Battery connector production equipment

By designing automated battery connecting sheet production equipment, the automation of welding and glue wrapping processes is solved, and the problems of high labor intensity and low production efficiency caused by manual operations in the prior art are improved.

CN115714292BActive Publication Date: 2025-08-08DONGGUAN LINGYI PRECISION MFG TECH CO LTD
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Patent Information

Application Number
CN202211285316.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-20
Publication Date
2025-08-08
Estimated Expiration
2042-10-20

AI Technical Summary

Technical Problem

During the production process of existing battery connectors, welding, testing, glue wrapping and injection coding processes require manual operation, resulting in high labor intensity and low production efficiency.

Method used

A battery connecting sheet production equipment is designed, including a first transmission device, a welding device, a second transmission device, a transfer device and a glue wrap device to realize automated transmission, welding and glue wrap, and reduce manual intervention.

Benefits of technology

Through automated production equipment, the labor intensity of staff is reduced and production efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a battery connector production device, comprising: a first conveying device, a welding device, a second conveying device, a transfer device, and a first encapsulating device. The first conveying device is used to convey a first carrier tape carrying a first component; the welding device is used to move the second component onto the first carrier tape and weld the first and second components to form a welded semi-finished product; the second conveying device is used to convey a second carrier tape, on which a first insulating tape corresponding to the weld points on the welded semi-finished product is provided; the transfer device is used to move the welded semi-finished product on the first carrier tape onto the second carrier tape and place the weld points on the welded semi-finished product above the first insulating tape; and the first encapsulating device is provided on the conveying path of the second carrier tape and is used to lift one end of the first insulating tape and flip it over to fit the other end of the first insulating tape. This achieves automated production.
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Description

Technical Field

[0001] The present invention relates to the technical field of electrical components, and in particular to a battery connecting piece production device. Background Art

[0002] Many electronic devices have a rated current that cannot be exceeded, otherwise the device will burn out. Currently, the overheating and overcurrent protection of the batteries of electronic devices (such as laptops, mobile phones, and tablets) mainly uses a battery connector with a battery connector to connect the battery.

[0003] The thermal expansion coefficients of the bimetallic strip's component layers differ. When the temperature changes, the active layer deforms more than the passive layer, causing the bimetallic strip to bend toward the passive layer. The battery connector utilizes this composite material's curvature and deformation to switch the current on and off. When the battery temperature rises, the connector disconnects, shutting down the battery and preventing overcurrent and overheating.

[0004] Conventionally, the battery connector requires the two pins of the battery connector to be welded to two metal sheets, and the welds must be inspected. The welded battery connector is then encapsulated with glue and coded for subsequent transportation and data collection. The existing battery connector production process often requires manual labor for welding, inspection, encapsulation, and coding. Furthermore, workers must handle the product between each process, requiring a high level of manpower and labor intensity, resulting in low production efficiency. Summary of the Invention

[0005] The present invention aims to solve at least one of the technical problems existing in the prior art. To this end, the present invention provides a battery connector production device that can automatically perform processes such as welding and encapsulation, and can automatically transfer products between various processes, thereby reducing the labor intensity of workers and improving production efficiency.

[0006] According to an embodiment of the present invention, the battery connector production equipment includes: a first transmission device, a welding device, a second transmission device, a transfer device and a first encapsulation device, the first transmission device is used to convey the first carrier tape, wherein the first carrier tape carries the first component; the welding device is arranged on the side of the transmission path of the first carrier tape, and is used to move the second component to the first carrier tape, and can weld the first component and the second component to form a welded semi-finished product; the second transmission device is used to convey the second carrier tape, wherein the second carrier tape is provided with a first insulating tape corresponding to the welding points on the welded semi-finished product; the transfer device is arranged between the first transmission device and the second transmission device, and is used to move the welded semi-finished product on the first carrier tape to the second carrier tape, and can place the welding points on the welded semi-finished product above the first insulating tape; the first encapsulation device is arranged on the transmission path of the second carrier tape, and is used to lift one end of the first insulating tape and flip it to fit the other end of the first insulating tape.

[0007] The battery connecting piece production equipment according to the embodiment of the present invention has at least the following beneficial effects:

[0008] By setting up a first transmission device, a welding device, a second transmission device, a transfer device and a first encapsulation device, automated transmission, welding and encapsulation are achieved, and finally a finished battery connecting piece is obtained, which reduces the labor intensity of the staff and improves production efficiency.

[0009] According to some embodiments of the battery connector production equipment of the present invention, the first transmission device includes a first unwinding component and a first pulling component, and the first unwinding component and the first pulling component are respectively arranged on both sides of the conveying path of the second carrier tape, and the first pulling component is used to drive the first carrier tape unwound by the first unwinding component to be transmitted above the second carrier tape, and the transfer device includes a first stamping component, which is arranged on the conveying path of the second carrier tape and is used to punch the welding semi-finished product on the first carrier tape onto the second carrier tape.

[0010] According to some embodiments of the present invention, the battery connector production equipment further includes a second gluing device. The second gluing device is arranged behind the first gluing device along the transmission direction of the second carrier tape. The second gluing device includes a gluing mechanism and a gluing mechanism. The gluing mechanism is arranged on the side of the second carrier tape conveying path and is used to transmit the second insulating tape. The gluing mechanism is used to stick the second insulating tape to the welding semi-finished product.

[0011] According to some embodiments of the battery connector production equipment of the present invention, the gluing mechanism includes a second unwinding assembly and a second pulling assembly, and the second unwinding assembly and the second pulling assembly are respectively arranged on both sides of the conveying path of the second carrier tape, and the second pulling assembly is used to drive the second insulating tape unwound by the second unwinding assembly to be transmitted above the second carrier tape, and the gluing mechanism includes a second stamping assembly, and the second stamping assembly is used to punch and stick the second insulating tape onto the second carrier tape.

[0012] According to some embodiments of the present invention, the battery connector production equipment further includes an internal resistance detection device. The internal resistance detection device is arranged behind the first encapsulation device along the transmission direction of the second carrier tape. The internal resistance detection device is used to detect whether the solder joints on the welded semi-finished product are intact.

[0013] According to some embodiments of the present invention, in the battery connector production equipment, the internal resistance detection device includes a moving mechanism and a detection mechanism, the detection mechanism includes two sets of contacts, the moving mechanism is arranged above the conveying path of the second carrier material belt, the detection mechanism is arranged on the moving mechanism, and driven by the moving mechanism, the two sets of contacts can move to contact the first component and the second component respectively.

[0014] According to some embodiments of the battery connector production equipment of the present invention, the second transmission device includes a third unwinding assembly, a winding assembly and several third pulling assemblies. Along the transmission direction of the second carrier tape, the third unwinding assembly, the transfer device, the first glue wrapping device, the second glue wrapping device, the internal resistance detection device and the winding assembly are arranged in sequence, and the third pulling assembly is arranged between the transfer device and the first glue wrapping device, between the first glue wrapping device and the second glue wrapping device, between the second glue wrapping device and the internal resistance detection device, and between the internal resistance detection device and the winding assembly.

[0015] According to some embodiments of the present invention, the battery connector production equipment further includes a visual inspection device. The visual inspection device is arranged in front of the transfer device along the transmission direction of the first carrier material belt. The visual inspection device includes a visual inspection mechanism, a first conveying mechanism and a first material tray. The detection end of the visual inspection mechanism is located above the conveying path of the first carrier material belt, and the picking end of the conveying mechanism can be transferred above the conveying path of the first carrier material belt and the first material tray.

[0016] According to some embodiments of the present invention, the battery connecting piece production equipment further includes a material unloading device, which includes a second conveying mechanism and a second material tray. The second conveying mechanism can be transferred above the conveying path of the second carrier belt and the second material tray.

[0017] According to some embodiments of the present invention, the battery connector production equipment includes a welding device including a loading mechanism, a welding mechanism and a turntable. The welding end of the welding mechanism is located above the conveying path of the first carrier material belt. The turntable is arranged on one side of the conveying path of the first carrier material belt, and a plurality of jigs are arranged on the turntable. Driven by the turntable, the jig can be rotated to the top of the conveying path of the first carrier material belt and below the welding end of the welding mechanism. The loading mechanism is arranged on one side of the turntable for moving the second component onto the jig.

[0018] Additional aspects and advantages of the present invention will be set forth in part in the description which follows and, in part, will be obvious from the description which follows, or may be learned by practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments with reference to the following drawings, in which:

[0020] Figure 1 A schematic structural diagram of a battery connector production device according to an embodiment of the present invention;

[0021] Figure 2 for Figure 1 A schematic structural diagram of the welding device and part of the first transmission device;

[0022] Figure 3 for Figure 2 Enlarged view of area B in the middle;

[0023] Figure 4 Schematic diagram of the structure of the battery connector production equipment according to an embodiment of the present invention (excluding the welding device and part of the first transmission device);

[0024] Figure 5 A schematic structural diagram of a battery connecting piece produced by a battery connecting piece production device according to an embodiment of the present invention;

[0025] Figure 6 for Figure 5 A schematic structural diagram of the thermal switch from another perspective;

[0026] Figure 7 for Figure 6 Cross-sectional view of the battery connector along section AA.

[0027] Reference numerals:

[0028] First transmission device 100; first unwinding assembly 110; first material pulling assembly 120;

[0029] Welding device 200; feeding mechanism 210; direct vibration feeding assembly 211; material taking assembly 212; welding mechanism 220; transfer table 230; fixture 231;

[0030] Second transmission device 300; third unwinding assembly 310; winding assembly 320; third material pulling assembly 330;

[0031] Transfer device 400;

[0032] First encapsulation device 500;

[0033] Second glue coating device 600; second unwinding assembly 611; second material pulling assembly 612; glue applying mechanism 620;

[0034] Internal resistance detection device 700;

[0035] Visual inspection device 800; visual inspection mechanism 810; first transport mechanism 820; first material tray 830;

[0036] Unloading device 900; second transport mechanism 910; second material tray 920;

[0037] Coding device 1000;

[0038] First component 1110; second component 1120; pin 1121; first insulating tape 1130; second insulating tape 1140;

[0039] The third stamping assembly 1200 . DETAILED DESCRIPTION

[0040] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended only to explain the present invention and are not to be construed as limiting the present invention.

[0041] In the description of the present invention, it should be understood that descriptions involving orientations, such as up, down, left, right, front, and back, etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as limitations on the present invention.

[0042] In the description of the present invention, if there is a description of first and second, it is only for the purpose of distinguishing the technical features, and cannot be understood as indicating or implying the relative importance or implicitly indicating the number of the indicated technical features or implicitly indicating the order of the indicated technical features.

[0043] In the description of the present invention, unless otherwise clearly defined, terms such as setting, installing, and connecting should be understood in a broad sense, and technicians in the relevant technical field can reasonably determine the specific meanings of the above terms in the present invention based on the specific content of the technical solution.

[0044] The following is the attached Figure 1 To the attached Figure 7 , describing the battery connecting piece production equipment of an embodiment of the present invention.

[0045] Reference Figure 1 The battery connecting piece production equipment of this embodiment includes: a first transmission device 100, a welding device 200, a second transmission device 300, a transfer device 400 and a first encapsulation device 500. The first transmission device 100 is used to convey a first carrier belt, wherein the first carrier belt carries a first component 1110; the welding device 200 is arranged on the side of the conveying path of the first carrier belt, and is used to move the second component 1120 to the first carrier belt, and can weld the first component 1110 and the second component 1120 to form a welded semi-finished product; the second transmission device 300 is used to drive the second carrier belt to move the second component 1120 to the first carrier belt. The system uses a belt conveyor, wherein a first insulating tape 1130 corresponding to the weld points on the semi-finished product is provided on the second carrier tape; a transfer device 400 is disposed between the first conveyor device 100 and the second conveyor device 300, and is used to move the first component 1110 and the second component 1120 on the first carrier tape to the second carrier tape, and is capable of placing the weld points on the semi-finished product above the first insulating tape 1130; a first encapsulating device 500 is disposed on the conveying path of the second carrier tape, and is used to lift and flip one end of the first insulating tape 1130 to fit the other end of the first insulating tape 1130. By arranging the first conveyor device 100, the welding device 200, the second conveyor device 300, the transfer device 400, and the first encapsulating device 500, automated conveying, welding, and encapsulating are achieved, ultimately resulting in a finished battery connector, reducing the labor intensity of the staff and improving production efficiency.

[0046] Specifically, the second component 1120 is a thermal switch. The second component 1120 includes two pins 1121 welded to the first component 1110 .

[0047] It can be understood that the welding device 200 includes a loading mechanism 210, a welding mechanism 220 and a turntable 230. The welding end of the welding mechanism 220 is located above the conveying path of the first carrier material belt. The turntable 230 is arranged on one side of the conveying path of the first carrier material belt, and a plurality of jigs 231 are arranged on the turntable 230. Driven by the turntable 230, the jigs 231 can be rotated to the top of the conveying path of the first carrier material belt and below the welding end of the welding mechanism 220. The loading mechanism 210 is arranged on one side of the turntable 230 and is used to move the second component 1120 onto the jig 231. Figure 2 and Figure 3 Specifically, the loading mechanism 210 includes a direct vibration loading component 211 and a picking component 212. The direct vibration loading component 211 and the picking component 212 are arranged on one side of the turntable 230. The picking component 212 is used to pick up the second component 1120 on the direct vibration loading component 211 and place the second component 1120 on the jig 231 on the turntable 230. A portion of the turntable 230 is located directly above the conveying path of the first carrier material belt. The welding mechanism 220 is arranged on one side of the conveying path of the first carrier material belt, and the welding end of the welding mechanism 220 is arranged above the turntable 230. Driven by the turntable 230, the jig 231 can rotate to above the conveying path of the first carrier material belt. The welding mechanism 220 can drive the second component 1120 on the jig 231 to move down to the first carrier material belt and weld the second component 1120 to the first carrier material belt.

[0048] Specifically, the transfer table 230 is equipped with three fixtures 231, and the loading mechanism 210 is provided with two groups, which can improve the efficiency of loading and welding. The material picking assembly 212 is a robot with a suction nozzle at the driving end of the robot. Of course, the material picking assembly 212 can also be an XYZ module with a suction nozzle at the driving end of the XYZ module.

[0049] Combine Figure 2 Specifically, a third stamping assembly 1200 for shaping the first component 1110 is arranged above the conveying path of the first carrier material strip, and along the transmission direction of the first carrier material strip, the third stamping assembly 1200 is arranged in front of the welding device 200. Specifically, the first carrier material strip is a copper strip. Under the action of the third stamping assembly 1200, the copper strip is stamped and shaped to form the first component 1110.

[0050] It can be understood that the first transmission device 100 includes a first unwinding component 110 and a first pulling component 120, which are respectively arranged on both sides of the conveying path of the second carrier tape, and the first pulling component 120 is used to drive the first carrier tape unwound by the first unwinding component 110 to be transported above the second carrier tape, and the transfer device 400 includes a first stamping component, which is arranged on the conveying path of the second carrier tape and is used to punch the welding semi-finished product on the first carrier tape to the second carrier tape. Figure 1 、 Figure 2 and Figure 4 Specifically, the first unwinding component 110 unwinds the copper strip, the head end of the copper strip passes through the welding device 200, and is fixed on the first pulling component 120. Driven by the first pulling component 120, the copper strip can pass through the third stamping component 1200 and the welding device 200 in sequence.

[0051] It is understood that the second transmission device 300 includes a third unwinding assembly 310, a rewinding assembly 320, and a plurality of third pulling assemblies 330. The third unwinding assembly 310 is used to unwind the second carrier material strip, and the rewinding assembly 320 is used to rewind the waste second carrier material strip. A plurality of third pulling assemblies 330 are arranged between the third unwinding assembly 310 and the rewinding assembly 320. The third pulling assemblies 330 facilitate smoother transmission of the second carrier material strip between the third unwinding assembly 310 and the rewinding assembly 320. This arrangement ensures that the transmission directions of the first carrier material strip and the second carrier material strip are perpendicular to each other.

[0052] It is understandable that the battery connector production equipment of this embodiment also includes a second glue coating device 600. Along the transmission direction of the second carrier tape, the second glue coating device 600 is arranged behind the first glue coating device 500. The second glue coating device 600 includes a glue-applying mechanism and a glue-sticking mechanism 620. The glue-applying mechanism is arranged on the side of the second carrier tape conveying path and is used to transmit the second insulating tape 1140. The glue-sticking mechanism 620 is used to stick the second insulating tape 1140 to the welding semi-finished product. Figure 5 、 Figure 6 and Figure 7Specifically, the battery connector produced by the battery connector production equipment of this embodiment includes a first component 1110, a second component 1120, a first insulating tape 1130 and a second insulating tape 1140. Two first components 1110 are provided, and the two ends of the second component 1120 are respectively welded to one first component 1110 to form a welded semi-finished product. The first insulating tape 1130 is pasted on the welded semi-finished product and covers the weld between the first component 1110 and the second component 1120. The second insulating tape 1140 is pasted on the second component 1120, and the two ends are respectively covered on the first insulating tape 1130. The first insulating tape 1130 and the second insulating tape 1140 both play the role of covering the weld and insulation.

[0053] Combine Figure 4 Specifically, the gluing mechanism includes a second unwinding component 611 and a second pulling component 612, and the second unwinding component 611 and the second pulling component 612 are respectively arranged on both sides of the conveying path of the second carrier tape, and the second pulling component 612 is used to drive the second insulating tape 1140 unwound by the second unwinding component 611 to be transmitted above the second carrier tape, and the gluing mechanism 620 includes a second stamping component, and the second stamping component is used to punch and stick the second insulating tape 1140 onto the second carrier tape.

[0054] It can be understood that the battery connector production equipment of this embodiment also includes an internal resistance detection device 700. Along the transmission direction of the second carrier tape, the internal resistance detection device 700 is arranged behind the first encapsulation device 500. The internal resistance detection device 700 is used to detect whether the solder joints on the welded semi-finished product are intact.

[0055] It can be understood that the internal resistance detection device 700 includes a moving mechanism and a detection mechanism. The detection mechanism includes two sets of contacts. The moving mechanism is arranged above the conveying path of the second carrier material belt. The detection mechanism is arranged on the moving mechanism. Driven by the moving mechanism, the two sets of contacts can move to contact the first component 1110 and the second component 1120 respectively. Figure 4 Specifically, the detection mechanism also includes a detection circuit. After the two sets of contacts touch the first component 1110 and the second component 1120, the detection circuit is turned on, indicating that the solder joint between the first component 1110 and the second component 1120 is intact.

[0056] It is understood that along the transmission direction of the second carrier tape, the third unwinding assembly 310, the transfer device 400, the first gluing device 500, the second gluing device 600, the internal resistance detection device 700, and the winding assembly 320 are sequentially arranged, and a third pulling assembly 330 is provided between the transfer device 400 and the first gluing device 500, between the first gluing device 500 and the second gluing device 600, between the second gluing device 600 and the internal resistance detection device 700, and between the internal resistance detection device 700 and the winding assembly 320. A third pulling assembly 330 is provided after the cutting process, the gluing process, and the detection process. This arrangement allows the second carrier tape to be transmitted more smoothly.

[0057] It is understandable that the battery connector production equipment of this embodiment also includes a visual inspection device 800. Along the transmission direction of the first carrier material belt, the visual inspection device 800 is arranged in front of the transfer device 400. The visual inspection device 800 includes a visual inspection mechanism 810, a first conveying mechanism 820 and a first material tray 830. The inspection end of the visual inspection mechanism 810 is located above the conveying path of the first carrier material belt, and the picking end of the conveying mechanism can be transferred above the conveying path of the first carrier material belt and the first material tray 830. Unqualified welding semi-finished products can be eliminated through visual inspection to reduce the workload of subsequent encapsulation and internal resistance detection, thereby improving work efficiency. Combined with Figure 4 Specifically, the visual inspection mechanism 810 is arranged on one side of the conveying path of the first carrier material belt, the camera of the inspection mechanism is located above the conveying path of the first carrier material belt, the first conveying mechanism 820 is a robot, and a suction nozzle is provided at the driving end of the robot, and the first material tray 830 is arranged on the side of the conveying path of the first carrier material belt.

[0058] It is understood that the battery connector of this embodiment further includes a blanking device 900, which includes a second conveying mechanism 910 and a second material tray 920. The second conveying mechanism 910 can be transferred between the second material tray 920 and the second material tray 920 above the conveying path of the second carrier material belt. By setting the blanking device 900, the finished battery connector can be placed on the second material tray 920, combined with Figure 1 and Figure 4 Specifically, the second material tray 920 is positioned on one side of the moving path of the second carrier material belt. The second transport mechanism 910 is an XYZ module, and a suction nozzle is provided at the driving end of the XYZ module. Specifically, the second material tray 920 includes a tray for defective products and a tray for good products. With the cooperation of the second transport mechanism 910 and the internal resistance detection device 700, good and defective products can be packaged separately. The good products can then be processed to the next process or directly stored, while the defective products need to be recycled and subsequently disassembled for secondary use or directly disposed of.

[0059] It is understandable that the battery connector production equipment of this embodiment also includes a coding device 1000, combined with Figure 1 and Figure 4 Specifically, the coding device 1000 is arranged between the second encapsulation device 600 and the internal resistance detection device 700, and is used to code the finished battery connecting piece to facilitate subsequent statistical loop and tracking of the battery connecting piece.

[0060] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to the embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the claims and their equivalents.

Claims

1. A battery connector production device, characterized in that: include: a first conveying device for conveying a first carrier tape, wherein the first carrier tape carries a first component; a welding device, disposed on a side of the conveying path of the first carrier tape, for moving the second component onto the first carrier tape and capable of welding the first component and the second component to form a welded semi-finished product; a second conveying device for conveying a second carrier tape, wherein the second carrier tape is provided with a first insulating tape corresponding to the welding points on the semi-finished welding product; a transfer device, disposed between the first conveying device and the second conveying device, for moving the semi-finished product for welding onto the second carrier tape and capable of placing the welding points on the semi-finished product for welding on top of the first insulating tape; a first adhesive-wrapping device, disposed on a conveying path of the second carrier tape, for lifting and flipping one end of the first insulating tape to fit the other end of the first insulating tape; Wherein, the first transmission device includes a first unwinding assembly and a first pulling assembly, the first unwinding assembly and the first pulling assembly are arranged on both sides of the conveying path of the second carrier tape, and the first pulling assembly is used to drive the first carrier tape to be transported above the second carrier tape, and the transfer device includes a punching mechanism, the punching mechanism is arranged on the conveying path of the second carrier tape, and is used to punch the welding semi-finished product on the first carrier tape onto the second carrier tape; Among them, the battery connecting piece production equipment also includes a second gluing device. Along the transmission direction of the second carrier tape, the second gluing device is arranged behind the first gluing device. The second gluing device includes a gluing mechanism and a gluing mechanism. The gluing mechanism is arranged on the side of the second carrier tape conveying path and is used to transmit the second insulating tape. The gluing mechanism is used to stick the second insulating tape to the welding semi-finished product.

2. The battery connecting piece production equipment according to claim 1, characterized in that: The gluing mechanism includes a second unwinding assembly and a second pulling assembly, the second unwinding assembly and the second pulling assembly are arranged on both sides of the conveying path of the second carrier tape, and the second pulling assembly is used to drive the second insulating tape to be transmitted above the second carrier tape. The gluing mechanism is a stamping mechanism, which is used to punch the second insulating tape onto the second carrier tape.

3. The battery connecting piece production equipment according to claim 1, characterized in that: It also includes an internal resistance detection device, which is arranged behind the first encapsulation device along the transmission direction of the second carrier tape. The internal resistance detection device is used to detect whether the solder joints on the semi-finished welded product are intact.

4. The battery connecting piece production equipment according to claim 3, characterized in that: The internal resistance detection device includes a moving mechanism and a detection mechanism, the detection mechanism includes two groups of contacts, the moving mechanism is arranged above the conveying path of the second carrier material belt, and the detection mechanism is arranged on the moving mechanism, and under the drive of the moving mechanism, the two groups of contacts can move to contact the first component and the second component respectively.

5. The battery connecting piece production equipment according to claim 3, characterized in that: The second transmission device includes a third unwinding component, a winding component and several third pulling components. Along the transmission direction of the second carrier tape, the third unwinding component, the transfer device, the first rubber wrapping device, the second rubber wrapping device, the internal resistance detection device and the winding component are arranged in sequence, and the third pulling components are arranged between the transfer device and the first rubber wrapping device, between the first rubber wrapping device and the second rubber wrapping device, between the second rubber wrapping device and the internal resistance detection device, and between the internal resistance detection device and the winding component.

6. The battery connector production equipment according to any one of claims 1 to 5, characterized in that: It also includes a visual inspection device, which is arranged in front of the transfer device along the transmission direction of the first carrier material belt. The visual inspection device includes a visual inspection mechanism, a first conveying mechanism and a first material tray. The visual inspection mechanism is arranged on one side of the conveying path of the first carrier material belt, and the detection end of the visual inspection mechanism is located above the conveying path of the first carrier material belt. The picking end of the conveying mechanism can be transferred between the conveying path of the first carrier material belt and the first material tray.

7. The battery connector production equipment according to any one of claims 1 to 5, characterized in that: It also includes a material unloading device, which includes a second conveying mechanism and a second material tray. The second conveying mechanism can be transferred on the conveying path of the second carrying material belt and above the second material tray.

8. The battery connector production equipment according to any one of claims 1 to 5, characterized in that: The welding device includes a loading mechanism, a welding mechanism and a turntable. The welding end of the welding mechanism is located above the conveying path of the first carrier material belt. The turntable is arranged on one side of the conveying path of the first carrier material belt, and a plurality of jigs are arranged on the turntable. Driven by the turntable, the jigs can be rotated to the top of the conveying path of the first carrier material belt and below the welding end of the welding mechanism. The loading mechanism is arranged on one side of the turntable, and is used to move the second component onto the jig.

Citation Information

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