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April 8, 2026International Journal of Modern Physics B2 citations

Magnetic dipole-controlled flow and heat transfer of magnetite and manganese zinc ferrite based nanofluid over a rotating cone for thermal energy systems

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ARAkhtar RasoolHKHidayat Ullah KhanNMNoor Muhammad

Key Points

  • The study aims to explore the flow characteristics and heat transfer of a ferrofluid over a rotating cone influenced by magnetic dipoles.
  • Converted partial differential equations into ordinary differential equations using similarity transformations.
  • Employed numerical methods with bvp4c technique in MATLAB to solve transformed equations.
  • Characterized magnetite ferrite and manganese zinc ferrite nanoparticles dispersed in water.
  • Thermal and concentration boundary layers are significantly impacted by ferrohydrodynamic interactions.
  • Angular velocity ratio and buoyancy ratio play crucial roles in flow characteristics.
  • Graphical results demonstrate enhanced heat and mass transfer due to ferrite nanoparticles.

Abstract

The present study investigates the flow characteristics of a ferrofluid past a rotating cone subjected the influence of a magnetic dipole. The nonlinear coupled partial differential equations describing the flow phenomena of ferrofluid over a rotating cone are converted into ordinary differential equations by employing appropriate similarity transformations. The transformed equations are then solved numerically using bvp4c technique in MATLAB software. The analysis focuses on magnetite ferrite Fe 3 O 4 and Manganese zinc ferrite Mn – ZnFe 2 O 4 nanoparticles which are dispersed in water in a rotating cone, are characterized in the present article. The proposed ferrofluid model obeys the Fourier law of heat conduction and Cattaneo Christov heat flux. The results indicate that the thermal and concentration boundary layers are strongly influenced by the ferrohydrodynamic interaction parameter, angular velocity ratio, buoyancy ratio, and nanoparticle characteristics. Tabular and graphical results are displayed to highlight the role of ferrite nanoparticles in enhancing heat and mass transfer in rotating cone flows.

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Cite This Study

Rasool et al. (2026) studied this question.

synapsesocial.com/papers/69d5f09e74eaea4b11a7a086https://doi.org/10.1142/s0217979226501456
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