This application claims priorities to Chinese patent applications No. 201810334434.3 titled “A Photovoltaic tile and photovoltaic system” filed on Apr. 14, 2018, and No. 201810596495.7 titled “A PHOTOVOLTAIC TILE AND PHOTOVOLTAIC SYSTEM” filed on Jun. 11, 2018 with the China Patent Office, the disclosures of which are incorporated herein by reference in their entirety.
The present disclosure relates to the technical field of photovoltaic technology, and especially relates to a photovoltaic tile and a photovoltaic system (also known as photovoltaic power generation system).
With the photovoltaic technology becoming mature, it is gradually applied into the construction field and forms a Building Integrated Photovoltaic (BIPV) technology which integrates photovoltaic power generation and construction/architecture technologies, enabling traditional buildings a photovoltaic power generation function. For example, photovoltaic technology is applied to tiles to form solar power tiles with a photovoltaic power generation function.
An aspect of the present disclosure provides a photovoltaic tile, the photovoltaic tile including a tile base, a first cell piece and a second cell piece, wherein the tile base includes a flat plate portion and at least one bulging portion connected to the flat plate portion, the first cell piece is disposed on an outer surface of the flat plate portion, and the second cell piece is disposed on and matched (fit) with an outer surface of at least one of the bulging portion.
In some embodiments, the first cell piece is a flat cell piece and the second cell piece is a flexible cell piece.
In some embodiments, the first cell piece and the second cell piece are connected in parallel.
In some embodiments, a terminal voltage of the first cell piece is equal to a terminal voltage of the second cell piece.
In some embodiments, the photovoltaic tile further includes a bypass module connected in parallel with the first and the second cell pieces.
In some embodiments, the photovoltaic tile further includes a first reverse charging prevention module and a second reverse charging prevention module; wherein the first cell piece is connected in series with the first reverse charging prevention module with a positive pole of the first cell piece connected to the first reverse charging prevention module; and the second cell piece is connected in series with the second reverse charging prevention module with a positive pole of the second cell piece connected to the second reverse charging prevention module.
In some embodiments, the photovoltaic tile further includes a junction box disposed on an inner surface of the flat plate portion, wherein each of the first reverse charging prevention module, the second reverse charging prevention module and the bypass module is disposed in the junction box.
In some embodiments, the first cell piece includes a plurality of sub-first cell pieces connected in series.
In some embodiments, the second cell piece includes a plurality sets of sub-second cell pieces connected in parallel, the second reverse charging prevention module includes a plurality of sub-second reverse charging prevention modules connected in series with the plurality sets of sub-second cell pieces in a one-to-one relation, and wherein positive poles of the plurality sets of sub-second cell pieces are connected to the plurality of sub-second reverse charging prevention modules in a one-to-one relation.
In some embodiments, the plurality sets of sub-second cell pieces are arranged on the outer surface of the bulging portion along a length direction of the tile base.
In some embodiments, a difference between a length of the first cell piece along the length direction of the tile base and a length of the second cell piece along the length direction of the tile base is less than or equal to 50 mm.
In some embodiments, the photovoltaic tile further includes a cell package layer for packaging the first cell piece and the second cell piece.
Another aspect of the present disclosure provides a photovoltaic system including the photovoltaic tile according to any one of the above embodiments.
In some embodiments, each of the photovoltaic tiles (in the photovoltaic system) is connected in series.
In some embodiments, each of the photovoltaic tiles includes at least two bulging portions including a first bulging portion and a second bulging portion which are respectively connected at two ends of the tile base included in the photovoltaic tile in a width direction of the tile base; among two of the photovoltaic tiles adjacent in the width direction of the tile base, an outer surface of the second bulging portion included in one photovoltaic tile is in contact with an inner surface of the first bulging portion included in the other photovoltaic tile; and two of the photovoltaic tiles adjacent in a length direction of the tile base are lapped together.
The drawings described herein are merely exemplary and are used only for the purpose of explaining the present disclosure, and should not be interpreted as limitations to the disclosure. In the drawings:
The technical solutions in the embodiments of the present disclosure will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the disclosure. Obviously, the described embodiments are merely a part but not all embodiments of the present disclosure. All other embodiments obtained by those ordinarily skilled in the art based on the embodiments of the present disclosure without paying any creative effort shall be included in the protection scope of the present disclosure.
In the related art, a solar power tile includes a tile base and a crystalline silicon cell piece disposed on a light receiving surface of the tile base. The solar power tile uses the crystalline silicon cell piece to absorb solar energy and converts it into electrical energy for use by a user. However, when the solar power tile serves as a building material, an edge portion of the tile base of each solar power tile generally has a curved or special-shaped structure to achieve a lap or hardware connection between two solar power tiles. However, the crystalline silicon cell piece is usually shaped like a flat plate and is inflexible such that the crystalline silicon cell piece can only be formed in a planar area of the tile base, resulting in a small area that is actually occupied by the crystalline silicon cell piece on the tile base and insufficient utilization of the surface of the tile base, and thus resulting a low utilization rate of the tile base of the photovoltaic tile.
In order to solve the above problems, as shown in
The tile base 1 includes a flat plate portion 10 and at least one bulging portion connected to the flat plate portion 10. The flat plate portion 10 and the at least one bulging portion may be an integral structure or separate structures. However, in consideration of ease of manufacture, the flat plate portion 10 and the at least one bulging portion form an integral structure. The number of the bulging portions may be one, two, or three, which is not specifically limited herein. In some embodiments, as shown in
A first cell piece 2 is formed on an outer surface of the flat plate portion 10, and a second cell piece 3 is formed on and matched with (fit with) an outer surface of at least one of the bulging portions. The bulging portion may be a bulging lap joint provided on an edge of the tile base 1 or may be a strip-shaped convex portion disposed in the middle of the tile base 1 and extending along a length direction of the tile base 1 (i.e., the direction X in
The specific manufacturing process of the photovoltaic tile provided in the embodiment of the disclosure is described in detail below with reference to the accompanying drawings; wherein a tile base 1 manufactured by a float flat glass is taken as an example for illustration.
Step S100: providing a float flat glass; performing toughening treatment to the float flat glass and thermally bending it into a tile base 1 according to a preset tile structure so that the tile base 1 includes a flat plate portion 10 and at least one bulging portion connected to the flat plate portion 10.
Step S200: forming a first cell piece 2 on an outer surface of the flat plate portion 10, and forming a second cell piece 3 on an outer surface of the at least one bulging portion so that the first cell piece 2 and the second cell piece 3 convert solar energy into electricity at the same time during photovoltaic power generation.
When mounting the photovoltaic tile provided in the embodiment of the disclosure, inner surfaces of the flat plate portion 10 and the at least one bulging portion of the tile base 1 included in the photovoltaic tile are disposed to face a purlin or rafter to ensure that the first cell piece 2 formed on the outer surface of the flat plate portion 10 and the second cell piece 3 formed on the outer surface of the at least one bulging portion are oriented toward light.
It can be seen from the structure of the photovoltaic tile provided in the embodiment of the disclosure and the specific manufacturing process thereof that, the tile base 1 includes a flat plate portion 10 and at least one bulging portion connected to the flat plate portion 10. Since a second cell piece 3 is formed on the outer surface of the at least one bulging portion and matched with the outer surface of the bulging portion(s), in some embodiments, the second cell piece 3 is a flexible cell piece. In this way, flexible characteristics of the second cell piece 3 may be utilized to match the second cell piece 3 with the outer surface of the bulging portion, so that the outer surface of the bulging portion, which was originally not possible to be used, forms the second cell piece 3 which can be used for power generation, thereby increasing an utilization area of the tile base 1 in the photovoltaic tile as well as the power generation amount of the photovoltaic tile.
It should be understood that, as shown in
In consideration of setting strength of the mounting block 101, in some embodiments, as shown in
Further, in consideration of the fact that the mounting block 101 needs to be lapped on the roof batten, a position of the mounting block 101 on the flat plate portion 10 is affected by the roof batten. In some embodiments, as shown in
The number of the mounting blocks 101 may be one or more, which is not specifically limited herein. When the number of the mounting blocks 101 is more than one, the plurality of mounting blocks 101 are arranged at intervals along the width direction of the tile base 1, and a midpoint of a line linking two mounting blocks 101 at opposite ends among the plurality of mounting blocks 101 is in a middle portion of the flat plate portion 10 along the width direction of the tile base 1. The plurality of mounting blocks 101 may be arranged at equal intervals or may be arranged at non-equal intervals, which is not specifically limited herein. In some embodiments, the plurality of mounting blocks 101 are arranged at equal intervals.
It should be noted that, as shown in
Considering the difference in structure between the bulging portion and the flat plate portion in the solar cell chip shown in
If no light is irradiated onto surfaces of the first cell piece 2 and the second cell piece 3, or the surfaces of the first cell piece 2 and the second cell piece 3 are blocked so that neither of the first cell piece 2 and the second cell piece 3 works or an output thereof is smaller than other photovoltaic tiles in the loop, when there is a current in the circuit, the current will continue to flow to the first cell piece 2 and the second cell piece 3, causing the first cell piece 2 and the second cell piece 3 to generate heat. For this reason, as shown in
In some embodiments, as shown in
In order to facilitate the description below, a branch circuit where the first reverse charging prevention module S1 is located is defined as the first reverse charging prevention branch, a branch circuit where the second reverse charging prevention module S2 is located is defined as the second reverse charging prevention branch, and a circuit formed by connecting the first reverse charging prevention branch, the second reverse charging prevention branch and a branch where the bypass module S3 is located in parallel is defined as the reverse charging prevention circuit.
As shown in
In some embodiments, as shown in
It should be noted that, as shown in
It should be noted that, as shown in
In order to ensure a packaging effect of the second cell piece 3 and the first cell piece 2, as shown in
When the tile base 1 is made of a light transmitting material, it may serves as a photovoltaic tile transparent package plate 44. Thus, the tile base 1 provides both an overall shape of the photovoltaic tile and functions of the transparent package plate 44. The tile base 1 may be replaced by a waterproof backsheet material. The backsheet material is an aluminium-containing backsheet, a TPT (Tedlar PET Tedlar, polyvinyl fluoride composite film) backsheet, or the like.
In some embodiments, as shown in
In order to prevent rainwater from being poured backward, two adjacent photovoltaic tiles may be lapped together from left or from right along the width direction of the tile base 1 according to an annual wind direction in the environment where the photovoltaic tile is located. As an example, the inner surface of the first bulging portion 11 of one photovoltaic tile is in contact with the outer surface of the second bulging portion 12 of another photovoltaic tile. As another example, the outer surface of the first bulging portion 11 of one of the photovoltaic tiles is in contact with the inner surface of the second bulging portion 12 of the other photovoltaic tile.
As shown in
as shown in
Obviously, the specific structure of the first cell piece 2 included in the photovoltaic tile 100 may also be set with reference to
As shown in
The plurality of sub-second reverse charging prevention modules are connected in series with the plurality sets of sub-second cell pieces in a one-to-one relation (that is, one sub-second reverse charging prevention module is connected in series with one corresponding set of sub-second cell pieces), and the positive poles of the plurality sets of sub-second cell pieces are connected to the plurality of sub-second reverse charging prevention modules in a one-to-one relation so that the sub-second reverse charging prevention module is used to prevent, when a current is present in the circuit, the current from flowing into a blocked or damaged set of sub-second cell pieces. In that, each set of the sub-second cell pieces includes at least two sub-second cell pieces 30 connected in series or in parallel.
As shown in
It should be understood that, as shown in
Considering that the second cell piece 3 is disposed on the outer surface of the bulging portion and a bulging height of the bulging portion varies depending on the position, light receiving areas and irradiation intensities at different portions of the second cell piece 3 are different, while the first cell piece 2 formed by the flat plate portion 10 does not have such a problem. Therefore, the second cell pieces 3 are disposed at selected positions of the bulging portion having a similar bulging height. Specifically, when the second cell piece 3 includes a plurality sets of sub-second cell pieces, the plurality sets of sub-second cell pieces are disposed at positions having a similar bulging height.
As an example, as shown in
As for the number of the sub-first cell pieces 20 and the number of the sub-second cell pieces 30, a constraint condition that a terminal voltage on all the sub-second cell pieces 30 is equal to a terminal voltage on all the sub-first cell pieces 20 after they are connected in series or parallel, as well as a constraint condition that the sub-second cell pieces 30 have the same length in the length direction of the tile base 1, need to be taken into account so as to maximize a utilization area of the bulging portion.
Further, in an embodiment of the disclosure, when the sub-second cell pieces 30 and the sub-first cell pieces 20 are connected in series or parallel, the following two requirements needs to be taken into consideration:
First, a difference between a length of the second cell piece 3 along the length direction of the tile base 1 and a length of the first cell piece 2 along the length direction of the tile base 1 is 50 mm or less, so as to ensure effective utilization of the area of the tile base 1 as well as proper architectural aesthetic.
Second, considering that when the second cell piece 3 is disposed on the outer surface of the bulging portion, the light receiving area and the irradiation intensity of the bulging portion per unit area of the second cell piece 3 are different from the case where the second cell piece 3 is disposed on the outer surface of the flat plate portion 10, resulting in that a voltage of the second cell piece 3 is 90% to 99% of a voltage of the first cell piece 2. Therefore, in an embodiment of the disclosure, when the sub-second cell pieces 30 and the sub-first cell pieces 20 are selected to be connected in series or parallel, it should be ensured that: assuming the second cell piece 3 and the first cell piece 2 are both disposed on the flat plate portion 10, the second cell piece 3 would have a voltage 1%-10% higher than the voltage of the first cell piece 2. As such, when the second cell piece 3 is provided on the bulging portion, a power generation loss due to uneven light reception of the second cell piece 3 provided on the bulging portion may be offset by the original, extra voltage. Meanwhile, a terminal voltage of each set of the sub-second cell pieces may be increased by utilizing series connection so that the terminal voltage of each set of the sub-second cell pieces is made equal to a terminal voltage of the sub-first cell pieces 20 in series.
Based on the consideration of the above two requirements, in an embodiment of the disclosure, each sub-first cell piece 20 is a single crystalline silicon cell piece (HIT) with a chamfered square structure. The single crystalline silicon cell piece of such structure is regarded as a square single crystalline silicon cell piece for serial-parallel design and calculation, and the square single crystalline silicon cell is set to have a side length of 156 mm. Each sub-second cell piece 30 is a CIGS thin film solar cell (CM) with the following two specifications, the first specification of CM: length 312 mm, width 43.75 mm; the second specification of CM: length 211 mm, width 58 mm.
In Tables 2 and 4, the number of HIT columns refers to the number of columns in which the HIT is arranged along the width direction (i.e., the direction Y) of the tile base 1. The number of HIT rows refers to the number of rows in which the HIT is arranged along the length direction (i.e. the direction X) of the tile base 1. The number of CMs in series refers to the number of sub-second cell pieces 30 included in each set of sub-second cell pieces. The number of CMs in parallel refers to the number of sets of the sub-second cell pieces 30. The voltage of HIT string refers to a terminal voltage of a plurality of sub-first cell pieces 20 connected in series. The voltage of CM string refers to a terminal voltage of each set of sub-second cell pieces 30. The difference in length refers to a difference in length between all the sub-second cell pieces 30 and all the sub-first cell pieces 20 along the length direction of the tile base 1. The difference in voltage refers to a percentage ratio between a voltage difference and the terminal voltage of the plurality of sub-first cell pieces 20 connected in series, wherein the voltage difference refers to a difference between the terminal voltage of each set of sub-second cell pieces 30 and the terminal voltage of the plurality of sub-first cell pieces 20 connected in series.
It can be found from Tables 1 and 2 that in the embodiment of the disclosure, an optional result of the first series-parallel design of the sub-first cell pieces 20 and the sub-second cell pieces 30 is as shown in
It can be found from Tables 3 and 4 that in the embodiment of the disclosure, the second series-parallel design analysis of the sub-first cell pieces 20 and the sub-second cell pieces 30 has more optional results. Taking one of the optional results as an example, specifically, as shown in
By comparison, it can be found that according to the optional result of the first series-parallel design analysis results, it is not necessary to cut a single crystalline silicon cell piece, and according to the optional result of the second series-parallel design analysis results, it is necessary to cut a single crystalline silicon cell piece. However, since there are less parallel structures in the optional result of the second series-parallel design analysis results, the reverse charging prevention device and the bus bar 103 (see
As shown
The beneficial effects of the photovoltaic system provided in an embodiment of the disclosure compared with related art are the same as those of the photovoltaic tile provided by the technical solutions in the above embodiments, and thus a redundant description thereof is omitted.
Specifically, in an embodiment of the present disclosure, the first cell piece 2 and the second cell piece 3 included in each photovoltaic tile are connected in parallel, and the respective photovoltaic tiles are connected in series to ensure maximum current output.
In some embodiments, as shown in
Two photovoltaic tiles adjacent in the length direction of the tile base 1 are lapped together. Specifically, among two photovoltaic tiles adjacent in the width direction of the tile base 1 included in each photovoltaic tile, an outer surface of the first bulging portion 11 included in one photovoltaic tile is in contact with an inner surface of the first bulging portion 11 included in the adjacent photovoltaic tile, and an outer surface of the second bulging portion 12 included in one photovoltaic tile is in contact with an inner surface of the second bulging portion 12 included in the adjacent photovoltaic tile.
The number of bulging portions included in the photovoltaic tile may also be three, four or more, which is not specifically limited herein.
In the description of the above embodiments, the specific features, structures, materials or characteristics may be combined in any suitable manner in any one or more embodiments or examples.
The foregoing are merely specific embodiments of the present disclosure, and the protection scope of the disclosure is not limited thereto. Any change or modification that can be easily thought by those skilled in the art within the technical scope disclosed by the disclosure shall fall in the protection scope of the disclosure. Therefore, the scope of protection of the present disclosure shall be determined by the scope of the claims.
Number | Date | Country | Kind |
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201810334434.3 | Apr 2018 | CN | national |
201810596495.7 | Jun 2018 | CN | national |