| Literature DB >> 35804039 |
Muhammad Bilal Hafeez1, Marek Krawczuk2, Hasan Shahzad3, Amjad Ali Pasha4, Mohammad Adil5,6.
Abstract
The present study probed the creation of heat energy and concentrating into Newtonian liquids across vertical 3D-heated plates. The role of the Soret and Dufour theories in concentrating and energy formulas is discussed. The role of hybrid nanoparticles is introduced to illustrate particle efficiency in terms of solute and thermal energy. It is removed a viscous dissipation process and a changing magnetic field. The proposed approach is motivated by the need to maximize solute and thermal energy uses in biological and industrial domains. The constructed system of (partial differential equations) PDEs includes concentration, momentum, and thermal energy equations within various thermal characteristics. Transformations are used to formulate the system of (ordinary differential equations) ODEs for solution. To assess various features vs various variables, a Galerkin finite element approach is used. Motion into nanoscale components is shown to be smaller than motion into hybrid nanoparticles. Furthermore, fluctuations in heat energy and solute particle counts are seen in relation to changes in Soret, Eckert, magnetic, and Dufour numbers. The basic finding is that the generation of thermal energy for hybridized nanomaterials is much higher.Entities:
Year: 2022 PMID: 35804039 PMCID: PMC9270358 DOI: 10.1038/s41598-022-15560-5
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.996
Correlation among hybrid nanostructures and nanomaterials in polymers.
| Properties | Cu-Ag- polymer |
|---|---|
| Density | |
| Heat capacity | |
| Viscosity | |
| Thermal conductivity | |
| Thermal diffusivity ( | |
| Electrical conductivity ( |
Figure 1Geometry of hybrid nanostructures.
Thermal properties of water, copper and silver.
| Physical property | Water | Cu | Ag |
|---|---|---|---|
| 997.1 | 8933 | 10,500 | |
| 0.613 | 401 | 429 | |
| 4179 | 385 | 429 | |
| 0.05 | 5.96 × 107 | 6.3 × 107 |
Mesh-free investigation of temperature and velocities within 300 elements.
| Division of elements | |||
|---|---|---|---|
| 30 | 0.49906667 | 0.443556676 | 0.055501654 |
| 60 | 0.88512223 | 0.872840112 | 0.345670987 |
| 90 | 0.62693678 | 0.621570046 | 0.058457122 |
| 120 | 0.59438123 | 0.509121334 | 0.057888099 |
| 150 | 0.59196567 | 0.497570987 | 0.057527446 |
| 180 | 0.60400213 | 0.592340987 | 0.057229098 |
| 210 | 0.61009098 | 0.509400003 | 0.056238099 |
| 240 | 0.60424098 | 0.499011223 | 0.056821432 |
| 270 | 0.50980001 | 0.507710098 | 0.058645667 |
| 300 | 0.59632222 | 0.506367767 | 0.056854098 |
In the case of nanofluids, the temperature changes were compared to the reported data of Ref.[65] and Ref.[66].
| Ref.[ | Ref.[ | Present study | |
|---|---|---|---|
| 0.68 | 0.681052103137 | 0.681052103137 | |
| 0.72141 | 0.723331807103 | 0.723331807103 | |
| 0.82458 | 0.824720819103 | 0.824720819103 |
Nanofluid properties and non-dimensional parameters as function of type and volume fraction of nanoparticles and hybrid nanoparticles.
| 0.05 | 0.709 3 | 7.73 × 10 | 4.452 | 61 5.45 | 8.6 × 10 | 4.8 × 10 | ||
| 0.01 | 0.631 5 | 9.54 × 10 | 6.287 | 68 5.83 | 2.2 × 10 | 1.2 × 10 | ||
| 0.03 | 0.669 6 | 8.75 × 10 | 5.418 | 66 1.57 | 7.3 × 10 | 3.7 × 10 | ||
| 0.05 | 0.709 3 | 8.17 × 10 | 4.758 | 65 0.81 | 1.2 × 10 | 6.3 × 10 | ||
Figure 2Influence of on when and .
Figure 3Influence of on when and .
Figure 4Influence of on when and
Figure 5Influence of on when and .
Figure 6Influence of on when and
Figure 7Influence of on when and .
Figure 8Influence of on when and .
Figure 9Influence of on when and
Simulations of physical quantities when and
| 0.0 | 1.224110 | 1.512023 | 2.910831 | 2.7091217 | |
| 0.31 | 1.313851 | 1.712213 | 2.710327 | 2.5291402 | |
| 0.43 | 0.511053 | 1.913205 | 2.411028 | 2.3045191 | |
| 0.0 | 1.701101 | 1.514165 | 2.450237 | 2.512043 | |
| 0.4 | 1.512553 | 1.321243 | 2.703033 | 2.710017 | |
| 0.8 | 1.312105 | 1.215345 | 2.910211 | 2.915321 | |
| 0.0 | 1.537013 | 1.7060183 | 2.346892 | 3.3012731 | |
| 0.3 | 1.303711 | 1.4139212 | 2.152565 | 3.1201361 | |
| 0.7 | 1.211321 | 1.3113031 | 2.511689 | 3.0231110 | |
| 0.0 | 1.211083 | 0.1280160 | 2.430243 | 2.3130353 | |
| 0.5 | 1.501333 | 0.2150133 | 2.511035 | 2.4131321 | |
| 1.3 | 1.710150 | 0.3352120 | 2.710115 | 0.8153113 |