Planar solar concentrator
10797638 ยท 2020-10-06
Assignee
Inventors
Cpc classification
G02B6/4298
PHYSICS
F24S23/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B6/0053
PHYSICS
G02B6/0023
PHYSICS
G02B19/0028
PHYSICS
H01L31/0547
ELECTRICITY
F24S23/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B6/0088
PHYSICS
Y02E10/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E10/52
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
G02B19/00
PHYSICS
F24S23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A planar solar concentrator includes a light collecting assembly and a light condensing unit. The light collecting assembly includes a light collecting unit and a waveguide slab extending in a longitudinal direction. The light collecting unit includes a light collector having an input surface, an output surface, and a curved surface to direct an incident light toward a collecting zone on the output surface. The light condensing unit is slidably coupled to a rear end of the waveguide slab for condensing the incident light from the waveguide slab, and is coupled such that based on an elevation angle of the light source, the light condensing unit is permitted to be driven to slide in a transverse direction.
Claims
1. A planar solar concentrator comprising: a light collecting assembly including a light collecting unit including a light collector which has an input surface that is for receiving an incident light from a light source, an output surface that is opposite to said input surface in an upright direction, and a curved surface that extends to interconnect said input and output surfaces, and that has a curvature to direct the incident light toward a collecting zone on said output surface, and a waveguide slab extending in a longitudinal direction to terminate at a rear end segment and a front end segment which is coupled to said collecting zone so as to permit the incident light to be introduced into said waveguide slab, said waveguide slab being configured to permit the incident light from said light collector to be directed toward a rear end surface of said rear end segment, said waveguide slab further extending in a transverse direction relative to the longitudinal direction; and a light condensing unit which is slidably coupled to said rear end surface, and which is configured for condensing the incident light from said waveguide slab, said light condensing unit being coupled such that based on an elevation angle of the light source, said light condensing unit is permitted to be driven to slide in the transverse direction.
2. The planar solar concentrator according to claim 1, wherein said front end segment has a front end surface which is inclined relative to the upright direction.
3. The planar solar concentrator according to claim 2, wherein said curved surface is disposed forwardly of said front end segment.
4. The planar solar concentrator according to claim 1, wherein said front end segment includes a plurality of first regions which are displaced from each other in the longitudinal direction, and which are forwardly and downwardly stepped, each of said first regions having a front end surface which is inclined relative to the upright direction; and said light collecting unit includes a plurality of said light collectors, said collecting zones of said output surfaces of said light collectors being respectively coupled to said first regions of said front end segment so as to permit the incident lights entering said light collectors to be introduced into said waveguide slab.
5. The planar solar concentrator according to claim 4, wherein said curved surface of each of said light collectors is disposed forwardly of a respective one of said first regions.
6. The planar solar concentrator according to claim 1, wherein said light condensing unit includes a plurality of light condensers which are displaced from each other in the transverse direction, and which have different widths in the transverse direction.
7. The planar solar concentrator according to claim 6, wherein each of light condensers is tapered rearwardly.
8. The planar solar concentrator according to claim 1, wherein said light condensing unit includes a first light condenser, a second light condenser, and a third light condenser which are displaced from each other in the transverse direction, and which have first, second, third widths in the transverse direction, respectively, the second width being smaller than the first width, the third width being smaller than the second width.
9. The planar solar concentrator according to claim 8, further comprising a first flat prism and a second flat prism, which are respectively disposed inside said first and second light condensers in contact with or in proximity to said rear end surface, and which are configured to direct the incident light from said waveguide slab toward rear ends of said first and second light condensers, respectively.
10. The planar solar concentrator according to claim 8, which comprises a plurality of said light collecting assemblies stacked in the upright direction such that an upper one of said light collecting assemblies is disposed on said waveguide slab of a lower one of said light collecting assemblies, said planar solar concentrator further comprising a plurality of coupling members each having a front end which is slidably coupled to said rear end surface of said waveguide slab of a respective one of said light collecting assemblies, and a rear end which is coupled to slide with said light condensing unit so as to permit the incident light from said respective light collecting assembly to be introduced into said light condensing unit, said coupling members having different lengths in the longitudinal directions such that said rear ends of said coupling members are flush with each other.
11. The planar solar concentrator according to claim 10, further comprising a plurality of third flat prisms each of which is disposed in a respective one of said coupling members in contact with or in proximity to said respective waveguide slab, and each of which corresponds in position to said first light condenser, and a plurality of fourth flat prisms each of which is disposed in said respective coupling members in contact with or in proximity to said respective waveguide slab, and each of which corresponds in position to said second light condenser.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment(s) with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
(16) Before the disclosure is described in greater detail, it should be noted that where considered appropriate, reference numerals have been repeated among the figures to indicate corresponding or analogous elements, which may optionally have similar characteristics.
(17) To aid in describing the disclosure, directional terms may be used in the specification and claims to describe portions of the present disclosure (e.g., front, rear, left, right, top, bottom, etc.). These directional definitions are intended to merely assist in describing and claiming the disclosure and are not intended to limit the disclosure in any way.
(18) Referring to
(19) The light collecting assembly 3 includes a light collecting unit 50 and a waveguide slab 4. The light collecting unit 50 includes a light collector 5 having an input surface 52, an output surface 53, and a curved surface 51. The input surface 52 is disposed for receiving an incident light (L, L1, L2) from a light source, such as the sun. The incident light (L, L1, L2) enters the input surface 52 at an angle of incidence. The output surface 53 is opposite to the input surface 52 in an upright direction (Z). The curved surface 51 extends to interconnect the input and output surfaces 52, 53, and has a curvature to direct the incident light (L, L1, L2) toward a collecting zone 531 (see
(20) In an embodiment shown in
(21) The waveguide slab 4 extends in a longitudinal direction (X) to terminate at a front end segment 41 and a rear end segment 42, and further extends in a transverse direction (Y) relative to the longitudinal direction (X). The front end segment 41 is coupled to the collecting zone 531 so as to permit the incident light (L, L1, L2) to be introduced into the waveguide slab 4. The waveguide slab 4 is configured to permit the incident light (L, L1, L2) from the light collector 5 to be directed toward a rear end surface 420 of the rear end segment 42. The waveguide slab 4 has a length in the longitudinal direction (X) such that the light is focused on a focus point (P) at the rear end surface 420 (see
(22) Each of the light collecting unit 50 and the waveguide slab 4 is made of a light-transmissive material. In an embodiment, each of the light collecting unit 50 and the waveguide slab 4 is made of poly(methyl methacrylate) (index of refraction: 1.5).
(23) In an embodiment shown in
(24) In an embodiment shown in
(25) The light condensing unit 60 is slidably coupled to the rear end surface 420, and is configured for condensing the incident light (L, L1, L2) from the waveguide slab 4. The light condensing unit 60 may be manually-driven to slide in the transverse direction (Y) or program-driven to automatically slide in the transverse direction (Y) based on an elevation angle of the light source (i.e., a variation of a solar elevation angle). The light condensing unit 60 is made of a light-transmissive material. In an embodiment, the light condensing unit 60 is made of poly(methyl methacrylate) (index of refraction: 1.5).
(26) In an embodiment shown in
(27) In an embodiment shown in
(28) In an embodiment shown in
(29) In an embodiment shown in
(30) In an embodiment shown in
(31) An application of the planar solar concentrator according to the first embodiment of the disclosure may be demonstrated by installing the concentrator at a latitude of 25.05 in Taipei. The concentrator is mounted on a single-axis tracker, a rotation axis of which is inclined relative to the ground by an angle corresponding to the latitude of the location. For example, in Taipei, the angle is 25.05. The rotation axis is aligned with the north-south direction and rotates the concentrator to track the sun in real time as the sun rises and falls from the east to the west. As shown in
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(33) In addition, the light collecting unit 50 includes a plurality of the light collectors 5. The collecting zones 531 of the output surfaces 53 of the light collectors 5 are respectively coupled to the first regions 413 of the front end segment 41 so as to permit the incident lights (L, L1, L2) entering the light collectors 5 to be introduced into the waveguide slab 4.
(34) In an embodiment shown in
(35) In an embodiment shown in
(36) In an embodiment shown in
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(38) While the number of the light collecting assemblies 3 in an embodiment shown in
(39) In an embodiment shown in
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(41) In an embodiment shown in
(42) Further, as shown in
(43) In this embodiment, the light collecting units 50 of the light collecting assemblies 3 of each planar solar concentrator cooperatively define a half length of the planar solar concentrator in the longitudinal direction (X). By arranging the two planar solar concentrators in the upright direction (Z), as shown in
(44) In the above embodiments, in order to minimize reflection loss, optical adhesive with optical properties compatible with that of the planar solar concentrator of the disclosure may be used to eliminate air trapped inbetween the joints of the pieces.
(45) In sum, the curved surface 51 of the light collector 5 is configured to reflect an incident light (L, L1, L2) and direct the incident light (L, L1, L2) into the waveguide slab 4, where the incident light (L, L1, L2) is focused at the rear end segment 42 of the waveguide slab 4. Further, the light condensing unit 60 is slidably coupled to the rear end segment 42 of the waveguide slab 4, and is configured for condensing the incident light (L, L1, L2) from the waveguide slab 4. Because the light condensing unit 60 is driven to slide in the transverse direction (Y) in response to a variation of the sun elevation angle, the planar solar concentrator of this disclosure is useful for collecting the solar light in a more efficient way.
(46) In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment (s). It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to one embodiment, an embodiment, an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects, and that one or more features or specific details from one embodiment may be practiced together with one or more features or specific details from another embodiment, where appropriate, in the practice of the disclosure.
(47) While the disclosure has been described in connection with what is (are) considered the exemplary embodiment(s), it is understood that this disclosure is not limited to the disclosed embodiment(s) but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.