Solar Radiation Reflective and Infrared Radiation Emissive and Reflective Window Blinds
20180274292 ยท 2018-09-27
Inventors
- David R. Hall (Provo, UT, US)
- Emily Brimhall (Alpine, UT, US)
- Austin Carlson (Provo, UT, US)
- Jennifer Stevens (Provo, UT, US)
- Terrece Pearman (Draper, UT, US)
Cpc classification
B32B27/322
PERFORMING OPERATIONS; TRANSPORTING
B32B27/12
PERFORMING OPERATIONS; TRANSPORTING
B32B2255/10
PERFORMING OPERATIONS; TRANSPORTING
B32B27/06
PERFORMING OPERATIONS; TRANSPORTING
B32B5/18
PERFORMING OPERATIONS; TRANSPORTING
G02B5/282
PHYSICS
E06B2009/2417
FIXED CONSTRUCTIONS
B32B2266/0228
PERFORMING OPERATIONS; TRANSPORTING
B32B27/18
PERFORMING OPERATIONS; TRANSPORTING
G02B1/002
PHYSICS
B32B2266/057
PERFORMING OPERATIONS; TRANSPORTING
B32B27/308
PERFORMING OPERATIONS; TRANSPORTING
International classification
B32B27/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
We disclose a window blind which includes a metamaterial film on the slats. The metamaterial film reflects solar irradiance and is infrared emissive. The metamaterial fabric may contain silicon dioxide microspheres embedded in a polymer and the polymer may be coated with a silver coating. The long edges of the slats of the blinds may be attached to a sheet of substantially transparent infrared reflective optical interference film. When the slats of the blinds are open, the infrared reflective optical interference film may reflect infrared radiation thus preventing it from passing into the adjacent room while still permitting light to enter the room. The metamaterial film may inhibit both solar and infrared radiation from heating the adjacent room. Consequently, the disclosed window blinds promote radiative cooling instead of impeding heat transmission into an adjacent room.
Claims
1. A window blind comprising: a plurality of slats, each of the plurality of slats comprising: a front longitudinal edge; a back longitudinal edge; two transverse edges; and a top surface; and a metamaterial film, wherein the metamaterial film is attached to the top surface, and wherein the metamaterial film comprises: a polymer, the polymer comprising silicon dioxide microspheres (SiO.sub.2), and a silver coating, wherein the silver coating is between the polymer and the top surface; and at least one sheet of infrared reflective optical interference film, the at least one sheet of infrared reflective optical interference film comprising: a first longitudinal edge and a second longitudinal edge, wherein the at least one sheet of infrared reflective optical interference film is attached to at least one back longitudinal edge of a slat within the plurality of slats, and wherein the infrared reflective optical interference film is substantially transparent to wavelengths of light in the visible spectrum.
2. The window blind of claim 1, wherein the at least one sheet of infrared reflective optical interference film comprises a single sheet, and wherein the single sheet is attached to the back longitudinal edge of each of the plurality of slats.
3. The window blind of claim 1, wherein the at least one sheet of infrared reflective optical interference film comprises a plurality of sheets, wherein the plurality of sheets comprises a first sheet, the first sheet comprising a first longitudinal edge and a second longitudinal edge, wherein the first longitudinal edge of the first sheet is attached to a back longitudinal edge of a first slat within the plurality of slats, and wherein the second longitudinal edge of the first sheet is attached to a back longitudinal edge of a second slat within the plurality of slat.
4. The window blind of claim 1, wherein each of the plurality of slats further comprises a bottom surface; wherein the bottom surface is attached to the metamaterial film.
5. The window blind of claim 1, wherein the plurality of slats further comprises a thermally non-conductive material.
6. The window blind of claim 1, wherein the at least one sheet of infrared reflective optical interference film is substantially flexible.
7. The window blind of claim 1, wherein the infrared reflective optical interference film is removable.
8. The window blind of claim 1, wherein the metamaterial film is between about 25 and about 75 micrometers thick.
9. The window blind of claim 1, wherein the concentration of the microspheres in the polymer of the metamaterial film is between approximately 4% and approximately 8% by volume.
10. The window blind of claim 1, wherein the polymer of the metamaterial film comprises one or more of the following: polymethylpentene, poly(methyl methacrylate), and polyethylene.
11. A window blind comprising: a plurality of slats, each of the plurality of slats comprising: a front longitudinal edge; a back longitudinal edge; two transverse edges; and a top surface; and a metamaterial film, wherein the metamaterial film is attached to the top surface, and wherein the metamaterial film comprises: a polymer, the polymer comprising silicon dioxide microspheres (SiO.sub.2), and a silver coating, wherein the silver coating is adjacent to the polymer; and at least one sheet of infrared reflective optical interference film, the at least one sheet of infrared reflective optical interference film comprising: a first longitudinal edge and a second longitudinal edge, wherein the at least one sheet of infrared reflective optical interference film is attached to at least one front longitudinal edge of a slat within the plurality of slats, and wherein the infrared reflective optical interference film is substantially transparent to wavelengths of light in the visible spectrum.
12. The window blind of claim 11, wherein the at least one sheet of infrared reflective optical interference film comprises a single sheet, and wherein the single sheet is attached to the front longitudinal edge of each of the plurality of slats.
13. The window blind of claim 11, wherein the at least one sheet of infrared reflective optical interference film comprises a plurality of sheets, wherein the plurality of sheets comprises a first sheet, wherein the first longitudinal edge of the first sheet is attached to a front longitudinal edge of a first slat within the plurality of slats, and wherein the second longitudinal edge of the first sheet is attached to a front longitudinal edge of a second slat within the plurality of slats.
14. The window blind of claim 11, wherein each of the plurality of slats further comprises a bottom surface; wherein the bottom surface is attached to the metamaterial film.
15. The window blind of claim 11, wherein the the plurality of slats further comprises a thermally non-conductive material.
16. The window blind of claim 11, wherein the at least one sheet of infrared reflective optical interference film is substantially flexible.
17. The window blind of claim 1, wherein the infrared reflective optical interference film is removable.
18. The window blind of claim 11, wherein the metamaterial film is between about 25 and about 75 micrometers thick.
19. The window blind of claim 11, wherein the concentration of the microspheres in the polymer of the metamaterial film is between approximately 4% and approximately 8% by volume.
20. The window blind of claim 11, wherein the polymer of the metamaterial film comprises one or more of the following: polymethylpentene, poly(methyl methacrylate), and polyethylene.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
Definitions
[0017] Window blind, as used herein, means a blind that covers an opening in a building, including a window or door.
[0018] While this invention is susceptible of embodiment in many different forms, there are shown in the drawings, which will herein be described in detail, several specific embodiments with the understanding that the present disclosure is to be considered as an exemplification of the principals of the invention and is not intended to limit the invention to the illustrated embodiments.
[0019] We disclose a window blind that may mitigate the effects of solar heating and simultaneously passively cool the blinds through radiation without using any external energy.
[0020] Radiative cooling occurs as an object emits blackbody radiation through the infrared transparency window of the atmosphere into outer space. This is known to be very effective and has been used in multiple applications to achieve passive cooling at nighttime. However, during the day the effects of solar irradiance negate the cooling gains of radiative cooling. A metamaterial film has been developed that reflects solar irradiance while simultaneously emitting strongly in the infrared wavelengths that correspond to the infrared transparency window. One example of a film with these properties is described in Y. Zhai, et al., Scalable-manufactured randomized glass-polymer hybrid metamaterial for daytime radiative cooling. Science 355, 1062-1066 (2017) which is hereby incorporated by reference in its entirety. The current disclosure uses the described metamaterial film to achieve daytime passive radiative cooling, which may allow the window blinds to contribute to cooling the rest of the building. To enhance the effectiveness of the metamaterial film, the window blind may be used outside of the window as well as inside the building.
[0021] The window blind may include a plurality of slats, each of which may have a front and back longitudinal edge, two transverse edges, and a top and bottom surface. In some embodiments, the metamaterial film may be attached to a top surface of each of the slats. In some embodiments, the metamaterial film may additionally or alternatively be attached to the bottom surface of each of the slats. In the embodiments in which the film is attached to only one surface, it may be desirable to be able reverse the direction in which the blinds close such that the surface with the metamaterial film may either be substantially exposed to the atmosphere or substantially hidden from the atmosphere. This may be useful in climates in which radiative cooling is not desired year-round. In some embodiments, the slats themselves may be removable such that the position of the metamaterial may be switched to enhance this effect. In another embodiment, the slats may be vertical, which may make it easier to reverse the orientation of the slats.
[0022] The metamaterial film may be a polymeric film between 25 and 75 micrometers thick. The metamaterial film may be constructed of one or more of the following: polymethylpentene, poly(methyl methacrylate), and polyethylene. The polymeric film may contain silicon dioxide microspheres (SiO.sub.2). The microspheres may be incorporated into the polymeric film at a concentration of between approximately 4% and 8% by volume. The metamaterial may also include a silver coating between the polymer and the adjacent surface of each slat. The silver coating may be between about 100 nm and 300 nm thick. The combination of the polymeric film with the microspheres incorporated therein and the silver coating may allow the metamaterial to reflect solar irradiation and strongly emit infrared radiation corresponding to the infrared transparency window of the atmosphere.
[0023] In some embodiments of the invention, the slat may be made of or include a thermally non-conductive material. The thermally-nonconductive material may prevent the slats from transmitting thermal energy from the slat to the window glass, particularly when the blind is used outside the building. The thermally non-conductive material may be one or more of the following: silicone rubber, fiberglass, foam-glass, polyurethane foam, expanded polystyrene, acrylic glass, and Teflon.
[0024] When the slats of a window blind are open, the solar radiation that passes through the spaces between the slats may still considerably heat up a room adjacent to the window blind. To further reduce solar heating, the disclosed invention may also include at least one sheet of infrared reflective optical interference film which may be attached to a longitudinal edge of each of the slats. In some embodiments, the infrared reflective optical interference film may be attached to a back longitudinal edge of each of the slats. In other embodiments, the infrared reflective optical interference film may be attached to a front longitudinal edge of each of the slats.
[0025] The infrared reflective optical interference film may be substantially transparent to wavelengths of light in the visible spectrum while reflecting infrared radiation. As it may be mostly transparent to visible light, a user's view from the window may not be substantially inhibited by this film on the window blind. The infrared reflective optical interference film may be a multilayer film which may be that disclosed in U.S. Pat. No. RE 34,605 filed Dec. 11, 1992, a reissue of U.S. Pat. No. 5,103,337, which is hereby incorporated by reference in its entirety. The infrared reflective optical interference film may be substantially flexible or incorporated onto a material that is substantially flexible.
[0026] In some embodiments of the invention, the infrared reflective optical interference film may be a single sheet. In this embodiment, the sheet may be attached to the back or front longitudinal edge of each of the slats at varying points on the sheet. In other embodiments, the window blind may include a plurality of sheets of infrared reflective optical interference film. In one such embodiment, a first longitudinal edge of a first sheet of the infrared reflective optical interference film may be attached to the back longitudinal edge of a first slat of the disclosed window blind. Then, a second longitudinal edge of the first infrared reflective optical interference sheet may be attached to a back longitudinal edge of a second slat. In some embodiments, the first slat may be adjacent to the second slat.
[0027] In some embodiments, the infrared reflective optical interference film may be removable, which may be desirable when cleaning of the window blind is needed. In addition, it may be desirable in climates where thermal heating from the sun is desirable during the day to reduce the cost of heating.
[0028] Referring now to the drawings,
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[0031] As with traditional blinds, the slats of window blind 200 may be opened and closed using tilt strings 230a and 230b. Window blind 200 is shown in
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[0037] While specific embodiments have been illustrated and described above, it is to be understood that the disclosure provided is not limited to the precise configuration, steps, and components disclosed. Various modifications, changes, and variations apparent to those of skill in the art may be made in the arrangement, operation, and details of the methods and systems disclosed, with the aid of the present disclosure.
[0038] Without further elaboration, it is believed that one skilled in the art can use the preceding description to utilize the present disclosure to its fullest extent. The examples and embodiments disclosed herein are to be construed as merely illustrative and exemplary and not a limitation of the scope of the present disclosure in any way. It will be apparent to those having skill in the art that changes may be made to the details of the above-described embodiments without departing from the underlying principles of the disclosure herein.