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November 28, 2025SymmetryOpen Access

Magnetohydrodynamic Flow and Transport Behaviors of Blood-Based Ternary Nanofluids in Stenosed Arteries with Axial Symmetry: Effects of Thermal Radiation and Caputo Fractional Derivatives

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Authors

JHJi-Huan HeMAMagaji Yunbunga AdamuIAIsah Abdullahi

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Overview

Observational analysis reveals significant heat transfer improvement in blood-based nanofluids, suggesting enhanced thermal radiation solutions in biomedical applications.

Key Points

  • The magnetohydrodynamic flow reduces axial velocity due to the Lorentz force within stenosed arteries.
  • Increased thermal radiation elevates fluid temperature, enhancing heat transfer in therapies.
  • Employing the Laplace transform and CME method helped derive velocity and temperature profiles effectively.
  • The integration of symmetry principles advances the understanding of biomedical flow dynamics.

Cite This Study

He et al. (2025) studied this question.

synapsesocial.com/papers/6928f126a65b730b9ea7a366https://doi.org/10.3390/sym17122024
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Magnetohydrodynamic Flow and Transport Behaviors of Blood-Based Ternary Nanofluids in Stenosed Arteries with Axial Symmetry: Effects of Thermal Radiation and Caputo Fractional Derivatives2025
  2. 2Numerical investigation of magnetohydrodynamic blood-based ternary and hybrid nanofluid flow over a bidirectionally stretching surface: thermal radiation, variable viscosity, and non-Darcy effects2026
  3. 3Thermal Characteristics of Magnetic Blood-Based Hexa-Hybrid Nanofluids in Stenotic Arteries with Heat Source/Sink by Applying Caputo-Fabrizio Fractional Derivatives2026 · 1 citations
  4. 4Thermal performance in magnetized blood-based hepta-hybrid nanofluids via arterial constrictions2026
  5. 5MHD flow of blood-based hybrid nanofluid through a stenosed artery with thermal radiation effect2024 · 35 citations