WO2022143109A1 - 太阳能电池组件的封装方法、太阳能电池串的连接方法、太阳能电池组件及其制备方法 - Google Patents
太阳能电池组件的封装方法、太阳能电池串的连接方法、太阳能电池组件及其制备方法 Download PDFInfo
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- WO2022143109A1 WO2022143109A1 PCT/CN2021/137197 CN2021137197W WO2022143109A1 WO 2022143109 A1 WO2022143109 A1 WO 2022143109A1 CN 2021137197 W CN2021137197 W CN 2021137197W WO 2022143109 A1 WO2022143109 A1 WO 2022143109A1
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Images
Classifications
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L31/00—Semiconductor devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation and specially adapted either for the conversion of the energy of such radiation into electrical energy or for the control of electrical energy by such radiation; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
- H01L31/04—Semiconductor devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation and specially adapted either for the conversion of the energy of such radiation into electrical energy or for the control of electrical energy by such radiation; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof adapted as photovoltaic [PV] conversion devices
- H01L31/042—PV modules or arrays of single PV cells
- H01L31/05—Electrical interconnection means between PV cells inside the PV module, e.g. series connection of PV cells
- H01L31/0504—Electrical interconnection means between PV cells inside the PV module, e.g. series connection of PV cells specially adapted for series or parallel connection of solar cells in a module
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L31/00—Semiconductor devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation and specially adapted either for the conversion of the energy of such radiation into electrical energy or for the control of electrical energy by such radiation; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
- H01L31/04—Semiconductor devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation and specially adapted either for the conversion of the energy of such radiation into electrical energy or for the control of electrical energy by such radiation; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof adapted as photovoltaic [PV] conversion devices
- H01L31/042—PV modules or arrays of single PV cells
- H01L31/048—Encapsulation of modules
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L31/00—Semiconductor devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation and specially adapted either for the conversion of the energy of such radiation into electrical energy or for the control of electrical energy by such radiation; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
- H01L31/18—Processes or apparatus specially adapted for the manufacture or treatment of these devices or of parts thereof
- H01L31/1876—Particular processes or apparatus for batch treatment of the devices
- H01L31/188—Apparatus specially adapted for automatic interconnection of solar cells in a module
-
- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/50—Photovoltaic [PV] energy
Definitions
- the present application relates to a packaging method of a solar cell module, a connection method of a solar cell string, a solar cell module and a preparation method thereof.
- the production process of solar cell modules includes firstly printing thin grid lines and busbar lines on the surface of the cells, then connecting a plurality of cells into a battery string through welding tapes, and finally printing the battery strings. After typesetting, lamination and other processes, battery components are formed.
- the solar cell module realizes the current collection of the cell through the welding tape, the busbar and the thin grid on the surface of the cell, and then realizes the function of the battery module.
- the busbar and the thin grid are all made of silver paste. .
- heterojunction cells For heterojunction cells, it has excellent properties such as high efficiency, low decay rate, simple process and good structural ductility, and is a better choice in the field of photovoltaic power generation.
- Due to the large amount of silver paste used in heterojunction cells resulting in its high cost, limiting its large-scale development.
- the heterojunction cell assembly In order to reduce the cost of the heterojunction cell assembly, it is usually realized by increasing the number of busbars on the surface of the cell sheet. However, this method is generally only for cells with 5 to 9 busbars. For example, the amount of silver paste for a cell with 9 busbars is generally 200 mg/cell, while 5 busbars are used. The silver paste dosage of the battery sheet is 400mg/pc.
- the patent document US8013239B2 of the Swiss Meyer Burger company discloses a smart wire, which uses a polymer film and a conductive transmission copper tape.
- the encapsulation of a solar cell module with super-multiple busbars (the number of busbars is at least 18) is realized.
- the battery in this patent does not need busbars, and directly replaces the busbars on the front and back of the battery through smart wires, and is electrically connected to the fine grids on the surface of the battery, which can reduce the amount of silver paste in the heterojunction battery.
- the smart wire in this patent needs to coat the surface of the conductive transmission copper tape with a polymer film layer, which increases the manufacturing process of the film-coated copper tape and increases the manufacturing cost; in addition, the polymer film is required on the material, which increases the Material cost, therefore, this smart wire just reduces the amount of silver paste, but increases the overall cost of the battery assembly.
- the encapsulation method is applied to the encapsulation of battery sheets, which replaces the original busbars on the battery sheets by copper wires coated with a metal anti-oxidation layer, which can greatly reduce the amount of silver paste and reduce production costs.
- this encapsulation method When the height of the thin grid line is greater than the diameter of the copper wire, it is necessary to cover the copper wire and the battery sheet with thermal pressure-sensitive adhesive or photosensitive adhesive along the direction of the copper wire. There are many colloids in this process, and the colloid is applied first and then welded.
- the packaging method adopts different fixing methods according to the heights of the thin grid lines. Therefore, in the manufacturing process, the heights of the thin grid lines and the copper wires also need to be judged, which is difficult to operate during the manufacturing process.
- the patent document CN105762202A discloses a point-and-line combined solar cell front electrode and a manufacturing method thereof.
- the silver paste dots are printed on the cell, and then part of the silver paste grid lines are replaced with copper wires, and the copper wires are replaced by copper wires. Combined with silver paste, the dosage of silver paste is reduced.
- the front electrode of the solar cell combined with the dot and line is realized by replacing silver with lower cost copper to realize the grid lines on the cell sheet, which is only an improvement for the replacement of the material consumption of the bus grid lines and the thin grid lines on the solar cell sheet itself. , not only will reduce the conductivity of the solar cell, but also because the copper wire is a small copper wire with a diameter of 0.01mm to 0.08mm, it cannot meet the requirements of the mechanical connection of multiple cells in the subsequent battery module.
- the manufacturing cost of the heterojunction battery assembly has not decreased, or the connection performance of the battery assembly can be reduced while the cost can be reduced. That is, the related art cannot reduce the manufacturing cost of the heterojunction battery assembly while ensuring the good performance of the heterojunction battery assembly in all aspects, which is not conducive to the mass production of the heterojunction battery assembly.
- the inventors of the present application found in their research that the glue spots have different effects on the welding tape or the cell, and the sequence of dispensing and arranging the welding tape also has different effects.
- the inventor of the present application tried to dispense glue on the welding tape, and then connect the battery sheet and the welding tape with glue. When the cell is connected to the adhesive on the ribbon, it is likely to stick to a non-preset position on the cell.
- the inventors of the present application try to apply glue on both the front and back of a plurality of battery sheets, and then bond the adhesive on the surface of the battery sheet with a welding tape to form a battery string.
- glue dispensing is used in this way, it is not easy to realize in operation, because when glue is dispensed on the front and back sides of the battery sheet, the battery sheet needs to be fixed.
- the suction cup can adsorb the front or back of the battery, it is inconvenient for the dispensing operation, although it is possible to first adsorb the front and dispense glue on the back, and then adsorb the back and dispense glue on the front. , but this operation is very troublesome. If the battery sheet is placed on the bearing surface for dispensing, the surface in contact with the bearing surface is also inconvenient for dispensing.
- the purpose of the present application is to provide a method for encapsulating a solar cell module, a method for connecting a solar cell string, and a method for manufacturing a solar cell module by machine, which can increase the manufacturing process steps and other material costs without increasing the cost. , reduce the amount of silver paste and save manufacturing costs.
- the present application provides a method for encapsulating a solar cell module, comprising: a cell obtaining step, obtaining a cell without a busbar or with only a thin busbar printed with thin grid lines; a cell connecting step, connecting any Two battery sheets are connected by welding tapes to form a plurality of battery strings; wherein, connecting any two battery sheets by welding tapes specifically includes fixing the welding tapes on the battery sheets through a glue, and connecting the welding tapes with the thin grid lines on the corresponding battery sheets direct contact; each battery string includes a plurality of battery slices; a battery string packaging step of laying out a plurality of battery strings, soldering bus bars to form a battery string laminate; and a battery string laminate packaging step of The laminate is heated and laminated, so that each welding strip forms an alloy connection with the thin grid lines corresponding to the surface of the cell sheet, so as to complete the encapsulation of the solar cell module.
- the present application provides a solar cell assembly manufactured by the above-mentioned encapsulation method of a solar cell assembly.
- the present application also provides a solar cell module, comprising a plurality of cell strings, each cell string comprising: a plurality of cell sheets, respectively printed with thin grid lines and without a busbar; Two adjacent battery sheets are connected to form a battery string, the welding tape is fixed on the corresponding battery sheet by colloid, and the welding tape is in direct contact with the thin grid lines on the corresponding battery sheet; a plurality of battery strings are arranged and welded by bus bars.
- each welding ribbon is respectively connected with the thin grid lines corresponding to the surface of the battery sheet by heating lamination to form an alloy connection.
- the present application provides a method for connecting a solar cell string, including: S31: providing cell sheets; S32: arranging welding tapes on the front and back of the cell sheets; S33: laying out the front and back sides of the cell sheets and S44: Repeat steps S31 to S33 to complete the connection of a preset number of the solar cells to form a solar cell string.
- the present application provides a method for connecting a solar cell string, the cell string includes a plurality of cell sheets connected in series, and two adjacent cell sheets are connected by a welding tape, and the welding tape includes a first segment and the second section
- the connection method includes: S41: arranging a first welding strip, and forming a colloid with glue on the upper surface of the first section of the first welding strip; S42: placing the first section of the first welding strip arranging the battery sheet on the top, so that the back of the battery sheet is connected with the first section of the first welding tape; S43: forming a colloid with glue at the preset position of the front side of the battery sheet; S44: attaching the second welding The second section of the tape is arranged on the front side of the battery sheet, so that the second section of the second welding tape is connected to the front side of the battery sheet; and S45: Repeat the steps of S41-4S4 to complete a preset number of the The connection of battery sheets forms a battery string.
- the present application provides a method for connecting a solar cell string, the cell string includes a plurality of cell sheets connected in series, and two adjacent cell sheets are connected by a welding tape, and the welding tape includes a first segment and the second section
- the connection method includes: S51: providing a battery piece, and applying glue at a designated position on the back of the battery piece; S52: placing the battery piece on the first section of the arranged first welding tape on the back of the battery sheet to connect the first section of the first welding tape; S53: use glue at the designated position on the front of the battery sheet; S54: connect the first section of the second welding tape Two sections are arranged on the front side of the battery sheet, so that the second section of the second welding tape is connected to the front side of the battery sheet; and S55 : Repeat the steps of S51-S54 to complete a preset number of the batteries The connection of the sheets forms a battery string.
- the present application provides a method for fabricating a solar cell module, including the above-mentioned method for connecting solar cell strings, and a step of heating and laminating the formed cell strings.
- the present application provides a solar cell module manufactured by the above-mentioned manufacturing method of a solar cell module.
- FIG. 1 is a schematic diagram of the arrangement of welding ribbons, thin grid lines and colloids of a battery sheet provided by the application;
- FIG. 2 is a schematic diagram of the connection of two adjacent battery sheets and the arrangement of welding tapes, thin grid lines and colloids provided by the application;
- FIG. 3 is a flowchart of a packaging method for a solar cell assembly provided by the application
- Fig. 4 is the flow chart of step S2 in Fig. 3;
- FIG. 5 is a flowchart of a method for connecting a solar cell string provided by the application
- FIG. 6 is a schematic diagram of a connection method of the welding ribbon and the battery sheet provided by the application.
- FIG. 7 is a flowchart of another manufacturing method of a solar cell module provided by the present application.
- FIG. 8 is a schematic structural diagram formed after step S41 of an embodiment of the present application.
- FIG. 9 is a schematic structural diagram formed after step S42 of an embodiment of the present application.
- step S43 is a schematic structural diagram formed after step S43 of an embodiment of the present application.
- FIG. 11 is a schematic structural diagram formed after step S44 in an embodiment of the present application.
- FIG. 12 is a flowchart of another method for connecting a solar cell string provided by the present application.
- step S51 of an embodiment of the present application is a schematic diagram of a structure formed after step S51 of an embodiment of the present application.
- step S52 is a schematic diagram of a structure formed after step S52 of an embodiment of the present application.
- step S53 is a schematic diagram of a structure formed after step S53 of an embodiment of the present application.
- FIG. 16 is a schematic diagram of a structure formed after step S54 in an embodiment of the present application.
- a method for encapsulating a solar cell module which can greatly reduce the amount of silver paste used in the cell module without increasing the manufacturing process and material cost, and greatly reduces the battery The overall cost of the sheet and the battery assembly.
- a packaging method for a solar cell module is mainly aimed at the improvement of the battery string welding process in the packaging process of the battery module.
- the thin busbar wire is electrically connected by directly contacting the welding tape with the thin grid wire, and is fixed to the cell by the welding tape, so that a plurality of cells are connected in series to form a battery string, and the current collection function of the solar cell module can be realized. It can also greatly reduce the amount of silver paste and reduce the cost of battery components.
- each welding strip is perpendicular to each thin grid line on the surface of the corresponding cell sheet.
- the encapsulation method of the solar cell module includes the following steps:
- Step S1 selecting a plurality of cell sheets without busbars or printed with thin busbars.
- Each cell in the solar cell module targeted by the encapsulation method of the solar cell module of the first aspect is a cell without busbars.
- neither the front side nor the back side of the cell is printed with busbars, and only thin grids are printed.
- the cell in this embodiment may be a heterojunction cell, or may be a TOPCON (Tunnel Oxide Passivated Contact) cell or a PERC (Passivated Emitter and Rear Cell, backside passivated emitter). )Cell.
- the number of thin grid lines on the front and back of each cell is 15-35.
- Step S2 connecting any two battery pieces through a welding tape so that a plurality of battery pieces form a plurality of battery strings; wherein, connecting any two battery pieces with a welding tape includes: fixing the welding tape on the battery piece through a glue, and ensuring that the The welding ribbons are in direct contact with the thin grid lines on the corresponding battery slices; each battery string includes a plurality of battery slices.
- a colloid is provided on the battery sheet, and the welding tape is bonded to the battery sheet through the colloid, so as to realize the mechanical connection between the welding tape and the battery sheet;
- Each welding strip is in direct contact with the thin grid lines printed on the surface of the electromagnetic sheet to form an electrical connection to realize the current collection function of the battery pack.
- step S2 further includes:
- step S21 glue is formed on the surface of each cell sheet to form a colloid.
- colloids there are a plurality of colloids, which are distributed on the surface of the battery sheet.
- the colloid in this embodiment is configured to fix the welding tape on the battery sheet.
- the colloid is a non-conductive glue.
- the distribution position of the welding tape and the distribution position of the colloid can be designed in advance on the surface of the cell, and then the glue is formed at the distribution position of the colloid first, and then the corresponding position on the surface of the cell is arranged. Ribbon.
- the distribution position of the colloid does not coincide with the contact position of the solder ribbon and the thin grid line, so as to avoid affecting the electrical connection between the solder ribbon and the thin grid line.
- the position of the colloid does not coincide with the position where the thin grid lines are in contact with the welding tape, and the amount of colloid used is small, which can avoid the thin grid lines caused by the flow of the colloid during the pre-soldering and fixing process. The problem with the electrical failure of the ribbon. As shown in FIG. 1 , the colloid 4 is distributed at the connection between the welding strip 2 and the cell 1 .
- the distribution position of the colloid 4 is not in contact with the thin grid line 3 . , is only configured to fix the welding tape 2 so that it is fixed on the surface of the battery sheet 1 .
- each welding strip 2 the number of the colloids 4 is at least two. That is, each welding strip is bonded to the surface of the battery sheet through at least two glues 4 .
- the amount of the colloid can be determined through experiments according to the size of the battery sheet and the amount of glue used.
- FIG. 2 Another example: as shown in FIG. 2 , a schematic diagram of the connection of two adjacent cells is shown.
- the front side of the cell of the first cell 11 is provided with a plurality of first thin grid lines 31 and a plurality of first thin grid lines 31 perpendicular to the first thin grid lines 31 .
- a plurality of second thin grid lines 32 and a plurality of second welding strips 22 perpendicular to the second thin grid lines 32 are provided on the front side of the battery sheet of the second battery sheet 12 .
- the first thin grid lines 31 are electrically connected to the corresponding first welding strips 21 , and the first welding strips 21 are fixed to the front side of the first cell 11 through the first glue 41 so that the first welding strip 21 is connected to the first cell. 11 is fixed to form a mechanical connection.
- the second thin grid lines 32 are electrically connected to the corresponding second welding tapes 22 , and the second welding tapes 12 are fixed to the front side of the second cell 12 through the second glue 42 so that the second welding tape 22 is connected to the second welding tape 22 .
- the two battery sheets 12 are fixed to form a mechanical connection.
- the positions of the first colloid 41 and the second colloid 42 do not coincide with the contact positions of the corresponding solder ribbons and the thin grid lines.
- the other parts of the plurality of first welding strips 21 are arranged on the back side of the second battery sheet 12 in the same way (not shown in the figure); similarly, the other parts of the plurality of second welding strips 22 are In the same way, it is arranged on the backside of the adjacent cell connected in series with the second cell 12 .
- step S22 a plurality of welding strips are evenly spaced along a direction perpendicular to the thin grid lines on the surface of each cell sheet. Wherein, each welding strip is perpendicular to each thin grid line on the surface of the corresponding cell.
- the surface of the battery sheet includes the front side of the battery sheet and the back side of the battery sheet.
- thin grid lines and busbar lines were printed on the front side of the cell and the back side of the cell.
- the solar cell module encapsulation method of the first aspect targets cells without busbars, that is, there are only thin grid lines on the front side and the back side of the cell sheets, and no busbar lines.
- FIG. 1 for the cell 1 , a plurality of fine grid lines 3 are printed and arranged on the front side of the cell sheet and the back side of the cell sheet.
- the welding strips 2 are arranged on the surface of the battery sheet 1 according to a predetermined distance.
- each welding strip 2 is perpendicular to each thin grid line 3 on the surface of the battery sheet 1 .
- the A direction is the extension direction of the thin grid lines 3 , that is, the arrangement direction of the welding tapes 2 ;
- the B direction is the extending direction of the welding tape 2 , that is, the arrangement direction of the thin grid lines 3 .
- the cell sheets in this embodiment all refer to solar cell sheets.
- a plurality of battery sheets are connected in series to form a battery string through the welding ribbon. That is, by arranging one or more welding strips between adjacent battery sheets, the connection of two adjacent battery sheets is realized, and then a plurality of battery sheets are formed into a battery string.
- a part of the welding tape is arranged on the front side of one of the battery sheets, and the other part is arranged on the back side of the other battery sheet.
- a plurality of battery sheets can be connected in series to form a battery string for subsequent layout and lamination to form a battery string laminate.
- step S23 a preset pressure is applied to each welding strip on each battery piece, so that each welding strip is bonded to the corresponding battery piece through the corresponding colloid, and each welding strip is connected with each thin grid on the surface of the corresponding battery piece. line in direct contact.
- each welding tape After wiring on the surface of the battery sheet, a certain pressure is applied to the welding tape, so that each welding tape is in direct contact with the corresponding colloid, and is bonded to the battery sheet through the colloid. Moreover, under the action of the applied pressure, each welding strip is also in direct contact with each thin grid line to form an electrical connection.
- a plurality of welding strips are evenly arranged along the extending direction of the thin grid lines perpendicular to the surface of the battery sheet through the wiring mechanism, so as to ensure the same spacing between any two adjacent welding strips.
- the solder tape is a coated copper tape.
- the coating can be a tin-coated layer, a SnBiAg (tin-bismuth-silver) alloy layer, or other low-melting metal layers or alloy layers.
- a low melting point metal coating or alloy coating is arranged on the outer layer of the welding strip, which can ensure that in the subsequent process, the coating of the welding strip and the silver paste of the fine grid line can be easily formed by heating Good alloy connection. Since the melting point of the coating is low, the heating temperature does not need to be too high, which is convenient for process operation.
- the melting point of the low melting point metal layer or alloy layer is 120°C to 160°C.
- each solar cell module is formed by connecting a plurality of cell sheets in series, and the two adjacent cell sheets are connected by welding ribbons. Therefore, during wiring, a part of a welding tape is wired on the front side of one of the adjacent cell sheets, and the other part is wired on the back side of the other cell sheet among the adjacent cell sheets.
- the solar cell module encapsulation method of the first aspect is aimed at the cell sheet without busbar, the The step of printing the busbars is omitted in the fabrication of the cells.
- the location of the bonding point, that is, the glue can be freely set. high degree.
- a gel with glue on the surface of the battery sheet in advance before the wiring of the welding tape, mass production can be improved, and the bonding strength between the non-conductive glue per unit area and the welding tape can be increased, and the amount of glue used can be reduced.
- step S23 it may further include: pre-welding each welding strip on each cell, so that each welding strip is fixed on the surface of the corresponding cell, and each welding strip is connected to the surface of the corresponding cell.
- the thin grid lines are in direct contact.
- the pre-soldering method is any one of infrared heating, heat conduction, induction heating and heat sealing heating.
- the colloid can be heated, so that the welding tape is bonded to the surface of the battery sheet through the glue, so that the welding tape and the battery A mechanical connection is formed between the sheet surfaces.
- the solder tape is in close contact with the thin grid lines on the surface of the battery sheet, that is, the solder joints and the thin grid lines are electrically connected.
- pre-soldering and applying pressure to the welding tape it can not only ensure that the welding tape is fixed on the surface of the cell, but also ensure the close contact between the welding tape and the thin grid lines on the battery chip, and ensure the electrical connection between the welding tape and the thin grid lines.
- the colloid can be hot melt adhesive, photosensitive adhesive, adhesive tape, and the like.
- the welding tape is bonded to the battery sheet by colloid, which can not only connect multiple battery sheets in series to form a battery string, but also ensure that the welding tape does not move on the battery sheet, so as to prepare for the encapsulation of the battery components in the next step.
- a gel is firstly arranged on the surface of the cell, and then a welding tape is arranged on the surface of the cell so that the welding tape is perpendicular to the thin grid lines.
- the welding ribbon is in close contact with the corresponding thin grid wire, which can not only ensure that the welding ribbon will not move during the production process, ensure the mechanical connection between the welding ribbon and the cell, but also ensure the close contact between the welding ribbon and the thin grid wire to form a stable Electrical connection.
- glue is used before wiring, it is easier to operate in the actual production process, which is conducive to mass production.
- step S3 a plurality of battery strings are arranged and the bus bars are welded to form a battery string laminate.
- any two adjacent cells in the battery string are connected by the welding tape, a strong mechanical connection is formed. Therefore, multiple battery strings can be typeset directly, and then bus bars can be performed on the multiple battery strings after typesetting. welding to ensure that multiple battery strings form battery assemblies.
- Step S4 heating and laminating the cell string laminate, so that each welding strip forms an alloy connection with the thin grid lines corresponding to the surface of the cell, so as to complete the encapsulation of the solar cell module.
- the temperature for heating the lamination is 130°C to 170°C.
- the coating of the welding strip in this embodiment is a low melting point metal layer or an alloy layer.
- the temperature of the melting point is 120°C to 160°C. Therefore, when the lamination is heated, the temperature can reach the melting point of the coating, so that the coating on the surface of the ribbon can form a good alloy connection with the silver paste of the fine grid lines.
- the coating is a tin layer or a SnBiAg alloy layer. Therefore, in the packaging method of the solar cell module of the first aspect, since there is no need to print the busbars on the cells, the ribbons and the thin gridlines are directly electrically connected, which greatly reduces the amount of silver paste, and can also improve the quality of the cells. Conductive properties.
- this embodiment is more applicable to the packaging of battery sheets with ultra-fine grid lines. Specifically, this embodiment is applied to a cell with 15 to 35 thin grid lines.
- the manufacturing cost of the cell module can be greatly reduced;
- this embodiment does not need to add any manufacturing steps, it only adjusts the string welding process of the existing battery slices accordingly, and does not need to add additional manufacturing equipment and manufacturing processes, further reducing the cost of
- the welding tape of the present application is an existing ordinary welding tape, which does not need to coat a polymer film layer on the copper tape, which reduces the material cost. Therefore, compared with the way of smart wires, it can not only greatly reduce The amount of silver paste in the battery sheet can also be realized to truly reduce the cost of battery components.
- each welding tape is limited by a pre-crosslinked packaging film.
- the welding tape can be prevented from moving on the surface of the cell, which solves the problems of easy movement and poor connection of the welding tape during lamination, and can ensure that each welding tape is connected to the corresponding cell surface. Good contact of the fine grid lines, thereby forming a relatively stable mechanical connection and alloy electrical connection.
- the pre-crosslinked packaging film in this embodiment is a low-fluidity packaging film.
- a low-fluidity packaging film in the process of heating lamination, the packaging film will not flow, not only will not drive
- the displacement of the welding strip can also be well fixed on the surface of the battery sheet, and the welding strip can be pressed to make the welding strip and the thin grid lines on the surface of the battery sheet in close contact to form a good alloy contact.
- the pre-crosslinked encapsulation film is made of any one of EVA, POE, and PVB encapsulation materials.
- EVA refers to ethylene-vinyl acetate copolymer and its rubber-plastic foaming material.
- POE is an ethylene-octene copolymer.
- PVB refers to polyvinyl butyral.
- a solar cell assembly is also provided, and the solar cell assembly is a solar cell assembly manufactured according to the encapsulation method of the solar cell assembly of the first aspect.
- the solar cell module encapsulation method of the first aspect is aimed at cells without busbars, and only thin grid lines are printed on the front and back of the solar cell, and electrical connection is formed by directly contacting the welding tape with the thin grid lines.
- the low-cost non-conductive adhesive is used to form a mechanical connection between the cells and the welding tape, so that the welding tape is fixed on the cells, which can not only ensure the conductive function of the solar cell module, but also realize the mechanical connection between multiple cells.
- the packaging method does not need to add any process flow, and can be realized directly by using the existing process equipment, which is convenient for operation and reduces the manufacturing cost.
- the inventor of the present application found in the research that if glue is used on the cell first and then the welding ribbon is laid for connection, because the height of the glue is not easy to control when using the glue, it is easy to cause the height of the glue to be too high and lead to the welding strip and the thin wire.
- the gap between the gates is large, which may lead to poor conduction between the ribbon and the thin grid lines.
- a method for connecting a solar cell string which can avoid the problem of a gap between the welding tape and the thin grid line caused by the height of the glue being too high when the glue is used, so as to improve the thinness of the welding tape and the battery sheet.
- connection method of the solar cell string includes the following steps:
- the front and back sides of the cell 100 have no busbars or contain thin busbars.
- the busbar line refers to a structure having pads on the thin busbar. That is to say, the thin grid lines 300 can be printed on the front side and the back side of the battery sheet 100 without printing the bus grid lines, so that the amount of silver paste can be saved, and the cost can be reduced.
- the thin grid lines 300 and the thin busbars may be printed on both the front and the back of the battery sheet 100 , that is, the pads on the thin busbars are not printed, which can also save the amount of silver paste.
- the number of thin grid lines 300 on the front and back of the battery sheet 100 is both 15 to 35, for example, at least one of 15, 20, 25, 30, and 35, or any two. range between them.
- the thin grid lines 300 are distributed on the front and back of the battery sheet 100 at certain intervals.
- the cell 100 may be any one of a heterojunction cell, a TOPCON cell, and a PERC cell.
- the soldering ribbons 200 are arranged on the front and back of the battery sheet 100 , the plurality of soldering ribbons 200 are arranged perpendicular to the thin grid lines 300 of the battery sheet 100 .
- the plurality of welding strips 200 are arranged at a certain interval. It should be noted that, optionally, when the welding strip 200 is laid out, the included angle between the welding strip 200 and the thin grid line 300 can also be made to be an acute angle.
- the designated positions of the front and back of the battery sheet 100 are determined by screen-printing marks on the battery sheet 100.
- the fine grid lines 300 are screen-printed, a plurality of marks are printed on the battery sheet 100, The mark can be identified as a designated location with glue.
- the designated position may be on part of the thin grid lines 300, or may be a position between the thin grid lines 300 (refer to FIG. 6).
- the designated position of the glue is on the thin grid lines 300
- glue is used to form a glue at the positions where the soldering tapes 200 and the thin grid lines 300 overlap. , so that the battery sheet 100 is connected with the welding tape 200 .
- the designated position of the glue is between the thin grid lines 300, after the welding tape 200 is laid on the front and back of the cell The glue forms a colloid, so that the battery sheet 100 and the welding tape 200 are connected.
- the glue used in the gluing step is at least one of hot melt adhesive, photosensitive adhesive and adhesive tape.
- the adhesive tape is used for bonding, no matter whether the designated position is on part of the thin grid lines 300 or between the thin grid lines 300, the adhesive tape is directly adhered to the upper surface of the welding tape 200 and connected to the battery sheet 100. Can.
- each welding ribbon 200 has at least two connection points with one cell 100 . Since there are at least two connection points, the connection between the welding ribbon 200 and the battery sheet 100 can be made more stable, and the welding ribbon 200 is not easily displaced.
- the colloid in the embodiment of the present application may be a conductive glue or a non-conductive glue. Since the embodiment of the present application is to first arrange the welding tape 200 on the battery sheet 100, and then use glue to form a gel to bond the battery sheet 100 and the welding tape 200, regardless of whether conductive glue or non-conductive glue is used, the position of the glue is at On part of the thin grid lines 300, or between the thin grid lines 300, after the battery sheet 100 and the welding tape 200 are bonded, the welding tape 200 and the thin grid lines 300 of the battery sheet 100 can be easily contacted, so that the welding tape can be easily contacted. 200 forms good electrical contact with the thin gate lines 300 .
- the method further includes a step of forming a preliminary connection between the ribbon 200 and the thin grid lines 300 of the battery sheet 100 by heating.
- Connecting the battery sheet 100 and the welding ribbon 200 can further improve the connection stability of the welding ribbon 200 and the battery sheet 100 , and can further improve the electrical contact between the welding ribbon 200 and the thin grid line 300 , thereby further improving the welding ribbon 200 and the battery sheet 100 .
- the initial connection between the welding ribbon 200 and the thin grid line 300 of the battery sheet 100 may be the initial contact between the welding ribbon 200 and the thin grid line 300, or the welding ribbon 200 and the thin grid line 300 may form a weaker connection.
- the ribbon 200 may be separated from the thin grid line 300 by a relatively small force. After the subsequent heating by lamination, the bonding ribbon 200 and the thin grid line 300 can form a close contact or a strong alloy connection, and a larger force is required to separate the bonding ribbon 200 from the thin grid line 300 .
- both the preliminary contact and the close contact refer to the state in which the welding ribbon 200 is in mechanical contact with the thin grid lines 300 of the battery sheet 100 , without forming an alloy connection.
- the separation force after the initial connection between the welding ribbon 200 and the thin grid line 300 is 0.03-0.1 N, which can ensure that the welding ribbon 200 does not move on the battery sheet 100 without external force, and the welding ribbon 200 The contact with the thin gate lines 300 is tighter.
- the separation force refers to the force required to separate the solder ribbon 200 and the thin grid line 300 after the solder ribbon 200 and the thin grid line 300 are initially connected.
- the separation force after the solder ribbon 200 and the thin grid line 300 are initially connected is any one of 0.03N, 0.04N, 0.05N, 0.06N, 0.06N, 0.07N, 0.08N, 0.09N and 0.1N or a range in between.
- the heating means includes at least one of infrared heating, thermal conduction, induction heating and hot air heating.
- the heating temperature for forming the preliminary connection between the solder ribbon 200 and the thin grid line 300 is 100 to 250° C., for example, 100° C., 120° C., 140° C., 150° C., 170° C., 180° C., 200° C., 220° C. , any of 240°C and 250°C, or a range between any two.
- the ribbon 200 is a brazed ribbon 200 with a coating on the entire surface, and the coating includes a metal layer or an alloy layer with a melting temperature of 120-160°C. Since the melting temperature of the metal layer or the alloy layer is relatively low, a relatively low heating temperature can achieve good connection between the solder ribbon 200 and the thin grid line 300 . Moreover, in the subsequent lamination heating process, a lower temperature can also be used, that is, a good connection between the solder ribbon 200 and the thin grid line 300 can be achieved, so that the process operation can be facilitated.
- the melting temperature of the metal layer or alloy layer is any one of 120°C, 130°C, 140°C, 150°C, and 160°C, or a range between any two.
- the coating is a Sn alloy layer, and the melting temperature of the Sn alloy layer is relatively low, so that a good connection between the solder ribbon 200 and the thin grid line 300 can be achieved by a relatively low lamination heating temperature.
- the Sn alloy layer is a SnBiAg alloy layer.
- the thickness of the welding tape 200 is 0.1-0.3 mm, for example, any one of 0.1 mm, 0.2 mm, and 0.3 mm, or a range between any two.
- the welding ribbon 200 may be a segmented welding ribbon, that is, a single welding ribbon 200 may have more than one cross-sectional shape.
- the shape and the cross section of the portion where the ribbon 200 is connected to the back surface of the battery sheet 100 are different.
- the cross section of the welding ribbon 200 may be at least one of a circle and a triangle, and the surface of the welding ribbon 200 in contact with the battery sheet 100 may also be a plane.
- step S33 after the step S33 and before the step S34, it further includes: a step of curing the colloid 400 .
- the way of curing the colloid 400 includes heating, providing light or hot pressing.
- the colloid 400 when the colloid 400 is selected as a heat-sensitive adhesive, the colloid 400 can be cured by heating; when the colloid 400 is selected as a photosensitive adhesive, the photosensitive adhesive can be cured by providing light; when a thermal pressure-sensitive adhesive is used When glue is used, the glue 112 can be cured by means of hot pressing.
- connection method of the solar cell string is provided for specific description:
- FIG. 7 shows a flowchart of a method for connecting a solar cell string according to the fourth aspect, wherein the cell string includes a plurality of cell sheets connected in series, and two adjacent cell sheets are connected by a welding tape, and the welding tape is a segmented welding tape, Including the first paragraph and the second paragraph, the specific steps of the connection method include:
- first welding strips 210 when the first welding strips 210 are arranged, a plurality of welding strips are arranged, and the plurality of first welding strips 210 are arranged at a certain interval distance.
- a plurality of first welding strips 210 are arranged in parallel.
- the glue 400 is on the upper surface of the first welding tape 210
- the surface is not easy to drip, so that the problem of poor adhesion between the welding tape and the battery sheet 100 caused by the glue dripping can be avoided.
- the upper surface of the first section of the first welding tape 210 is flat. Since glue is to be applied to the upper surface of the first section of the welding tape, the upper surface of the first section of the first welding tape 210 is set to be flat. , it is convenient to use glue on the upper surface of the first section, and the glue is not easy to drip from the upper surface, which is conducive to the subsequent stable connection of the first section 220 of the first welding tape 210 to the cell 100 .
- the width of the upper surface of the first section of the first welding ribbon 210 is 0.2 ⁇ 1.2 mm.
- the upper surface of this width range is beneficial for the glue to be placed on the welding tape more stably, and it is not easy to drip down. Either or a range between 1.1 mm and 1.2 mm.
- the lower surface of the first segment may be a flat surface, an arc surface, or other shapes, which are not specifically limited in the embodiments of the present application.
- the cross section of the second section of the second welding ribbon 220 includes at least one of a circle and a triangle.
- the front and back sides of the battery sheet 100 have no busbars or include thin busbars. That is to say, the grid lines on the front side and the back side of the battery sheet 100 only contain thin grid lines, or contain thin grid lines and thin busbars but do not contain pads.
- the cell 100 may also be a cell 100 having a busbar.
- the thin grid lines of the battery sheet 100 are arranged in a perpendicular relationship to the first welding ribbon 210 .
- the number of thin grid lines on the front of the battery sheet 100 is 15-35, and the number of thin grid lines on the back of the battery sheet 100 is also 15-35.
- the fine grids on the front side of the battery sheet 100 are distributed on the surface of the battery sheet 100 at a certain interval, and the fine grid lines on the back side of the battery sheet 100 are also distributed on the surface of the battery sheet 100 at a certain interval.
- the cell 100 is any one of a heterojunction cell, a TOPCON cell, and a PERC cell.
- the preset position of the front side of the battery sheet 100 is determined by a mark printed on the battery sheet 100 by screen printing.
- the fine grid lines are screen-printed, a plurality of marks are printed on the battery sheet 100, and the marks can be determined as the preset positions of the glue.
- the preset position is on part of the fine grid lines. It can be understood that the preset position may also be a position between two adjacent thin grid lines, but not on the thin grid lines.
- S44 Arrange the second section of the second welding tape 220 on the front surface of the battery sheet 100, so that the second section of the second welding tape 220 is connected to the front surface of the battery sheet 100 (refer to FIG. 11 ).
- the glue is applied at a preset position on the front side of the battery sheet 100, and then the second welding tape 220 is placed on the front side of the battery sheet 100 for bonding, the glue is dotted on the front side of the battery sheet 100 and is not easy to drip, so it can be avoided.
- the glue dripping leads to the problem that the bonding effect between the battery sheet 100 and the welding tape is not good.
- a plurality of welding strips are arranged, and the plurality of second welding strips 220 are arranged at a certain interval distance.
- a plurality of second welding ribbons 220 are arranged in parallel.
- the plurality of second welding tapes 220 are arranged in a vertical relationship with the thin grid lines of the battery sheet 100 .
- the second section of the second welding tape 220 is connected to the front surface of the cell 100 , continue to apply glue on the upper surface of the first section of the second welding tape 220 , and then apply glue to the upper surface of the first section of the second welding tape 220 .
- Another cell 100 is arranged on the upper surface of the segment, and the back of the other cell 100 is connected to the first segment of the second ribbon 220, and then the steps that need to be repeated are performed in sequence, and finally a plurality of cells 100 are connected in series to form a battery string .
- the glue used is conductive glue or non-conductive glue.
- the use of conductive glue or non-conductive glue can make good electrical contact between the battery sheet and the welding tape.
- the glue used is non-conductive glue, and the preset position is not on the fine grid lines.
- the position of the glue is not on the thin grid lines, for example, between two thin grid lines, when the welding tape and the battery sheet 100 are connected, it is conducive to the contact between the welding tape and the thin grid lines, so that the This enables the welding ribbon to form better electrical contact with the thin grid lines of the battery sheet 100 .
- the used colloid includes at least one of hot melt adhesive and photosensitive adhesive.
- a step of curing the glue is further included.
- the connection between the welding tape and the battery sheet 100 can be strengthened, and the connection stability can be improved.
- the way of curing the glue is heating, light or hot pressing.
- the temperature for curing the glue is 100-250°C, for example, any one of 100°C, 120°C, 150°C, 180°C, 200°C, °C and 250°C, or a range between any two.
- the heating method for curing the glue includes at least one of infrared heating, thermal conduction, induction heating and hot air heating.
- connection method of the solar cell string of the fourth aspect will be described by taking the connection of two cell sheets as an example, which includes the following steps: a) arranging a first welding tape, and using the first welding tape on the upper surface of the first section of the first welding tape Glue; b) Arrange the first cell on the first section of the first welding tape, so that the back of the first cell is connected with the first section of the first welding tape; c) Preset the position on the front of the first cell Use glue; d) arrange the second section of the second welding tape on the front side of the first cell sheet, so that the second section of the second welding tape is connected to the front side of the first cell sheet; e) on the second section of the second welding tape Glue is applied to the upper surface of one section; f) Arrange the second cell on the first section of the second welding tape, so that the back of the second cell is connected with the first section of the second welding tape; g) On the second cell and h) arranging the second segment of the third welding strip on
- connection method of the solar cell string of the fourth aspect will be described by taking the connection of three cell sheets as an example, which includes the following steps: the above steps a) to h) (the description is omitted here): i) in the third welding tape Glue is applied to the upper surface of the first section of the third welding strip; j) Arrange the third cell on the first section of the third welding strip, so that the back of the third cell is connected with the first section of the third welding strip; k) On the first section of the third welding strip and 1) arranging the second section of the fourth welding strip on the front of the third cell so that the second section of the fourth welding strip is connected to the front of the third cell, A battery string is formed.
- glue is applied to the upper surface of the first welding tape, and then a cell sheet is arranged on the upper surface of the first section of the first welding tape for bonding, and then the front side of the cell sheet is glued.
- Glue is used in the preset position, and the second welding tape is placed on the front side of the battery sheet for bonding. Since the glue is applied on the upper surface of the welding tape and the front side of the battery sheet, it can avoid the battery sheet and the battery sheet caused by glue dripping. The problem of poor bonding effect of the welding tape.
- yet another method for connecting a solar cell string is provided.
- the cell string includes a plurality of cell sheets 100 connected in series, and two adjacent cell sheets 100 are connected by a welding tape, and the welding tape is a segmented welding tape.
- the connection method includes:
- the battery sheet 100 is provided, and a glue 400 is formed on a designated position on the back of the battery sheet 100 with glue (refer to FIG. 13 ).
- the front and back sides of the battery sheet 100 have no busbars or contain thin busbars.
- the grid lines on the front and back of the battery sheet 100 may only have thin grid lines, or may have thin grid lines and thin bus bars.
- the number of thin grid lines on the front and back of the battery sheet 100 is 15-35, however, the number of thin grid lines is not limited to this, and can be appropriately increased or decreased according to the design of the battery sheet, such as the number of thin grid lines. It can reach 100, that is, the number of thin grid lines can be any integer from 1 to 100.
- the fine grid lines are distributed on the front and back of the battery sheet 100 at a certain distance.
- the cell 100 is any one of a heterojunction cell, a TOPCON cell and a PERC cell.
- the designated position of the battery sheet 100 is determined by the mark printed on the battery sheet 100 by screen printing.
- the preset position may be on part of the thin grid lines; or may not be on the thin grid lines, but a position between two adjacent thin grid lines.
- S52 Place the battery sheet 100 on the first section of the arranged first welding tape 210, so that the backside of the battery sheet 100 is connected to the first section of the first welding tape 210 (refer to FIG. 14 ).
- the arranged first welding tape 210 may be arranged before applying glue at a specified position on the back of the battery sheet 100 , or after forming the gel 400 with glue at a specified position on the back of the battery sheet 100 .
- first welding strips 210 when the first welding strips 210 are arranged, a plurality of first welding strips 210 may be arranged, and the plurality of first welding strips 210 are arranged at a certain interval.
- the thin grid lines of the battery sheet 100 may be kept in a vertical relationship with the first welding tape 210 .
- a plurality of second soldering ribbons 220 may be arranged, and the plurality of second soldering ribbons 220 are arranged on the front side of the battery sheet 100 at a certain interval.
- the second solder ribbons 220 when arranging the second solder ribbons 220 , they may be arranged in a direction perpendicular to the thin grid lines on the front surface of the battery sheet 100 .
- the solar cell string connection method of the fifth aspect is to use glue at a designated position on the back of the cell 100, and then connect it with the welding tape, and then use glue at a designated position on the front of the cell 100, and then the welding tape is applied to it.
- the connection is carried out in this cycle, by first applying glue to one surface of the battery sheet 100, the surface of the battery sheet 100 to which the glue is applied is connected with the welding tape, and then it can be placed on the bearing table, and then the other surface of the battery sheet is glued , so that the operation is convenient, and the problem of inconvenient use of glue on the front and back of the battery sheet 100 is improved.
- the glue used in the step of applying glue is conductive glue.
- the conductive adhesive itself has the function of conducting electricity, and can lead out the current of the battery sheet 100 .
- the glue used in the gluing step can also be non-conductive glue.
- the designated position is not on the thin grid lines, but between two adjacent thin grid lines. In this way, after the welding ribbon is connected to the battery sheet 100 , the welding ribbon and the thin grid lines of the battery sheet 100 are easier to contact, so that the welding ribbon and the thin grid lines of the battery sheet 100 can form good electrical contact.
- the designated position is the centerline area between two adjacent thin grid lines. It should be noted that, if two adjacent thin grid lines are arranged in parallel, the center line and the thin grid lines are also arranged in parallel, and the midpoint of the vertical line connecting the two adjacent thin grid lines is located on the center line.
- the center line area refers to the area where the center line is used as the benchmark, and the preset distance is widened in the direction close to the two thin grid lines.
- the preset distance is 1 of the distance between the two adjacent thin grid lines. /6 ⁇ 2/3.
- the preset distance also refers to the width of the centerline area.
- the colloid 400 will not easily overflow to the thin grid lines and affect the electrical connection between the solder tape and the thin grid lines. touch.
- the glue used in the gluing step includes at least one of hot melt glue and photosensitive glue.
- a step of curing the colloid 400 is further included.
- the method of curing the colloid 400 includes heating, light or hot pressing.
- heating or hot pressing can be used to solidify the hot melt adhesive;
- the colloid 400 adopts photosensitive adhesive can be cured by providing light.
- the heating method includes at least one of infrared heating, thermal conduction, induction heating and hot air heating.
- the heating temperature is 100-250°C, for example, any one of 100°C, 120°C, 150°C, 180°C, 200°C, 220°C, and 250°C, or a range between any two.
- the method includes the following steps: aa) arranging the first welding tape 210; bb) providing the first cell sheet, and placing the first cell sheet on the back of the first cell sheet use glue at the designated position; cc) place the first cell on the first section of the first welding tape 210, so that the back of the first cell is connected to the first section of the first welding tape 210; dd) in the first section
- the designated position of the front side of the battery sheet is glued; ee) the second section of the second welding tape 220 is arranged on the front side of the first battery sheet, so that the second section of the second welding tape 220 is connected with the front side of the first battery sheet; ff) Provide the second cell, and use glue at the designated position on the back of the second cell; gg) Place the second cell on the first section of the second welding tape 220, so that the back of the second cell and The first section of the second welding ribbon 220
- three cell sheets 100 are used as examples to illustrate the connection method of the solar cell string according to the fifth aspect, which includes the following steps: steps aa) to gg) (the description is omitted here); hh) on the front side of the second cell sheet and ii) arranging the second segment of the third solder ribbon on the front side of the second cell sheet so that the second segment of the third solder ribbon is connected to the front side of the second cell sheet to form a battery string.
- glue is applied to a designated position on the back of the cell, and then connected with the welding tape, and then glue is applied to a designated position on the front of the cell, and then the welding tape is applied to it.
- Connection, and so on in turn, by first using glue on one surface of the battery, and connecting the surface of the battery with the glue to the welding tape, it can be placed on the bearing table, and then the other surface of the battery is glued, so Can operate conveniently.
- a sixth aspect provides a method for manufacturing a solar cell module, including the method for connecting solar cell strings of the third aspect, the fourth aspect or the fifth aspect, and heating and laminating the formed cell strings.
- the formed solar cell string is heated after lamination and heating. It can further improve the electrical contact and connection stability of the thin grid lines of the battery sheet and the welding tape, which is beneficial to the current export of the battery string, thereby improving the structural stability of the solar battery module.
- the solder ribbons form close contact or alloy connections with the thin grid lines of the cell. Since the welding ribbon and the thin grid wire form a close contact or an alloy connection, the connection between the battery sheet and the welding ribbon is more stable, and the welding ribbon and the battery sheet form a good electrical contact. It should be noted that the close contact means that the thin grid lines of the cell are in contact with the welding ribbon, and the lamination process makes the two in close contact, but the metal on the surface of the welding ribbon and the thin grid lines does not melt to form an alloy.
- the welding tape includes a copper base and a film layer on the surface of the copper base, and the film layer includes a metal layer or an alloy layer with a melting temperature of 120-160°C.
- the film layer on the surface of the welding tape in the embodiment of the present application contains a metal layer or an alloy layer with a melting temperature of 120-160° C. Therefore, the metal layer or alloy layer can be melted at a lower temperature.
- the film layer is a Sn alloy layer, for example, the Sn alloy in the Sn alloy layer includes SnBiAg.
- the melting temperature of the metal or alloy layer is any one of 120°C, 130°C, 140°C, 150°C, and 160°C, or a range between any two.
- the temperature for heating the lamination is 130-170°C.
- the temperature of the heated lamination is lower, which is easier to achieve in the process operation.
- the temperature of the heated lamination is any one of 130°C, 140°C, 150°C, 160°C, and 170°C, or a range between any two.
- the manufacturing method of the solar cell module of the sixth aspect includes arranging the cell strings formed by the solar cell string connection method of the third aspect, the fourth aspect or the fifth aspect, soldering the bus bars, and then heating and laminating.
- a solar cell module is provided, which is prepared by the above-mentioned manufacturing method of a solar cell module.
- forming a colloid by using glue is described, and the meaning of using glue includes the action of forming a colloid by dotting, spraying, printing, etc. on the glue.
- the present application is applied to a method for encapsulating a solar cell module, a method for connecting a solar cell string, a solar cell module and a method for preparing the same. Since the cell does not need to print busbars, the soldering tape is directly fixed on the cell to ensure that the soldering tape and the The electrical connection of the thin grid lines not only realizes the conductive function of the solar cell module, but also greatly reduces the amount of silver paste, thereby reducing the cost of the cell module.
Abstract
Description
Claims (43)
- 一种太阳能电池组件的封装方法,包括:电池片获取步骤,获取印刷有细栅线的无主栅或只含细主栅的电池片;电池片连接步骤,将任意两个电池片通过焊带连接以形成多个电池串;其中,任意两个电池片通过焊带连接包括将焊带通过胶体固定于电池片上,并且使焊带与对应电池片上的细栅线直接接触;每个电池串包括多个电池片;电池串封装步骤,对多个电池串进行排版、焊接汇流条以形成电池串层压件;以及电池串层压件封装步骤,对所述电池串层压件进行加热层压,使得每条焊带分别与对应电池片表面的细栅线形成合金连接,以完成太阳能电池组件的封装。
- 根据权利要求1所述的太阳能电池组件的封装方法,其中,所述电池片连接步骤还包括:用胶步骤,在每个电池片的表面上进行用胶形成胶体;其中,胶体有多个,分布设于电池片表面;布线步骤,沿着垂直于每个电池片的表面的细栅线的延伸方向等间隔地布置多条焊带;每条焊带均与对应的电池片的表面的每条细栅线垂直;以及固定步骤,对每个电池片上的每条焊带施加预设压力,使得每条焊带均通过对应的胶体粘结于对应的电池片上,并且每条焊带均与对应的电池片的表面的每条细栅线直接接触。
- 根据权利要求2所述的太阳能电池组件的封装方法,其中,在所述固定步骤之前还包括预焊步骤,对每个电池片上的每条焊带进行预焊,使得每条焊带固定于对应的电池片的表面上,使得每条焊带与对应的电池片的表面的细栅线直接接触;其中,所述预焊的方式为红外加热、热传导、感应加热和热封加热中的任意一种。
- 根据权利要求2所述的太阳能电池组件的封装方法,其中,所述用胶步骤包括利用胶机在每个电池片的表面用胶形成多个胶体。
- 根据权利要求4所述的太阳能电池组件的封装方法,其中,每个胶体的分布位置均不和焊带与细栅线接触的位置重合。
- 根据权利要求1至5中任一项所述的太阳能电池组件的封装方法,其中,胶体为非导电胶。
- 根据权利要求1至6中任一项所述的太阳能电池组件的封装方法,其中,每条焊带通过至少两个胶体固定于对应的电池片上。
- 根据权利要求1至7中任一项所述的太阳能电池组件的封装方法,其中,所述焊带为带有涂层的铜焊带;所述涂层为金属层或合金层;其中,金属层以及合金层的熔点的温度为120℃~160℃。
- 根据权利要求8所述的太阳能电池组件的封装方法,其中,所述涂层为锡层或锡铋银合金层。
- 根据权利要求8所述的太阳能电池组件的封装方法,其中,所述电池串层压件封装步骤中的加热层压的温度为130℃~170℃。
- 根据权利要求1至10中任一项所述的太阳能电池组件的封装方法,其中,所述电池串层压件封装步骤还包括:对所述电池串层压件进行加热层压之前,通过预交联封装膜对每条焊带进行限位。
- 根据权利要求11所述的太阳能电池组件的封装方法,其中,所述预交联封装膜由EVA、POE、PVB中的任意一种封装材料制成。
- 根据权利要求1至12中任一项所述的太阳能电池组件的封装方法,其中,所述焊带的直径为0.1mm~0.3mm。
- 根据权利要求1至13中任一项所述的太阳能电池组件的封装方法,其中,所述电池片为异质结电池片、隧穿氧化钝化电池片和背面钝化发射极电池片中的任意一种。
- 根据权利要求1至14中任一项所述的太阳能电池组件的封装方法,其中,每个电池片的正面和 背面的细栅线的根数均为15~35。
- 一种太阳能电池组件,为权利要求1-15中任意一项所述的太阳能电池组件的封装方法制作而成。
- 一种太阳能电池组件,包括多个电池串,各电池串包括:多个电池片,分别印刷有细栅线且均无主栅;以及多条焊带,将相邻的两个电池片连接以形成电池串,所述焊带通过胶体固定于对应的电池片上,所述焊带与对应电池片上的细栅线直接接触;多个电池串通过排版、焊接汇流条来形成电池组件,每条焊带通过加热层压分别与对应电池片的表面的细栅线形成合金连接。
- 根据权利要求17所述的太阳能电池组件,其中,所述焊带沿着垂直于对应的电池片的表面的细栅线的延伸方向等间隔地布置,每条所述焊带均与对应的电池片的表面的每条细栅线垂直;每条所述焊带通过对应的电池片的表面上形成的胶体粘结于对应的电池片上,并且每条所述焊带均与对应的电池片的表面的每条细栅线直接接触。
- 一种太阳能电池串的连接方法,包括:S31:提供电池片;S32:在所述电池片的正面和背面布设焊带;S33:在所述电池片的正面和背面的指定位置用胶形成胶体,通过所述胶体连接所述电池片和所述焊带;以及S34:重复步骤S31至步骤S33完成预设数量的所述电池片的连接,形成太阳能电池串。
- 根据权利要求19所述的太阳能电池串的连接方法,其中,在S22步骤之后以及S33步骤之前,还包括通过加热将所述焊带与电池片的细栅线形成初步连接的步骤。
- 根据权利要求19或20所述的太阳能电池串的连接方法,其中,在S33步骤之后以及S34步骤之前,还包括将所述胶体固化的步骤。
- 根据权利要求19~21中任一项所述的太阳能电池串的连接方法,其中,所述胶体所采用的胶为导电胶或非导电胶。
- 根据权利要求19~22中任一项所述的太阳能电池串的连接方法,其中,所述电池片的正面和背面无主栅线或包含细主栅。
- 根据权利要求19~23中任一项所述的太阳能电池串的连接方法,其中,所述电池片的指定位置通过网版印刷在所述电池片上的标记确定。
- 根据权利要求19~24中任一项所述的太阳能电池串的连接方法,其中,在所述电池片的正面和背面布设焊带时,将多根所述焊带垂直于所述电池片的细栅线布置。
- 一种太阳能电池串的连接方法,所述电池串包括多个串联的电池片,两个相邻的所述电池片通过焊带连接,所述焊带包括第一段和第二段,连接方法包括:S41:布置第一焊带,在所述第一焊带的第一段的上表面用胶来形成胶体;S42:在所述第一焊带的第一段上布置电池片,使得所述电池片的背面与所述第一焊带的第一段连接;S43:在所述电池片的正面的预设位置用胶来形成胶体;S44:将第二焊带的第二段布置于所述电池片的正面,使得所述第二焊带的第二段与所述电池片的正面连接;以及S45:重复S41-4S4的步骤完成预设数量的所述电池片的连接,形成电池串。
- 根据权利要求26所述的太阳能电池串的连接方法,其中,所述电池片的正面和背面无主栅线或 包含细主栅。
- 根据权利要求26或27所述的太阳能电池串的连接方法,其特征在于,所述胶体所用的胶为导电胶或非导电胶。
- 根据权利要求28所述的太阳能电池串的连接方法,其中,所述胶体所用的胶为非导电胶,且所述预设位置不在细栅线上。
- 根据权利要求26~29中任一项所述的太阳能电池串的连接方法,其中,所述第一焊带的所述第一段的上表面为平面。
- 根据权利要求20所述的太阳能电池串的连接方法,其中,所述第一焊带的所述第一段的上表面的宽度为0.2~1.2mm。
- 根据权利要求26~32中任一项所述的太阳能电池串的连接方法,其中,在步骤S44及步骤4S5之间,还包括将胶体固化的步骤。
- 根据权利要求26~32中任一项所述的太阳能电池串的连接方法,其中,所述焊带包括铜基体和在所述铜基体的整个表面的膜层,所述膜层包括熔化温度为120~160℃的金属层或合金层。
- 一种太阳能电池串的连接方法,所述电池串包括多个串联的电池片,两个相邻的所述电池片通过焊带连接,所述焊带包括第一段和第二段,连接方法包括:S51:提供电池片,在所述电池片的背面的指定位置进行用胶形成胶体;S52:将所述电池片置于布置好的第一焊带的所述第一段上,使得所述电池片的背面与所述第一焊带的所述第一段连接;S53:在所述电池片的正面的指定位置用胶形成胶体;S54:将第二焊带的所述第二段布置于所述电池片的正面,使得所述第二焊带的所述第二段与所述电池片的正面连接;以及S55:重复S51-S54的步骤完成预设数量的所述电池片的连接,形成电池串。
- 根据权利要求34所述的太阳能电池串的连接方法,其中,在步骤S54和步骤S55之间,还包括将胶体固化的步骤。
- 根据权利要求34或35所述的太阳能电池串的连接方法,其中,所述电池片的正面和背面无主栅线或包含细主栅。
- 根据权利要求34~36中任一项所述的太阳能电池串的连接方法,其中,所述电池片的指定位置是通过网版印刷在所述电池片上的标记确定的。
- 根据权利要求34~37中任一项所述的太阳能电池串的连接方法,其中,所述胶体采用的胶为导电胶或非导电胶。
- 根据权利要求38所述的太阳能电池串的连接方法,其中,所述胶体采用的胶为非导电胶,且所述指定位置不在细栅线上。
- 根据权利要求34~39中任一项所述的太阳能电池串的连接方法,其中,所述焊带包括铜本体以及在所述铜本体的整个表面的涂覆层,所述涂覆层包括熔化温度为120~160℃金属层或合金层。
- 一种太阳能电池组件的制作方法,包括权利要求19~40中任一项所述的太阳能电池串的连接方法,以及将形成的所述电池串进行加热层压的步骤。
- 根据权利要求41所述的太阳能电池组件的制作方法,其中,在加热层压步骤之后,所述焊带与所述电池片上的细栅线形成合金连接或密切接触。
- 一种太阳能电池组件,由权利要求41或42所述的太阳能电池组件的制作方法制作得到。
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CN116207188A (zh) * | 2023-04-28 | 2023-06-02 | 苏州智慧谷激光智能装备有限公司 | 无主栅式电池片串接方法以及相应的串接设备 |
CN117637890A (zh) * | 2023-11-28 | 2024-03-01 | 江苏海博瑞光伏科技有限公司 | 一种无主栅组件及其制备方法 |
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