Numerical Investigation of Boundary Layer Flow across a Stretching Cylinder using Quartic Spline

  • Unique Paper ID: 170127
  • PageNo: 3425-3429
  • Abstract:
  • In this paper, the boundary layer flow of a viscous incompressible fluid across a stretching cylinder has been considered to investigate the flow field. Because the dynamic region is nonlinear, the velocity function has been calculated numerically using the non-polynomial quartic spline method. The expression of skin friction was also obtained. Graphs have been used to analyze the velocity profile on the dimensionless parameter.

Copyright & License

Copyright © 2026 Authors retain the copyright of this article. This article is an open access article distributed under the Creative Commons Attribution License which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

BibTeX

@article{170127,
        author = {Tahera Begum},
        title = {Numerical Investigation of Boundary Layer Flow across a Stretching Cylinder using Quartic Spline},
        journal = {International Journal of Innovative Research in Technology},
        year = {2024},
        volume = {11},
        number = {6},
        pages = {3425-3429},
        issn = {2349-6002},
        url = {https://ijirt.org/article?manuscript=170127},
        abstract = {In this paper, the boundary layer flow of a viscous incompressible fluid across a stretching cylinder has been considered to investigate the flow field. Because the dynamic region is nonlinear, the velocity function has been calculated numerically using the non-polynomial quartic spline method. The expression of skin friction was also obtained. Graphs have been used to analyze the velocity profile on the dimensionless parameter.},
        keywords = {Stretching cylinder, Boundary layer flow, Quartic spline, Skin friction},
        month = {November},
        }

Cite This Article

Begum, T. (2024). Numerical Investigation of Boundary Layer Flow across a Stretching Cylinder using Quartic Spline. International Journal of Innovative Research in Technology (IJIRT), 11(6), 3425–3429.

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