Pneumatic shell dismounting device for driving power supply
By designing a pneumatic shell removal device for driving power supply and using telescopic cylinders to drive the moving blocks, the fatigue and safety hazards caused by manual shell removal in the prior art are solved, and the effect of precise pressure control is achieved to reduce damage and waste.
Patent Information
- Application Number
- CN202421634458.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-10
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-07-10
AI Technical Summary
The existing drive power shell removal method requires manual pressing, which causes operators' hands to be tired, easily scratched, and safety hazards, and the force is difficult to control and easily damage the shell.
A pneumatic shell removal device for driving power supply is designed, and the movable pressure block is driven by a telescopic cylinder, and the snap connection between the housing and the power body is released through the joint action of the first pressure block and the second pressure block, so as to accurately control the pressure to avoid damage.
Reduces the labor intensity of the operator, avoids hand fatigue and scratches, and precise pressure control reduces shell damage and material waste.
Smart Images

Figure CN222986176U_ABST
Abstract
Description
Technical Field
[0001] The utility model particularly relates to a pneumatic shell removing device for a driving power supply. Background Art
[0002] The driving power supply includes a housing and a power supply body, and the housing and the power supply body are connected by barbed buckles. In the existing operation of removing the shell of the driving power supply, generally, the driving power supply is manually pressed, and when the housing is subjected to a force, the barbed buckle connecting the housing and the power supply body will loosen, so that the housing can be taken out. However, for each operation of removing the shell of a driving power supply in this dismounting method, the operator needs to manually press it. After multiple operations, the operator's hand is prone to fatigue. Moreover, the whole process is a manual contact operation, so it is easy to scratch the hand, and there are certain potential safety hazards. In addition, during the manual extrusion process, the force is mainly applied to the driving power supply depending on the operator's experience, and it is easy to apply too much force to damage the housing and form defective products, resulting in waste of materials. Content of the Utility Model
[0003] The utility model aims to at least solve one of the technical problems existing in the prior art. For this purpose, the utility model provides a pneumatic shell removing device for a driving power supply.
[0004] In order to solve the above-mentioned existing technical problems, the utility model adopts the following technical solutions:
[0005] A pneumatic shell removing device for a driving power supply includes a base and a power supply placement area arranged on the base for placing the driving power supply. A first pressing block and a second pressing block are respectively arranged on both sides of the power supply placement area. A driving component is connected to the first pressing block. The first pressing block moves relative to the base under the action of the driving component and presses the driving power supply, and the housing is disconnected from the buckle connection with the power supply body under the combined action of the first pressing block and the second pressing block.
[0006] Preferably, the driving component includes a movable pressing block slidably matched with the base. The first pressing block is arranged on the movable pressing block. A telescopic cylinder is connected to the movable pressing block. The telescopic cylinder drives the movable pressing block to move relative to the base, so that the first pressing block approaches or moves away from the second pressing block.
[0007] Preferably, an adjusting seat is arranged on the movable pressing block, and a screw rod is threadedly connected to the adjusting seat. One end of the screw rod is connected to the telescopic end of the telescopic cylinder.
[0008] Preferably, a slide rail for the movable pressing block to slide and cooperate is arranged on the base.
[0009] Preferably, a toggle forward and reverse switch is arranged on the movable pressing block, and the toggle forward and reverse switch is electrically connected to the telescopic cylinder.
[0010] Preferably, the power supply placement area is a groove formed by the inward depression of the base.
[0011] Preferably, both the first pressing block and the second pressing block are Teflon pressing blocks.
[0012] Preferably, a pneumatic control device is connected to the telescopic air cylinder.
[0013] The beneficial effects of the present utility model are as follows:
[0014] The pneumatic shell removal device of the present application replaces the existing manual shell removal. By the cooperation of the telescopic air cylinder to drive the movement of the first pressing block, and driving the power supply under the combined action of the first pressing block and the second pressing block, the barbed snap connection between the shell and the power supply body can be easily released, reducing the labor intensity of the operator; moreover, since the telescopic amount of the telescopic air cylinder can be adjusted, it can be said that the movement amount of the first pressing block can be precisely controlled, thereby adjusting the acting force of the first pressing block on the driving power supply, so as to avoid damaging the shell due to excessive pressure and reducing the scrap rate of raw materials. Description of the Drawings
[0015] The above and / or additional aspects and advantages of the present utility model will become obvious and easy to understand from the description of the embodiments in conjunction with the following drawings, where:
[0016] Figure 1 is a structural schematic diagram of a pneumatic shell removal device for a driving power supply of the present application Figure 1 ;
[0017] Figure 2 is a structural schematic diagram of a pneumatic shell removal device for a driving power supply of the present application Figure 2 ;
[0018] Figure 3 is a structural schematic diagram of a pneumatic shell removal device for a driving power supply of the present application Figure 3 . Detailed Embodiments
[0019] The embodiments of the present utility model will be described in detail below. The illustrated embodiments are shown in the drawings, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions throughout.
[0020] The orientation shown in the drawings should not be construed as limiting the specific protection scope of the present utility model. It is only for reference and understanding of the preferred embodiments. The positions of the product components shown in the drawings can be changed, the quantity can be increased, or the structure can be simplified.
[0021] The "connection" described in the specification and the mutual "connection" relationship of the components shown in the drawings can be understood as a fixed connection, a detachable connection, or a connection formed as a single entity; it can be a direct connection or a connection through an intermediate medium. A person of ordinary skill in the art can understand the connection relationship according to specific circumstances and can obtain methods such as screw connection, riveting, welding, snap connection, or embedding to replace different embodiments in a suitable manner.
[0022] For the orientation words such as up, down, left, right, top, bottom, etc. described in the specification and the orientation shown in the drawings, each component can be in direct contact or in contact through other features between them; for example, being above can mean directly above or obliquely above, or it only means being higher than other objects; similar understandings can be made for other orientations.
[0023] The manufacturing materials of the components with solid shapes shown in the specification and the drawings can be metal materials, non-metal materials, or other synthetic materials; for the machining processes used for the components with solid shapes, they can be stamping, forging, casting, wire cutting, laser cutting, injection molding, numerical milling, 3D printing, machining, etc.; a person of ordinary skill in the art can adaptively select or combine selections according to different processing conditions, costs, and accuracies, but is not limited to the above materials and manufacturing processes.
[0024] A pneumatic shell-opening device for a driving power supply, referring to Figures 1 - 3 , includes a base 1 and a power supply placement area 3 provided on the base 1 for placing the driving power supply 2. A first pressing block 4 and a second pressing block 5 are respectively provided on both sides of the power supply placement area 3. A driving assembly is connected to the first pressing block 4. The first pressing block 4 moves relative to the base 1 under the action of the driving assembly and presses the driving power supply 2, and the shell is disengaged from the snap connection with the power supply body under the combined action of the first pressing block 4 and the second pressing block 5.
[0025] Further, the driving assembly includes a movable pressing block 61 slidably matched with the base 1. The first pressing block 4 is provided on the movable pressing block 61. A telescopic cylinder 62 is connected to the movable pressing block 61. The telescopic cylinder 62 drives the movable pressing block 61 to move relative to the base 1 so that the first pressing block 4 approaches or moves away from the second pressing block 5.
[0026] Further, an adjusting seat 611 is provided on the movable pressing block 61. A screw rod 612 is threadedly connected to the adjusting seat 611. One end of the screw rod 612 is connected to the telescopic end of the telescopic cylinder 62.
[0027] Further, a slide rail 7 for the movable pressing block 61 to slide is provided on the base 1.
[0028] Further, a toggle positive and negative switch 8 is provided on the movable pressing block 61. The toggle positive and negative switch 8 is electrically connected to the telescopic cylinder 62.
[0029] Further, the power supply placement area 3 is a groove formed by the inward depression of the base 1.
[0030] Further, both the first pressing block 4 and the second pressing block 5 are Teflon pressing blocks.
[0031] Further, a pneumatic control device 621 is connected to the telescopic air cylinder 62.
[0032] The working principle of the present utility model is as follows:
[0033] As Figure 1 shown, the driving power supply 2 is placed on the power supply placement area 3. Taking the telescopic air cylinder 62 and other structures as an example of the driving assembly, the telescopic air cylinder 62 is started. Since the telescopic end of the telescopic air cylinder 62 is connected with the movable pressing block 61, and the first pressing block 4 is arranged on the movable pressing block 61, when the telescopic air cylinder 62 drives the movable pressing block 61 to move relative to the base 1, the first pressing block 4 can be driven to move. When the first pressing block 4 moves to abut against the driving power supply 2, at this time, the other side of the driving power supply 2 is abutted by the second pressing block 5, that is to say, at this time, one side of the driving power supply 2 is subjected to the acting force of the first pressing block 4, and the other side is subjected to the acting force of the second pressing block 5. The driving power supply 2 is composed of a housing and a power supply body, and the power supply body and the housing are connected by barbed buckles. When the housing and the power supply body are subjected to the combined acting force of the first pressing block 4 and the second pressing block 5, the barbed buckle connection between the housing and the power supply body will be released. Then, the operator can remove the housing to complete the shell removal operation. During the whole process, the acting forces of the first pressing block 4 and the second pressing block 5 on the driving power supply 2, that is, simulate the extrusion of the driving power supply 2 during manual shell removal. This application replaces the existing manual shell removal. By the cooperation of the telescopic air cylinder 62 to drive the first pressing block 4 to move, under the combined action of the first pressing block 4 and the second pressing block 5 on the driving power supply 2, the barbed buckle connection between the housing and the power supply body can be easily released, reducing the labor intensity of the operator; and since the telescopic amount of the telescopic air cylinder 62 can be adjusted, that is to say, the moving amount of the first pressing block 4 can be accurately controlled, so as to adjust the acting force of the first pressing block 4 on the driving power supply 2, thereby avoiding damage to the housing due to excessive pressure and reducing the scrap rate of raw materials.
[0034] Based on the above technical solution, considering that the type of the driving power supply 2 is different and its size will change, an adjusting seat 611 is provided on the movable pressing block 61 in this application, and a screw rod 612 is provided on the adjusting seat 611. One end of the screw rod 612 is connected to the telescopic end of the telescopic cylinder 62. When the telescopic amount of the telescopic cylinder 62 remains unchanged, the distance between the movable pressing block 61 and the telescopic cylinder 62 can be changed through the threaded fit between the screw rod 612 and the adjusting seat 611, so as to change the distance between the first pressing block 4 and the second pressing block 5. For example, when the screw rod 612 is screwed into the adjusting seat 611, the distance between the first pressing block 4 and the telescopic cylinder 62 becomes smaller at this time. When the telescopic amount of the telescopic cylinder 62 remains unchanged and the telescopic cylinder 62 is started, the moving amount of the movable pressing block 61 relative to the base 1 driven by the telescopic cylinder 62 remains unchanged, but the distance between the first pressing block 4 and the second pressing block 5 becomes larger. At this time, it is suitable for the shell removal operation of the driving power supply 2 with a larger width. The thread details between the screw rod and the adjusting seat are not shown in the figure above.
[0035] In the above technology, for the sliding fit between the movable pressing block 61 and the base 1, a slide rail 7 can be provided on the base 1. The slide rail 7 has a guiding effect on the movement track of the movable pressing block 61, and can make the first pressing block 4 on the movable pressing block 61 press the driving power supply 2 more accurately.
[0036] In the above technical solution, the first pressing block 4 and the second pressing block 5 are preferably Teflon pressing blocks. The pressing blocks made of Teflon material have good flexibility and will not squeeze the product shell.
[0037] In the above technical solution, the power supply placement area 3 is preferably set as a groove formed by the inward depression of the base 1. The setting of the groove has a limiting effect on the driving power supply 2.
[0038] In the above technical solution, a toggle forward and reverse switch 8 can be electrically connected to the telescopic cylinder 62. When the toggle forward and reverse switch 8 is toggled, the telescopic cylinder 62 can be switched to the start or pause state.
[0039] In the above technical solution, a pneumatic control device can be connected to the telescopic cylinder 62. As an example of Embodiment 1, the pneumatic control device takes a compressed gas valve as an example. During operation, when the compressed gas valve 621 controls the gas to enter the pneumatic cylinder, the pneumatic force will push the piston to move outward, so as to achieve extension. When the gas is released, the piston will move inward due to the decrease in pressure, completing contraction. With this design, the telescopic movement of the telescopic cylinder is realized. Since the design principle of the telescopic cylinder belongs to the mature means in this technical field, it will not be elaborated herein.
[0040] Although the present utility model has been described in detail with reference to the above embodiments, it will be apparent to those skilled in the art from this disclosure that various changes or modifications can be made to the present utility model without departing from the principles and spirit scope defined by the claims. Therefore, the detailed description of the embodiments of this disclosure is only for explanation and not for limiting the present utility model, but the scope of protection is defined by the content of the claims.
Claims
1. A driving power supply pneumatic shell removal device, characterized in that: The invention comprises a base (1) and a power supply placement area (3) arranged on the base (1) for placing a driving power supply (2), wherein a first pressing block (4) and a second pressing block (5) are respectively arranged on both sides of the power supply placement area (3), and the first pressing block (4) is connected to a driving component. Under the action of the driving component, the first pressing block (4) moves relative to the base (1) and presses the driving power supply (2), and the housing releases the snap connection with the power supply body under the joint action of the first pressing block (4) and the second pressing block (5).
2. A driving power supply pneumatic shell removal device according to claim 1, characterized in that: The driving assembly comprises a movable pressing block (61) slidably matched with the base (1); the first pressing block (4) is arranged on the movable pressing block (61); the movable pressing block (61) is connected to a telescopic cylinder (62); the telescopic cylinder (62) drives the movable pressing block (61) to move relative to the base (1) so that the first pressing block (4) approaches or moves away from the second pressing block (5).
3. A driving power supply pneumatic shell removal device according to claim 2, characterized in that: The movable pressing block (61) is provided with an adjustment seat (611), and a screw rod (612) is threadedly connected to the adjustment seat (611), and one end of the screw rod (612) is connected to the telescopic end of the telescopic cylinder (62).
4. A driving power supply pneumatic shell removal device according to claim 2, characterized in that: The base (1) is provided with a slide rail (7) for the movable pressing block (61) to slide with.
5. A driving power supply pneumatic shell removal device according to claim 2, characterized in that: The movable pressing block (61) is provided with a forward / reverse toggle switch (8), and the forward / reverse toggle switch (8) is electrically connected to the telescopic cylinder (62).
6. A driving power supply pneumatic shell removal device according to claim 1, characterized in that: The power supply placement area (3) is a groove that is recessed inwardly of the base (1).
7. A driving power supply pneumatic shell removal device according to claim 1, characterized in that: The first pressing block (4) and the second pressing block (5) are both Teflon pressing blocks.
8. A driving power supply pneumatic shell removal device according to claim 5, characterized in that: The telescopic cylinder (62) is connected to a pneumatic control device (621).