| Literature DB >> 30100679 |
Sidra Aman1, Ilyas Khan2, Zulkhibri Ismail1, Mohd Zuki Salleh1.
Abstract
Impacts of gold nanoparticles on MHD Poiseuille flow of nanofluid in a porous medium are studied. Mixed convection is induced due to external pressure gradient and buoyancy force. Additional effects of thermal radiation, chemical reaction and thermal diffusion are also considered. Gold nanoparticles of cylindrical shape are considered in kerosene oil taken as conventional base fluid. However, for comparison, four other types of nanoparticles (silver, copper, alumina and magnetite) are also considered. The problem is modeled in terms of partial differential equations with suitable boundary conditions and then computed by perturbation technique. Exact expressions for velocity and temperature are obtained. Graphical results are mapped in order to tackle the physics of the embedded parameters. This study mainly focuses on gold nanoparticles; however, for the sake of comparison, four other types of nanoparticles namely silver, copper, alumina and magnetite are analyzed for the heat transfer rate. The obtained results show that metals have higher rate of heat transfer than metal oxides. Gold nanoparticles have the highest rate of heat transfer followed by alumina and magnetite. Porosity and magnetic field have opposite effects on velocity.Entities:
Keywords: Chemical reaction; Gold nanoparticles; Heat and mass transfer; Heat transfer rate; Kerosene oil; MHD; Mixed convection; Porous medium
Year: 2016 PMID: 30100679 PMCID: PMC6061667 DOI: 10.1007/s00521-016-2688-7
Source DB: PubMed Journal: Neural Comput Appl ISSN: 0941-0643 Impact factor: 5.606
Fig. 1Application of gold nanoparticles in cancer therapy
Fig. 2Poiseuille flow of nanofluid with gold nanoparticles
Empirical shape factors
| Model | Cylinder |
|---|---|
|
| 13.5 |
|
| 904.4 |
Thermophysical properties of kerosene oil and nanoparticles
| Material | Symbol |
|
|
|
|---|---|---|---|---|
| Gold | Au | 19,300 | 129 | 318 |
| Kerosene oil | – | 783 | 2090 | 0.145 |
| Silver | Ag | 10,500 | 235 | 429 |
| Magnetite |
| 5180 | 670 | 9.7 |
| Alumina |
| 3970 | 765 | 40 |
| Copper |
| 8933 | 385 | 401 |
Sphericity for various shapes nanoparticles
| Model | Cylinder |
|---|---|
|
| 0.62 |
Fig. 3Temperature profile for various values of and in kerosene oil-based AuNP nanofluid when
Fig. 4Temperature profile for various values of in kerosene oil-based AuNP nanofluid when
Fig. 5Concentration profile for various values of and in kerosene oil-based AuNP nanofluid when
Fig. 6Concentration profile for various values of and in kerosene oil-based AuNP nanofluid when
Fig. 7Concentration profile for various values of and in kerosene oil-based AuNP nanofluid when
Fig. 8Velocity profile for various values of and in kerosene oil-based AuNP nanofluid when
Fig. 9Velocity profile for various values of and in kerosene oil-based AuNP nanofluid when
Influence of volume fraction on heat transfer rate for various kinds of nanoparticles at N = 1.5
| Volume fraction | Gold (Au) | Copper (Cu) | Silver (Ag) | Magnetite | Alumina |
|---|---|---|---|---|---|
| 0 | 0.106 | 0.106 | 0.106 | 0.106 | 0.106 |
| 0.01 | 0.156 | 0.156 | 0.156 | 0.153 | 0.155 |
| 0.02 | 0.201 | 0.201 | 0.201 | 0.195 | 0.2 |
| 0.03 | 0.243 | 0.243 | 0.243 | 0.235 | 0.241 |
| 0.04 | 0.28 | 0.28 | 0.28 | 0.271 | 0.278 |