 citations

Modified Cattaneo-Christov analysis for radiated micropolar nanofluid flow with bioconvection phenomenon and nano-biofuel applications

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ITIskander TliliSKSohaib Z. KhanAAAbdulrahman Aljabri

Key Points

  • The study reveals that bioconvection plays a significant role in enhancing heat transfer in micropolar nanofluid flow under external thermal sources.
  • The application of the Cattaneo-Christov hypothesis successfully updates heat transfer modeling in the context of oscillatory sheet flow.
  • Homotopy analysis was employed to develop and simplify the governing equations into dimensionless forms, leading to effective simulations.
  • The findings suggest potential applications in nano-biofuels and advanced heat management systems for improved performance.

Abstract

Purpose The suspension of microorganisms in nanomaterials presents excellent thermal stability and impressive properties. The current analysis aims to investigate the significance of bioconvection associated with the time-dependent flow of a micropolar nanofluid governed by an oscillatory sheet. Design/methodology/approach The consequences of the porous medium and magnetohydrodynamics are examined. The heat transfer modeling is updated by using the Cattaneo-Christov hypothesis. The flow is further driven by external thermal sources and radiative impact. Under the assumed theoretical assumptions, the flow model is developed, further simplified into dimensionless equations. For computational simulations, the homotopy analysis scheme is implemented. After ensuring the convergence region, a graphical analysis is performed. The problem is further visualized in a 3D pattern. The proposed results may find significant applications in nano-biofuels and heat management systems. Findings After ensuring the convergence region, a graphical analysis is performed. The problem is further visualized in a 3D pattern. The proposed results may find significant applications in nano-biofuels and heat management systems. Originality/value The model is based on the amplification of the revised flux theories, namely, the Cattaneo-Christov model. Insight into the radiated phenomenon and the external thermal (heat) source is observed. The solution of the governing equations was treated with the homotopy analysis method. A physical analysis and 3D illustration of the problem are presented.

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Cite This Study

Tlili et al. (2025) studied this question.

synapsesocial.com/papers/68f35bfc73f0a7d050f47f06https://doi.org/10.1108/mmms-04-2025-0104
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