Solar module
11316060 · 2022-04-26
Assignee
Inventors
Cpc classification
H01L31/0481
ELECTRICITY
Y02E10/50
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
H01L31/0543
ELECTRICITY
International classification
H01L31/054
ELECTRICITY
Abstract
The present disclosure provides a solar module including an encapsulating layer, solar cells embedded in the encapsulating layer, and a patterned layer formed on the encapsulating layer. The pattered layer includes at least one patterned unit having a plurality of color spots separated from one another, thereby allowing light incident on the color spots to be diffracted through adjacent gaps, so as to produce Poisson spots on the solar cells at locations corresponding to the color spots.
Claims
1. A solar module, comprising: an encapsulating layer including a first surface, a second surface opposite to the first surface, and side surfaces adjacent to the first surface and the second surface; a plurality of solar cells embedded in the encapsulating layer; a patterned layer made of glaze pigments formed on a part of the first surface of the encapsulating layer and including at least one patterned unit having a plurality of color spots separated from one another, wherein the patterned layer of the glaze pigments is free from being formed on an entirety of the first surface of the encapsulating layer, and Poisson spots are created underneath the color spots; a first translucent sheet combined to the first surface of the encapsulating layer and the patterned layer, wherein a light-facing surface of the first translucent sheet is formed with a first rough face and a backlit surface of the first translucent sheet is formed with a second rough face wherein the second rough face of the backlit surface is in direct contact with the encapsulating layer and the patterned layer, and wherein the first rough face and the second rough face allow light to enter the patterned layer at different angles; and a second translucent sheet combined to the second surface of the encapsulating layer.
2. The solar module of claim 1, wherein at least one of the color spots is between 0.03 mm and 0.10 mm in width.
3. The solar module of claim 1, wherein at least one of the color spots is between 0.05 mm and 0.08 mm in width.
4. The solar module of claim 1, wherein the first rough face is formed on at least a portion of the light-facing surface and the second rough face is formed on at least a portion of the backlit surface.
5. The solar module of claim 1, wherein the first rough face is formed on an entire area of the light-facing surface and the second rough face is formed on an entire area of the backlit surface.
6. The solar module of claim 1, wherein the Poisson spots are created underneath the color spots for the light to reach the solar cells sheltered by the color spots.
7. The solar module of claim 1, wherein the solar cells are connected in series.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure can be more fully understood by reading the following detailed description of the embodiments, with reference made to the accompanying drawings, wherein:
(2)
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(5) The present disclosure is described by the following specific embodiments. Those with ordinary skills in the arts can readily understand other advantages and functions of the present disclosure after reading the disclosure of this specification. The present disclosure may also be practiced or applied with other different implementations. Based on different contexts and applications, the various details in this specification can be modified and changed without departing from the spirit of the present disclosure.
(6) It should be noted that the structures, ratios, sizes shown in the drawings appended to this specification are to be construed in conjunction with the disclosure of this specification in order to facilitate understanding of those skilled in the art. They are not meant, in any ways, to limit the implementations of the present disclosure, and therefore have no substantial technical meaning. Without affecting the effects created and objectives achieved by the present disclosure, any modifications, changes or adjustments to the structures, ratio relationships or sizes, are to be construed as fall within the range covered by the technical contents disclosed herein. Meanwhile, terms, such as “above”, “one”, “a”, “an”, and the like, are for illustrative purposes only, and are not meant to limit the range implementable by the present disclosure. Any changes or adjustments made to their relative relationships, without modifying the substantial technical contents, are also to be construed as within the range implementable by the present disclosure.
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(8) The encapsulating layer 20 includes a first surface 20a and a second surface 20b opposite to the first surface 20a.
(9) In an embodiment, the encapsulating layer 20 is made of, but not limited to, ethylene vinyl acetate (EVA), polyvinyl butyral (PVB) or polyolefin (PO).
(10) The solar cells 23 are embedded in the encapsulating layer 20, and electrically connected in series through soldering of a plurality of circuits 230. The circuits 230 are made of conductive copper foil (or so called “ribbon”).
(11) The patterned layer 24 is formed on the first surface 20a of the encapsulating layer 20, and includes a plurality of patterned units 24a that include a plurality of separated color spots 240.
(12) In an embodiment, the patterned layer 24 is made of glaze pigments. The width d of a single color spot 240 is between 0.03 and 0.10 mm, and can be selected as to be between 0.05 and 0.08 mm; and preferably 0.05 mm. A plurality of separated color spots 240 constitute a single patterned unit 24a.
(13) The first translucent sheet 21 is combined on top of the first surface 20a of the encapsulating layer 20 and the patterned layer 24.
(14) In an embodiment, the first translucent sheet 21 is a glass sheet, and rough surfaces 21a and 21b are formed on the two opposite surfaces (a light-facing surface and a backlit surface) of the first translucent sheet 21. The roughness Ra of the rough surfaces 21a and 21b are greater than 0.1. In an embodiment, the first translucent sheet 21 is roughened using a chemical etching process, for example, by spraying a diluted hydrofluoric solution directly on the glass, and then rinsing it off. As such, the roughness Ra is controlled to be greater than 0.1.
(15) In another embodiment, the first translucent sheet 21 is combined with the first surface 20a of the encapsulating layer 20 and the patterned layer 24 via its rough surface 21a.
(16) Further, the entire areas of the rough surfaces 21a and 21b of the first translucent sheet 21 can be selected to be roughened, or a portion of the rough surfaces 21a and 21b of the first translucent sheet 21 is roughened as needed.
(17) The second translucent sheet 22 is a glass sheet and is combined on the second surface 20b of the encapsulating layer 20.
(18) The manufacturing process of the solar module 2 in accordance with the present disclosure includes the following steps. First, the first translucent sheet 21 is roughened using an etchant, and then the etchant is rinsed off with water. After the first translucent sheet 21 is dry, glaze is formed on a lower rough surface 21a of the first translucent sheet 21 by transfer or spraying to form a patterned layer 24 with color spots 240. The glaze is then sintered at a temperature of at least 500° C. Thereafter, an encapsulant is formed between the lower rough surface 21a of the first translucent sheet 21 and the patterned layer 24 and a second translucent sheet 22. The encapsulant encapsulates solar cells 23 that are connected in series. Finally, the encapsulant is thermoset to form an encapsulating layer 20, thereby completing the manufacturing of the solar module 2.
(19) During use of the solar module 2 according to the present disclosure, as shown in
(20) Furthermore, the solar module 2 according to the present disclosure includes rough surfaces 21a and 21b on the first translucent sheet 21, which reduces the proportion of total reflection, increasing the power generation conversion rate of the solar cells 23.
(21) Moreover, the glass material of the first translucent sheet 21 includes rough surfaces 21a and 21b obtained through surface roughening, such that incident light L are allowed to enter at many different angles, so that integral effects of Poisson spots of different forms and at different locations are created underneath the color spots 240, preventing local sheltered areas being formed on the solar cells 23.
(22) In addition, since the solar module 2 according to the present disclosure utilizes the principle of integral effects of Poisson spots, if the roughness Ra of the first translucent sheet 21 is greater than 0.25, only the light-facing surface (i.e., the upper rough surface 21b) of the first translucent sheet 21 needs to be roughened. Meanwhile, the first translucent sheet 21 may be in contact with the patterned layer 24 and the first surface 20a of the encapsulating layer 20 via a smooth surface.
(23) In summary, the solar module 2 according the present disclosure includes patterned units 24a having a plurality of separated color spots 240 to allow light to pass through the patterned units 24a, thereby preventing the occurrence of leakage and hot zones. In addition, with the surface-roughened first translucent sheet 21, the power generation conversion rate of the solar cells 23 can be enhanced, while resolving conflicts between image coloring and power generation conversion rate.
(24) The above embodiments are only used to illustrate the principles of the present disclosure, and should not be construed as to limit the present disclosure in any way. The above embodiments can be modified by those with ordinary skill in the art without departing from the scope of the present disclosure as defined in the following appended claims.