Distributive optical energy system
Abstract
A system for generating and transmitting energy including prisms, lenses, mirrors, optical conduits, heat filters, light filters, and electricity filters. The lenses comprise lens systems to capture electromagnetic signals coming from any source of radiant energy. Upon receiving the electromagnetic signals, the lens system multiplies n times the intensity of the signals by a method of infinitesimal folding of signals, a method basically consisting of an overconcentration of signals folding onto themselves multiple times in order to produce substantially concentrated signals and to project the substantially concentrated signals into one single optical cable. These substantially concentrated signals are transmitted long distances as they are reflected through the interior of these optical conduits (in a conceptual manner similar to signal reflection in Tiber optics cables). At the distal ends of the optical cable three filters will extract heat, white light and electricity.
Claims
exact text as granted — not AI-modified1 .- 15 . (canceled)
16 . A system for collecting and transmitting electromagnetic radiation through at least one disorder-enhanced optical conduit comprising:
a mirror-lens for concentrating scattered electromagnetic rays into a focal plane to produce focused rays; a mirror concentrator for concentrating the focused rays by a N factor; a coupler to align the focused rays; a disorder-enhanced optical conduit having a distal end, said conduit receives and conveys the concentrated rays, generates a complex energy wave and transmits the wave to said distal end; a collimator to convert the complex wave into focused rays; a heat filter to filter the heat of the focused rays; a light filter to filter the light of the focused rays; and an electricity filter to filter the electricity of the focused rays.
17 . The system of claim 16 , wherein said mirror-lens includes one of a parabolic mirror, a circular-type mirror and a zoom lens system, and is optically coupled with said concentrator.
18 . The system of claim 16 , wherein said concentrator includes at least one mirror optically coupled with said conduit and is adapted to generate singular over-concentrated light.
19 . The system of claim 16 , wherein said optical conduit is configured to transmit a self-organizing energy wave to said distal end.
20 . The system of claim 16 , wherein said mirror concentrator system is adapted to concentrate the focused rays by a factor of one to one hundred million.
21 . The system of claim 16 , wherein said heat filter is configured to extract heat, wherein said light filter to configured to extract visible light, and said electricity filter is configured to extract electricity.
22 . The system of claim 21 , wherein said light filter is configured to extract and deliver white light using an optical lamp, wherein said heat filter is configured to extract infrared and deliver heat using a chemical compound, and wherein said electricity filter is configured to deliver electricity using at least one of a piezoelectric converter, a PN junction converter, a photovoltaic system.
23 . The system of claim 22 , wherein said optical lamp includes a chemical compound, at least one of solid, liquid, and gas, and an optical reflector axially aligned with the chemical compound to deliver visible white light.
24 . A system for converting at least one of audible and non-audible waves into energy and transmitting it through at least one disorder-enhanced optical conduit, comprising:
a first reflective medium including an acoustic bowl; a second refractive medium including an objective lens; a mirror system concentrator; a disorder-enhanced optical conduit; a coupler; a focusing collimator; a distributive collimator; a heat filter and converter; a light filter and converter; and an electricity filter and converter.
25 . The system of claim 24 , wherein said acoustic bowl is a concave reflective surface comprised of at least one of metal, ceramic, glass, and organic compound that captures audible and non-audible waves.
26 . The system of claim 24 , wherein said second refractive medium contains at least one of a refractive lens and a zoom-lens system.
27 . The system of claim 24 , wherein said mirror system concentrator includes at least one mirror optically coupled with said conduit and is capable of generating singular over-concentrated light having an extremely narrow ray width and high radiant energy.
28 . The system of claim 24 , wherein said optical conduit is configured to propagate energy as a complex energy wave.
29 . A system for collecting energy from at least one of radiant and mechanical sources, the system comprising:
a collector configured to capture energy and to direct the captured energy toward a concentrator; a concentrator configured to receive the directed energy and to concentrate the energy; a disorder-enhanced structure; and a coupler configured to receive the concentrated energy, leading the energy onto said disorder-enhanced structure, wherein the energy's rays are scattered, generating a complex energy wave in said structure.
30 . The system of claim 29 , wherein said collector includes at least one parabolic mirror and lens system for collecting rays indicative of solar radiation.
31 . The system of claim 30 , further comprising an optical compound configured to receive the captured rays through said parabolic mirror and said lens system.
32 . The system of claim 29 , wherein said collector comprises an acoustic bowl for collecting mechanical energy indicative of acoustic radiation.
33 . The system of claim 29 , further comprising reflection and refraction lenses to focus and capture mechanical energy through said acoustic bowl.
34 . The system of claim 29 , wherein said concentrator comprises at least one of a lens, a mirror, a scatterer, and an angular filter.
35 . The system of claim 34 , wherein said concentrator is an image forming concentrator.
36 . The system of claim 34 , wherein said concentrator is a non-image forming concentrator.
37 . A system for transmitting electromagnetic radiation through at least one of a disorder-enhanced optical conduit and a disorder-enhanced structure comprising:
a disorder-enhanced optical conduit having a distal end, said conduit receives electromagnetic rays, generates a complex energy wave and transmits it to said distal end; and a disorder-enhanced structure, said structure receives electromagnetic rays, generates and transmits a complex energy wave.
38 . The system of claim 37 and further comprising a second optical conduit and wherein said conduits are arranged to form an optical cable.
39 . The system of claim 37 wherein said optical conduit and said disorder-enhanced structure are fabricated of at least one of glass, nanocompounds, organic, inorganic, and bio-inorganic compounds.
40 . The system of claim 37 wherein said optical conduit and said disorder-enhanced structure are enhanced with at least one of nanostructured and non-nanostructured scatterers configured to produce high particle density with least optical crowding.
41 . The system of claim 37 wherein said optical conduit has a diameter between 1 micrometer and 10 centimeters.
42 . The system of claim 37 wherein said diameter has a proportional relation to an energy density index.
43 . The system of claim 37 wherein said optical conduit and said disorder-enhanced structure have a length between 1 micrometer and 100,000 kilometers.
44 . The system of claim 37 wherein said optical conduit is heat-resistant.
45 . The system of claim 37 wherein said optical conduit and said disorder-enhanced structure are nanostructured for optical scattering and adapted to transmit chaotic dissipative wavelike signals.
46 . The system of claim 37 wherein said optical conduit and said disorder-enhanced structure are nanostructured for optical scattering and adapted to transmit self-organized wavelike signals.Join the waitlist — get patent alerts
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