Mathematical Analysis on Spherical Shell of Permeable Material in NID Space

Authors

  • Saeed Ahmed Department of Physics, Quaid-i-Azam University, Islamabad, Pakistan
  • Muhammad Akbar Department of Electronics, Quaid-i-Azam University, Islamabad, Pakistan
  • Muhammad Imran Shahzad Department of Applied Physics, Federal Urdu University of Arts, Science and Technology Islamabad, Islamabad, Pakistan
  • Muhammad Ahmad Raza Department of Statistics, Federal Urdu University of Arts, Science and Technology Islamabad, Islamabad, Pakistan
  • Sania Shaheen Department of Applied Physics, Federal Urdu University of Arts, Science and Technology Islamabad, Islamabad, Pakistan

DOI:

https://doi.org/10.53560/PPASA(60-3)663

Keywords:

Variable Method, Magnetic Shielding Effect, Fractional Dimensional Space, Spherical Shell

Abstract

In this paper, we have studied the magnetic shielding effect of a spherical shell analytically in fractional dimensional space (FDS). The Laplacian equation in fractional space predicts the complex phenomena of physics. This is a boundary value problem that has been solved by the separation variable method mathematically by taking low frequency w = 0. Electric potential is obtained in fractional dimensional space for the three regions, namely outside the spherical shell, between the shell and hollow sphere and inside the sphere. Also, the induced dipole moment has been derived. We obtain a general solution that reduces to the classical results by setting fractional parameter α = 3 which takes its value (2 < α ≤ 3).

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Published

2023-09-20

How to Cite

Saeed Ahmed, Muhammad Akbar, Muhammad Imran Shahzad, Muhammad Ahmad Raza, & Sania Shaheen. (2023). Mathematical Analysis on Spherical Shell of Permeable Material in NID Space. Proceedings of the Pakistan Academy of Sciences: A. Physical and Computational Sciences, 60(3), 63–66. https://doi.org/10.53560/PPASA(60-3)663

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Section

Research Articles