Welding conveying device and battery string forming equipment
By introducing a cooling mechanism into the welding conveyor device, the problem of thermosetting adhesive pre-curing caused by the high temperature of the conveyor belt is solved, ensuring full bonding between the welding ribbon group and the glue point, and improving the quality of the battery string.
Patent Information
- Application Number
- CN202422701800.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-06
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-11-06
AI Technical Summary
During the process of gluing and stringing together battery cells, the high temperature of the conveyor belt causes the thermosetting glue to partially solidify on the battery cells, affecting the bonding effect between the soldering ribbon and the glue point, resulting in a decrease in the stringing quality.
A welding conveyor device is designed, equipped with a cooling mechanism, including a support plate, a drive roller group, a conveyor belt and a cooling mechanism. Through means such as blowing parts, cooling channels and temperature-controlled support plates, the temperature of the battery cells is ensured to be lower than the initial curing temperature of the thermosetting adhesive, preventing the thermosetting adhesive from curing before the press is laid.
Effectively prevent the thermosetting adhesive from solidifying on the battery cell, ensuring that the solder ribbon group and the glue point are fully bonded, and improving the string quality.
Smart Images

Figure CN223390519U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of photovoltaic module production equipment, specifically a welding conveying device and a battery stringing device. Background Art
[0002] In the process of gluing and stringing cells, when the glue points applied to the cell ribbon laying path are thermosetting glue, the cell and ribbon assembly are laid onto the conveyor belt of the welding conveyor according to the stringing rules of the cell string. The conveyor belt then transports the laid cell and ribbon assembly to the heating mechanism, which heats the cell to solidify the glue points. The ribbon assembly is then bonded to the cell through the solidified glue points to form a cell string. To prevent the ribbon from moving relative to the cell during the conveying process, the cell is first placed on the cell laying station on the conveyor belt, and then the cell is stepped to the press laying station. After the ribbon assembly is laid, the press is placed on the cell to press the ribbon assembly onto the cell.
[0003] Since the conveyor belt is circulated and transported in a loop after being heated at the heating mechanism, the overall temperature of the conveyor belt is relatively high. After the battery cells are placed on the battery cell laying station, the thermosetting adhesive on the battery cells is easily heated by the conveyor belt and solidifies to a certain extent. As a result, after the press is laid, the soldering tape group cannot be fully bonded with the glue points, thereby affecting the subsequent bonding effect of the glue points on the soldering tape. Utility Model Content
[0004] In order to solve the above technical problems, the present application provides a welding conveying device, and its technical solution is as follows:
[0005] A welding conveying device includes a base, a support plate, a driving roller group, a conveyor belt and a cooling mechanism, wherein:
[0006] The driving roller group is arranged on the base body, and the driving roller group at least includes rollers arranged at both ends of the base body, and the conveyor belt is sleeved on the driving roller group;
[0007] The support plate is arranged on the base body, and the support plate is used to support the conveying surface of the conveyor belt. The driving roller group is configured to drive the conveyor belt to convey. The battery cell laying station, the press laying station and the serial connection station are arranged in sequence along the conveying direction on the conveyor belt;
[0008] The cooling mechanism is configured to cool at least the battery cells laid at the battery cell laying station so that the temperature of the battery cells is lower than the initial curing temperature of the thermosetting adhesive on the battery cells.
[0009] The welding conveying device provided in the present application is provided with a cooling mechanism, which can cool the battery cells after laying, so that the temperature of the battery cells is lower than the starting curing temperature of the thermosetting glue on the battery cells, thereby preventing the thermosetting glue on the battery cells from curing before the press is placed, and ultimately ensuring that after the press is laid, the welding ribbon group can be fully bonded with the glue point, thereby ensuring the quality of the string.
[0010] In some embodiments, the cooling mechanism is configured to cool the battery cells on the conveying path from the battery cell laying station to the press laying station so that the temperature of the battery cells is lower than the starting curing temperature of the thermosetting adhesive on the battery cells.
[0011] The battery cells laid at the battery cell laying station are continuously cooled during the transportation process, ensuring that the temperature of the battery cells is always lower than the starting curing temperature of the thermosetting adhesive on the battery cells before the press is placed, thereby preventing the thermosetting adhesive on the battery cells from curing before the press is placed.
[0012] In some embodiments, the return surface of the conveyor belt is located below and on the side of the support plate, and the cooling mechanism includes at least one first blowing member arranged on the outside and / or inside of the return surface of the conveyor belt, and the first blowing member is configured to blow air to cool the return surface of the conveyor belt.
[0013] By arranging a first blowing member on the outer side and / or inner side of the return surface of the conveyor belt, the return surface of the conveyor belt is cooled by blowing air, so that the temperature of the return surface of the conveyor belt is lower when it is circulated back to the battery cell laying station, thereby cooling the battery cells laid thereon, and ultimately ensuring that the temperature of the battery cells is lower than the starting curing temperature of the thermosetting adhesive on the battery cells before the press is placed.
[0014] In some embodiments, the first blowing member includes a blowing block, an air cavity is provided in the blowing block, a blowing hole connected to the air cavity is provided on the blowing block, and an air connecting head connected to the air cavity is also provided on the blowing block, and the air connecting head is connected to a compressed air source; the compressed air output by the compressed air source enters the air cavity through the air connecting head and is blown to the return surface of the conveyor belt through the blowing hole; or, the first blowing member is a fan, and the fan is configured to blow air toward the return surface of the conveyor belt.
[0015] Two first blowing members with simple structures are provided, both of which can implement blowing cooling on the return surface of the conveyor belt.
[0016] In some embodiments, the cooling mechanism includes a second blowing member disposed above the battery cell laying station and / or the press laying station, and the second blowing member is configured to blow air to cool the battery cell.
[0017] By setting up a second blowing member, direct blowing cooling is achieved on the battery cells located at the battery cell laying station and / or the press laying station, thereby improving the cooling effect and ensuring that the temperature of the battery cells is lower than the starting curing temperature of the thermosetting adhesive on the battery cells before the press is placed.
[0018] In some embodiments, the cooling mechanism includes a first cooling channel disposed in at least one roller in the drive roller set.
[0019] By setting a first cooling channel in at least one roller of the driving roller group, when the conveyor belt passes through the roller provided with the first cooling channel, the roller can cool the conveyor belt, thereby preventing the conveyor belt from having a thermal impact on the thermosetting adhesive on the battery cell before the press is placed.
[0020] In some embodiments, the support plate includes a first support plate and a second support plate arranged in sequence along the conveying direction of the conveyor belt, wherein the battery cell laying station and the press laying station are located above the first support plate, and the serial connection station is located above the second support plate; the cooling mechanism includes a second cooling channel arranged in the first support plate, or the cooling mechanism includes a cooling plate arranged at the bottom of the first support plate and in contact with the first support plate; and / or the cooling mechanism includes an insulation plate arranged between the first support plate and the second support plate.
[0021] By configuring the support plate as a disconnected first and second support plate, independent temperature control of the first and second support plates can be achieved, allowing the first support plate to maintain a relatively low temperature. This allows cooling of the battery cells at the cell placement and press placement stations, ensuring that the cell temperature is lower than the initial curing temperature of the thermosetting adhesive on the cell before the press is placed. The second support plate can be maintained at a relatively high temperature, enabling it to cooperate with the stringing mechanism at the stringing station to heat and string the battery strings, thereby improving stringing efficiency.
[0022] In some embodiments, the first support plate is provided with adsorption holes connected to the exhaust device, and the conveyor belt is provided with air holes. The exhaust device exhausts air from the air holes through the adsorption holes, so that the conveying surface of the conveyor belt located on the first support plate generates adsorption force.
[0023] The adsorption positioning of the battery cells placed at the battery cell laying station is realized, and the battery cells are prevented from being misplaced during the process of being transported from the battery cell laying station to the press laying station.
[0024] In some embodiments, the first support plate includes a battery cell laying section and a press laying section arranged in sequence along the conveying direction of the conveyor belt, the battery cell laying station is located above the battery cell laying section, and the press laying station is located above the press laying section; the adsorption hole includes a first adsorption hole and a second adsorption hole, the first adsorption hole is arranged on the battery cell laying section, and the second adsorption hole is arranged on the press laying section; the first support plate also includes a first air pumping block and a second air pumping block, wherein: the first air pumping block is arranged at the bottom of the battery cell laying section, and a first air pumping cavity connected to the first adsorption hole is arranged on the first air pumping block, and the first air pumping cavity is connected to the air pumping device, and the air pumping device pumps air to the first adsorption hole through the first air pumping cavity, so that the first adsorption hole generates an adsorption force; the second air pumping block is arranged at the bottom of the press laying section, and a second air pumping cavity connected to the second adsorption hole is arranged on the second air pumping block, and the second air pumping cavity is connected to the air pumping device, and the air pumping device pumps air to the second adsorption hole through the second air pumping cavity, so that the second adsorption hole generates an adsorption force.
[0025] By setting the first support plate to include a battery cell laying section and a press laying section, and independently exhausting the adsorption holes on the battery cell laying section and the press laying section through the first exhaust block and the second exhaust block respectively, the uniformity and stability of the adsorption force of the conveyor belt at the battery cell laying station and the press laying station can be improved, thereby improving the adsorption effect of the conveyor belt on the battery cell.
[0026] In some embodiments, the first support plate also includes a first sealing plate and a second sealing plate, wherein: the first sealing plate sealing gasket is arranged between the battery cell laying section and the first vacuum block, and the first sealing plate is provided with a first through hole connecting the first adsorption hole and the first vacuum cavity; the second sealing plate sealing gasket is arranged between the press laying section and the second vacuum cavity, and the second sealing plate is provided with a second through hole connecting the second adsorption hole and the second vacuum cavity.
[0027] By providing a first sealing plate, the sealing performance at the contact point between the cell laying section and the first air extraction block is improved, ensuring the air extraction effect of the first air extraction block on the first adsorption hole, and preventing air leakage at the contact point between the first air extraction block and the first adsorption hole, which would result in the adsorption force of the first adsorption hole being too weak. By providing a second sealing plate, the sealing performance at the contact point between the press laying section and the second air extraction block is improved, ensuring the air extraction effect of the second air extraction block on the second adsorption hole, and preventing air leakage at the contact point between the press laying section and the second air extraction block, which would result in the adsorption force of the second adsorption hole being too weak.
[0028] In some embodiments, the second cooling channel is arranged in the battery cell laying section and avoids the first adsorption holes, and / or the second cooling channel is arranged in the press laying section and avoids the second adsorption holes.
[0029] By arranging the second cooling channel in the battery cell laying section and / or the press laying section, the first support plate can be cooled.
[0030] The present application also provides a battery stringing device, which includes the welding conveying device, battery cell laying mechanism, welding tape laying mechanism, press laying mechanism and serial connection mechanism described in any one of the above items, wherein: the battery cell laying mechanism is configured to lay the battery cell to the battery cell laying station, the welding tape laying mechanism and the press laying mechanism are configured to lay the welding tape group and the press in sequence on the battery cell located at the press laying station, so that the press presses the welding tape group onto the battery cell; the welding conveying device is configured to convey the laid battery cell and welding tape group to the serial connection station; the serial connection mechanism is arranged at the serial connection station, and the serial connection mechanism is configured to heat the thermosetting glue on the battery cell, so that the thermosetting glue is solidified and the welding tape group is bonded to the corresponding battery cell.
[0031] Through the cooperation of welding conveying device, battery cell laying mechanism, welding tape laying mechanism, press laying mechanism and serial connection mechanism, the battery stringing equipment realizes the automatic stringing of battery cells and ensures that the welding tape group can be fully bonded with the glue point, thereby ensuring the stringing quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 Schematic diagram of the structure of the welding conveying device in an embodiment of the present application;
[0033] Figure 2 This is a schematic structural diagram of the welding conveying device in an embodiment of the present application without the conveyor belt;
[0034] Figure 3 This is a schematic structural diagram of the first blowing member in an embodiment of the present application;
[0035] Figure 4 This is a schematic diagram of the three-dimensional structure of the first support plate in an embodiment of the present application;
[0036] Figure 5 This is a structural diagram of the first support plate in the embodiment of the present application after the first air pumping block and the second air pumping block are omitted;
[0037] Figure 6 This is a structural diagram of the first support plate in the embodiment of the present application after omitting the first air pumping block, the second air pumping block, the first sealing plate, and the second sealing plate;
[0038] Figure 7 This is a schematic side view of the first support plate in an embodiment of the present application;
[0039] Figure 8 for Figure 7 AA cross-sectional view;
[0040] Figure 9 for Figure 7 BB cross-sectional view.
[0041] Figures 1 to 9 Included are:
[0042] First support plate 1:
[0043] First support section 11: first adsorption hole 111, first adsorption groove 112;
[0044] Second support section 12: second adsorption holes 121, second adsorption grooves 122, second cooling channels 123;
[0045] First air pumping block 15: first air pumping cavity 151;
[0046] Second air pumping block 16: second air pumping cavity 161;
[0047] First sealing plate 17: first through hole 171;
[0048] Second sealing plate 18: second through hole 181;
[0049] A second support plate 2;
[0050] Driving roller group 3: active roller 31, driven roller 32, tensioning roller 33;
[0051] Conveyor belt 4;
[0052] The first blowing component 5 includes a blowing block 51, a blowing hole 52, and an air connection head 53;
[0053] Heat insulation board 6;
[0054] base 8;
[0055] Cell laying station A, press laying station B, and serial connection station C. DETAILED DESCRIPTION
[0056] In order to make the above-mentioned purposes, features and advantages of the present application more obvious and easy to understand, the present application is further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0057] like Figures 1 to 2 As shown, the welding conveying device in the embodiment of the present application includes a base 8, a support plate, a drive roller group 3, a conveyor belt 4 and a cooling mechanism, wherein:
[0058] The drive roller assembly 3 is disposed on the base 8 and includes at least rollers disposed at both ends of the base 8. The conveyor belt 4 is sleeved on the drive roller assembly 3. For example, the rollers at both ends of the base 8 are a driving roller 31 disposed at one end of the base 8 and a driven roller 32 disposed at the other end of the base 8. The drive roller assembly 3 may also include a tensioning roller 33 that can move along the conveying direction to tension the conveyor belt 4.
[0059] The support plate is arranged on the base body 8, and the support plate is used to support the conveying surface of the conveyor belt 4. The driving roller group 3 is configured to drive the conveyor belt 4 for conveying. The battery cell laying station A, the press laying station B and the serial connection station C are arranged in sequence on the conveying direction of the conveyor belt 4.
[0060] The cooling mechanism is configured to cool at least the battery cells laid at the battery cell laying station A, so that the temperature of the battery cells is lower than the initial curing temperature of the thermosetting adhesive on the battery cells.
[0061] It can be seen that the welding conveying device in the embodiment of the present application is provided with a cooling mechanism, which can cool the battery cells after laying, so that the temperature of the battery cells is lower than the starting curing temperature of the thermosetting glue on the battery cells, thereby preventing the thermosetting glue on the battery cells from curing before the press is placed, and ultimately ensuring that the soldering ribbon group can be fully bonded with the glue point after the press is laid, thereby ensuring the quality of the string.
[0062] The press can adopt various existing structures of solder ribbon pressing tooling that can press the solder ribbon onto the battery cell. For example, the press includes a frame and several rows of pressing pins installed at the bottom of the frame, and each row of pressing pins is used to press a solder ribbon onto the battery cell.
[0063] Optionally, the cooling mechanism is configured to cool the battery cells along the conveying path from the battery cell placement station A to the press placement station B, so that the temperature of the battery cells is lower than the initial curing temperature of the thermosetting adhesive on the battery cells. In other words, the cooling mechanism continuously cools the battery cells as they are conveyed from the battery cell placement station A to the press placement station B, thereby ensuring that the temperature of the battery cells is lower than the initial curing temperature of the thermosetting adhesive on the battery cells before the press is placed.
[0064] Since the conveyor belt 4 is sleeved on the driving roller group 3, the conveyor belt 4 performs circular conveying under the drive of the driving roller group 3. The part of the conveyor belt 4 currently supported on the upper side of the support plate is the conveying surface of the conveyor belt, and the remaining parts of the conveyor belt 4 (i.e., the parts located below and on the sides of the support plate) are all return surfaces of the conveyor belt 4.
[0065] like Figure 1 As shown, in an optional embodiment, the cooling mechanism includes at least one first blowing member 5 disposed on the outside of the return surface of the conveyor belt 4. The first blowing member 5 is configured to blow air to cool the return surface of the conveyor belt 4. Of course, the first blowing member 5 can also be disposed on the inside of the return surface of the conveyor belt 4. Alternatively, the first blowing member 5 can be disposed on both the inside and outside of the return surface of the conveyor belt 4.
[0066] By arranging a first blowing member 5 on the outer side and / or inner side of the return surface of the conveyor belt 4, the return surface of the conveyor belt 4 is cooled by blowing. In this way, when the return surface of the conveyor belt 4 is circulated and transported back to the battery cell laying station A, it can be switched to the conveying surface to cool the battery cells laid thereon, so that the temperature of the battery cells is lower than the starting curing temperature of the thermosetting adhesive on the battery cells before the press is placed.
[0067] like Figure 3 As shown, optionally, the first blowing member 5 includes a blowing block 51, an air cavity is provided in the blowing block 51, a blowing hole 52 connected to the air cavity is provided on the blowing block 51, and an air connection head 53 connected to the air cavity is also provided on the blowing block 51, and the air connection head 53 is connected to a compressed air source. The compressed air output by the compressed air source enters the air cavity through the air connection head 53 and is blown to the return surface of the conveyor belt 4 through the blowing hole 52. In order to extend the blowing length of the conveyor belt 4, the blowing block 51 is optionally elongated, the length direction of the blowing block 51 is perpendicular to the conveying direction of the conveyor belt 4, and a plurality of blowing holes 51 are spaced apart along the length direction of the blowing block 51. Optionally, a plurality of first blowing members 5 are spaced apart along the length direction of the return surface.
[0068] Of course, the first blowing member 5 may also be a blowing device with other structures such as a fan that can blow air to cool the return surface of the conveyor belt 4 .
[0069] In another optional embodiment, the cooling mechanism includes a second blowing member positioned above the cell placement station A and / or the press placement station B. The second blowing member is configured to cool the cell by blowing air. In other words, the second blowing member directly cools the cell at the cell placement station A and / or the press placement station B, ensuring that the cell temperature is below the initial curing temperature of the thermosetting adhesive on the cell before the press is placed.
[0070] The second blowing piece can be Figure 3 The first blowing member 5 shown has the same structure as that shown. Of course, the second blowing member can also be a blowing member with other structures such as a fan that can blow air to cool the battery cell.
[0071] In another optional embodiment, the cooling mechanism includes a first cooling channel disposed in at least one roller in the drive roller group 3. The inlet and outlet of the first cooling channel are connected to an external cooling fluid (cooling water, cooling oil, etc.) supply device. The cooling fluid supply device and the first cooling channel form a circulating cooling loop. When the cooling fluid flows in the roller, it cools the roller, thereby reducing the temperature of the roller.
[0072] When the conveyor belt 4 passes through the roller provided with the first cooling channel, the roller with a lower temperature can cool the conveyor belt 4, thereby preventing the conveyor belt 4 from having a thermal impact on the thermosetting adhesive on the battery cell before the press is placed.
[0073] like Figure 1 and Figure 2 As shown, optionally, the support plate includes a first support plate 1 and a second support plate 2 arranged in sequence along the conveying direction of the conveyor belt 4, wherein the battery cell laying station A and the press laying station B are located above the first support plate 1, and the serial connection station C is located above the second support plate 2.
[0074] By configuring the support plate to consist of a first support plate 1 and a second support plate 2, independent temperature control of the first and second support plates 1 and 2 can be achieved, thereby maintaining the first support plate 1 at a relatively low temperature (e.g., below the initial curing temperature of the thermosetting adhesive). This allows cooling of the battery cells located at the battery cell placement station A and the press placement station B, ensuring that the battery cell temperature is lower than the initial curing temperature of the thermosetting adhesive on the battery cells before the press is placed. The second support plate 2 is maintained at a relatively high temperature (e.g., above the initial curing temperature of the thermosetting adhesive), enabling it to cooperate with the stringing mechanism at the stringing station C to heat and string the battery strings, thereby improving stringing efficiency.
[0075] In order to maintain a relatively low temperature for the first support plate 1, the cooling mechanism optionally includes a second cooling channel disposed within the first support plate 1. The inlet and outlet of the second cooling channel are connected to an external cooling fluid (cooling water, cooling oil, etc.) supply device. The cooling fluid supply device and the second cooling channel form a circulating cooling loop. When the cooling fluid flows within the second cooling channel, it cools the first support plate 1, thereby reducing the temperature of the first support plate 1. The first support plate 1 cools the battery cells at the battery cell placement station A and the press placement station B, so that the temperature of the battery cells is lower than the initial curing temperature of the thermosetting adhesive on the battery cells before the press is placed.
[0076] In another optional embodiment, the cooling mechanism includes a cooling plate disposed at the bottom of the first support plate 1 and in contact with the first support plate 1, and the cooling plate cools the first support plate 1 to reduce the temperature of the first support plate 1. The cooling plate may be, for example, a metal plate having a third cooling channel or a refrigerator disposed therein.
[0077] like Figure 1 As shown, the cooling mechanism may optionally further include a heat insulating plate 6 disposed between the first support plate 1 and the second support plate 2. The heat insulating plate 6 is made of a heat insulating material and thermally isolates the first support plate 1 from the second support plate 2, preventing heat from the second support plate 2 from being transferred to the first support plate 1, thereby maintaining a relatively low temperature for the first support plate 1.
[0078] Optionally, the first support plate 1 is provided with suction holes connected to the air extraction device, and the conveyor belt 4 is provided with air holes. The suction device extracts air from the air holes on the conveyor belt 4 through the suction holes on the first support plate 1, thereby generating an adsorption force on the conveying surface of the conveyor belt 4 on the first support plate 1. In this way, the battery cells placed at the battery cell laying station A can be positioned by adsorption, preventing the battery cells from being misaligned during the process of being transported from the battery cell laying station A to the press laying station B.
[0079] like Figures 4 to 9 As shown, optionally, the first support plate 1 includes a cell laying section 11 and a press laying section 12 sequentially arranged along the conveying direction of the conveyor belt 4, the cell laying station A is located above the cell laying section 11, and the press laying station B is located above the press laying section 12. The adsorption holes include a first adsorption hole 111 and a second adsorption hole 121, the first adsorption hole 111 is provided on the cell laying section 11, and the second adsorption hole 121 is provided on the press laying section 12.
[0080] The first support plate 1 further includes a first air pumping block 15 and a second air pumping block 16, wherein:
[0081] The first air pumping block 15 is arranged at the bottom of the battery cell laying section 11. The first air pumping block 15 is provided with a first air pumping cavity 151 connected to the first adsorption hole 111. The first air pumping cavity 151 is connected to the air pumping device. The air pumping device pumps air from the first adsorption hole 111 through the first air pumping cavity 151 so that the first adsorption hole 111 generates adsorption force.
[0082] The second air pumping block 16 is arranged at the bottom of the press laying section 12, and a second air pumping cavity 161 connected to the second adsorption hole 121 is provided on the second air pumping block 16. The second air pumping cavity 161 is connected to the air pumping device, and the air pumping device pumps air from the second adsorption hole 121 through the second air pumping cavity 161 so that the second adsorption hole 121 generates adsorption force.
[0083] By configuring the first support plate 1 to include a cell laying section 11 and a press laying section 12, and independently exhausting the first adsorption holes 111 and the second adsorption holes 121 on the cell laying section 11 and the press laying section 12 through the first exhaust block 15 and the second exhaust block 16, the uniformity and stability of the adsorption force of the conveyor belts at the cell laying station A and the press laying station B can be improved, thereby improving the adsorption effect of the conveyor belt 4 on the cell.
[0084] like Figure 4As shown, optionally, the upper surface of the cell laying section 11 is provided with a plurality of first adsorption grooves 112 spaced apart along a first direction (e.g., the X direction). The first adsorption grooves 112 extend along a second direction (e.g., the Y direction), and a plurality of first adsorption holes 111 are provided within the first adsorption grooves 112. The second direction is perpendicular to the first direction. The upper surface of the press laying section 12 is provided with a plurality of second adsorption grooves 122 spaced apart along the first direction. The second adsorption grooves 122 extend along the second direction, and a plurality of second adsorption holes 121 are provided within the second adsorption grooves 122.
[0085] Figure 4 In the illustrated embodiment, the first direction is parallel to the length direction of the first support plate 1, and the second direction is parallel to the width direction of the first support plate 1. Of course, in other embodiments, the first direction may be parallel to the width direction of the first support plate 1, and the second direction may be parallel to the length direction of the first support plate 1.
[0086] By setting a plurality of first adsorption grooves 112 on the upper surface of the battery cell laying section 11 and arranging the first adsorption holes 111 in each first adsorption groove 112, the adsorption area of the upper surface of the battery cell laying section 11 can be increased to enhance the adsorption effect of the conveyor belt 4 on the battery cell laying section 11 on the battery cell laying section 11.
[0087] Similarly, by setting a second adsorption groove 122 on the upper surface of the press laying section 12 and arranging the second adsorption hole 121 in the second adsorption groove 122, the adsorption area of the upper surface of the press laying section 12 can be increased, thereby improving the adsorption effect of the conveyor belt 4 on the press laying section 12 on the battery cell.
[0088] like Figure 5 As shown, optionally, the first support plate 1 further includes a first sealing plate 17 and a second sealing plate 18, wherein: the first sealing plate 17 is provided as a sealing gasket between the cell laying section 11 and the first air extraction block 15, and is provided with a first through hole 171 connecting the first adsorption hole 111 and the first air extraction cavity 151. The second sealing plate 18 is provided as a sealing gasket between the press laying section 12 and the second air extraction cavity 161, and is provided with a second through hole 181 connecting the second adsorption hole 121 and the second air extraction cavity 161.
[0089] By setting the first sealing plate 17, the sealing performance of the contact point between the battery cell laying section 11 and the first vacuum block 15 is improved, ensuring the vacuuming effect of the first vacuum block 15 on the first adsorption hole 111, and preventing air leakage at the contact point between the battery cell laying section 11 and the first vacuum block 15, which would cause the adsorption force of the first adsorption hole 111 to be too small.
[0090] Similarly, by setting a second sealing plate 18, the sealing performance of the contact point between the press laying section 12 and the second air pumping block 16 is improved, ensuring the air pumping effect of the second air pumping block 16 on the second adsorption hole 121, and preventing air leakage at the contact point between the press laying section 12 and the second air pumping block 16, which would cause the adsorption force of the second adsorption hole 121 to be too small.
[0091] like Figure 6 As shown, optionally, the second cooling channel 123 is disposed within the press-laying section 12 and avoids the second adsorption holes 121. In this way, the cooling fluid flowing in the second cooling channel 123 can cool the press-laying section 12. Since the press-laying section 12 and the cell-laying section 11 are integrally formed, the cell-laying section 11 is also cooled.
[0092] Of course, the second cooling channel can also be set in the battery cell laying section 11 and avoid the first adsorption holes 111. In this way, the cooling fluid flowing in the second cooling channel can cool the battery cell laying section 11. Similarly, since the press laying section 12 is integrally formed with the battery cell laying section 11, the press laying section 12 is also cooled.
[0093] In order to further improve the cooling effect of the first support plate 1 , second cooling channels may be provided in both the cell laying section 11 and the press laying section 12 .
[0094] Based on the same inventive concept, the present application also provides a battery stringing device. The battery stringing device includes the welding conveyor device provided in any of the above embodiments, and further includes a battery cell laying mechanism, a welding ribbon laying mechanism, a press laying mechanism, and a stringing mechanism, wherein:
[0095] The cell laying mechanism is configured to lay the cell at the cell laying station A, and the soldering tape laying mechanism and the press laying mechanism are configured to lay the soldering tape group and the press in sequence on the cell at the press laying station B, so that the press presses the soldering tape group onto the cell.
[0096] The welding conveying device is configured to convey the laid-out battery cells and welding ribbon groups to the string connection station C.
[0097] The serial connection mechanism is provided at the serial connection station C. The serial connection mechanism is configured to heat the thermosetting adhesive on the battery cell, so that the thermosetting adhesive is cured and then the soldering ribbon group is bonded to the corresponding battery cell.
[0098] It can be seen that through the cooperation of the welding conveying device, the battery cell laying mechanism, the solder tape laying mechanism, the press laying mechanism and the serial connection mechanism, the battery stringing equipment in the embodiment of the present application realizes the automatic stringing of battery cells and ensures that the solder tape group can be fully bonded with the glue point to ensure the stringing quality.
[0099] Among them, the battery cell laying mechanism, the welding ribbon laying mechanism, and the press laying mechanism can adopt any existing structure as long as it can realize the transportation and laying of the battery cells, welding ribbons and presses.
[0100] Optionally, the series connection mechanism is a heating light box to heat the thermosetting adhesive on the battery cell to solidify it.
[0101] Based on the same inventive concept, an embodiment of the present application also provides a stringing method, which includes: laying the battery cells and solder ribbon groups on the conveying surface of the stringing conveying device according to a predetermined stringing rule, and providing thermosetting glue on the battery cells; cooling the battery cells to be pressed before laying the press, so that the temperature of the battery cells is lower than the starting curing temperature of the thermosetting glue; laying the press onto the battery cells to press the solder ribbon group on the battery cells; heating the battery cells after laying the press to cure the thermosetting glue, and bonding the solder ribbon group to the battery cells.
[0102] It can be seen that the stringing method provided in the embodiment of the present application cools the battery cells to be pressed before the press is laid, so that the temperature of the battery cells is lower than the starting curing temperature of the thermosetting adhesive before the press is laid, and ultimately ensures that the solder tape group can be bonded to the battery cells after the press is laid, thereby ultimately ensuring the quality of the stringing.
[0103] Optionally, the battery cells to be pressed are cooled before the press is laid, including: blowing air toward the battery cells to cool them; and / or cooling the conveying surface of the serial conveying device located in front of the press laying position, and cooling the battery cells by the cooled conveying surface.
[0104] The laid cell can be cooled by directly blowing air to cool the cell, or by cooling the conveying surface of the conveyor belt and then indirectly cooling the cell by the cooled conveying surface. This allows the cell temperature to be lower than the initial curing temperature of the thermosetting adhesive on the cell, thereby preventing the thermosetting adhesive on the cell from curing before the press is placed. This ultimately ensures that after the press is laid, the soldering ribbon group can fully engage with the glue point, thereby ensuring the string quality.
[0105] The stringing method in the embodiment of the present application can be implemented by the battery stringing device in the embodiment of the present application.
[0106] The above description of the present application is sufficiently detailed and has certain particularities. Those skilled in the art should understand that the descriptions in the embodiments are merely exemplary, and that all changes made without departing from the true spirit and scope of the present application should fall within the scope of protection of the present application. The scope of protection claimed in the present application is defined by the claims, not by the above description in the embodiments. Furthermore, the embodiments mentioned in the present application are not limited to being implemented individually, and some embodiments can also be implemented in combination.
Claims
1. A welding conveying device, characterized in that: The welding conveying device includes a base, a support plate, a driving roller group, a conveyor belt and a cooling mechanism, wherein: The driving roller group is arranged on the base body, and the driving roller group at least includes rollers arranged at both ends of the base body, and the conveyor belt is sleeved on the driving roller group; The support plate is arranged on the base body, and the support plate is used to support the conveying surface of the conveyor belt. The driving roller group is configured to drive the conveyor belt to convey. The conveyor belt is provided with a cell laying station, a press laying station and a serial connection station in sequence along the conveying direction; The cooling mechanism is configured to cool at least the battery cells laid at the battery cell laying station so that the temperature of the battery cells is lower than the initial curing temperature of the thermosetting adhesive on the battery cells.
2. The welding conveying device according to claim 1, wherein: The cooling mechanism is configured to cool the battery cells on the conveying path from the battery cell laying station to the press laying station so that the temperature of the battery cells is lower than the initial curing temperature of the thermosetting adhesive on the battery cells.
3. The welding conveying device according to claim 1, wherein: The return surface of the conveyor belt is located below and on the side of the support plate, and the cooling mechanism includes at least one first blowing member arranged on the outside and / or inside of the return surface of the conveyor belt, and the first blowing member is configured to blow air to cool the return surface of the conveyor belt.
4. The welding conveying device according to claim 3, wherein: The first air blowing member includes an air blowing block, an air cavity is provided in the air blowing block, an air blowing hole is provided on the air blowing block and is connected to the air cavity, and an air connecting head is also provided on the air blowing block and is connected to a compressed air source; the compressed air output by the compressed air source enters the air cavity through the air connecting head and is blown to the return surface of the conveyor belt through the air blowing hole; or, The first blowing member is a fan, and the fan is configured to blow air toward the return surface of the conveyor belt.
5. The welding conveying device according to claim 1, wherein: The cooling mechanism includes a second blowing member arranged above the battery cell laying station and / or the press laying station, and the second blowing member is configured to blow air to cool the battery cell.
6. The welding conveying device according to claim 1, wherein: The cooling mechanism includes a first cooling channel arranged in at least one roller in the driving roller group.
7. The welding conveying device according to claim 1, wherein: The support plate includes a first support plate and a second support plate sequentially arranged along the conveying direction of the conveyor belt, wherein the cell laying station and the press laying station are located above the first support plate, and the serial connection station is located above the second support plate; The cooling mechanism includes a second cooling channel provided in the first support plate, or the cooling mechanism includes a cooling plate provided at the bottom of the first support plate and in contact with the first support plate; And / or, the cooling mechanism includes a heat insulation plate arranged between the first support plate and the second support plate.
8. The welding conveying device according to claim 7, wherein: The first support plate is provided with adsorption holes connected to the exhaust device, and the conveyor belt is provided with air holes. The exhaust device exhausts air from the air holes through the adsorption holes, so that the conveying surface of the conveyor belt located on the first support plate generates adsorption force.
9. The welding conveying device according to claim 8, wherein: The first support plate includes a cell laying section and a press laying section sequentially arranged along the conveying direction of the conveyor belt, the cell laying station is located above the cell laying section, and the press laying station is located above the press laying section; The adsorption holes include a first adsorption hole and a second adsorption hole, the first adsorption hole is provided on the battery sheet laying section, and the second adsorption hole is provided on the press laying section; The first support plate further includes a first air pumping block and a second air pumping block, wherein: The first air extraction block is arranged at the bottom of the battery sheet laying section, and the first air extraction block is provided with a first air extraction cavity connected to the first adsorption hole. The first air extraction cavity is connected to the air extraction device, and the air extraction device extracts air from the first adsorption hole through the first air extraction cavity, so that the first adsorption hole generates adsorption force; The second air pumping block is arranged at the bottom of the press laying section, and a second air pumping cavity connected to the second adsorption hole is provided on the second air pumping block. The second air pumping cavity is connected to the air pumping device, and the air pumping device pumps air from the second adsorption hole through the second air pumping cavity so that the second adsorption hole generates adsorption force.
10. The welding conveying device according to claim 9, wherein: The first support plate further comprises a first sealing plate and a second sealing plate, wherein: The first sealing plate sealing gasket is arranged between the battery cell laying section and the first air extraction block, and the first sealing plate is provided with a first through hole communicating with the first adsorption hole and the first air extraction cavity; The second sealing plate sealing gasket is arranged between the press laying section and the second air pumping cavity, and the second sealing plate is provided with a second through hole communicating with the second adsorption hole and the second air pumping cavity.
11. The welding conveying device according to claim 9, wherein: The second cooling channel is arranged in the battery cell laying section and avoids the first adsorption hole, and / or the second cooling channel is arranged in the press laying section and avoids the second adsorption hole.
12. A battery string device, characterized in that: The battery stringing equipment includes the welding conveying device according to any one of claims 1 to 11, a battery cell laying mechanism, a welding ribbon laying mechanism, a press laying mechanism and a stringing mechanism, wherein: The cell laying mechanism is configured to lay the cell on the cell laying station, and the soldering ribbon laying mechanism and the press laying mechanism are configured to lay the soldering ribbon group and the press in sequence on the cell located at the press laying station, so that the press presses the soldering ribbon group onto the cell; The welding conveying device is configured to convey the laid-out battery cells and welding ribbon groups to the stringing station; The serial connection mechanism is arranged at the serial connection station, and is configured to heat the thermosetting adhesive on the battery cell, so that the thermosetting adhesive is solidified and the soldering ribbon group is bonded to the corresponding battery cell.