Soft button battery shaping device

By designing a soft button battery shaping device, the shaping drive and material transfer components are used to achieve synchronous shaping of multiple soft button batteries, which solves the problem of low shaping efficiency in the existing technology, improves the shaping efficiency and reduces the difficulty of manual operation.

CN223347808UActive Publication Date: 2025-09-16GUANGDONG HONGJIE NEW ENERGY CO LTD
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Patent Information

Application Number
CN202422496177.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-09-16
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

The shaping efficiency of soft button batteries in the existing technology is low and the manual operation is difficult, which cannot meet market demand.

Method used

A soft button battery shaping device is designed, which includes a base, a shaping component and a material moving component. Through the coordinated action of a shaping drive component, a material pushing drive component and a material pressing drive component, multiple soft button batteries can be synchronously shaped.

Benefits of technology

It improves the efficiency of soft button battery shaping, reduces manual operations, and adapts to the increase in market demand.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model aims to provide a soft button battery shaping device which comprises a base, a shaping assembly and a material moving assembly, a material loading seat is arranged on the base, a material loading jig is detachably arranged on the material loading seat, the shaping assembly comprises a shaping seat, a shaping driving piece and two shaping blocks, the shaping seat is arranged on the base, the shaping driving piece is arranged on the shaping seat, and the two shaping blocks are arranged on the shaping seat. The two shaping blocks are arranged on the shaping base in a sliding mode, the two shaping blocks are distributed oppositely and are connected with the shaping driving part, the shaping driving part is used for driving the two shaping blocks to get close to each other or get away from each other, and the material moving assembly comprises a material ejecting driving part, a material pressing driving part, a plurality of material ejecting rods and a plurality of material pressing rods; the material jacking driving part is arranged below the material carrying seat, the material jacking rods are arranged on the material jacking driving part, the material pressing driving part is arranged above the shaping seat, the material pressing rods are arranged on the material pressing driving part, the material pressing rods and the material jacking rods are distributed oppositely, and the material pressing rods are located between the two shaping blocks.
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Description

Technical Field

[0001] The utility model relates to the technical field of soft button battery processing, in particular to a soft button battery shaping device. Background Art

[0002] Soft button batteries, also known as button-type soft-pack batteries, refer to button-type batteries with an aluminum-plastic film shell. With the popularization of smart wearable devices such as headphones, the market demand for button-type soft-pack batteries has increased year by year.

[0003] The soft button battery is mainly formed by two circular aluminum-plastic half-shells covering a winding core. The ear glue is welded and fixed to the two aluminum-plastic half-shells so that the ear glue is located between the two aluminum-plastic half-shells. In order to reduce the volume of the soft button battery as much as possible, the soft button battery needs to be shaped. After clamping the two end faces of the soft button battery, the side wall of the soft button battery is hot-pressed to press the ear glue to the side wall of the soft button battery as much as possible.

[0004] However, currently, button cell reshaping mainly relies on manual operation, which is not only inefficient but also increases the difficulty for workers to operate due to the decreasing size of button cells. In order to solve the problem of low production efficiency of existing button cell reshaping, the button cell reshaping device of the present application is proposed. Utility Model Content

[0005] The purpose of the utility model is to overcome the deficiencies in the prior art and provide a soft button battery shaping device that can simultaneously shape multiple soft button batteries to improve the shaping efficiency.

[0006] The purpose of this utility model is achieved through the following technical solutions:

[0007] A button cell shaping device, comprising:

[0008] A base, wherein a loading seat is provided on the base, and a loading fixture is detachably provided on the loading seat;

[0009] A shaping assembly, comprising a shaping seat, a shaping drive, and two shaping blocks, wherein the shaping seat is arranged on the base, the shaping drive is arranged on the shaping seat, the two shaping blocks are respectively slidably arranged on the shaping seat, and the two shaping blocks are distributed toward each other, and both shaping blocks are connected to the shaping drive, and the shaping drive is used to drive the two shaping blocks to move closer to or away from each other; and

[0010] The material moving assembly includes a material pushing drive, a material pressing drive, a plurality of material pushing rods and a plurality of material pressing rods. The material pushing drive is arranged below the material loading seat, and each of the material pushing rods is arranged on the material pushing drive, and the material pressing drive is arranged above the shaping seat. Each of the material pressing rods is arranged on the material pressing drive, and each of the material pressing rods is distributed opposite to each of the material pushing rods, and each of the material pressing rods is located between the two shaping blocks.

[0011] Optionally, the shaping drive member includes two shaping cylinders, both of which are arranged on the shaping seat, and the two shaping blocks are respectively connected to the output shafts of the two shaping cylinders.

[0012] Optionally, the shaping block includes a connecting plate and a material plate, the material plate is slidably arranged on the shaping seat, and the connecting plate is respectively connected to the material plate and the output shaft of the shaping cylinder.

[0013] Optionally, a plurality of monolithic heads are provided on the monolithic plate, and the monolithic heads are spaced apart from each other.

[0014] Optionally, an arc-shaped groove is provided on one end of the material head away from the material plate.

[0015] Optionally, a heat insulating block is further provided on the shaping seat, and a heating block is provided on the heat insulating block. When the material shaping head slides relative to the shaping seat, the end of the material shaping head close to the arc groove approaches or moves away from the heating block.

[0016] Optionally, a guide plate is provided on the shaping seat, and a plurality of guide holes are opened on the guide plate, and each of the shaping heads is adaptively inserted into each of the guide holes.

[0017] Optionally, the pressing drive component includes a driving part, a slide and a cross plate, the driving part is arranged on the base, the slide is arranged on the output shaft of the driving part, the cross plate is arranged on the slide, and each pressing rod is arranged on the cross plate at intervals.

[0018] Optionally, the pressing drive component further includes a buffer plate and a buffer spring, the buffer plate is slidably arranged on the slide seat, the buffer spring is respectively in contact with the buffer plate and the slide seat, and the cross plate is arranged on the buffer plate.

[0019] Optionally, the ejection drive component includes an ejection electric cylinder and an ejection plate, the ejection electric cylinder is arranged below the loading seat, the ejection plate is slidably arranged in the loading seat along the vertical direction, and the ejection plate is connected to the output shaft of the ejection electric cylinder, and each ejection rod is arranged at intervals on the ejection plate.

[0020] Compared with the prior art, the present invention has at least the following advantages:

[0021] The soft button battery shaping device of the present invention includes a base, a shaping assembly and a material moving assembly. The base is provided with a loading seat, and the loading seat is detachably provided with a loading jig. The shaping assembly includes a shaping seat, a shaping drive member and two shaping blocks. The shaping seat is provided on the base, and the shaping drive member is provided on the shaping seat. The two shaping blocks are respectively slidably provided on the shaping seat, and the two shaping blocks are distributed toward each other, and the two shaping blocks are both connected to the shaping drive member. The shaping drive member is used to drive the two shaping blocks to move closer to or away from each other. The material moving assembly includes a lifting drive member, a pressing drive member, a plurality of lifting rods and a plurality of pressing rods. The lifting drive member is provided below the loading seat, and each lifting rod is provided on the lifting drive member. The pressing drive member is provided above the shaping seat, and each pressing rod is provided on the pressing drive member, and each pressing rod is respectively distributed toward each lifting rod, and each pressing rod is located between the two shaping blocks. In this way, by synchronously loading and unloading the loading jig and each soft button battery, multiple soft button batteries in the loading jig are pressed and shaped synchronously, replacing the individual operation of workers, thereby effectively improving the efficiency of soft button battery shaping. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.

[0023] Figure 1 This is a schematic structural diagram of a button battery shaping device according to one embodiment of the present invention;

[0024] Figure 2 for Figure 1 A side view of the button cell shaping device shown;

[0025] Figure 3 This is a schematic structural diagram of a shaping block according to one embodiment of the present invention;

[0026] Figure 4 This is a partial structural diagram of a material pressing drive member according to one embodiment of the present invention;

[0027] Figure 5 It is a structural schematic diagram of a material loading fixture according to one embodiment of the present invention.

[0028] Description of reference numerals:

[0029] 10. Soft button battery shaping device; 100. Base; 200. Shaping assembly; 300. Material moving assembly; 410. Loading seat; 420. Loading fixture; 210. Shaping seat; 220. Shaping drive member; 230. Shaping block; 310. Ejecting drive member; 320. Pressing drive member; 330. Ejecting rod; 340. Pressing rod; 221. Shaping cylinder; 231. Connecting plate; 232. Material shaping plate; 233. Material shaping head; 2331. Arc groove; 240. Insulation block; 250. Heating block; 260. Guide plate; 321. Drive unit; 322. Slide; 323. Horizontal plate; 324. Buffer plate; 325. Buffer spring; 311. Ejecting electric cylinder; 312. Ejecting plate; 411. Receiving slot; 421. Battery slot; 422. Air-avoiding hole. DETAILED DESCRIPTION

[0030] In order to facilitate the understanding of the present invention, the present invention will be described in more detail below with reference to the accompanying drawings, in which preferred embodiments of the present invention are shown.

[0031] like Figures 1 to 5 As shown, a soft button battery shaping device 10 includes a base 100, a shaping component 200 and a material moving component 300. The base 100 is provided with a loading seat 410, and the loading seat 410 is detachably provided with a loading fixture 420. The shaping component 200 includes a shaping seat 210, a shaping driving member 220 and two shaping blocks 230. The shaping seat 210 is provided on the base 100, and the shaping driving member 220 is provided on the shaping seat 210. The two shaping blocks 230 are respectively slidably provided on the shaping seat 210, and the two shaping blocks 230 are distributed toward each other, and the two shaping blocks 230 are connected to the shaping driving member 220. Then, the shaping drive member 220 is used to drive the two shaping blocks 230 to move closer to or away from each other, and the material moving assembly 300 includes a lifting drive member 310, a pressing drive member 320, a plurality of lifting rods 330 and a plurality of pressing rods 340. The lifting drive member 310 is arranged below the material loading seat 410, and each lifting rod 330 is arranged on the lifting drive member 310. The pressing drive member 320 is arranged above the shaping seat 210, and each pressing rod 340 is arranged on the pressing drive member 320, and each pressing rod 340 is distributed opposite to each lifting rod 330, and each pressing rod 340 is located between the two shaping blocks 230.

[0032] It should be noted that the loading seat 410 is mounted on the base 100, and the loading fixture 420 is used to accommodate multiple batteries. After the loading fixture 420 is placed on the loading seat 410, each battery in the loading fixture 420 is aligned with each ejector pin 330. In this way, the pressing drive 320 drives each pressing pin 340 to descend until the pressing pin 340 respectively abuts against each battery in the loading fixture 420. Then, the ejector drive 310 drives each ejector pin 330 to rise until the ejector pin 330 abuts against each battery in the loading fixture 420. At this time, each battery in the loading fixture 420 is clamped by each pressing pin 340 and each ejector pin 330, and the pressing pins 340 and ejector pins 330 distributed in opposite directions jointly clamp a single battery. Then, the pressing drive 320 and the ejecting drive 310 operate synchronously, causing the ejecting rod 330 and the pressing rod 340 to rise synchronously, and the battery is driven away from the loading fixture 420. Since the pressing rod 340 is located between the two shaping blocks 230, as the pressing rod 340 and the ejecting rod 330 rise synchronously, until the battery rises between the two shaping blocks 230, the ejecting rod 330 and the pressing rod 340 stop, and then the shaping drive 220 drives the two shaping blocks 230 closer to each other, eventually causing the two shaping blocks 230 to jointly clamp the two sides of the battery to shape the soft button battery. When the soft button battery is completely shaped, the shaping drive 220 drives the shaping blocks 230 to return to their original position, and the pressing drive 320 and the ejecting drive 310 descend synchronously, and finally the soft button battery falls back into the loading fixture 420. Finally, the pressing drive 320 drives the pressing rod 340 to rise and return to its original position. In this way, by synchronously loading and unloading the loading fixture 420 and each soft button battery, multiple soft button batteries can be pressed and shaped synchronously, replacing the individual operation of workers, thereby effectively improving the soft button battery shaping efficiency.

[0033] like Figure 1 As shown, in one embodiment, the shaping drive member 220 includes two shaping cylinders 221 , both of which are disposed on the shaping seat 210 , and the two shaping blocks 230 are respectively connected to the output shafts of the two shaping cylinders 221 .

[0034] It should be noted that the two shaping cylinders 221 respectively drive the two shaping blocks 230 to move closer to or away from each other, thereby ensuring that the two shaping blocks 230 can stably press and shape the button battery.

[0035] like Figure 1 and Figure 2 As shown, in one embodiment, the shaping block 230 includes a connecting plate 231 and a material plate 232. The material plate 232 is slidably disposed on the shaping seat 210. The connecting plate 231 is connected to the material plate 232 and the output shaft of the shaping cylinder 221 respectively.

[0036] In this way, the connecting plate 231 connects the material plate 232 and the shaping cylinder 221 respectively, so that the shaping cylinder 221 stably drives the material plate 232 to clamp and shape the soft button battery.

[0037] like Figure 3 As shown, in one embodiment, a plurality of monolithic heads 233 are provided on the monolithic plate 232 , and the monolithic heads 233 are spaced apart from each other.

[0038] In this way, each shaping head 233 is used to press and clamp one soft button battery. By providing multiple shaping heads 233 , multiple soft button batteries can be pressed and clamped at the same time, thereby effectively improving the shaping efficiency of the soft button batteries.

[0039] like Figure 3 As shown, in one embodiment, an arcuate groove 2331 is formed on one end of the material head 233 away from the material plate 232. Thus, the arcuate groove 2331 cooperates with the outer wall of the button cell to reliably press and shape the button cell.

[0040] like Figure 2 As shown, in one embodiment, a heat insulating block 240 is further provided on the shaping seat 210, and a heating block 250 is provided on the heat insulating block 240. When the whole material head 233 slides relative to the shaping seat 210, the end of the whole material head 233 close to the arc groove 2331 is close to or away from the heating block 250.

[0041] It should be noted that when the material head 233 slides to approach the heating block 250, the end of the material head 233 close to the arc groove 2331 will contact the heating block 250, so that the heating block 250 heats the material head 233. In this way, when the material head 233 clamps the soft button battery, the arc groove 2331 of the material head 233 clamps and shapes the soft button battery. In one embodiment, a heating core is installed in the heating block 250 to heat and increase the temperature. Furthermore, the heating block 250 and the shaping seat 210 are separated by providing an insulating block 240 to prevent the temperature of the shaping seat 210 from rising. For example, the insulating block 240 is made of insulating wood.

[0042] like Figure 2 As shown, in one embodiment, a guide plate 260 is provided on the shaping seat 210, and a plurality of guide holes are opened on the guide plate 260, and each shaping head 233 is adapted to pass through each guide hole. In this way, the shaping head 233 can stably slide back and forth relative to the shaping seat 210.

[0043] like Figure 1 and Figure 2As shown, in one embodiment, the pressing drive member 320 includes a driving portion 321, a slide 322 and a cross plate 323. The driving portion 321 is arranged on the base 100, the slide 322 is arranged on the output shaft of the driving portion 321, the cross plate 323 is arranged on the slide 322, and each pressing rod 340 is arranged at intervals on the cross plate 323.

[0044] It should be noted that, for example, the drive unit 321 is a screw module driven by a motor, and the slide 322 is mounted on the output shaft of the drive unit 321. The drive unit 321 drives the slide 322 to move up and down. The horizontal plate 323 is mounted on the slide 322, and the press rods 340 are installed on the horizontal plate 323 at intervals.

[0045] like Figure 1 、 Figure 2 and Figure 4 As shown, in one embodiment, the pressing drive member 320 also includes a buffer plate 324 and a buffer spring 325. The buffer plate 324 is slidably set on the slide 322. The buffer spring 325 is respectively in contact with the buffer plate 324 and the slide 322. The cross plate 323 is set on the buffer plate 324.

[0046] It should be noted that in order to prevent the pressing rod 340 and the ejecting rod 330 from jointly damaging the button battery, a buffer plate 324 is slidably mounted on the slide 322. For example, the buffer plate 324 is mounted on the slide 322 via a slide rail, so that the buffer plate 324 can slide vertically relative to the slide 322. The buffer spring 325 abuts against the buffer plate 324 and the slide 322, respectively. In this way, under the elastic thrust of the buffer spring 325, the buffer plate 324 has a tendency to slide downward. The cross plate 323 is mounted on the buffer plate 324. In this way, when the pressing rod 340 descends to press the button battery, the buffer spring 325 will be compressed, thereby preventing the button battery from being damaged due to excessive pressure.

[0047] like Figure 1 As shown, in one embodiment, the ejection drive component 310 includes an ejection electric cylinder 311 and an ejection plate 312. The ejection electric cylinder 311 is arranged below the loading seat 410, and the ejection plate 312 is slidably arranged in the loading seat 410 along the vertical direction. The ejection plate 312 is connected to the output shaft of the ejection electric cylinder 311, and each ejection rod 330 is arranged at intervals on the ejection plate 312.

[0048] It should be noted that a plurality of guide rods distributed along the vertical direction are installed in the loading base 410, and each guide rod passes through the ejection plate 312. In this way, the ejection electric cylinder 311 drives the ejection plate 312 to move up and down stably relative to the loading base 410, so that each ejection rod 330 installed on the ejection plate 312 can move up and down, so that the ejection rod 330 can lift the soft button battery in the loading fixture 420.

[0049] like Figure 1 As shown, in one embodiment, a receiving groove 411 is formed on the top of the material loading base 410 , and the material loading fixture 420 is used to be placed in the receiving groove 411 .

[0050] like Figure 5 As shown, in one embodiment, a plurality of battery slots 421 for accommodating button batteries are formed on the loading fixture 420 , and a clearance hole 422 is formed on the bottom wall of the battery slot 421 so that the ejecting rod 330 can pass through the clearance hole 422 .

[0051] The above-mentioned embodiments only express several implementation methods of the present invention, and their descriptions are relatively specific and detailed, but they cannot be understood as limiting the scope of the utility model patent. Unless otherwise specifically defined, the installation / fixing / setting mentioned in the present invention can be understood to include but not be limited to locking and fixing with screws / screws and welding. It should be pointed out that for ordinary technicians in this field, several variations and improvements can be made without departing from the concept of the present invention, and these all fall within the scope of protection of the present invention. Therefore, the scope of protection of the utility model patent shall be based on the attached claims.

Claims

1. A button battery shaping device, characterized in that: include: A base, wherein a loading seat is provided on the base, and a loading fixture is detachably provided on the loading seat; A shaping assembly, comprising a shaping seat, a shaping drive, and two shaping blocks, wherein the shaping seat is disposed on the base, the shaping drive is disposed on the shaping seat, the two shaping blocks are respectively slidably disposed on the shaping seat, and the two shaping blocks are distributed toward each other, and both shaping blocks are connected to the shaping drive, and the shaping drive is used to drive the two shaping blocks to move closer to or away from each other; and The material moving assembly includes a material pushing drive, a material pressing drive, a plurality of material pushing rods and a plurality of material pressing rods. The material pushing drive is arranged below the material loading seat, and each of the material pushing rods is arranged on the material pushing drive, and the material pressing drive is arranged above the shaping seat. Each of the material pressing rods is arranged on the material pressing drive, and each of the material pressing rods is distributed opposite to each of the material pushing rods, and each of the material pressing rods is located between the two shaping blocks.

2. The button cell shaping device according to claim 1, characterized in that: The shaping drive component includes two shaping cylinders, both of which are arranged on the shaping seat, and the two shaping blocks are respectively connected to the output shafts of the two shaping cylinders.

3. The button cell shaping device according to claim 2, characterized in that: The shaping block includes a connecting plate and a material plate. The material plate is slidably arranged on the shaping seat. The connecting plate is respectively connected to the material plate and the output shaft of the shaping cylinder.

4. The button cell shaping device according to claim 3, characterized in that: A plurality of monolithic heads are provided on the monolithic plate, and the monolithic heads are spaced apart from each other.

5. The button cell shaping device according to claim 4, characterized in that: An arc-shaped groove is provided on one end of the material-forming head away from the material-forming plate.

6. The button cell shaping device according to claim 5, characterized in that: The shaping seat is also provided with a heat insulating block, and the heat insulating block is provided with a heating block. When the shaping head slides relative to the shaping seat, the end of the shaping head close to the arc groove approaches or moves away from the heating block.

7. The button cell shaping device according to claim 4, characterized in that: The shaping seat is provided with a guide plate, and a plurality of guide holes are opened on the guide plate. Each of the shaping heads is adaptively inserted into each of the guide holes.

8. The button cell shaping device according to claim 1, characterized in that: The pressing drive component includes a driving part, a slide and a transverse plate. The driving part is arranged on the base, the slide is arranged on the output shaft of the driving part, the transverse plate is arranged on the slide, and each pressing rod is arranged on the transverse plate at intervals.

9. The button cell shaping device according to claim 8, characterized in that: The pressing drive component further includes a buffer plate and a buffer spring. The buffer plate is slidably arranged on the slide seat. The buffer spring is respectively in contact with the buffer plate and the slide seat. The transverse plate is arranged on the buffer plate.

10. The button cell shaping device according to claim 1, characterized in that: The ejection drive component includes an ejection electric cylinder and an ejection plate. The ejection electric cylinder is arranged below the loading seat. The ejection plate is slidably arranged in the loading seat along the vertical direction, and the ejection plate is connected to the output shaft of the ejection electric cylinder. Each ejection rod is arranged on the ejection plate at intervals.