Comparative analysis of the silver-gold and copper-titanium dioxide hybrid nanoparticles impact on flow and heat transfer of the pulsatile blood in occluded cerebral artery

被引:1
|
作者
Najafi, Nahid [1 ]
Almosawy, Wala [2 ]
Abbas, Marwan S. [3 ]
Goligerdian, Arash [4 ]
Najafi, Mohammad [5 ]
Abdi, Negar [6 ]
Ardalan, Aram [7 ]
Aminian, Saman [5 ,7 ]
机构
[1] Islamic Azad Univ, Dept Food Sci & Technol, Tehran, Iran
[2] Univ Kerbala, Coll Sci, Dept Chem, Kerbala, Iraq
[3] Univ Warith Al Anbiyaa, Coll Engn, Biomed Engn Dept, Karbala, Iraq
[4] Univ Houston, Dept Math, 3551 Cullen Blvd, Houston, TX USA
[5] Islamic Azad Univ, Sci & Res Branch, Dept Mech Elect Power & Comp, Tehran, Iran
[6] Kurdistan Univ Med Sci, Fac Paramed Sci, Dept Radiol, Sanandaj, Iran
[7] Univ Kurdistan, Dept Mech Engn, Sanandaj, Iran
关键词
Hybrid nanofluids; Pulsatile flow; Heat transfer; Stenosed artery; Volume fraction; THERMAL-CONDUCTIVITY; RHEOLOGICAL BEHAVIOR; NEWTONIAN NANOFLUID; MAGNETIC-FIELD; FLUID; HEMODYNAMICS; FORCES; TIO2;
D O I
10.1016/j.jtherbio.2025.104060
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Arterial stenosis, which is the progressive narrowing of the lumen of blood vessels, severely compromises perfusion and leads to complex hemodynamic alterations. Evolving to address this challenge, hybrid nanofluids have emerged as a truly transformative solution due to their superior thermal and fluid properties. The present study numerically investigates the flow and heat transfer phenomena of two hybrid nanofluids, namely Silver-Gold (Ag-Au) and Copper-Titanium dioxide (Cu-TiO2), in a bifurcated artery with 50% stenosis. A three-dimensional computational model based on the FEM was developed to simulate the pulsatile, Newtonian, and incompressible blood flow. The effects of nanoparticle volume fraction, pulsation rate, and the stenosis geometry were systematically investigated on temperature distribution, velocity profiles, wall shear stress, and heat flux. It was observed that increasing the volume fraction of nanoparticles heightens thermal conductivity and, thus, heat transfer efficiency. For instance, at a volume fraction of 0.1, the hybrid Silver-Gold nanofluid achieved the highest ANN of 24.188 in comparison with the Cu- TiO2 at 20.456. The interaction of pulsatile flow with nanoparticles further augmented heat flux via periodic thinning of the thermal boundary layer, hence fostering flatter temperature profiles. Even though both hybrid nanofluids had comparable wall shear stress values of similar to 1.426 N/cm(2), Silver-Gold nanoparticles manifested better thermal efficiency and uniform temperature distribution. These results indicate that the hybrid nanofluids, especially Silver-Gold, may have enormous potential in biomedical applications like hyperthermia treatment, drug delivery, and vascular heat management. This study bridges critical gaps in understanding hybrid nanofluid dynamics in stenosed arteries, providing a foundation for future innovations in biomedical heat transfer and fluid mechanics.
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页数:14
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