Multifunctional ball getter
By integrating air pressure detection and degassing functions, the multi-functional ball degassing machine solves the problem of low efficiency caused by separating air leakage detection and degassing in ball production. It realizes efficient automation of ball air pressure detection and degassing, ensuring the consistency of ball shape and facilitating subsequent packaging.
Patent Information
- Application Number
- CN202520241094.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-15
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2035-02-15
AI Technical Summary
In current ball production, leak detection and degassing processes are carried out separately, resulting in low production efficiency.
Design a multifunctional ball deflator that integrates air pressure detection and deflating functions. The deflating needle, air inlet tube, air pressure sensor and extrusion mechanism realize the automated process of ball air pressure detection and deflating.
It improves the efficiency of leak detection and degassing of the spheres. The dual-station design and synchronous gear drive enable efficient sphere pressure detection and degassing, ensuring the consistency of the sphere shape and facilitating subsequent packaging.
Smart Images

Figure CN223687004U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of ball production equipment, in particular to a multifunctional ball degassing machine. BACKGROUND
[0002] After the production of balls (basketball, football, volleyball, etc.), the ball body needs to be degassed before packaging. However, before degassing, the ball body generally needs to be quality tested to detect whether the ball body has a leak. The existing method is to detect the leak through a leak detection device, and then degas the ball body through a degassing device after the detection is completed. Therefore, the production efficiency is low and needs to be improved. CONTENT OF THE UTILITY MODEL
[0003] In order to improve the efficiency of ball leak detection and degassing, the present application provides a multifunctional ball degassing machine.
[0004] The multifunctional ball degassing machine provided by the present application adopts the following technical scheme: a multifunctional ball degassing machine, comprising a rack and a degassing device, the degassing device comprising a degassing needle tube mechanism and a pressing mechanism, the pressing mechanism being arranged on the rack, the degassing needle tube mechanism being above the pressing mechanism, the degassing needle tube mechanism comprising a degassing needle, an air pipe and a pusher, the degassing needle being fixedly connected with the lower end of the air pipe and being in communication with each other, the pusher being used to drive the air pipe and the degassing needle to carry the ball body downward to the pressing mechanism; the pressing mechanism comprising a pressing block and a driving assembly for driving the pressing block to press the ball body to gradually deflate; the air pipe being connected with an air pressure sensor for detecting and displaying the air pressure of the ball body, the upper end of the air pipe being provided with an on-off valve for closing and opening the pipe opening, when the on-off valve closes the pipe opening, the ball body can be subjected to air pressure detection, and when the on-off valve opens the pipe opening, the ball body can be degassed.
[0005] By adopting the above technical scheme, the ball body is inserted on the degassing needle through the air valve, the on-off valve of the air pipe closes the pipe opening, the air pressure of the ball body is detected by the air pressure sensor, and the operator determines whether the ball body has a leak according to the air pressure displayed by the air pressure sensor. When there is a leak, the operator removes the ball body, and when there is no leak, the degassing device is started, the pusher drives the air pipe and the degassing needle to carry the ball body downward to the pressing mechanism, the on-off valve opens the air pipe, and the driving assembly drives the pressing block to press the ball body to deflate. Thus, the functions of air pressure detection and degassing of the ball body are realized through one device, thereby improving the efficiency of ball leak detection and degassing.
[0006] Preferably, one side of the rack is provided with a rotating assembly, the rotating assembly comprises a mounting rod, a mounting plate and a rotating piece, the mounting rod is vertically mounted on one side of the rack, the rotating piece is mounted on the upper end of the mounting rod, the mounting plate is horizontally mounted on the rotating piece, the two gas removal needle tube mechanisms are respectively mounted on both ends of the mounting plate, and the rotating piece is used to drive the mounting plate to switch the two gas removal needle tube mechanisms to be above the detection sphere pressure work station and the gas removal work station.
[0007] By adopting the above technical scheme, the two gas removal needle tube mechanisms are respectively mounted on both ends of the mounting plate, and the mounting rod is on one side of the rack, so that the gas removal needle tube mechanism located at the detection sphere pressure work station is on the outside of the rack, thereby facilitating the sphere to be inserted on the gas removal needle for pressure detection, and the other gas removal needle tube mechanism is above the gas removal work station, thereby improving the efficiency of sphere pressure detection and gas removal.
[0008] Preferably, the pushing piece is a pushing cylinder, the cylinder body of the pushing cylinder is vertically mounted on the mounting plate, the air pipe is vertically movably inserted into the mounting plate, and the air pipe and the telescopic shaft of the pushing cylinder are fixedly connected through a connecting block.
[0009] By adopting the above technical scheme, the air pipe is driven to move up and down on the mounting plate by the pushing cylinder, thereby stably driving the gas removal needle to carry the sphere to move.
[0010] Preferably, a plurality of the extrusion blocks are arranged in a circumferential direction and are spaced apart, and a plurality of the driving assemblies are mounted in the rack and are used to respectively drive the extrusion blocks to move radially.
[0011] By adopting the above technical scheme, the plurality of extrusion blocks arranged in the circumferential direction and spaced apart can improve the degree of sphere gas removal, thereby facilitating further reduction of the space occupied by the sphere after gas removal and facilitating subsequent packaging and transportation.
[0012] Preferably, the driving assembly comprises a driving piece, a guide seat, a rack, and a first gear, the guide seat is fixedly mounted on the rack, the rack is slidably connected to the guide seat, one end of the rack is fixedly connected to the extrusion block, the first gear is engaged with the rack, and the driving piece drives the first gear to rotate.
[0013] By adopting the above technical scheme, the driving piece drives the first gear to rotate, thereby driving the rack to move radially along the guide seat, thereby driving the extrusion block to move and gradually extrude the sphere.
[0014] Preferably, the guide seat is provided with a first guide wheel on the side away from the first gear, the side wall of the rack is in contact with the wheel surface of the first guide wheel, and the second guide wheel and the third guide wheel are oppositely arranged on the guide seat, and the upper and lower surfaces of the rack are in contact with the second guide wheel and the third guide wheel.
[0015] By adopting the above technical scheme, the rack is limited by the first guide wheel, the second guide wheel and the third guide wheel, thereby improving the stability of the radial movement of the rack and the stability of the gas removal of the ball.
[0016] Preferably, the rack is mounted with an annular guide seat, the annular guide seat is rotationally connected with a synchronous gear, the synchronous gear is hollow in the middle, and a plurality of extrusion blocks are distributed in the hollow part of the synchronous gear; the first gear of each driving assembly is coaxially fixedly connected with a second gear and a third gear, the third gears distributed in the circumferential direction on the outside of the synchronous gear are all in mesh with the synchronous gear, the rack is rotationally connected with a fourth gear, the fourth gear is in mesh with the second gear, and the driving member is connected with the fourth gear for driving the fourth gear to rotate.
[0017] By adopting the above technical scheme, the driving members of the plurality of driving assemblies respectively drive the fourth gear to rotate, the fourth gear drives the second gear to rotate, so that the first gear coaxially fixed on the second gear drives the rack to move, and the third gear drives the synchronous gear to rotate, thereby realizing the synchronous movement of the plurality of extrusion blocks through the synchronous gear, so that the plurality of extrusion blocks synchronously extrude the ball, and the consistency of the shape of the ball after gas removal is improved, which is convenient for subsequent packaging.
[0018] Preferably, the driving member is a driving cylinder, the cylinder body of the driving cylinder is hingedly connected to the rack, and the telescopic shaft of the driving cylinder is eccentrically rotationally connected to the fourth gear.
[0019] By adopting the above technical scheme, the cylinder body of the driving cylinder is hingedly connected to the rack, and the telescopic shaft of the driving cylinder is eccentrically rotationally connected to the fourth gear, thereby driving the fourth gear to rotate, which can reduce the occupation of the space in the rack by the driving member, thereby reducing the volume of the equipment.
[0020] Preferably, the extrusion block has a gap on one side.
[0021] By adopting the above technical scheme, the gap on one side of the extrusion block can make the part of the ball after gas removal gradually sink into the gap during the extrusion of the ball, thereby improving the consistency of the shape of the ball after gas removal, so as to facilitate subsequent packaging.
[0022] Preferably, the frame below the extrusion mechanism is provided with a conveying mechanism, a plurality of push plates are arranged on the conveying belt of the conveying mechanism in intervals, and the conveying mechanism extends out of the frame and is arranged in an upward inclination.
[0023] By adopting the technical scheme, when the ball is deflated, the pushing member drives the air pipe to move upward first, so that the deflation needle is separated from the ball, and then the driving assembly drives the extrusion block to reset, and the deflated ball automatically falls on the conveying mechanism, and the ball is pushed to one side by the push plates on the conveying belt for collection, thereby facilitating the collection of the deflated ball.
[0024] To sum up, the present application has at least one of the following beneficial technical effects:
[0025] 1. The ball is inserted into the deflation needle through the air valve, the opening and closing valve on the air pipe is closed, the air pressure of the ball is detected by the air pressure sensor, and the operator determines whether the ball leaks by the air pressure displayed by the air pressure sensor. When the ball leaks, the operator removes the ball, and when the ball does not leak, the deflation device is started, the pushing member drives the air pipe and the deflation needle to carry the ball to move downward to the extrusion mechanism, the opening and closing valve is opened, the driving assembly drives the extrusion block to extrude and deflate the ball, thereby realizing the functions of air pressure detection and deflation of the ball by one device, and improving the efficiency of ball leak detection and deflation.
[0026] 2. The two deflation needle pipe mechanisms are respectively arranged at both ends of the mounting plate, and the mounting rod is arranged at one side of the frame, so that the deflation needle pipe mechanism at the air pressure detection position of the ball is arranged outside the frame, thereby facilitating the insertion of the ball into the deflation needle for air pressure detection, and the other deflation needle pipe mechanism is arranged at the deflation position, thereby improving the efficiency of air pressure detection and deflation of the ball through the double-position arrangement.
[0027] 3. The driving members of the plurality of driving assemblies drive the fourth gear to rotate, the fourth gear drives the second gear to rotate, thereby driving the first gear coaxially fixed on the second gear to move the rack, and the third gear drives the synchronous gear to rotate, thereby achieving synchronous movement of the plurality of extrusion blocks through the synchronous gear, thereby synchronously extruding the ball by the plurality of extrusion blocks, and further improving the consistency of the shape of the deflated ball, thereby facilitating subsequent packaging. BRIEF DESCRIPTION OF DRAWINGS
[0028] Figure 1 is the overall structure schematic diagram of the deflation machine in the embodiment of the present application.
[0029] Figure 2 is the mounting structure schematic diagram of the deflation needle pipe mechanism in the embodiment of the present application.
[0030] Figure 3 is the mounting structure schematic diagram of the extrusion mechanism in the embodiment of the present application.
[0031] Figure 4 Figure 1 is a schematic diagram of the installation structure of the guide seat, the rack and the extrusion block in the embodiment of the present application.
[0032] Figure 5 Figure 2 is an exploded structural schematic diagram of the synchronous gear and the annular mounting seat in the embodiment of the present application.
[0033] Figure 6 Figure 3 is a schematic diagram of the installation structure of the plurality of gas absorbers and the conveying mechanism in the embodiment of the present application.
[0034] Reference signs: 1, frame; 11, box; 2, gas absorption needle pipe mechanism; 21, gas absorption needle; 22, air pipe; 23, push cylinder; 24, air pressure sensor; 25, on-off valve; 26, connecting block; 3, extrusion mechanism; 31, extrusion block; 311, clearance notch; 32, driving assembly; 321, guide seat; 3211, first guide wheel; 3212, second guide wheel; 3213, third guide wheel; 3214, baffle; 322, rack; 323, first gear; 324, annular mounting seat; 325, synchronous gear; 326, limiting convex edge; 327, second gear; 328, third gear; 329, fourth gear; 330, driving cylinder; 4, rotating assembly; 41, mounting rod; 42, mounting plate; 43, rotating cylinder; 44, guide sleeve; 5, conveying mechanism; 51, push plate. DETAILED DESCRIPTION
[0035] The following will be described in detail with reference to the accompanying drawings. Figures 1-6 The present application will be further described in detail.
[0036] The embodiment of the present application discloses a multifunctional ball gas absorber. Referring to Figure 1 The gas absorber comprises a frame 1 and a gas absorption device, the gas absorption device comprises a gas absorption needle pipe mechanism 2 and an extrusion mechanism 3, the upper part of the frame 1 comprises a box 11 with a central part hollowed out, the extrusion mechanism 3 is installed in the box 11 and used for extruding the ball in the central part hollowed out to gradually deflate. The gas absorption needle pipe mechanism 2 is above the extrusion mechanism 3, the gas absorption needle pipe mechanism 2 is used for detecting the ball pressure and moving the ball to the central part hollowed out of the box 11 and providing a ball deflation channel. Thus, the ball pressure detection and the gas absorption are integrated, so as to improve the efficiency of the ball pressure detection and the gas absorption.
[0037] Referring to Figure 2, specifically, the gas needle mechanism 2 includes a gas needle 21, a vent pipe 22 and a pusher, the gas needle 21 is fixedly connected with the lower end of the vent pipe 22 and communicates with each other, the gas needle 21 is inserted into the ball through the valve, the vent pipe 22 is connected with the air pressure sensor 24 for detecting and displaying the air pressure of the ball, the upper end of the vent pipe 22 is provided with an opening and closing valve 25 for closing and opening the pipe, when the opening and closing valve 25 closes the pipe, the ball can be detected, when the opening and closing valve 25 opens the pipe, the ball can be degassed. The pusher is used to drive the vent pipe 22 and the gas needle 21 to carry the ball to move downward to the middle hollow extrusion mechanism 3, and the ball is extruded and degassed by the extrusion mechanism 3.
[0038] Referring to Figure 1 and Figure 2 , further, the rack 1 is provided with a rotating assembly 4 on one side, the rotating assembly 4 includes a mounting rod 41, a mounting plate 42 and a rotating part, the mounting rod 41 is vertically installed on the upper surface of the rack 1, the rotating part is installed on the upper end of the mounting rod 41, and the mounting plate 42 is horizontally installed on the rotating part. Two gas needle pipe mechanisms 2 are provided, and the two gas needle pipe mechanisms 2 are respectively installed on both ends of the mounting plate 42, and the rotating part is used to drive the mounting plate 42 to rotate to switch the two gas needle pipe mechanisms 2 between the ball air pressure detection station and the degassing station. Two gas needle pipe mechanisms 2 are respectively installed on both ends of the mounting plate 42, and the mounting rod 41 is on one side of the rack 1, so that the gas needle pipe mechanism 2 located in the ball air pressure detection station is located on the outside of the rack 1, so as to facilitate the ball to be inserted into the gas needle 21 for air pressure detection, and the other gas needle pipe mechanism 2 is located above the degassing station, so as to improve the efficiency of the ball air pressure detection and degassing. The rotating part in the embodiment adopts a rotary air cylinder 43, and in other embodiments, a motor or a cylinder connecting rod mechanism can also be used.
[0039] The pusher in the embodiment is a push air cylinder 23, the cylinder body of the push air cylinder 23 is vertically installed on the mounting plate 42, the vent pipe 22 is vertically movably inserted into the mounting plate 42 through a guide sleeve 44, the vent pipe 22 and the telescopic shaft of the push air cylinder 23 are parallel to each other, and the lower end of the vent pipe 22 is fixedly connected with the telescopic shaft of the push air cylinder 23 through a connecting block 26. The vent pipe 22 is driven to move up and down on the mounting plate 42 by the push air cylinder 23, so as to stably drive the gas needle 21 to carry the ball to move.
[0040] Referring to Figure 3Specifically, the extrusion mechanism 3 comprises extrusion blocks 31 and driving assemblies 32 for driving the extrusion blocks 31 to extrude the ball to gradually deflate; the extrusion blocks 31 and the driving assemblies 32 are both provided in plurality, the plurality of extrusion blocks 31 are arranged in the hollow part in the middle of the box body 11 in a circumferential direction and are spaced apart, and the plurality of driving assemblies 32 are installed in the box body 11 and are used for driving the extrusion blocks 31 to move in a radial direction respectively. The plurality of extrusion blocks 31 arranged in the circumferential direction and spaced apart can improve the degree of deflation of the ball, so as to facilitate further reducing the space occupied by the ball after deflation and facilitating subsequent packaging and transportation. In the embodiment, the extrusion blocks 31 and the driving assemblies 32 are provided in four, the four extrusion blocks 31 are arranged in the circumferential direction and are spaced apart at equal intervals, the ball is extruded and deflated by the four extrusion blocks 31, and the volume of the ball can be smaller, so as to facilitate subsequent packaging and transportation.
[0041] The driving assembly 32 comprises a driving member, a guide seat 321, a rack 322 and a first gear 323, the guide seat 321 is fixedly installed on the inner bottom of the box body 11, the rack 322 is slidably connected to the guide seat 321 and extends out of the hollow part in the middle of the box body 11, one end of the rack 322 is fixedly connected to the extrusion block 31, the first gear 323 is rotatably connected to the inner bottom of the box body 11, the first gear 323 is in mesh with the rack 322, and the driving member drives the first gear 323 to rotate. The driving member drives the first gear 323 to rotate, thereby driving the rack 322 to move in a radial direction along the guide seat 321, and thereby driving the extrusion block 31 to move and extrude the ball to gradually deflate.
[0042] With reference to Figure 4 The guide seat 321 is provided with a first guide wheel 3211 away from the first gear 323, a side wall of the rack 322 is in contact with a wheel surface of the first guide wheel 3211, the guide seat 321 is provided with a second guide wheel 3212 and a third guide wheel 3213 in an opposite direction, and upper and lower surfaces of the rack 322 are in contact with the second guide wheel 3212 and the third guide wheel 3213 respectively. The rack 322 is limited by the first guide wheel 3211, the second guide wheel 3212 and the third guide wheel 3213, thereby improving the stability of the radial movement of the rack 322, and thereby improving the stability of the deflation of the ball.
[0043] With reference to Figure 3 and Figure 5The annular mounting seat 324 is arranged in the box body 11, the diameter of the annular mounting seat 324 is greater than the diameter of the middle hollow part in the box body 11, the annular mounting seat 324 is rotationally connected with the middle hollow synchronous gear 325, the annular mounting seat 324 is provided with a limiting convex edge 326 upward away from the guide seat 321, the guide seat 321 extends to the synchronous gear 325 direction and is provided with a blocking edge 3214, the blocking plate is located above the synchronous gear 325, so that the synchronous gear 325 stably rotates on the annular mounting seat 324; the first gear 323 of the plurality of driving assemblies 32 is coaxially fixedly connected with the second gear 327 and the third gear 328, the plurality of third gears 328 distributed in the circumferential direction outside the synchronous gear 325 are meshed with the synchronous gear 325, the fourth gear 329 is rotationally connected with the bottom of the box body 11, the fourth gear 329 is meshed with the second gear 327, the driving member is connected with the fourth gear 329, for driving the fourth gear 329 to rotate, wherein the gear ratios of the first gear 323, the second gear 327, the third gear 328, the fourth gear 329 and the synchronous gear 325 are matched with each other to ensure the synchronous rotation of the first gear 323 and the synchronous gear 325. The driving members of the plurality of driving assemblies 32 drive the fourth gear 329 to rotate respectively, the fourth gear 329 drives the second gear 327 to rotate, so that the first gear 323 coaxially fixed on the second gear 327 drives the rack 322 to move, the third gear 328 drives the synchronous gear 325 to rotate, so that the synchronous movement of the plurality of extrusion blocks 31 is realized through the synchronous gear 325, thereby synchronously extruding the plurality of balls, and the consistency of the shape of the balls after degassing is improved, and subsequent packaging is facilitated.
[0044] The driving member in the embodiment is a driving cylinder 330, the cylinder body of the driving cylinder 330 is hinged to the bottom of the box body 11, and the telescopic shaft of the driving cylinder 330 is eccentrically rotationally connected to the fourth gear 329. The cylinder body of the driving cylinder 330 is hinged to the box body 11, and the telescopic shaft of the driving cylinder 330 is eccentrically rotationally connected to the fourth gear 329, so that the fourth gear 329 is driven to rotate, which can reduce the occupation of the driving member to the space in the box body 11, thereby reducing the volume of the equipment.
[0045] Referring to Figure 5 The extrusion block 31 has a gap 311 on one side. The gap 311 on one side of the extrusion block 31 can make the degassed part of the ball gradually sink into the gap 311 during the extrusion of the ball, thereby improving the consistency of the shape of the ball after degassing, so as to facilitate subsequent packaging.
[0046] Referring to Figure 6The gas removal machine in the embodiment can be arranged side by side, and a conveying mechanism 5 is arranged below the rack 1 of the gas removal machine arranged side by side. The conveying mechanism 5 can receive the spheres that have been completed by the extrusion mechanism 3. Two gas removal machines are arranged in the embodiment. A plurality of push plates 51 are arranged on the conveying belt of the conveying mechanism 5. The part of the conveying mechanism 5 extending out of the rack 1 is arranged upwardly inclined. The end of the inclined arrangement is below a collection box 11 for receiving the spheres that have fallen off. The spheres are pushed to one side by the push plates 51 on the conveying belt to be collected, thereby facilitating the collection of the gas removal spheres. The conveying mechanism 5 in the embodiment is a conventional belt conveying mechanism 5.
[0047] The implementation principle of the multifunctional sphere gas removal machine is as follows: the sphere is inserted on the gas removal needle 21 through the air valve, the opening and closing valve 25 on the air pipe 22 is closed, the air pressure of the sphere is detected by the air pressure sensor 24, and the operator determines whether the sphere leaks by the air pressure displayed by the air pressure sensor 24. When the sphere leaks, the operator removes the sphere. When the sphere does not leak, the gas removal device is started, the rotating cylinder 43 rotates the mounting plate 42, so that the gas removal needle 21 with the sphere is above the extrusion mechanism 3, the pusher drives the air pipe 22 and the gas removal needle 21 to carry the sphere to move downward to the extrusion mechanism 3, the opening and closing valve 25 is opened, the driving assembly 32 drives the extrusion block 31 to extrude and release the air of the sphere. When the sphere is completed, the push cylinder 23 drives the air pipe 22 to move upward first, so that the gas removal needle 21 is separated from the sphere, and then the driving assembly 32 drives the extrusion block 31 to reset. The sphere after gas removal automatically falls on the conveying mechanism 5, and the sphere is pushed to one side by the push plates 51 on the conveying belt to be collected, thereby realizing the air pressure detection and gas removal sphere collection functions of the sphere through one device, and improving the efficiency of sphere detection, leakage and gas removal.
[0048] Unless otherwise defined, technical or scientific terms used in the present application shall have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terms "first", "second", "third", and the like as used in the specification and claims of the application do not indicate any order, quantity, or importance, but are used to distinguish different components. The terms "one" or "a" or the like do not indicate a quantity limitation, but indicate the existence of at least one. The terms "include" or "contain" or the like mean that the elements or objects appearing before "include" or "contain" cover the elements or objects listed after "include" or "contain" and their equivalents, and do not exclude other elements or objects. "Up", "down", "left", "right" and the like are only used to represent relative positional relationship, and when the absolute position of the described object changes, the relative positional relationship may also change accordingly.
[0049] The above are all preferred embodiments of the present application, and do not limit the protection scope of the present application, so that: all equivalent changes made according to the structure, shape, principle of the present application should be covered in the protection scope of the present application.
Claims
1. A multifunctional ball degassing machine, characterized in that: The device includes a frame (1) and a degassing device. The degassing device includes a degassing needle tube mechanism (2) and a squeezing mechanism (3). The squeezing mechanism (3) is mounted on the frame (1). The degassing needle tube mechanism (2) is located above the squeezing mechanism (3). The degassing needle tube mechanism (2) includes a degassing needle (21), a vent pipe (22), and a pusher. The degassing needle (21) is fixedly connected to the lower end of the vent pipe (22) and communicates with it. The pusher is used to drive the vent pipe (22) and the degassing needle (21) to carry the ball. The body moves down to the extrusion mechanism (3); the extrusion mechanism (3) includes an extrusion block (31) and a drive assembly (32) that drives the extrusion block (31) to extrude the ball gradually; the vent pipe (22) is connected to a pressure sensor (24) for detecting and displaying the ball's air pressure, and the upper end of the vent pipe (22) is provided with an opening and closing valve (25) for closing and opening the pipe opening. When the opening and closing valve (25) closes the pipe opening, the ball can detect the air pressure, and when the opening and closing valve (25) opens the pipe opening, the ball can de-gas.
2. The multifunctional ball degassing machine according to claim 1, characterized in that: A rotating assembly (4) is provided on one side of the frame (1). The rotating assembly (4) includes a mounting rod (41), a mounting plate (42), and a rotating component. The mounting rod (41) is vertically installed on one side of the frame (1). The rotating component is installed on the upper end of the mounting rod (41). The mounting plate (42) is horizontally installed on the rotating component. Two degassing needle tube mechanisms (2) are provided. The two degassing needle tube mechanisms (2) are respectively installed at both ends of the mounting plate (42). The rotating component is used to drive the mounting plate (42) to switch the two degassing needle tube mechanisms (2) to be above the detection ball air pressure station and the degassing station.
3. The multifunctional ball degassing machine according to claim 2, characterized in that: The pushing component is a pushing cylinder (23). The cylinder body of the pushing cylinder (23) is vertically mounted on the mounting plate (42). The air pipe (22) is vertically and movably inserted into the mounting plate (42). The air pipe (22) and the telescopic shaft of the pushing cylinder (23) are fixedly connected by a connecting block (26).
4. The multifunctional ball degassing machine according to claim 1, characterized in that: Multiple extrusion blocks (31) and driving components (32) are provided. The multiple extrusion blocks (31) are distributed at intervals along the circumferential direction. The multiple driving components (32) are installed in the frame (1) and are used to drive the extrusion blocks (31) to move radially respectively.
5. The multifunctional ball degassing machine according to claim 4, characterized in that: The drive assembly (32) includes a drive component, a guide seat (321), a rack (322), and a first gear (323). The guide seat (321) is fixedly installed on the frame (1). The rack (322) is slidably connected to the guide seat (321). One end of the rack (322) is fixedly connected to the extrusion block (31). The first gear (323) meshes with the rack (322). The drive component drives the first gear (323) to rotate.
6. The multifunctional ball degassing machine according to claim 5, characterized in that: The guide seat (321) has a first guide wheel (3211) on the side away from the first gear (323). The side wall of the rack (322) is in contact with the wheel face of the first guide wheel (3211). The guide seat (321) has a second guide wheel (3212) and a third guide wheel (3213) arranged vertically opposite each other. The upper and lower surfaces of the rack (322) are in contact with the second guide wheel (3212) and the third guide wheel (3213).
7. The multifunctional ball degassing machine according to claim 5, characterized in that: The frame (1) is equipped with an annular guide seat (321), which is rotatably connected to a synchronous gear (325). The synchronous gear (325) has a hollow center, and multiple extrusion blocks (31) are distributed in the hollow center of the synchronous gear (325). The first gear (323) of multiple drive components (32) is coaxially fixedly connected to a second gear (327) and a third gear (328). Multiple third gears (328) distributed circumferentially outside the synchronous gear (325) mesh with the synchronous gear (325). The frame (1) is rotatably connected to a fourth gear (329), which meshes with the second gear (327). The drive component is connected to the fourth gear (329) to drive the fourth gear (329) to rotate.
8. The multifunctional ball degassing machine according to claim 7, characterized in that: The driving component is a driving cylinder (330), the tail of the cylinder body of the driving cylinder (330) is hinged to the frame (1), and the telescopic shaft of the driving cylinder (330) is eccentrically rotatably connected to the fourth gear (329).
9. The multifunctional ball degassing machine according to claim 1, characterized in that: The extrusion block (31) has a clearance notch (311) on one side.
10. The multifunctional ball degassing machine according to claim 1, characterized in that: The frame (1) located below the extrusion mechanism (3) is equipped with a conveying mechanism (5). Multiple push plates (51) are spaced apart on the conveyor belt of the conveying mechanism (5). The portion of the conveying mechanism (5) extending out of the frame (1) is inclined upward.