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September 10, 2025Journal of Applied Science and Education (JASE)

Mathematical Modelling and Theoretical Exploration of Hybrid Blood-Nano-fluid Flow in a Stenosed Artery with Magnetization Effect

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Overview

This analysis reveals how hybrid blood-nano-fluid dynamics influence flow rates in stenosis arteries, suggesting a strong link to magnetization effects.

Key Points

  • The study shows that increased flow parameters enhance blood velocity in stenosed arteries, highlighting important fluid dynamics.
  • Key evidence indicates that larger nano-particle volume fractions and Prandtl numbers lead to reduced blood temperature.
  • The research employs a mathematical model solved via finite difference methods, focusing on two-dimensional blood flow as a Newtonian fluid.
  • Findings underscore the significance of enhancing blood rheology with future modifications to accurately model complex physiological dynamics.

Cite This Study

A 2025 study studied this question.

synapsesocial.com/papers/68c1abf954b1d3bfb60e4069https://doi.org/10.54060/a2zjournals.jase.111
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Also Consider

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  4. 4Modeling and heat transfer analysis of magnetized hybrid micropolar blood-based nanofluid flow in Darcy–Forchheimer porous stenosis narrow arteries2025 · 2 citations
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