SOLAR RECEIVER WITH VARIED REFLECTIVITY
20230400225 · 2023-12-14
Inventors
Cpc classification
F24S2023/84
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/82
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S10/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24S23/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S20/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A solar receiver includes a porous structure with a uniform or a varying porosity. The porous structure may include specular reflective region on at least one surface and a diffusive reflective region on at least one surface.
Claims
1. A solar receiver, comprising: a porous structure; wherein the porous structure includes a uniform or varying porosity distribution with a specular reflective region on at least one surface of the porous structure and a diffuse reflective region on at least one surface of the porous structure.
2. The solar receiver of claim 1, wherein the porous structure has at least one of the following: a monolithic or assembled honeycomb shape, a stacked shape plate, a corrugated structure, or a foam structure.
3. The solar receiver of claim 1, wherein the specular reflective region has higher reflectivity compared to the total reflectivity of the diffuse reflective region.
4. The solar receiver of claim 1, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is opposite to the surface comprising the diffuse reflective region.
5. The solar receiver of claim 1, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is adjacent to the surface comprising the diffuse reflective region.
6. The solar receiver of claim 1, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is the same surface comprising the diffuse reflective region.
7. A solar receiver, comprising: a plurality of channels forming a porous structure, each channel extending from a solar radiation collection side to a heat transfer side, and each channel including a uniform or varying porosity distribution, and each channel including a specular reflective region on at least one surface of the channel and a diffuse reflective region on at least one surface of the channel.
8. The solar receiver of claim 7, wherein each channel is at least one of square-shaped, circular, or hexagonal.
9. The solar receiver of claim 7, wherein the specular reflective region has higher reflectivity compared to the total reflectivity of the diffuse reflective region.
10. The solar receiver of claim 7, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is opposite to the surface comprising the diffuse reflective region.
11. The solar receiver of claim 7, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is adjacent to the surface comprising the diffuse reflective region.
12. The solar receiver of claim 7, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is the same surface comprising the diffuse reflective region.
13. A method of fabricating a solar receiver comprising: applying a desired reflectivity distribution of specular reflective regions and diffusive reflective regions to surfaces of planar pieces of a porous material; and assembling the planar pieces into a porous structure, wherein the porous structure has a uniform or varying porosity, and porous structure includes at least one specular reflective region on at least one surface of the porous structure and at least one diffusive reflective region on at least one surface of the porous structure.
14. The method of claim 13, wherein planar pieces form a porous structure having a monolithic or assembled honeycomb shape, a stacked shape plate, a corrugated structure, or a foam structure.
15. The method of claim 13, wherein the reflectivity distribution is applied utilizing one of physical sputtering, physical polishing, chemical polishing, coating application, or chemical vapor distillation.
16. The method of claim 13, wherein the reflectivity distribution is applied to the surfaces of assembled planar pieces.
17. The method of claim 13, wherein applied the specular reflective region has higher reflectivity compared to the total reflectivity of the applied diffuse reflective region.
18. The method of claim 13, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is opposite to the surface comprising the diffuse reflective region.
19. The method of claim 13, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is adjacent to the surface comprising the diffuse reflective region.
20. The method of claim 13, wherein the surface comprising the specular reflective region is a surface of a channel of the porous structure that is the same surface comprising the diffuse reflective region.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The accompanying figures depict various elements of the one or more embodiments of the present disclosure, and are not considered limiting of the scope of the present disclosure.
[0013] In the Figures, some elements may be shown not to scale with other elements so as to more clearly show the details. Additionally, like reference numbers are used, where possible, to indicate like elements throughout the several Figures.
[0014]
[0015]
[0016]
DETAILED DESCRIPTION
[0017] The present disclosure is generally related to a solar receiver.
[0018] Previous works have attempted to attain the volumetric effect by axially varying the porosity of the receiver to obtain an open front section that allows for greater radiation penetration, followed by a denser section to improve heat transfer coefficients. However, many of these designs were only marginally successful at improving the volumetric effect. And those that did have greater success at obtaining the volumetric effect were complex and difficult to manufacture such varying porosity designs.
[0019] The receiver presented in this disclosure significantly improves the volumetric behavior of a honeycomb receiver, while remaining simple and manufactural. This is achieved by applying varied reflectivity distributions (specular and diffuse) on the irradiated surfaces to improve radiation penetration, while maintaining a simple, easy-to-manufacture design.
[0020] According to an embodiment of the present disclosure, a solar receiver is provided.
[0021] The porous structure 112 may be formed into a monolithic receiver with an assembled honeycomb shape. Alternatively, the porous structure 112 may be formed into any structured shape. For example, it may be formed into an assembled honeycomb shape, a stacked shaped plate, a corrugated plate, or a foam shape. The porous structure 112 may be made of a MAX-phase ceramic material or any porous material that can withstand the high radiative flux experienced by the receiver 110, for example Ti.sub.3SiC.sub.2. The porous structure 112 may form or include a plurality of channels, e.g. channel 115. Each channel may be square-shaped, as shown in
[0022] Although the porous structure may include a plurality of channels, for ease of explanation, a reduced geometry of the porous structure 112 resulting in a single channel 115a may be described, as shown in
[0023] As shown in
[0024] The porous structure 112 may include a specular reflective region on at least one surface and a diffusive reflective region on at least one surface.
[0025] Although
[0026] According to another embodiment of the present disclosure, a method of manufacturing the solar receiver is provided.
[0027] Given the improved volumetric behavior and thermal performance of the solar receiver utilizing varied specular and diffusive reflective regions of the present disclosure, an improved solar receiver that does not involve complicated graded-porosity designs is provided.
[0028] It should be understood that various changes and modifications to the presently preferred embodiments described herein will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present subject matter and without diminishing its intended advantages. It is therefore intended that such changes and modifications be covered by the appended claims.
[0029] Without further elaboration, it is believed that one skilled in the art can use the preceding description to utilize the claimed inventions to their fullest extent. The examples and aspects disclosed herein are to be construed as merely illustrative 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 examples without departing from the underlying principles discussed. In other words, various modifications and improvements of the examples specifically disclosed in the description above are within the scope of the appended claims. For instance, any suitable combination of features of the various examples described is contemplated.