PHOTOVOLTAIC DEVICE COMPRISING A DEFORMABLE SUPPORT AND ASSOCIATED UNFOLDING OR FOLDING SYSTEM
A flexible photovoltaic device with a deformable support and motor-driven folding system addresses installation complexity and weather risks, enabling efficient energy conversion and easy deployment on buildings.
Patent Information
- Application Number
- FR2024008160
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-07-24
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2044-07-24
AI Technical Summary
Existing photovoltaic systems for converting light energy into electrical energy are complex to install, require significant space, and are not suitable for covering pre-existing structures like buildings, especially when manual operation poses risks in inclement weather.
A photovoltaic device with a deformable support that allows air passage and can be easily mounted on buildings, featuring flexible photovoltaic modules housed in openings, a deployment/folding system with pulleys and cables driven by a motor, and a storage box for protection during bad weather.
Enables efficient conversion of light energy into electrical energy with easy installation and deployment/folding, minimizing space requirements and protecting the system from weather damage, suitable for buildings.
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Abstract
Description
Title of the invention: PHOTOVOLTAIC DEVICE COMPRISING A DEFORMABLE SUPPORT AND ASSOCIATED UNFOLDING OR FOLDING SYSTEM
[0001] The invention relates to means of collecting light energy for its conversion into electrical energy.
[0002] US patent application 2014027069 describes a photovoltaic blind comprising one or more flexible photovoltaic panels that can be rolled up and down on a rotating drum. The blind also includes a ventilation tube and a fan that generates an airflow beneath the blind. The rotating drum and the ventilation tube are housed in a cassette fixed to a wall. The cassette contains a motor to enable the blind to be rolled up and down. All of these components are mounted at a height, and the photovoltaic panels are wound onto the drum. The blind is integrated into the window.
[0003] Furthermore, patent application FR3081286 describes a flexible and mobile shading screen for an agricultural greenhouse. The screen can cooperate with a support to present a deployed or folded configuration. The screen comprises a main extension surface including photovoltaic films and transparent films. The photovoltaic films and transparent films are positioned alternately on the screen. The screen is installed horizontally, so that the deployment occurs along a horizontal axis. The photovoltaic films are folded by rolling.
[0004] Prior art patent application WO2006032077 is known, describing an assembly comprising a flexible rectangular screen attached to two closely spaced parallel beams such that the screen can slide along the beams to deform lengthwise without changing its width. The screen serves to adjust the level of protection of agricultural crops against excessive solar radiation. The assembly comprises a plurality of rigid slats positioned transversely between the two beams. The screen is placed on top of the rigid slats. In addition, the assembly comprises hooks attached to the ends of the slats to hold the screen in position. The hooks are equipped with threaded rods that pass through the screen and screw into the slats. The ends of the screen are wrapped around rigid tubes and attached to these tubes by pivoting mechanisms.An angled lever, fixed to each end of the tubes, holds the screen in place and allows a pull cord, passing through a central eyelet, to be attached to move the screen longitudinally between the two beams. The screen consists of panels. solar energy collection. However, some drawbacks remain. Installing such a system is complex. First, the beams, slats, hooks, and angled lever must be installed to extend the screen. This requires space, as the installation is horizontal, and time. Moving the screen between the two beams is done manually, which poses a risk, especially in inclement weather, as the user may not be near the system when the storm hits. Furthermore, the invention, intended for horizontal applications on agricultural land, is not suitable for covering pre-existing structures, particularly buildings.
[0005] The objective of the present invention is to remedy these drawbacks and to present a solution for converting light energy into electrical energy suitable for covering, at least partially, a building.
[0006] To achieve this objective, the invention proposes a photovoltaic device for converting light energy into electrical energy comprising a support capable of deforming and allowing at least partial air to pass through, remarkable in that said support has housings configured to each contain a photovoltaic module, said support having at least one opening, said opening being positioned between two housings.
[0007] Thanks to the invention, it is possible to convert light energy into electrical energy on a flexible support that can be easily mounted, in particular on a building.
[0008] Preferably, said support is a net.
[0009] The net allows air to pass through in order to limit the effects of overpressure and to promote air circulation along the structure.
[0010] Advantageously, each housing has a longitudinal shape, each housing having at least one open end, said photovoltaic module being able to be inserted into said housing or removed from said housing through said end.
[0011] The photovoltaic device can therefore be easily assembled or disassembled in simply inserting photovoltaic modules into homes.
[0012] Preferably, each housing includes a complementary support so that said support and said complementary support form said housing, said complementary support including a net or a transparent film.
[0013] Thus, the light reaches the photovoltaic modules in such a way that it can be efficiently converted into electrical energy.
[0014] Furthermore, the invention relates to a deployment or folding system for a previously described photovoltaic device, notable in that said system comprises at least one pulley and a cable configured to interact together, said cable being connected to the photovoltaic device, said dwellings each comprising one of the photovoltaic modules, said system comprising a motor, said motor being connected to the cable, said motor being configured to drive said cable, said photovoltaic device being configured to have two configurations: - a deployed configuration in which said support is stretched, said photovoltaic modules being substantially aligned with each other; - a folded configuration in which the photovoltaic modules are essentially superimposed on each other.
[0015] Thus, the photovoltaic device can be deployed and folded at any time.
[0016] Advantageously, said photovoltaic modules have at least one lateral end, each lateral end being positioned on the same side of said support, each photovoltaic module being electrically connected with said preceding photovoltaic module and / or with said following photovoltaic module.
[0017] Thus, the electrical connections do not position themselves between the photovoltaic modules when said photovoltaic device is folded.
[0018] Preferably, said system includes a storage box, said storage box being configured to include said photovoltaic device in the folded configuration.
[0019] The storage box protects the photovoltaic device from the weather, in particular from rain, which is likely to damage it when the photovoltaic device is in the folded configuration.
[0020] Advantageously, said motor is positioned in said storage box.
[0021] In this way, the engine is protected, particularly in the event of bad weather.
[0022] Preferably, said system comprises a control box configured for to control the deployment or folding of said photovoltaic device.
[0023] This allows the motor to be operated remotely.
[0024] The invention also relates to a building comprising a floor forming a base plane defined by a first longitudinal direction, by a second transverse direction orthogonal to the first direction and a third vertical direction orthogonal to the first direction and to the second direction oriented away from the ground, said building comprising a facade and / or a roof, said building comprising a deployment or folding system for a photovoltaic device described previously, notable in that said pulley is fixed to the building by a fastening means, said fastening means being positioned on said facade or on said roof.
[0025] Positioning the photovoltaic system on a building allows for optimal collection of light energy. Furthermore, it does not require a large space because the photovoltaic system's flexibility allows it to conform to the shape of the building.
[0026] Preferably, said photovoltaic device has a height along the third direction defining the top and bottom of said photovoltaic device, the top being the point furthest from said ground, the bottom being the point closest to the ground, the photovoltaic device being configured to be driven from bottom to top to go from the folded configuration to the deployed configuration, the photovoltaic device being configured to be driven from top to bottom to go from the deployed configuration to the folded configuration so that said photovoltaic module positioned furthest down is the first to fold.
[0027] Preferably, said system comprises said storage box, said storage box being positioned on the ground.
[0028] Thus, the maintenance of the elements contained in said storage box is facilitated because the latter is directly accessible, without special arrangements.
[0029] The invention will be further detailed by describing non-limiting embodiments, and based on the accompanying figures illustrating variants of the invention, in which: - [Fig.1] schematically illustrates a photovoltaic device comprising photovoltaic modules according to the invention; - [Fig.2] schematically illustrates a deployment or system folding of the photovoltaic device illustrated in [Fig.1] mounted on a wall according to a first embodiment; - [Fig.3] schematically illustrates a deployment or system folding of the photovoltaic device illustrated in [Fig.1] mounted on a building according to a second embodiment; - [Fig.4] schematically illustrates a deployment or system folding of the photovoltaic device illustrated in [Fig.1] mounted on a building according to a third embodiment.
[0030] A photovoltaic device 1 according to the invention is schematically illustrated in [Fig. 1]. The photovoltaic device 1 is lightweight and allows the conversion of light energy into electrical energy. The photovoltaic device 1 comprises a flexible support 2 capable of deforming and allowing at least partial air to pass through. Preferably, the support 2 is a mesh. Alternatively, said support 2 is a transparent film. The support 2 has a plurality of slots 3. Each slot 3 is configured to contain a photovoltaic module 4. Optionally, each slot 3 has a complementary support such that said support 2 and said complementary support form said slot 3. The complementary support is preferably a mesh, the mesh size of which may differ from that of the support 2. The mesh size of each mesh may preferably vary between 0.1 cm and 30 cm.Alternatively, the supplementary support is a continuous transparent film. Optionally, the transparent film is colored to improve the appearance of the installation without the coloring significantly affecting the overall light transmission. In fact, the coloring may not reduce the overall transmission by more than 10%. Preferably, each slot 3 has a longitudinal shape. Each slot 3 has at least one open end. Thus, the photovoltaic module 4 can be inserted into said slot 3 by sliding it through said open end. Similarly, the photovoltaic module 4 can be removed from said slot 3 by sliding it in the opposite direction. The direction of insertion is illustrated by an arrow in [Fig. 1]. However, this is not a limiting example. The photovoltaic module 4 comprises a plurality of photovoltaic cells. In [Fig. 1], said support 2 has six photovoltaic modules, one of which is being inserted.The support 2 also includes a plurality of openings 5, each opening 5 being positioned between two slots 3. The openings 5 allow air circulation, which helps prevent the photovoltaic modules 4 from overheating and avoids air overpressure. Furthermore, the presence of the openings 5 contributes to making the photovoltaic system 1 lighter, thus facilitating its installation. Preferably, each of the photovoltaic modules 4 has at least one lateral end 4a. When present in the slots 3, each photovoltaic module 4 is electrically connected to the preceding photovoltaic module 4 and / or to the following photovoltaic module. The electrical connection is made at their lateral end 4a, each lateral end 4a being positioned opposite the lateral end 4a of one or more of the other photovoltaic modules 4.In other words, the electrical connections between each photovoltaic module 4 are made on the same side of said support 2.
[0031] Figure 2 illustrates a deployment or folding system for said photovoltaic device 1 according to a first embodiment. The system comprises at least one pulley 6 and a cable 7. The cable 7 and the pulley 6 cooperate so that said cable 7 slides on said pulley 6 to allow the movement of the photovoltaic device 1. In addition, said system comprises a motor 9. Preferably, the system supplies the energy produced to the electrical grid and powers said motor 9. Alternatively, in the case of an off-grid installation, said system comprises a battery charged by the photovoltaic modules 4 which electrically powers said motor 9. The motor 9 is configured to drive said cable 7 so as to unfold or fold said photovoltaic device 1. Preferably, the system comprises a storage box 8 in which said photovoltaic device 1 is stored when folded. In Figure 2, the system is shown in Figure 3.2], said motor 9 is positioned in said storage box 8. Alternatively, in a second embodiment, said motor 9 is positioned. outside said storage box 8, as illustrated in [Fig. 3]. The cable 7 is connected to the motor 9 and the photovoltaic device 1. The motor 9 is capable of driving said cable 7 so as to unfold or fold said photovoltaic device 1. Thus, said photovoltaic device 1 is capable of being in an unfolded configuration in which said support 2 is taut. The photovoltaic modules 4 are substantially aligned. In [Fig. 1], said photovoltaic device 1 is shown in the unfolded configuration. Furthermore, said photovoltaic device 1 is capable of being in a folded configuration in which said support 2 is folded at each opening 5 so that said photovoltaic modules 4 are substantially overlapping one another in said storage box 8. In other words, the photovoltaic device 1 has an accordion shape in the folded configuration.Indeed, the aforementioned openings 5 act as hinges to articulate the support 2, allowing the successive stacking of the photovoltaic modules 4 during folding. In [Fig. 2], the photovoltaic device 1 is shown in an intermediate configuration in which some of the photovoltaic modules 4 are aligned and others are stacked in the storage box 8. In [Fig. 2], the facade 11 of a building is illustrated. The building has a floor forming a base plane defined by a first longitudinal direction, a second transverse direction orthogonal to the first direction X, and a third vertical direction orthogonal to the first direction X and to the second direction oriented away from the ground. The pulley 6 is fixed to the facade 11 of the building by a wall-mounted fixing means 10.In a second embodiment, the pulley 6 is fixed to a roof 12 of the building by means of the fixing means 10. Preferably, the fixing means 10 does not require drilling through the facade 11 or the roof 12. Alternatively, the pulley 6 is fixed to the top of a mast to avoid fixing it to the facade 11. The second embodiment is illustrated in [Fig. 3]. To control the folding or unfolding of the photovoltaic device 1, the system preferably includes a control box. Preferably, the control box is located on the storage box 8. Alternatively, the control box is located at a distance from the storage box. Thus, in the event of severe weather likely to damage the photovoltaic device 1, it is possible to control its folding. For example, the control box is located inside a building.Thus, a user is able to control the deployment or retraction of the photovoltaic device 1 from said building, sheltered from any possible inclement weather.
[0032] In [Fig. 3], said system comprises three pulleys 6, one of said pulleys 6 being positioned at the top of the roof 12 of said building, while the other two pulleys 6 are positioned on two separate facades, the two facades being positioned facing each other. The storage box 8 and the motor 9 are positioned on either side of the building. Thus, when the motor 9 is activated, the cable 7 is pulled towards the motor 9 as indicated by the arrows in [Fig. 3], so that the photovoltaic device 1 extends from the storage box 8 to unfold. The direction illustrated by the arrows in [Fig. 3] is not limiting. Indeed, to fold the photovoltaic device 1, it is necessary to pull the cable 7 in the opposite direction to that illustrated by the arrows in [Fig. 3]. The photovoltaic device 1 is placed along the facade 11 and / or on the roof 12. The photovoltaic modules 4 placed in the support 2 are mounted either continuously, meaning that each housing 3 contains a photovoltaic module 4, or discontinuously, leaving one or more housings 3.Preferably, the photovoltaic device 1 has a height h defined by a direction oriented away from the ground. The height h thus defines the top and bottom of the photovoltaic device 1. In the deployed configuration, the bottom is the part of the photovoltaic device 1 closest to the ground. Conversely, the top of the photovoltaic device is the part furthest from the ground. Preferably, the photovoltaic device 1 is configured to be driven from bottom to top to move from the folded to the deployed configuration. Furthermore, the photovoltaic device 1 is configured to be driven from top to bottom to move from the deployed to the folded configuration. Indeed, the photovoltaic module 4 positioned furthest down is the first to fold. In [Fig. 3], the storage box 8 is positioned at the bottom of the photovoltaic device 1, on the ground.
[0033] Figure 4 illustrates the deployment or retraction system of the photovoltaic device 1 on the building according to a third embodiment. In Figure 4, said system comprises three pulleys 6, two of which are positioned one above the other on a facade 11, while the last pulley 6 is located at the top of the roof 12. In this third embodiment, the motor 9 is positioned in said storage box 8. Thus, it is possible to deploy said photovoltaic device 1 facing the facade 11 of the building and / or facing the roof 12. The arrows shown in Figure 4 define the direction of movement of the cable 7 used to deploy said photovoltaic device 1. When the cable 7 slides in the opposite direction to that shown by said arrows, said photovoltaic device 1 is retracted.
[0034] The installation is characterized by its lightness. Indeed, the photovoltaic modules 4 comprise elements whose weight can be reduced to less than 500 g / m² instead of 15 to 25 kg / m² for conventional glass-based technologies, allowing for vertical or inclined installation as described above, which is very difficult with conventional technologies. Such installations could achieve higher power outputs of ten kW or more.
[0035] The photovoltaic modules 4 are thin-film technologies positioned within the flexible substrate. For example, the thin films are of the amorphous silicon, perovskite, organic, or inorganic type. Preferably, the thin films are of the inorganic CIGS type (acronym for Copper, Indium, Gallium, and Selenium). This offers increased flexibility and flexural strength compared to wafer silicon technology, which is highly brittle. Nevertheless, lightweight photovoltaic modules 4 using this technology can be integrated within the scope of the invention.
[0036] In one example, a 12 m² deployable facade installation was created using ten rectangular photovoltaic modules 4 with CIGS thin films. Each photovoltaic module 4 measured 3 m by 0.3 m and weighed 2.6 kg, with a power output of 125 W. The total peak power was 1.25 kW. Vertical deployment on a pulley system and retraction were performed with a 250 W motor in 30 seconds.
Claims
Demands
1. Photovoltaic device (1) for converting light energy into electrical energy comprising a support (2) capable of deforming and allowing at least partial air to pass through, characterized in that said support (2) has housings (3) configured to each contain a photovoltaic module (4), said support (2) having at least one opening (5), said opening being positioned between two housings (3).
2. Photovoltaic device (1) according to claim 1 characterized in that said support (2) is a net.
3. Photovoltaic device (1) according to claim 1 or 2 characterized in that each housing (3) has a longitudinal shape, each housing (3) having at least one open end, said photovoltaic module (4) being able to be inserted into said housing (3) or removed from housing (3) through said end.
4. Photovoltaic device according to any one of claims 1 to 3 characterized in that each housing (3) comprises a complementary support such that said support (2) and said complementary support form said housing (3), said complementary support comprising a net or a transparent film.
5. A deployment or folding system for a photovoltaic device (1) according to any one of claims 1 to 4, characterized in that said system comprises at least one pulley (6) and a cable (7) configured to interact together, said cable (7) being connected to the photovoltaic device (1), said housings (3) each comprising one of the photovoltaic modules (4), said system comprising a motor (9), said motor (9) being connected to the cable (7), said motor (9) being configured to drive said cable (7), said photovoltaic device (1) being configured to have two configurations: - a deployed configuration in which said support (2) is taut, said photovoltaic modules (4) being substantially aligned with each other; - a folded configuration in which the photovoltaic modules (4) are substantially superimposed on each other.
6. The system according to claim 5, characterized in that said photovoltaic modules (4) have at least one end lateral (4a), each lateral end (4a) being positioned on the same side of said support (2), each photovoltaic module (4) being electrically connected with said previous photovoltaic module (4) and / or with said next photovoltaic module (4).
7. System according to claim 5 or 6 characterized in that said system comprises a storage box (8), said storage box (8) being configured to comprise said photovoltaic device (1) in the folded configuration.
8. System according to claim 7 characterized in that said motor (9) is positioned in said storage box (8).
9. System according to any one of claims 5 to 8 characterized in that said system comprises a control box configured to control the deployment or folding of said photovoltaic device (1).
10. Building comprising a floor forming a base plane defined by a first longitudinal direction (X), a second transverse direction (Y) orthogonal to the first direction (X), and a third vertical direction (Z) orthogonal to the first direction (X) and to the second direction (Y) oriented away from the ground, said building comprising a facade (11) and / or a roof (12), said building comprising a deployment or folding system for a photovoltaic device (1) according to any one of claims 5 to 9, characterized in that said pulley (6) is fixed to the building by a fastening means (10), said fastening means (10) being positioned on said facade (11) or on said roof (12).
11. Building according to claim 10 characterized in that said photovoltaic device (1) has a height (h) along the third direction (Z) defining the top and bottom of said photovoltaic device (1), the top being the point furthest from said ground, the bottom being the point closest to the ground, the photovoltaic device (1) being configured to be driven from bottom to top to move from the folded configuration to the deployed configuration, the photovoltaic device (1) being configured to be driven from top to bottom to move from the deployed configuration to the folded configuration such that said photovoltaic module (4) positioned furthest down is the first to fold.
12. 11 Building according to claim 10 or 11 characterized in that said system comprises said storage box (8), said storage box (8) being positioned on the ground.
Citation Information
Patent Citations
MOBILE SHADE SCREEN FOR AGRICULTURAL GREENHOUSE
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Photovoltaic Blind
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