Fractional Boundary Layer Flow and Heat Transfer Over a Stretching Sheet With Variable Thickness

Author:

Liu Lin,Zheng Liancun1,Chen Yanping2,Liu Fawang3

Affiliation:

1. School of Mathematics and Physics,University of Science and Technology Beijing,Beijing 100083, China;Beijing Key Laboratory forMagneto-Photoelectrical Compositeand Interface Science,Beijing 100083, China

2. School of Mathematics and Physics,University of Science and Technology Beijing,Beijing 100083, China

3. School of Mathematical Sciences,Queensland University of Technology,GPO Box 2434,Brisbane 4001, Queensland, Australia

Abstract

Abstract The paper gives a comprehensive study on the space fractional boundary layer flow and heat transfer over a stretching sheet with variable thickness, and the variable magnetic field is applied. Novel governing equations with left and right Riemann–Liouville fractional derivatives subject to irregular region are formulated. By introducing new variables, the boundary conditions change as the traditional ones. Solutions of the governing equations are obtained numerically where the shifted Grünwald formulae are applied. Good agreement is obtained between the numerical solutions and exact solutions which are constructed by introducing new source items. Dynamic characteristics with the effects of involved parameters on the velocity and temperature distributions are shown and discussed by graphical illustrations. Results show that the velocity boundary layer is thicker for a larger fractional parameter or a smaller magnetic parameter, while the temperature boundary layer is thicker for a larger fractional parameter, a smaller exponent parameter, or a larger magnetic parameter. Moreover, it is thicker at a smaller y and thinner at a larger y for the velocity boundary layer with a larger exponent parameter while for the velocity and temperature boundary layers with a smaller weight coefficient.

Funder

National Natural Science Foundation of China

Ministry of Education of the People's Republic of China

China Postdoctoral Science Foundation

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

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