Quantum Time Evolution Inside Black Holes

Authors

  • Mohamed Farah Idris Department of Mathematics, Faculty of Science, Sudan University of Science and Technology, Khartoum, Sudan
  • Shawgy Hussain AbdAlla Department of Mathematics, Faculty of Science, Sudan University of Science and Technology, Khartoum, Sudan
  • Mubarak Dirar AbdAlla Department of Physics, Faculty of Science, Sudan University of Science and Technology, Khartoum, Sudan

DOI:

https://doi.org/10.24297/jap.v23i.9804

Keywords:

Schrödinger equation, moon, quantum, black hole

Abstract

The behaviour of black holes is one of the most challenging problems facing cosmologists. It was thought that the behaviour of black holes can be described by quantum laws. In this model, using Schrödinger equation and the ordinary gravitational field equation for spherical bodies, a new quantum gravity equation was proposed to describe the behaviour of the black holes. Assuming that the universe undergo a phase transition to become a black hole or if the solar system is trapped by a black hole, the time evolution will certainly be different from that of our ordinary solar system. This work proves that the distance traversed by the moon in one day inside the black hole is equal to that traversed by the moon in 1000 year.

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Published

2025-10-31

How to Cite

Farah Idris , M. ., Hussain AbdAlla, S. ., & Dirar AbdAlla , M. . (2025). Quantum Time Evolution Inside Black Holes. JOURNAL OF ADVANCES IN PHYSICS, 23, 197–200. https://doi.org/10.24297/jap.v23i.9804

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