IP Library › Granted Patent US 10,203,134
Granted Patent B2
US 10,203,134 · App. 14/949,588 · Granted Feb 12, 2019

Solid state solar thermal energy collector

Inventors: Richard Lee Johnson (Suffolk, VA); Braden Eric Hines (Pasadena, CA); Guido Hamacher (San Diego, CA); Russ Neff (Glendale, CA); John Terry Bailey (Greenville, SC)
F24S60/00C02F1/14F03D9/007F24S20/25F24S23/00F24S23/12F24S23/31F24S23/77F24S23/79F24S30/45F24S80/60F28D20/0056F24S50/20F28D2020/006F28D2020/0026F28F2270/00Y02A20/212Y02B10/20Y02E10/43Y02E10/44Y02E10/47Y02E10/72Y02E60/142Y02E70/30
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Quick Facts
Patent No.
US 10,203,134
App. No.
14/949,588
Granted
Feb 12, 2019
Kind
B2
Abstract

A system for receiving, transferring, and storing solar thermal energy. The system includes a concentrating solar energy collector, a transfer conduit, a thermal storage material, and an insulated container. The insulated container contains the thermal storage material, and the transfer conduit is configured to transfer solar energy collected by the solar energy collector to the thermal storage material through a wall of the insulated container.

Claims (93)

1. A system for receiving, transferring, and storing solar thermal energy, the system comprising:

a concentrating solar energy collector;

a transfer conduit;

a thermal storage material; and

an insulated container,

the insulated container containing the thermal storage material,

the system being configured to track the sun,

the transfer conduit being configured to transfer solar energy collected by the solar energy collector to the thermal storage material through an opaque, insulated wall of the insulated container,

the transfer conduit including a first end for receiving incident solar energy and a second end proximal to the thermal storage material,

wherein the transfer conduit is configured to transmit the incident solar energy substantially losslessly and to radiate the solar energy into the thermal storage material, and

wherein the transfer conduit is at least 0.3 cm in diameter.

2. The system of claim 1 , wherein the transfer conduit comprises a light transfer optic.

3. The system of claim 1 , wherein the thermal storage material is a solid material.

4. The system of claim 1 , comprising a capped transfer conduit, wherein the capped transfer conduit comprises a transfer conduit having an input and an output, and a moveable cap capable of covering the input or the output of the transfer conduit.

5. The system of claim 1 , wherein the concentrating solar energy collector comprises a Risley prism.

6. The system of claim 1 , wherein the concentrating solar energy collector comprises:

a first optical train, comprising:

at least one collecting aperture comprising a refractive element for receiving incoming light from the sun,

a first optical axis aligned with a first axis of rotation,

a second optical axis aligned with a second axis of rotation,

a first fold mirror configured to reflect light along the first optical axis, and

a second fold mirror configured to reflect light along the second optical axis,

wherein:

the first axis of rotation is an axis of rotation of a first subassembly including:

the refractive element, and

the first fold mirror; and

the second axis of rotation is an axis of rotation of a second subassembly including:

the first subassembly, and

the second fold mirror.

7. The system of claim 1 , wherein the concentrating solar energy collector, the transfer conduit, and the thermal storage material are all within ten meters of one another.

8. A method of energy collection and storage, the method comprising:

using a concentrating solar energy collector to collect solar energy,

using a light transfer optic to transfer the solar energy through an opaque insulating layer, the light transfer optic comprising a monolithic, narrow path for light, through the opaque insulating layer, wherein the monolithic path is at least 0.3 cm in diameter, and

absorbing and storing the transferred energy in an energy storage medium, the distance between the energy storage medium and the concentrating solar energy collector being less than 10 meters.

9. The method of claim 8 , wherein the energy storage medium is a solid.

10. The method of claim 8 , performed at the location of a recent natural disaster, further comprising:

providing a readily transportable solar energy collection and storage system,

transporting the transportable system to the location of a recent natural disaster, and

operating the system at the location of the recent natural disaster.

11. A system for receiving, transferring, and storing solar thermal energy, the system comprising:

a concentrating solar energy collector;

a transfer conduit;

a thermal storage material; and

an insulated container,

the insulated container containing the thermal storage material,

the transfer conduit being configured to transfer solar energy collected by the solar energy collector to the thermal storage material through an opaque, insulated wall of the insulated container,

wherein the transfer conduit is further configured to radiate the solar energy towards the thermal storage material,

the transfer conduit including a first end exposed to incident solar energy and a second end opposite the first end and separated from the thermal storage material by a gap,

wherein the transfer conduit is configured to transmit the incident solar energy substantially losslessly and to radiate the solar energy onto the thermal storage material through the gap.

12. A system for receiving, transferring, and storing solar thermal energy, the system comprising:

a concentrating solar energy collector;

a transfer conduit;

a thermal storage material; and

an insulated container,

the insulated container containing the thermal storage material,

the transfer conduit being configured to transfer solar energy collected by the solar energy collector to the thermal storage material through a first insulated wall of the insulated container,

the transfer conduit being a narrow path for light, through the first insulated wall,

wherein the transfer conduit comprises a monolithic rod,

wherein the monolithic rod is at least 0.3 cm in diameter.

13. The system of claim 11 , wherein the transfer conduit comprises a hollow tube having a mirror-like reflective interior surface.

14. The system of claim 11 , wherein the transfer conduit comprises a transparent rod.

15. The system of claim 1 , wherein the transfer conduit is at least 0.5 cm in diameter.

16. The system of claim 6 , wherein the concentrating solar energy collector further comprises a second optical train comprising:

a collecting aperture comprising a refractive element for receiving incoming light from the sun,

a first optical axis aligned with the first axis of rotation,

a second optical axis aligned with the second axis of rotation,

a first fold mirror configured to reflect light along the first optical axis, and

a second fold mirror configured to reflect light along the second optical axis.

17. The method of claim 8 , wherein the monolithic path is at least 0.5 cm in diameter.

18. The method of claim 10 , wherein the readily transportable solar energy collection and storage system comprises an easily transportable container which contains substantially all of the energy storage medium.

19. The method of claim 10 , wherein the easily transportable container comprises a dumpster or a shipping container.

20. The system of claim 12 , wherein the monolithic rod is at least 0.5 cm in diameter.

21. The system of claim 11 , wherein the concentrating solar energy collector comprises a Risley prism.

22. The system of claim 11 , wherein the concentrating solar energy collector comprises:

a first optical train, comprising:

at least one collecting aperture comprising a refractive element for receiving incoming light from the sun,

a first optical axis aligned with a first axis of rotation,

a second optical axis aligned with a second axis of rotation,

a first fold mirror configured to reflect light along the first optical axis,

a second fold mirror configured to reflect light along the second optical axis, and

a third fold mirror configured to reflect light into a transfer conduit,

wherein:

the first axis of rotation is an axis of rotation of a first subassembly including:

the refractive element, and

the first fold mirror; and

the second axis of rotation is an axis of rotation of a second subassembly including:

the first subassembly, and

the second fold mirror.

23. The system of claim 6 , further comprising another concentrating solar energy collector, wherein the two solar energy collectors are articulated by a common linkage and motor.

24. The system of claim 6 , wherein the first optical train further comprises a third fold mirror configured to reflect light into a transfer conduit.

25. The system of claim 1 , further comprising another concentrating solar energy collector, wherein the two solar energy collectors are at different heights.

26. The method of claim 8 , further comprising transporting the heated energy storage medium to an energy use site.

27. The method of claim 8 , further comprising absorbing and storing another form of energy, the other form of energy not being solar energy.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 29, 2022
From: HINES, MARY BETH
To: HINES, BRADEN ERIC
Reel/Frame 060677/0426 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 29, 2022
From: JOHNSON, RICHARD LEE; HINES, BRADEN ERIC; HAMACHER, GUIDO; NEFF, RUSS; BAILEY, JOHN TERRY; GREGORY, CHRISTIAN T.; JOHNSON, SHANNON M.; HAMACHER, TARA; DIEHNELT, KAY; BAILEY, CAROL D.; REED, BARBARA C.
To: PLANET A ENERGY, INC.
Reel/Frame 061007/0100 →
Continuity (2)
Provisional Application 62083297 · Nov 23, 2014
Related Publication 20160146507A1 · May 26, 2016
Cited By (4)
US 12,222,137 US 12,578,152 US 12,606,366 US 12,613,056