Photovoltaic cell interconnection device
The laser welding device addresses temperature and expansion issues in photovoltaic cell interconnection by using localized high-temperature fusion, ensuring reliable conductivity and resistance to deformations for diverse cell types.
Patent Information
- Application Number
- FR2024008963
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-08-19
- Publication Date
- 2026-02-20
- Estimated Expiration
- 2044-08-19
AI Technical Summary
Existing interconnection methods for photovoltaic cells in space applications face challenges due to temperature constraints and thermal expansion issues, particularly with tin embrittlement and high-temperature welding processes that can damage certain cell types, such as silicon heterojunction and tandem cells.
A laser welding device and method for interconnecting photovoltaic cells that allows localized fusion at high temperatures without global heating, using a laser head and reversing unit to weld connecting conductors on both sides of the cells, enabling 180° and 90° rotations for precise positioning.
Enables reliable ohmic conductivity and resistance to mechanical and thermomechanical deformations, allowing interconnection of various cell types without temperature constraints, while maintaining performance and preventing damage.
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Abstract
Description
Title of the invention: Photovoltaic cell interconnection device. TECHNICAL FIELD OF THE INVENTION
[0001] The present invention relates to the general field of photovoltaic modules, which comprise a set of photovoltaic cells electrically connected to each other, and preferably so-called "crystalline" photovoltaic cells, that is to say, which are based on monocrystalline or multicrystalline silicon, III-V materials, thin films (CIGS, CdTe, perovskites, etc.) or any combination of these different materials.
[0002] In particular, it relates to tandem type photovoltaic cells combining silicon and a perovskite material, homojunction or heterojunction photovoltaic cells based on monocrystalline silicon (c-Si) and / or multicrystalline silicon (mc-Si), photovoltaic cells comprising at least one material among amorphous silicon (a-Si), microcrystalline silicon (pC-Si), cadmium telluride (CdTe), copper-indium selenide (CIS), copper-indium / gallium diselenide (CIGS), and perovskites, among others.
[0003] More specifically, the invention relates to the field of interconnecting photovoltaic cells which allows the formation of chains or series (or "strings" in English) of photovoltaic cells, and it relates in particular to the equipment and processes used during the welding carried out for the interconnection.
[0004] It thus relates to the field of photovoltaic modules used for space applications, but also for terrestrial applications, and also for applications such as electronic mobility, balloons or drones, among others. More generally, the invention applies to photovoltaic applications for which the issue of interconnecting photovoltaic cells is relevant.
[0005] The invention thus relates to a photovoltaic cell interconnection device, as well as a method of interconnecting photovoltaic cells implemented by means of such a device. STATE OF THE ART
[0006] A terrestrial photovoltaic module is typically made up of photovoltaic cells electrically connected to each other, generally in series, and encapsulated in a stack of polymer and / or glass materials. This stack protects the photovoltaic cells from the external environment, such as rain, wind, snow, humidity, etc. ultraviolet radiation, radiation, thermal shocks, among others, while retaining the photoelectric conversion function.
[0007] Thus, classically, a terrestrial photovoltaic module forms a stack comprising successively: a rear protection element called "backsheet" in English, transparent or not, such as for example a glass plate or a polymer film; a first encapsulating polymer film; photovoltaic cells electrically connected to each other, typically by interconnectors, most often tinned copper strips; a second encapsulating polymer film; a front protection element called "frontsheet" in English, transparent, such as for example a glass plate or a polymer film.
[0008] The front protective element is designed to transmit solar radiation to the photovoltaic cells to generate electricity, while protecting them from environmental stresses. This stack is then bonded together during a hot lamination step, typically between 100 and 150°C, to melt the encapsulating films and cause the polymers to cross-link, resulting in the formation of a solid encapsulating envelope for the photovoltaic cells bonded to the front and rear protective elements.
[0009] The interconnection of photovoltaic cells is necessary to extract the electrical current generated by the cells while limiting resistance. It must be resilient to maintain performance and prevent potentially catastrophic incidents, such as fires. The article "A review of interconnection technologies for improved crystalline silicon solar cell photovoltaic module assembly," Musa T. Zarmai et al., School of Engineering, Faculty of Science and Engineering, University of Wolverhampton, Applied Energy 154, 173-182, September 15, 2015, presents, for example, various known approaches to interconnecting photovoltaic cells in the field of terrestrial photovoltaics.
[0010] For terrestrial photovoltaic modules, interconnectors are typically copper ribbons or wires with a silver (Ag) or tin (Sn) coating. In the vast majority of cases, the electrical connection between the ribbons / wires and the cells is achieved without melting the base metals, by brazing with a filler metal, which allows for good ohmic contact at temperatures below 400°C. In an interconnection device using brazing, the ribbons or wires are generally placed on the front and rear faces of the photovoltaic cells, and then the front and rear faces are simultaneously brazed by heating to prevent bowing. A ribbon / wire retaining mask on the photovoltaic cells can be used to maintain contact between the ribbons / wires and metal pads, particularly silver pads.
[0011] In the space sector, brazing is not recommended for interconnection. Indeed, at space operating temperatures below -40°C, tin changes from its [3] form to its a form, and this change is accompanied by a volume modification and embrittlement of the material with the presence of cracks (embrittlement). This phenomenon is called "tin plague".
[0012] Another approach, valid for both terrestrial and space applications, involves using a weld, with or without filler metal, which involves melting the base metals, particularly silver, copper, and aluminum. For low temperatures, on the order of 100°C, conductive adhesives, often composed of metallic particles, particularly silver, in a polymer matrix, can be used. For locally high temperatures, for example, above 600°C, typically around 1085°C for copper, 962°C for silver, and 660°C for aluminum, a weld without filler metal can be performed.Thus, it may be necessary to reach temperatures that are too high and incompatible with the use of certain categories of photovoltaic cells, such as silicon heterojunction photovoltaic cells, which require a manufacturing and processing temperature below 200°C, or tandem type cells requiring a manufacturing and processing temperature below 150°C, when heating is global as in brazing interconnection processes.
[0013] There is therefore a need to obtain a localized energy input in order to reach the high temperatures required by the welding.
[0014] The interconnection is critical due to its essential function of current transmission. It must withstand expansions related to environmental stresses during manufacturing, particularly during welding, or during the operation of the photovoltaic module, for example during eclipses in Earth orbits, despite differences in coefficients of thermal expansion (or CTE). Thus, obtaining an optimal solution for localized heating should make it possible to limit the effects of CTE. Description of the invention
[0015] The invention aims to remedy at least partially the needs mentioned above and the disadvantages relating to the achievements of the prior art.
[0016] In particular, the invention aims to enable the interconnection of photovoltaic cells while maintaining excellent ohmic conductivity between the cells regardless of the applied deformations, whether mechanical or thermomechanical.
[0017] It aims in particular to allow interconnection by welding for multiple types of photovoltaic cells, without temperature constraints, while allowing welding on both sides of the photovoltaic cells.
[0018] The invention thus relates, according to one of its aspects, to a device for interconnecting photovoltaic cells by laser welding to form at least one chain of photovoltaic cells interconnected by connecting conductors, characterized in that it comprises:
[0019] - a laser welding unit comprising a laser head configured to perform at less one laser shot for localized fusion, or localized fusion, of at least one bonding conductor positioned on the front or rear face of at least one photovoltaic cell,
[0020] - a reversing unit for said at least one photovoltaic cell, including:
[0021] - a first grasping member for grasping one of the front face or of the rear face of said at least one photovoltaic cell, the first gripping member being capable of pivoting through a first angle of rotation of at least 180°,
[0022] - a second gripping member for gripping the other of the front face or on the rear face of said at least one photovoltaic cell, the second gripping member being movable relative to the first gripping member.
[0023] The interconnection device according to the invention may further comprise one or more of the following characteristics taken individually or in any possible technical combinations.
[0024] The turning unit may include a first motor to allow the rotation of the first gripping member according to the first angle of rotation.
[0025] Furthermore, the first and second gripping members can be mounted at least partially superimposed on each other on a vertical upright of the turning unit, extending along a vertical gripping axis. The second gripping member can be movable in vertical translation relative to the first gripping member.
[0026] The second gripping member can be mobile in rotation around the vertical gripping axis, in particular according to a second angle of rotation of at least 90°.
[0027] Furthermore, the turning unit may include a second motor to allow the rotation of the second gripping member around the vertical gripping axis.
[0028] The laser welding unit may include a laser beam mask through which the laser head is capable of performing said at least one laser beam. The laser beam mask may be configured to hold said at least one connecting conductor in position against the front or rear face of said at least one photovoltaic cell.
[0029] The laser welding unit may include at least a first vision system enabling the laser head to be positioned according to a predetermined position.
[0030] In addition, the laser head of the laser welding unit can be mounted in translation relative to a frame of the laser welding unit, in particular mounted in translation along a first horizontal axis, in translation along a second horizontal axis and in translation along a third vertical axis, the first, second and third axes being the axes of a three-axis frame.
[0031] In addition, the turning unit may include at least one second vision system allowing the first gripping organ and / or the second gripping organ to be positioned according to a predetermined position.
[0032] Furthermore, the first gripping member and / or the second gripping member of the turning unit may respectively comprise first gripping means and / or second gripping means, in particular in the form of suction cups for the suction of said at least one photovoltaic cell.
[0033] The first gripping member may include means for grasping said at least one connecting conductor, in particular in the form of a porous plate for suction of said at least one connecting conductor.
[0034] The interconnection device may further include:
[0035] - a photovoltaic cell stacking unit,
[0036] - a gripping unit, in particular a gripping robot, of said at least one cell photovoltaic from the stacking unit for transport to the laser welding unit, specifically to a first drop-off area of the laser welding unit.
[0037] The socket unit may include means for gripping said at least one photovoltaic cell, in particular in the form of suction cups for sucking said at least one photovoltaic cell.
[0038] In addition, the gripping unit may include a third vision system allowing the gripping means to be positioned according to a predetermined position.
[0039] The interconnection device may further include a conveying unit, in particular a belt conveyor or conveyor belt, comprising a second depositing zone for said at least one photovoltaic cell by the turning unit and on which said at least one string of photovoltaic cells is formed.
[0040] The interconnection device may also include a unit for routing connecting conductors to the laser welding unit.
[0041] Furthermore, the invention also relates, according to another aspect, to a method of interconnecting by laser welding photovoltaic cells interconnected by connecting conductors, implemented by means of a laser welding interconnection device as defined above.
[0042] The process may include the following successive steps:
[0043] - perform at least one laser shot for local fusion, or localized fusion, of at least one connecting conductor positioned on one of the front and front faces rear of at least one photovoltaic cell via the laser head of the laser welding unit,
[0044] - taking said at least one photovoltaic cell by means of the first organ of grasping the turning unit,
[0045] - rotate said at least one photovoltaic cell according to the first angle of rotation of at least 180°,
[0046] - to take said at least one photovoltaic cell by means of the second organ of gripping the reversing unit, the second gripping element being in contact with the other of the front and rear faces of said at least one photovoltaic cell,
[0047] - perform at least one laser shot for local fusion, or localized fusion, of at least one connecting conductor positioned on the other of the front and rear faces of said at least one photovoltaic cell by means of the laser head of the laser welding unit.
[0048] Furthermore, the process may include the following step:
[0049] - after grasping said at least one photovoltaic cell by means of the second gripping member, pivot the second gripping member through a second angle of rotation of at least 90° around a vertical gripping axis of a vertical upright of the turning unit on which the second gripping member is mounted.
[0050] In addition, the process may include the following step:
[0051] - position a laser firing mask in contact with the connecting conductors and the front or rear face of said at least one photovoltaic cell before carrying out said at least one laser shot. BRIEF DESCRIPTION OF THE FIGURES
[0052] Other advantages, purposes and special features of the invention will become apparent from the following non-limiting description of at least one embodiment of the present invention, with reference to the accompanying figures, in which: • Figure [1] shows, in partial perspective view, an example of a laser welding interconnection device for photovoltaic cells according to the invention, • [Fig.2] represents, in isolation in perspective, the socket unit of the interconnection device of [Fig.1], • Figures 3 to 7 represent, in isolation and partial perspective, the reversing unit of the interconnection device of [Fig. 1] according to several illustrative positions of its operation, • Figure [8] shows, in a partial perspective view of detail, the positioning of a photovoltaic cell by the reversing unit of the interconnection device of Figure [1] on the conveying unit, • [Fig. 9] is a diagram illustrating the steps of an interconnection method according to the invention, implemented using the interconnection device of [Fig. 1], and • [Fig. 10] schematically represents a succession of steps implemented at the level of the deposit areas of the interconnection device of [Fig. 1].
[0053] Throughout these figures, identical references may designate identical or analogous elements.
[0054] Furthermore, the different parts shown in the figures are not necessarily to a uniform scale, in order to make the figures more legible. DETAILED DESCRIPTION OF THE INVENTION
[0055] It should be noted that the terms "vertical" and "horizontal" are to be understood here in their usual sense, and in particular with regard to the positioning of a string S of photovoltaic cells 4 extending horizontally along a conveyor unit 50 of the laser-welded interconnection device 100. Furthermore, a so-called "vertical" axis is orthogonal to a so-called "horizontal" axis. In addition, the expression "moving in translation along an axis" can also mean here "moving in translation parallel to an axis".
[0056] With reference to Figures 1 to 8, we will now describe an example of an embodiment of a laser welding interconnection device 100 according to the invention, enabling the interconnection of several photovoltaic cells 4 to form a chain S, or "string," by welding involving localized melting of the pure metal(s) at high temperatures, in particular above 600°C, applicable to photovoltaic cells 4 that cannot withstand excessively high temperatures, in particular above 200°C. The success of this localized melting may depend, in particular, on the intensity, duration, and efficiency of the laser beam. It may, in particular, allow welding on a predetermined surface on either side of a connecting conductor, for example, a surface on the order of 100 µm x 100 µm.
[0057] The interconnection device 100 allows laser welding of the linking conductors 6, typically interconnecting ribbons or wires, to the front face 4a, then to the rear face 4b, of the photovoltaic cells 4 to form a chain S of photovoltaic cells 4.
[0058] As can be seen in [Fig. 1], the interconnection device 100 comprises a stacking unit 70, or stack, a socket unit 10, a laser welding unit 20, a conveying unit 50, including a belt conveyor or conveyor belt, a conveying unit 40 of connecting conductors 6 to the laser welding unit 20, and a turning unit 30.
[0059] The stacking unit 70, or photovoltaic cell stack 4, comprises a plurality of photovoltaic cells 4 stacked one on top of the other which are intended to be interconnected by means of the interconnection device 100 according to the invention.
[0060] The gripping unit 10 is shown in isolation on [Fig.2]. Here it corresponds to a gripping robot allowing the grasping of a photovoltaic cell 4 from the stacking unit 70 to transport it to a first depositing zone ZD1, or first station, at the level of the laser welding unit 20.
[0061] For this purpose, the socket unit 10 includes means for gripping the photovoltaic cell 4, here in the form of suction cups V3 for suctioning the photovoltaic cell 4. The suction cups V3 are located at the end of a vertical post carried by a robotic arm.
[0062] In addition, the grip unit 10 includes a third vision system lOv, here a camera, which allows the photovoltaic cell 4 to be correctly grasped from the stacking unit 70 and positioned correctly at the level of the first deposit zone ZD1.
[0063] As shown in [Fig. 1], the laser welding unit 20 comprises a laser head 20t configured to perform one or more laser shots towards a photovoltaic cell 4 positioned in the first deposition zone ZD1 or positioned in the second deposition zone ZD2. In this way, a localized or localized fusion of the connecting conductors 6 positioned on the front face 4a or the rear face 4b of a photovoltaic cell 4 is achieved.
[0064] The laser shots are made by the laser head 20t through a laser shooting mask 20m which allows both the holding in position of the connecting conductors 6 against the front face 4a or the rear face 4b of the photovoltaic cell 4 and, by means of orifices through which the laser shots pass, the laser welding in a localized manner.
[0065] The 20m laser shooting mask advantageously comprises a plurality of laser shooting pins 22 through which a laser shot is suitable for local or localized fusion welding of a connecting conductor 6 positioned on the front face 4a or the rear face 4b of a photovoltaic cell 4, each laser shooting pin 22 being hollow and having a conical opening.
[0066] In addition, the laser welding unit 20 includes a vision system allowing the laser head 20t to be correctly positioned in relation to the photovoltaic cell 4, here two first vision systems 20v, on either side of the laser head 20t, each comprising a camera.
[0067] Advantageously, the laser head 20t of the laser welding unit 20 is mounted in translation along the three axes X, Y, Z of a three-axis frame relative to a frame 20b of the laser welding unit 20.
[0068] In particular, the laser head 20t is translationally movable about a first horizontal axis X relative to a first frame 20bx, translationally movable about a second horizontal axis Y relative to a second frame 20by, and translationally movable about a third vertical axis Z relative to a third frame 20bz. Motors can be provided at the ends of each of the first 20bx, second 20by, and third 20bz frames to move the laser head 20t.
[0069] Furthermore, the interconnection device 100 includes a turning unit 30 for the photovoltaic cell 4, once the laser welding on the front face 4a has been carried out by means of the laser head 20t. The turning unit 30 also allows the photovoltaic cell 4 to be positioned from the first placement zone ZD1 to a second placement zone ZD2 on the conveyor unit 50.
[0070] The flipping unit 30 is more clearly visible in Figures 3 to 8. The flipping unit 30 includes firstly a first gripping member 30pl for gripping the front face 4a of the photovoltaic cell 4 at the first deposition zone ZD1 after the laser welding of the connecting conductors 6 to this front face 4a, with the ends of the connecting conductors 6 protruding from the front face 4a for interconnection to another photovoltaic cell 4. As can be seen in [Fig. 3], the first gripping member 30pl thus includes first gripping means VI, here in the form of suction cups VI for suctioning the photovoltaic cell 4. These suction cups VI are located under a U-shaped plate. In addition, the first gripping organ 30pl also includes means PI for gripping the ends of the connecting conductors 6 which protrude from the front face 4a of the photovoltaic cell 4.These PI gripping means are here in the form of a porous plate allowing the suction of the bonding conductors 6, adjacent to the "U" shaped plate.
[0071] Furthermore, the first gripping member 30pl is capable of pivoting through a first angle of rotation RI, here equal to 180°, as shown in [Fig. 4]. In this way, the photovoltaic cell 4 is turned over to expose its rear face 4b on top, which is free of connecting conductors 6. For this purpose, the turning unit 30 includes a first motor 30ml which allows the rotation of the first gripping member 30pl through the first angle RI, relative to a vertical post 30mv extending along a vertical gripping axis Mz.
[0072] In addition, the turning unit 30 includes a second gripping member 30p2 for gripping the rear face 4b of the photovoltaic cell 4, after turning the first gripping member 30pl 180°.
[0073] The first gripping member 30pl and the second gripping member 30p2 are mounted superimposed on the vertical upright 30mv of the turning unit 30, and the second gripping member 30p2 is movable in vertical translation relative to the first gripping member 30pl. Thus, as shown in [Fig. 5], the second gripping member 30p2 slides along the vertical upright 30mv to come into contact with the rear face 4b of the photovoltaic cell 4. The second gripping member 30p2 includes second gripping means V2, here in the form of suction cups V2 for gripping the photovoltaic cell 4. These suction cups V2 are, for example, located under a U-shaped plate, similar to the one carrying the suction cups VL
[0074] Fig. 6 then illustrates the upward movement of the second grasping member 30p2, once the rear face 4b of the photovoltaic cell 4 has been grasped.
[0075] Once the photovoltaic cell 4 has been gripped by the second gripping member 30p2, the second gripping member 30p2 is free to rotate about the vertical gripping axis Mz by a second angle of rotation R2, here equal to 90°, as shown in [Fig. 7]. This rotation allows the photovoltaic cell 4 to be released from its overlap with the first gripping member 30p2 in order to be placed on the second placement zone ZD2 at the level of the conveying unit 50.
[0076] In order to allow rotation according to the second angle of rotation R2, the turning unit 30 includes a second motor 30m2, visible in [Fig.1].
[0077] Fig. 8 represents the placement of the photovoltaic cell 4 by the second gripping member 30p2 on the conveying unit 50 at the level of the second placement zone ZD2.
[0078] The photovoltaic cell 4 is placed on the conveyor unit 50 by aligning it with the photovoltaic cell 4 already present on the conveyor unit 50 in order to form the chain S of photovoltaic cells 4, the ends of the connecting conductors 6 being positioned on the rear face 4b, exposed on top, of this photovoltaic cell 4 already in place on the conveyor unit 50. Then, a laser weld can be carried out in this second deposit zone ZD2, between these ends of the connecting conductors 6 and the rear face 4b of the photovoltaic cell 4 already in place, by moving the laser welding unit 20 so that the laser head 20t is superimposed on them.
[0079] It should be noted that the turning unit 30 also includes a second vision system 30v, here in the form of a camera, allowing the first gripping member 30pl and the second gripping member 30p2 to be positioned correctly, in particular in relation to the first ZD1 and second ZD2 drop zones.
[0080] With reference to Figures 9 and 10, we will now describe an example of a laser welding interconnection method for photovoltaic cells 4 to form a chain S of photovoltaic cells 4 interconnected by linking conductors 6, implemented by means of the laser welding interconnection device 100 described previously.
[0081] As seen in [Fig.9], a step A consists of taking a photovoltaic cell 4 from the stacking unit 70 by means of the taking unit 10. A position detection is then carried out using the third vision system lOv of the taking unit 10 (step B) to allow the photovoltaic cell 4 to be placed at the level of the first depositing zone ZD1 (step C).
[0082] The delivery unit 40 then allows the placement of connecting conductors 6, ribbons or wires, onto the front face 4a of the photovoltaic cell 4 (step D). Step E then allows the laser head 20t of the laser welding unit 20 to advance, and then the position detection by means of the first vision systems 20v (step F) allows it to be correctly positioned in superposition with the front face 4a of the photovoltaic cell 4 on which the connecting conductors 6 are positioned.
[0083] At this stage, the process is then represented by sequence i) of [Fig. 10] in which a photovoltaic cell 4 is located in the first deposition zone ZD1 and ready to undergo laser welding (schematized by the arrows Fl) using the 20m laser firing mask, and no photovoltaic cell is present in the second deposition zone ZD2.
[0084] During step G, the laser welding is performed by a movement of the laser head 20t, in particular a movement along the X and Y axes or by a change of angle of the laser beam, through the laser beam mask 20m. Then the laser head 20t is retracted (step H) and the first gripping member 30pl of the turning unit 30 allows the photovoltaic cell 4 which has just undergone laser welding (step I) to be picked up.
[0085] Sequence ii) of [Fig. 10] then illustrates that the photovoltaic cell 4 is rotated (schematized by arrow F2) 180° so as to expose its rear face 4b on top. This rotation corresponds to step J of [Fig. 9] and is achieved by pivoting the first gripping member 30pl through the first angle of rotation RI. Meanwhile, as seen in sequence ii) of [Fig. 10], another photovoltaic cell 4 is placed in the first placement zone ZD1 to undergo laser welding as described previously.
[0086] Once rotated by means of the first gripping member 30pl, the photovoltaic cell 4 is taken by the second gripping member 30p2 (step K), then a rotation of the second gripping member 30p2 is carried out by 90° (step L) and a position detection by means of the second vision system 30v (step M) allows the photovoltaic cell 4 to be correctly placed on the conveyor unit 50 (step N).
[0087] So, it is appropriate to ask whether the photovoltaic cell 4 corresponds to the beginning of the chain S to be formed, a step symbolized by the symbol “?” on the [Fig.9].
[0088] In the case where it is the beginning of the chain S (case “Yes” on the [Fig.9]), a step O allows the advancement of the conveying unit 50, then the process returns to its beginning at the level of step A.
[0089] In the case where this is not the beginning of the chain S (case “No” in [Fig. 9]), a step P consists of placing the photovoltaic cell 4 onto the conveyor unit 50 in the second placement zone ZD2. Then, the laser head 20t of the laser welding unit 20 is advanced (step Q) and its positioning is adjusted by means of the first vision systems 20v (step R). The welding of the connecting conductors 6 on the rear face 4b of the photovoltaic cell 4 is carried out through the laser beam 20m, as shown schematically by the arrows F3 in [Fig. 10] at the level of sequence iii). Then, the conveying unit 50 is advanced (step T) and the interconnection process continues by returning to the level of step A to obtain a string S of photovoltaic cells 4 according to the same principle, as seen in sequence iv) of [Fig. 10].
[0090] Of course, the invention is not limited to the embodiments just described. Various modifications can be made to them by a person skilled in the art.
Claims
Demands
1. A laser welding interconnection device (100) for photovoltaic cells (4) to form at least one string (S) of photovoltaic cells (4) interconnected by connecting conductors (6), characterized in that it comprises: - a laser welding unit (20) having a laser head (20t) configured to perform at least one laser pulse for the local fusion of at least one connecting conductor (6) positioned on the front face (4a) or the rear face (4b) of at least one photovoltaic cell (4), - a flipping unit (30) for said at least one photovoltaic cell (4), comprising: - a first gripping member (30pl) for gripping one of the front faces (4a) or the rear faces (4b) of said at least one photovoltaic cell (4), the first gripping member (30pl) being capable of pivoting through a first angle of rotation (RI) of minus 180°,- a second gripping member (30p2) for gripping the other of the front face (4a) or the rear face (4b) of said at least one photovoltaic cell (4), the second gripping member (30p2) being movable relative to the first gripping member (30pl).
2. Device (100) according to claim 1, wherein the first gripping member (30pl) and the second gripping member (30p2) are mounted in at least partial overlap with respect to each other on a vertical upright (30mv) of the turning unit (30), extending along a vertical gripping axis (Mz), the second gripping member (30p2) being movable in vertical translation relative to the first gripping member (30pl).
3. Device (100) according to claim 2, wherein the second gripping member (30pl) is rotationally movable about the vertical gripping axis (Mz), in particular about a second angle of rotation (R2) of at least 90°.
4. Device (100) according to any one of the preceding claims, wherein the laser welding unit (20) comprises a laser firing mask (20m) through which the laser head (20t) is capable of performing said at least one laser shot, the laser firing mask (20m) being configured to hold said at least one connecting conductor (6) in position against the front face (4a) or the rear face (4b) of said at least one photovoltaic cell (4).
5. Device (100) according to any one of the preceding claims, wherein the laser head (20t) of the laser welding unit (20) is mounted in translation relative to a frame (20b) of the laser welding unit (20), in particular mounted in translation about a first horizontal axis (X), in translation about a second horizontal axis (Y) and in translation about a third vertical axis (Z), the first (X), second (Y) and third (Z) axes being the axes of a three-axis frame.
6. Device (100) according to any one of the preceding claims, wherein the first gripping member (30pl) and / or the second gripping member (30p2) of the turning unit (30) respectively comprise first gripping means (VI) and / or second gripping means (V2), in particular in the form of suction cups (VI, V2) for the suction of said at least one photovoltaic cell (4).
7. Device (100) according to any one of the preceding claims, wherein the first gripping member (30pl) comprises means for grasping (PI) said at least one connecting conductor (6), in particular in the form of a porous plate for suctioning said at least one connecting conductor (6).
8. Device (100) according to any one of the preceding claims, wherein the laser welding interconnection device (100) further comprises: - a photovoltaic cell (4) stacking unit (70), - a pickup unit (10), in particular a pickup robot (10), of said at least one photovoltaic cell (4) from the stacking unit (70) for its transport to the laser welding unit (20), in particular to a first drop zone (ZD1) of the laser welding unit (20).
9. Device (100) according to the preceding claim, wherein the gripping unit (10) comprises gripping means (V3) for said at least one photovoltaic cell (4), in particular in the form of suction cups (V3) for suctioning said at least one photovoltaic cell (4).
10. Device (100) according to any one of the preceding claims, wherein the laser welding interconnection device (100) comprises a conveying unit (50), in particular a belt or conveyor belt, comprising a second depositing zone (ZD2) of said at least one photovoltaic cell (4) by the turning unit (30) and on which said at least one string (S) of photovoltaic cells (4) is formed.
11. Device (100) according to any one of the preceding claims, wherein the laser welding interconnection device (100) comprises a conveying unit (40) for connecting conductors (6) to the laser welding unit (20).
12. Method for interconnecting photovoltaic cells (4) by laser welding to form at least one chain (S) of photovoltaic cells (4) interconnected by linking conductors (6), implemented by means of a laser welding interconnection device (100) according to any one of the preceding claims.
13. A method according to claim 12, wherein the method comprises the following successive steps: - performing at least one laser pulse for the local fusion of at least one bonding conductor (6) positioned on one of the front (4a) and rear (4b) faces of at least one photovoltaic cell (4) by means of the laser head (20t) of the laser welding unit (20), - grasping said at least one photovoltaic cell (4) by means of the first gripping member (30pl) of the flipping unit (30), - rotating said at least one photovoltaic cell (4) through the first angle of rotation (RI) of at least 180°, - grasping said at least one photovoltaic cell (4) by means of the second gripping member (30p2) of the flipping unit (30), the second gripping member (30p2) being in contact with the other of the front faces (4a) and the rear face (4b) of said at least one photovoltaic cell (4),- to perform at least one laser pulse for the local fusion of at least one bonding conductor (6) positioned on the other side of the front face (4a) and the rear face (4b) of said at least one photovoltaic cell (4) by means of the laser head (20t) of the laser welding unit (20).
14. A method according to claim 12 or 13, wherein the method comprises the following step: - after gripping said at least one photovoltaic cell (4) by means of the second gripping member (30p2), pivoting the second gripping member (30p2) through a second angle of rotation (R2) of at least 90° around a vertical gripping axis (Mz) of a vertical upright (30mv) of the turning unit (30) on which the second gripping member (30p2) is mounted.
15. A method according to any one of claims 12 to 14, wherein the method comprises the following step: - positioning a laser firing mask (20m) in contact with the connecting conductors (6) and the front face (4a) or the rear face (4b) of said at least one photovoltaic cell (4) before carrying out said at least one laser firing.
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