Results of space experiments and effect of torsion

Wanas, M.I.; Kamal, Mona M.; Sherif, A. M.; Abdelsalam, Sarah S.;

Abstract


The results of two space experiments, around the world clocks and gravity probe B, are analyzed theoretically using a field theory. The field equations of this theory are reduced to those of general relativity outside material distribution, while its equations of motion are not a geodesic one. This equation violates the weak equivalence principle because of the non-vanishing torsion in the geometry used. The predictions of the theory give rise to the time dilation measured by the first experiment and to the geodetic and frame drag effects measured by the second experiment. Furthermore, we show that these predictions are affected by the torsion of space-time. The torsion term, in the equation of motion, is connected to other effects through a coupling parameter. This parameter is called the "spin-torsion"coupling if the moving test particle is elementary one with non-vanishing quantum spin. We call this parameter "rotation-torsion"coupling if the moving test particle is a gyroscope. In the first case, the coupling parameter is well defined and confirmed by terrestrial experiment, while in the second case the parameter still needs further investigation and discussion.


Other data

Title Results of space experiments and effect of torsion
Authors Wanas, M.I. ; Kamal, Mona M. ; Sherif, A. M.; Abdelsalam, Sarah S.
Keywords gravity probe B;Hafele and Keating experiment;modified geodesic;Spin-Torsion interaction;tests of relativistic gravity
Issue Date 1-Sep-2020
Journal International Journal of Geometric Methods in Modern Physics 
Volume 17
Issue 10
ISSN 02198878
DOI 10.1142/S0219887820501522
Scopus ID 2-s2.0-85092053383

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