This application is related to applications entitled, “SOLAR COLLECTOR AND SOLAR HEATING SYSTEM USING SAME”, filed Mar. 12, 2009 (Ser. No. 12/381,577); “SOLAR COLLECTOR AND SOLAR HEATING SYSTEM USING SAME”, filed Mar. 12, 2009 (Ser. No. 12/381,611); “SOLAR COLLECTOR AND SOLAR HEATING SYSTEM USING SAME”, filed Mar. 12, 2009 (Ser. No. 12/381,578); AND “SOLAR COLLECTOR AND SOLAR HEATING SYSTEM USING SAME”, filed Mar. 12, 2009 (Ser. No. 12/381,579). The disclosures of the above-identified applications are incorporated herein by reference.
1. Technical Field
The present disclosure relates to a solar collector and, particularly, to a solar collectors incorporating carbon nanotubes.
2. Description of Related Art
Generally, solar collectors can be divided into two typical types: pipe solar collectors and flat plate solar collectors. For many applications, it has been demonstrated that the most efficient and least expensive type of solar collector is the flat plate collector. Referring to
Actually, the traditional thin films made of absorbing materials have very high absorbing efficiency. The traditional solar collector 500 can't adopt the thin film technology because the film is difficult to evaporate on the large area substrate. As such, the heat absorbing efficiency of the solar collector 500 is limited by the material it used. Therefore, the efficiency of the collector 500 is limited accordingly.
What is needed, therefore, is to provide a solar collector and a solar heating system using the solar collector that can overcome the above-described shortcomings.
Many aspects of the present solar collector and solar heating system can be better understood with references to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present solar collector.
Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate at least one embodiment of the solar collector, in at least one form, and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
References will now be made to the drawings to describe, in detail, embodiments of the solar collector.
Referring to
The solar collector 10 includes a substrate 11, a sidewall 12, a transparent cover 13, a heat-absorbing layer 14 and a number of supporters 15. The substrate 11 has a top surface 111 and a bottom surface 112 opposite to the top surface 111. The transparent cover 13 has a bottom surface 131. The sidewall 12 is mounted on the periphery of the top surface 111 of the substrate 11. The transparent cover 13 is attached on the sidewall 12 opposite to the substrate 11 to form a sealed chamber 16 in cooperation with the sidewall 12 and the substrate 11. The heat-absorbing layer 14 is disposed on the top surface 111 of the substrate 11 and received in the sealed chamber 16.
The material of the substrate 11 is selected from one of heat-conducting materials, such as metal, glass, polymer, and so on. A thickness of the substrate 11 can be in a range from about 100 μm to about 5 mm. The shape of the substrate 11 is not limited; and may be triangular, hexagonal, and so on.
The transparent cover 13 may be a solar radiation access window. The material of the transparent cover 13 includes a material that can be selected from a group *consisting of glass, plastic, transparent porcelain, polymer and other transparent materials. A thickness of the transparent cover 13 can be in a range from about 100 μm to about 5 mm. The shape of the transparent cover 13 is not limited, and may be triangle, hexagon, quadrangle, and so on.
The sidewall 12 is configured for supporting the transparent cover 13, and then formed the sealed chamber 16 between the transparent cover 13 and the substrate 11. The sidewall 12 can be made of materials selected from glass, plastics, polymers, and the like. A height of the sidewall 12 is not limited. A thickness of the sidewall 12 can be in a range from about 100 μm to about 500 μm. In the present embodiment, the range is about 150 μm to about 250 μm.
The sealed chamber 16 may be a vacuum chamber or an atmospheric chamber filled with thermal-insulating materials. In the present embodiment, the sealed chamber 16 is an atmospheric chamber, and the thermal-insulating materials filled therein can be transparent foam materials, such as transparent foam rubber, transparent foam plastics, or the like. The sealed chamber 16 can also be filled with thermal-insulating gas such as nitrogen and inert gases.
The heat-absorbing layer 14 includes a carbon nanotube film. The carbon nanotube film can be a structure formed by a flocculation process. The carbon nanotube film includes a plurality of carbon nanotubes dispersed uniformly therein. Referring to
The carbon nanotubes of the carbon nanotube film can be selected from a group comprising of single-walled carbon nanotubes, double-walled carbon nanotubes, multi-walled carbon nanotubes, and combinations thereof A diameter of the carbon nanotubes approximately is ranged from about 0.5 to about 50 nm. A length of the carbon nanotubes is longer than 10 μm. In the present embodiment, the length is ranged from about 100 μm to about 1 mm.
The supporters 15 are configured for increasing the strength of the solar collector 10. The supporters 15 are dispersed in the sealed chamber 16 at random or in a desired pattern. The supporters 15 are spaced from each other and disposed between the substrate 11 and the transparent cover 13. The supporters 15 are made of thermal-insulating materials, such as glass, plastics, rubber, and so on. A height of the supporters 15 is the same as that of the sidewall 12 for contacting with the transparent cover 13. The shape of the supporters 15 is not limited, and may be, for example, rounded or bar-shaped.
The solar collector 10 further includes a reflection layer 17. The reflection layer 17 is disposed on the bottom surface 131 of the transparent cover 13. The reflection layer 17 is configured for allowing the visible light and near infrared light of the sunlight passing through the transparent cover 13 and reflecting the far infrared light radiated from the heat-absorbing layer 14 to prevent thermal radiation from escaping the sealed chamber 16. Thus, the light absorbing efficiency of the solar collector 10 is improved. The reflection layer 17 may be an indium tin oxide (ITO) film or a titanium dioxide film and a thickness of the reflection layer 17 can ranges from about 10 nm to about 1 μm.
The storage apparatus 20 is located on a bottom surface 112 of the substrate 11 and may include a number of pipes (not shown) filled with circulating liquid. The liquid may be selected from the group of water, glycol, or the like.
In use, since the carbon nanotube film is black and has a capability of absorbing most heat of the solar spectrum. The sunlight travels through the transparent cover 13 and reaches the heat-absorbing layer 14. A good portion of the radiation of the sunlight is absorbed by the heat-absorbing layer 14. Then, the heat absorbed by the heat-absorbing layer 14 is conducted to the storage apparatus 20 via the substrate 11. Therefore, the solar collector 10 has a high efficiency because of the excellent light absorbing properties of the carbon nanotubes of the heat-absorbing layer 14. The solar collector 10 is durable due to the toughness of the carbon nanotubes in the carbon nanotube film. Since carbon nanotubes do not oxidized easily, a high vacuum surrounding is not necessary for making the solar collector 10. Thus the cost of the solar collector 10 is relatively low when compared to the prior art.
Finally, it is to be understood that the above-described embodiments are intended to illustrate rather than limit the invention. Variations may be made to the embodiments without departing from the spirit of the invention as claimed. The above-described embodiments illustrate the scope of the invention but do not restrict the scope of the invention.
Number | Date | Country | Kind |
---|---|---|---|
2008 1 0006571 | Apr 2008 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
3974822 | Patil | Aug 1976 | A |
4097308 | Klein et al. | Jun 1978 | A |
4119083 | Heyen et al. | Oct 1978 | A |
4159706 | Mahdjuri | Jul 1979 | A |
4184480 | Kenny | Jan 1980 | A |
4721349 | Fan et al. | Jan 1988 | A |
4822120 | Fan et al. | Apr 1989 | A |
4949704 | Pfluger | Aug 1990 | A |
5653222 | Newman | Aug 1997 | A |
5915376 | McLean | Jun 1999 | A |
7182475 | Kramer et al. | Feb 2007 | B2 |
7183003 | Leu et al. | Feb 2007 | B2 |
7608293 | Huang et al. | Oct 2009 | B2 |
7794572 | Lee | Sep 2010 | B2 |
20050002849 | Mitsui et al. | Jan 2005 | A1 |
20050095938 | Rosenberger et al. | May 2005 | A1 |
20060048808 | Ruckman et al. | Mar 2006 | A1 |
20070062799 | Lee | Mar 2007 | A1 |
20080049380 | Miyahara et al. | Feb 2008 | A1 |
20080178920 | Ullo | Jul 2008 | A1 |
20080248235 | Feng et al. | Oct 2008 | A1 |
20100236543 | Oetting et al. | Sep 2010 | A1 |
Number | Date | Country |
---|---|---|
2302262 | Dec 1998 | CN |
2457521 | Oct 2001 | CN |
2486079 | Apr 2002 | CN |
1474113 | Feb 2004 | CN |
2641536 | Sep 2004 | CN |
201014777 | Jan 2008 | CN |
101239712 | Aug 2008 | CN |
19704323 | Jul 1998 | DE |
102006039804 | Feb 2008 | DE |
1529857 | May 2005 | EP |
52-116942 | Sep 1977 | JP |
58-52932 | Mar 1983 | JP |
S58-52932 | Mar 1983 | JP |
62-59342 | Mar 1987 | JP |
2001-226108 | Aug 2001 | JP |
2003-160322 | Jun 2003 | JP |
2004-211718 | Jul 2004 | JP |
2005199666 | Jul 2005 | JP |
2006-1820 | Jan 2006 | JP |
2006114826 | Apr 2006 | JP |
2006-229168 | Aug 2006 | JP |
2006-265079 | Oct 2006 | JP |
2007-183252 | Jul 2007 | JP |
2008-44820 | Feb 2008 | JP |
2009-141079 | Jun 2009 | JP |
I253467 | Apr 2006 | TW |
200639119 | Nov 2006 | TW |
I282326 | Jun 2007 | TW |
WO2007015670 | Feb 2007 | WO |
Entry |
---|
Liang Jintao, Liu Junhua, Optimization of a IR detector of Microcantilever with Carbon Nanometer Tube, ACTA OPTIC SINICA, Nov. 2004, pp. 1547-1551, vol. 24 No. 11. |
Zhu et al., Carbon Nanometer Tube, China Machine Press, Jan. 2003, pp. 195-198. |
Xiao-gang Sun, “Investigation on Radar Absorbing Properties of Carbon Nanotube”, Journal of Synthetic Crystals, Feb. 2005, vol. 34, No. 1, p. 174-177 (Wherein, abstract maybe relevant). |
Number | Date | Country | |
---|---|---|---|
20100065042 A1 | Mar 2010 | US |