Two camera stereoscopic 3D rig improvements
Ongoing research and development on Stereoscopic 3 D Camera rigs has led to certain new and unique improvements, including a trapezoidal beam-splitter mirror, a beam-splitter mirror that is facing downwards, a stereoscopic platform that can be inverted 180°, an optical wedge for vertical field-of-view refraction compensation, a single inter-ocular motor with dual rack-and-pinion gear system, dual convergence motors on worm gears, a convergence rotation under first-nodal point, and an electronics control mounted under the mirror.
1 . A process of using a trapezoidally shaped beam-splitter mirror in a stereoscopic 3D camera rig.
2 . A method of claim 1 , where the beam-splitter mirror has its reflecting surface facing downwards.
3 . A method of claim 1 , where the 3D rig may be inverted.
4 . A process of using an optical wedge, or prism, to compensate for vertical refractional deviations in the through-mirror camera view in a beam-splitter type stereoscopic 3D camera rig.
5 . A process of using a single motor, with a dual rack-and-pinion gear system, for speed and inherent matching, to drive the inter-ocular placement of a stereoscopic 3D camera rig.
6 . A process of using dual convergence motors on worm gears, to drive the convergence placement of a stereoscopic 3D camera rig.
7 . A process of convergence rotation under the first-nodal point, by mechanical pivot point.
8 . A process of convergence rotation under the first-nodal point, by motor control of the combination of convergence an inter-ocular motors.
9 . A method of mounting the electronics control of a stereoscopic 3D camera rig under the beam-splitter mirror assembly.
10 . A process of manufacturing a unique ergonomic and practical stereoscopic 3D camera rig design, using an “L” shaped assembly.