Violation of Gauge Symmetry by Yang-Mills Gravity and Deflection of Light Experiment
arXiv:1909.07777 · doi:10.1142/S0217732319503620
Abstract
Based on the gauge symmetry framework, the symmetry of electrodynamics is violated in the presence of gravity with space-time translational gauge symmetry in inertial frames. For a light ray, an eikonal equation with effective metric tensors is derived in the geometric-optics limit. Under these conditions, the angle of the deflection of light by the sun is calculated to be $\d ϕ\approx 1.75''$ in inertial frames without requiring a gauge condition such as $\p_μA^μ=0$. In contrast, if the theory is gauge invariant, one can impose the gauge condition $\p_μA^μ=0$ in the derivation of the eikonal equation. In this case, one obtains a slightly different effective metric tensor and a different angle of deflection $\d ϕ\approx 1.52''$. However, because the precision of experiments in the last century using optical frequencies has been no better than (10 20)\% due to large systematic errors, one cannot unambiguously rule out the result $\d ϕ\approx 1.52'$. It is hoped that the precision of these data can be improved in order to test Yang-Mills gravity.
11 pages, to be published in Modern Physics Letters A (2019)