Penta-Hybrid Nanofluid Transport and Irreversibility in Stenotic Arteries Under Caputo–Fabrizio Fractional Dynamics
Abstract
1. Introduction
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- A fluid containing five different nanoparticles transfers heat more effectively than one with only a single type. This motivates its use in the study.
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- The main focus is to boost how well the fluid can conduct and manage heat.
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- Although gold nanoparticles have strong physical properties, their actual biomedical applications in blood flow are not widely discussed, leaving a research gap.
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- The Caputo–Fabrizio fractional derivative is cast off to capture fluid behavior more accurately than traditional (integer-order) derivatives.
2. Physical Structure and Problem Formulation
2.1. Flow Geometry
2.2. Basic Flow Equation
2.3. External Applied Electric Field
3. The Solution to the Problem
4. Entropy Generation
5. Results and Analysis
6. Conclusions
Funding
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
| Symbol | Parameter Name | Physical Meaning/Significance |
| Re | Reynolds number | Ratio of inertial to viscous forces; characterizes laminar arterial flow |
| Bn | Casson parameter | Represents yield stress effects of blood rheology |
| M (Ha2) | Magnetic parameter | Measures magnetic field induced Lorentz force |
| Gr | Grashof number | Ratio of buoyancy to viscous forces due to thermal gradients |
| Pr | Prandtl number | Ratio of momentum diffusivity to thermal diffusivity |
| Br | Brinkman number | Quantifies viscous dissipation effects |
| Ec | Eckert number | Conversion of kinetic energy into internal energy |
| Rd | Radiation parameter | Represents thermal radiation contribution |
| Qs | Heat source/sink parameter | Internal heat generation or absorption |
| Λ | Electro-osmotic parameter | Strength of electro-osmotic forcing |
| A | Fractional order parameter | Memory effect in Caputo–Fabrizio model |
| Φ1–Φ5 | Nanoparticle volume fractions | Concentration of each nanoparticle in penta-hybrid nanofluid |
| Ns | Entropy generation number | Measure of irreversible energy losses |
| Be | Bejan number | Ratio of heat transfer irreversibility to total entropy generation |
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| Structures | Penta Hybrid-Nanofluid |
|---|---|
| Dynamic viscosity | |
| Density | where and |
| Thermal conductivity | where and . |
| Heat capacity | where and . |
| Electrical conductivity | where and . |
| Thermal expansion coefficient | where, and |
| Characteristics | Blood | Gold | Copper | Alumina | Silver | Magnesium Oxides |
|---|---|---|---|---|---|---|
| 1063 | 19320 | 8933 | 3971 | 10500 | 3580 | |
| 0.493 | 315 | 402 | 40.01 | 429 | 30 | |
| 1.81 | 14 | 1.67 | 8.61 | 18 | 10 | |
| 3595 | 129 | 386 | 766 | 235 | 879 | |
| 6.671 × 10−1 | 4.11 × 107 | 5.96 × 107 | 35 × 106 | 6.3 × 107 | 5.392 × 10−7 |
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© 2026 by the author. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Makhdoum, B.M. Penta-Hybrid Nanofluid Transport and Irreversibility in Stenotic Arteries Under Caputo–Fabrizio Fractional Dynamics. Eng 2026, 7, 78. https://doi.org/10.3390/eng7020078
Makhdoum BM. Penta-Hybrid Nanofluid Transport and Irreversibility in Stenotic Arteries Under Caputo–Fabrizio Fractional Dynamics. Eng. 2026; 7(2):78. https://doi.org/10.3390/eng7020078
Chicago/Turabian StyleMakhdoum, Basim M. 2026. "Penta-Hybrid Nanofluid Transport and Irreversibility in Stenotic Arteries Under Caputo–Fabrizio Fractional Dynamics" Eng 7, no. 2: 78. https://doi.org/10.3390/eng7020078
APA StyleMakhdoum, B. M. (2026). Penta-Hybrid Nanofluid Transport and Irreversibility in Stenotic Arteries Under Caputo–Fabrizio Fractional Dynamics. Eng, 7(2), 78. https://doi.org/10.3390/eng7020078

