Viscoelastic MHD Nanofluid Thin Film Flow over an Unsteady Vertical Stretching Sheet with Entropy Generation

被引:34
作者
Ullah, Asad [1 ,2 ]
Shah, Zahir [1 ]
Kumam, Poom [3 ,4 ,5 ]
Ayaz, Muhammad [1 ]
Islam, Saeed [1 ]
Jameel, Muhammad [1 ]
机构
[1] Abdul Wali Khan Univ, Dept Math, Mardan 23200, Khyber Pakhtunk, Pakistan
[2] Kohat Univ Sci & Technol, Inst Numer Sci, Kohat 26000, Khyber Pakhtunk, Pakistan
[3] KMUTT, Fac Sci, Dept Math, Fixed Point Res Lab, Room SCL 802 Fixed Point Lab,Sci Lab Bldg, Bangkok 10140, Thailand
[4] KMUTT, Fixed Point Theory & Applicat Res Grp, Theoret & Computat Sci Ctr TaCS, Fac Sci, Sci Lab Bldg,126 Pracha Uthit Rd, Bangkok 10140, Thailand
[5] China Med Univ, China Med Univ Hosp, Dept Med Res, Taichung 40402, Taiwan
关键词
entropy generation; second-grade fluid; nanofluid; liquid films; thin film; time depending stretching surface; magnetic field; HAM; BOUNDARY-LAYER-FLOW; 2ND LAW ANALYSIS; BOEHMITE ALUMINA NANOFLUID; NON-NEWTONIAN NANOFLUIDS; HEAT-TRANSFER; LIQUID-FILM; THERMAL-RADIATION; SISKO FLUID; CARREAU FLUID; PERISTALTIC TRANSPORT;
D O I
10.3390/pr7050262
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The boundary-layer equations for mass and heat energy transfer with entropy generation are analyzed for the two-dimensional viscoelastic second-grade nanofluid thin film flow in the presence of a uniform magnetic field (MHD) over a vertical stretching sheet. Different factors, such as the thermophoresis effect, Brownian motion, and concentration gradients, are considered in the nanofluid model. The basic time-dependent equations of the nanofluid flow are modeled and transformed to the ordinary differential equations system by using similarity variables. Then the reduced system of equations is treated with the Homotopy Analysis Method to achieve the desire goal. The convergence of the method is prescribed by a numerical survey. The results obtained are more efficient than the available results for the boundary-layer equations, which is the beauty of the Homotopy Analysis Method, and shows the consistency, reliability, and accuracy of our obtained results. The effects of various parameters, such as Nusselt number, skin friction, and Sherwood number, on nanoliquid film flow are examined. Tables are displayed for skin friction, Sherwood number, and Nusselt number, which analyze the sheet surface in interaction with the nanofluid flow and other informative characteristics regarding this flow of the nanofluids. The behavior of the local Nusselt number and the entropy generation is examined numerically with the variations in the non-dimensional numbers. These results are shown with the help of graphs and briefly explained in the discussion. An analytical exploration is described for the unsteadiness parameter on the thin film. The larger values of the unsteadiness parameter increase the velocity profile. The nanofluid film velocity shows decline due the increasing values of the magnetic parameter. Moreover, a survey on the physical embedded parameters is given by graphs and discussed in detail.
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页数:29
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