Double unification, time compression, and space flatness for the extended particle

Astronomy and Astrophysics – Astrophysics – General Relativity and Quantum Cosmology

Scientific paper

Rate now

  [ 0.00 ] – not rated yet Voters 0   Comments 0

Details

34 pages, Latex

Scientific paper

Three variational vector equations are derived for the extended particle-field object located on the light cone. Point sources are excluded from the pure field equations and all physical magnitudes are free from divergences. Accepting 3D intersections of 4D cone-charges, vector electrogravity explains all observed phenomena under common flat 3D and 1D intervals. External cone-charges contribute to pseudo-Riemannian metrics of proper four-spaces of charged objects, resulting in dilation-compression of their proper time rates. Photon-type gravitational radiation is not associated with metric modulation of flat, laboratory space. The Minkowski-Lorentz equation for free charges corresponds to the equivalence principle for the canonical four-space. The predicted criterion of double unification, particles with fields - gravity with electrodynamics, is confirmed in vector electrogravity.

No associations

LandOfFree

Say what you really think

Search LandOfFree.com for scientists and scientific papers. Rate them and share your experience with other people.

Rating

Double unification, time compression, and space flatness for the extended particle does not yet have a rating. At this time, there are no reviews or comments for this scientific paper.

If you have personal experience with Double unification, time compression, and space flatness for the extended particle, we encourage you to share that experience with our LandOfFree.com community. Your opinion is very important and Double unification, time compression, and space flatness for the extended particle will most certainly appreciate the feedback.

Rate now

     

Profile ID: LFWR-SCP-O-516196

  Search
All data on this website is collected from public sources. Our data reflects the most accurate information available at the time of publication.