Bent copper ring feeding device for bottle body machining

By designing a copper ring feeding device for bottle processing, and utilizing a copper wire bending and shearing structure and a clamping and moving component, the copper ring can be quickly fitted, solving the problems of low efficiency and misalignment in fitting copper rings to bottle valve seats, and improving product quality.

CN223543977UActive Publication Date: 2025-11-14NINGBO D&H MASCH MFG CO LTD
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Patent Information

Application Number
CN202423188712.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-11-14
Estimated Expiration
2034-12-23

AI Technical Summary

Technical Problem

In the existing technology, the copper ring of the valve seat of the bottle is inefficient to install and the copper ring is prone to deviation and skew during the installation process, which affects the product quality.

Method used

Design a copper ring feeding device for bottle processing. By setting up a copper wire bending and shearing structure and a clamping and moving component, the copper ring can be quickly fitted. The mechanical arm mechanism clamps the bottle valve seat above the bending column, so that the guide column passes through the through hole of the bottle valve seat and pushes the bending column down to pass through the copper ring, thus realizing the rapid feeding and assembly of the copper ring.

Benefits of technology

This improved the efficiency of fitting the copper ring to the valve seat on the bottle, prevented the copper ring from shifting or tilting during the fitting process, and improved product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of metal bottle processing, in particular to a bent copper ring feeding device for bottle body processing, which comprises a supporting table, a wire feeding seat fixedly mounted at the upper end of the supporting table, a wire feeding disc arranged on the left side of the wire feeding seat, wire guiding seats arranged on the front side and the rear side of the wire feeding disc, and a fixing seat arranged on the front side of the wire feeding seat. A bending column is arranged on the inner side of the fixing base, a guide column is fixedly installed at the upper end of the bending column, a moving plate is arranged on the right side of the fixing base, a first bending groove is formed in the left side of the moving plate, and a telescopic motor is arranged on the right side of the moving plate. Cutting is formed through the movable plate and the front end of the wire seat, forming of a copper ring is achieved through extrusion of the bending column, the first bending groove and the second bending groove, the cylinder body valve seat is clamped and moved to the position above the bending column through the mechanical arm mechanism, the guide column penetrates through a through hole of the cylinder body valve seat, and the copper ring is formed. And the bottle body valve seat pushes the bending column to descend to penetrate through the bent copper ring, so that rapid feeding and assembling of the copper ring are realized.
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Description

Technical Field

[0001] This utility model relates to the field of metal bottle processing technology, and in particular to a curved copper ring feeding device for bottle body processing. Background Technology

[0002] Metal bottles can be used to store various gases and liquids and are widely used in factories, laboratories, hospitals and other environments. During the processing of metal bottles, in order to ensure the airtightness of the metal bottles, a valve body needs to be installed at the bottle mouth to control the opening and closing of the metal bottles.

[0003] Currently, a copper ring needs to be fitted onto the outside of the bottle valve seat. Existing bottle valve seats usually require manually fitting a separately processed copper ring onto the outside of the valve seat, resulting in high processing costs and low efficiency. Furthermore, the copper ring is prone to misalignment or skew during the fitting process, which affects product quality.

[0004] Therefore, to address the issues of low efficiency in setting up copper rings for bottle valve seats and the tendency for the copper rings to shift or become skewed during the setting process, which affects product quality, a copper ring bending and feeding device for bottle processing can be designed. This device directly bends and manufactures the copper rings by setting up a copper wire bending and shearing structure, and then uses a clamping and moving component in conjunction with a guiding structure to pass the valve seat through the manufactured copper ring, thereby achieving rapid setting up of the copper rings and improving production efficiency and product quality. Utility Model Content

[0005] In order to overcome the problems of low efficiency in the existing bottle valve seat copper ring installation and the copper ring being prone to misalignment and skew during installation, which affects product quality.

[0006] The technical solution of this utility model is as follows: a copper ring bending feeding device for bottle processing, including a support platform, a wire feeding seat fixedly installed on the upper end of the support platform, a wire feeding disc arranged on the left side of the wire feeding seat, wire guide seats arranged on the front and rear sides of the wire feeding disc, a fixed seat arranged on the front side of the wire feeding seat, a bending column arranged on the inner side of the fixed seat, a guide column fixedly installed on the upper end of the bending column, a movable plate arranged on the right side of the fixed seat, a bending groove I opened on the left side of the movable plate, a telescopic motor arranged on the right side of the movable plate, a movable seat arranged on the left side of the fixed seat, an electric guide rail arranged at the lower end of the movable seat, a bending plate arranged at the upper end of the movable seat, a bending groove II opened on the left side of the bending plate, and a robotic arm mechanism arranged on the left side of the support platform.

[0007] Preferably, the copper wire is bent once by the extrusion of the bending column and bending groove one through the shearing of the moving plate and the front end of the wire seat. Then, the copper wire is formed by the extrusion of the bending column and bending groove two through the bending plate. The bottle valve seat is clamped and moved above the bending column by the mechanical arm mechanism, so that the guide column passes through the through hole of the bottle valve seat and the bottle valve seat pushes the bending column down to pass through the bent copper ring. This realizes the rapid feeding and assembly of the copper ring, improves the efficiency of copper ring setting of bottle valve seat, and avoids the copper ring from being offset or skewed during the setting process.

[0008] Preferably, the wire feeder is arranged symmetrically up and down, and a drive component is provided on the rear side of the wire feeder base. The wire feeder and the drive component are connected by transmission. The front and rear sides of the wire feeder base and the wire feeder base are adapted to each other. A wire groove is provided at the upper end of the wire feeder base.

[0009] Preferably, the fixed base and the support platform are fixedly connected, the bent column and the inner side of the fixed base are slidably sleeved, and the lower end of the bent column extends to the outer side of the fixed base and is provided with a reset component.

[0010] Preferably, the upper end of the bending column extends to the outside of the fixed base and is adapted to the bending groove, the lower end of the moving plate and the output end of the telescopic motor are fixedly connected by a connecting plate, and the upper end of the telescopic motor and the support platform are fixedly connected.

[0011] Preferably, the electric guide rail and the support platform are fixedly connected, the lower end of the movable seat is fixedly connected to the output end of the electric guide rail, a guide rod is fixedly installed on the left side of the fixed seat, a guide hole is opened on the surface of the movable seat, and the guide rod and the inner side of the guide hole are slidably connected.

[0012] Preferably, the upper ends of the bending plate and the movable seat are fixedly connected, the second bending groove and the left side of the bending column are adapted to each other, and a limit groove is opened on the inner side of the second bending groove.

[0013] Preferably, the robotic arm mechanism includes a column, a transverse drive seat is provided on the front side of the upper end of the column, a longitudinal drive seat is provided on the front side of the transverse drive seat, and a clamping seat is provided on the side of the longitudinal drive seat.

[0014] The beneficial effects of this utility model are:

[0015] This copper ring bending feeding device for bottle processing uses a moving plate that moves to the left, causing its rear end to shear against the front end of the wire seat. Simultaneously, the copper wire is bent once by the extrusion of the bending column and bending groove one. Then, the moving seat and bending plate move to the right, allowing the copper wire to be extruded by the bending column and bending groove two to form the copper ring. A robotic arm mechanism clamps and moves the bottle valve seat above the bending column, allowing the guide column to pass through the through hole of the bottle valve seat. The bottle valve seat then pushes the bending column down to pass through the bent copper ring, achieving rapid feeding and assembly of the copper ring. This improves the efficiency of copper ring fitting on the bottle valve seat and prevents the copper ring from shifting or tilting during the fitting process. Attached Figure Description

[0016] Figure 1 The diagram shown is a three-dimensional structural representation of the curved copper ring feeding device for bottle processing according to this utility model. Figure 1 ;

[0017] Figure 2 The diagram shown is a three-dimensional structural representation of the curved copper ring feeding device for bottle processing according to this utility model. Figure 2 ;

[0018] Figure 3 This utility model is shown. Figure 2 Enlarged view of point A;

[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of the movable plate of this utility model.

[0020] Figure 5 The diagram shown is a three-dimensional structural schematic of the bending plate of this utility model;

[0021] Figure 6 The diagram shown is a three-dimensional structural diagram of the valve seat on the bottle.

[0022] Explanation of reference numerals in the attached drawings: 1. Support platform; 2. Cable feeder; 3. Cable feeder reel; 31. Cable feeder; 4. Fixed seat; 41. Guide rod; 5. Bending column; 51. Guide column; 6. Moving plate; 61. Bending groove one; 62. Telescopic motor; 7. Moving seat; 71. Electric guide rail; 8. Bending plate; 81. Bending groove two; 82. Limiting groove; 91. Column; 92. Lateral drive seat; 93. Longitudinal drive seat; 94. Clamping seat. Detailed Implementation

[0023] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0024] Please see Figures 1-6 This utility model provides an embodiment of a copper ring bending feeding device for bottle processing, including a support platform 1, a wire feeding seat 2 fixedly installed on the upper end of the support platform 1, a wire feeding disc 3 arranged on the left side of the wire feeding seat 2, wire guide seats 31 arranged on the front and rear sides of the wire feeding disc 3, a fixed seat 4 arranged on the front side of the wire feeding seat 2, a bending column 5 arranged on the inner side of the fixed seat 4, a guide column 51 fixedly installed on the upper end of the bending column 5, a movable plate 6 arranged on the right side of the fixed seat 4, a bending groove 61 opened on the left side of the movable plate 6, a telescopic motor 62 arranged on the right side of the movable plate 6, a movable seat 7 arranged on the left side of the fixed seat 4, an electric guide rail 71 arranged at the lower end of the movable seat 7, a bending plate 8 arranged at the upper end of the movable seat 7, a bending groove 81 opened on the left side of the bending plate 8, and a robotic arm mechanism arranged on the left side of the support platform 1.

[0025] Please see Figures 1-5 In this embodiment, the wire feeding reel 3 is arranged symmetrically up and down. A driving component is provided on the rear side of the wire feeding base 2. The wire feeding reel 3 and the driving component are connected in a transmission manner. The wire seat 31 and the front and rear sides of the wire feeding reel 3 are adapted to each other. A wire groove is opened at the upper end of the wire seat 31. The fixed base 4 and the support platform 1 are fixedly connected. The bending column 5 and the inner side of the fixed base 4 are slidably sleeved. The lower end of the bending column 5 extends to the outer side of the fixed base 4 and is provided with a reset component. The upper end of the bending column 5 extends to the outer side of the fixed base 4 and is adapted to the bending groove 61. The lower end of the moving plate 6 and the output end of the telescopic motor 62 are fixedly connected through a connecting plate. The telescopic motor 62 and the upper end of the support platform 1 are fixedly connected. The electric guide rail 71 and the surface of the support platform 1 are fixedly connected. The lower end of the moving base 7 and the output end of the electric guide rail 71 are fixedly connected. A guide rod 41 is fixedly installed on the left side of the fixed base 4. The surface of 7 has a guide hole, the guide rod 41 is slidably connected to the inner side of the guide hole, the upper end of the bending plate 8 and the moving seat 7 are fixedly connected, the second bending groove 81 and the left side of the bending column 5 are mutually adapted, the inner side of the second bending groove 81 has a limiting groove 82, the copper wire is fed to the fixed seat 4 along the wire groove at the upper end of the wire seat 31 by controlling the rotation of the wire feeding disc 3, when the copper wire is fed into the first bending groove 61 and abuts against the inner wall of the first bending groove 61, the moving plate 6 is moved to the left by the telescopic motor 62, so that its rear end forms a shear with the front end of the wire seat 31, cutting the copper wire. At the same time, the copper wire is bent once by the extrusion of the bending column 5 and the first bending groove 61, and then the moving seat 7 and the bending plate 8 are moved to the right by the electric guide rail 71, so that the front and rear ends of the copper wire are formed by the extrusion of the bending column 5 and the second bending groove 81 under the limiting guidance of the limiting groove 82.

[0026] Please see Figures 1-6In this embodiment, the robotic arm mechanism includes a column 91. A transverse drive seat 92 is provided on the front side of the upper end of the column 91, and a longitudinal drive seat 93 is provided on the front side of the transverse drive seat 92. A clamping seat 94 is provided on the side of the longitudinal drive seat 93. After the copper ring is formed, the moving plate 6 and the bending plate 8 are reset by the telescopic motor 62 and the electric guide rail 71. At this time, the bottle valve seat conveyed to the lower part of the clamping seat 94 is clamped by the clamping seat 94. Then, through the cooperation of the transverse drive seat 92 and the longitudinal drive seat 93, the bottle valve seat is moved to the upper part of the bending column 5. The bottle valve seat is lowered by the longitudinal drive seat 93. The guide post 51 passes through the through hole of the bottle valve seat, and the bottle valve seat pushes the bending post 5 down to the inside of the fixed seat 4. At this time, the bottle valve seat passes through the bent copper ring, realizing the rapid loading and assembly of the copper ring. Subsequently, the bottle valve seat is unloaded through the cooperation of the transverse drive seat 92, the longitudinal drive seat 93 and the clamping seat 94. The bending post 5 is reset under the control of the reset component. The reset component can be set as an elastic element to drive the bending post 5 to rise and reset under the action of elastic force, or it can be set as an electric push rod or other drive component to control the bending post 5 to cooperate with the bottle valve seat to descend and rise and reset, which facilitates the bending and loading assembly of the copper ring in the next round.

[0027] During operation, the copper wire is fed along the wire groove at the upper end of the wire seat 31 to the fixed seat 4 by controlling the rotation of the wire feeding disc 3. When the copper wire is fed into the bending groove 61 and abuts against the inner wall of the bending groove 61, the telescopic motor 62 drives the moving plate 6 to move to the left, so that its rear end forms a shear with the front end of the wire seat 31, cutting the copper wire. At the same time, the copper wire is bent once by the compression of the bending column 5 and the bending groove 61. Then, the electric guide rail 71 drives the moving seat 7 and the bending plate 8 to move to the right, so that the front and rear ends of the copper wire are guided by the limiting groove 82 and the copper ring is formed by the compression of the bending column 5 and the bending groove 81. After the copper ring is formed, the telescopic motor 62 and the electric guide rail 71 drive the moving plate 6 and the bending plate 8 to reset. At this time, the bottle body fed to the bottom of the clamping seat 94 is clamped by the clamping seat 94. The valve seat is clamped, and then the bottle valve seat is moved above the bending column 5 through the cooperation of the transverse drive seat 92 and the longitudinal drive seat 93. The longitudinal drive seat 93 drives the bottle valve seat to descend, so that the guide column 51 passes through the through hole of the bottle valve seat, and the bottle valve seat pushes the bending column 5 down to the inside of the fixed seat 4. At this time, the bottle valve seat passes through the bent copper ring, realizing the rapid loading and assembly of the copper ring. Subsequently, the bottle valve seat is unloaded through the cooperation of the transverse drive seat 92, the longitudinal drive seat 93 and the clamping seat 94. The bending column 5 is reset under the control of the reset component. The reset component can be set as an elastic element to drive the bending column 5 to rise and reset under the action of elastic force, or it can be set as an electric push rod or other drive component to control the bending column 5 to move down and rise and reset in coordination with the bottle valve seat, which facilitates the bending and loading assembly of the copper ring in the next round.

[0028] Through the above steps, the moving plate 6 forms a shear with the front end of the wire seat 31, and the copper wire is bent once by the extrusion of the bending column 5 and the bending groove 61. Then, the copper wire is formed by the extrusion of the bending column 5 and the bending groove 81 by the bending plate 8. The bottle valve seat is clamped and moved above the bending column 5 by the mechanical arm mechanism, so that the guide column 51 passes through the through hole of the bottle valve seat, and the bottle valve seat pushes the bending column 5 down to pass through the bent copper ring, realizing the rapid feeding and assembly of the copper ring. This solves the problems of low efficiency in the current bottle valve seat copper ring setting and the easy occurrence of deviation and skewing of the copper ring during the setting process, which affects product quality.

Claims

1. A copper ring feeding device for bottle processing, comprising a support platform (1), characterized in that: A wire feeder (2) is fixedly installed on the upper end of the support platform (1). A wire feeder (3) is provided on the left side of the wire feeder (2). A wire feeder (31) is provided on the front and rear sides of the wire feeder (3). A fixed seat (4) is provided on the front side of the wire feeder (2). A bending column (5) is provided on the inner side of the fixed seat (4). A guide column (51) is fixedly installed on the upper end of the bending column (5). A movable plate (6) is provided on the right side of the fixed seat (4). A bending groove (61) is opened on the left side of the movable plate (6). A telescopic motor (62) is provided on the right side of the movable plate (6). A movable seat (7) is provided on the left side of the fixed seat (4). An electric guide rail (71) is provided at the lower end of the movable seat (7). A bending plate (8) is provided at the upper end of the movable seat (7). A bending groove (81) is opened on the left side of the bending plate (8). A robotic arm mechanism is provided on the left side of the support platform (1).

2. The curved copper ring feeding device for bottle processing according to claim 1, characterized in that: The wire feeding disc (3) is arranged symmetrically up and down. A drive component is provided on the rear side of the wire feeding base (2). The wire feeding disc (3) and the drive component are connected by transmission. The wire seat (31) and the front and rear sides of the wire feeding disc (3) are adapted to each other. A wire groove is provided at the upper end of the wire seat (31).

3. The copper ring feeding device for bottle processing according to claim 1, characterized in that: The fixed base (4) and the support platform (1) are fixedly connected. The bent column (5) and the inner side of the fixed base (4) are slidably sleeved. The lower end of the bent column (5) extends to the outer side of the fixed base (4) and is provided with a reset component.

4. The copper ring feeding device for bottle processing according to claim 1, characterized in that: The upper end of the bending column (5) extends to the outside of the fixed seat (4) and is adapted to the bending groove (61). The lower end of the moving plate (6) and the output end of the telescopic motor (62) are fixedly connected by a connecting plate. The telescopic motor (62) and the upper end of the support platform (1) are fixedly connected.

5. The copper ring feeding device for bottle processing according to claim 1, characterized in that: The electric guide rail (71) and the support platform (1) are fixedly connected. The lower end of the movable seat (7) is fixedly connected to the output end of the electric guide rail (71). A guide rod (41) is fixedly installed on the left side of the fixed seat (4). A guide hole is opened on the surface of the movable seat (7). The guide rod (41) and the inner side of the guide hole are slidably connected.

6. The curved copper ring feeding device for bottle processing according to claim 1, characterized in that: The upper ends of the bending plate (8) and the movable seat (7) are fixedly connected, the left side of the bending groove (81) and the bending column (5) are adapted to each other, and the inner side of the bending groove (81) is provided with a limiting groove (82).

7. The curved copper ring feeding device for bottle processing according to claim 1, characterized in that: The robotic arm mechanism includes a column (91), a transverse drive seat (92) is provided on the front side of the upper end of the column (91), a longitudinal drive seat (93) is provided on the front side of the transverse drive seat (92), and a clamping seat (94) is provided on the side of the longitudinal drive seat (93).