Automatic feeding bottle body clamp and using method thereof

By designing disassembly and assembly components, buffer components and vibration components in the automatic loading bottle body clamp, the problems of device maintenance troubles and low loading efficiency in the prior art are solved, and more efficient maintenance and higher processing efficiency are achieved.

CN120156897AInactive Publication Date: 2025-06-17沙宁
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Patent Information

Application Number
CN202510477416.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2025-06-17
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing automatic feeding bottle body clamp devices are mostly fixed, and replacement and maintenance are more troublesome after damage, which can easily affect the feeding efficiency.

Method used

An automatic feeding bottle body clamp is designed, including disassembly and assembly components, buffer components and vibration components. The disassembly and assembly components achieve rapid installation and disassembly through the cooperation of the sliding groove seat and the sliding rod; the buffer components achieve adaptive adjustment of the bottle mouth pressure through the piston cylinder and the buffer medium; the vibration components drive the bottle body to vibrate through the cooperation of the driving motor and the vibration plate, thereby improving the firmness and filling speed of the material.

Benefits of technology

It improves the replacement and maintenance efficiency of the fitting pad, reduces maintenance costs, meets the clamping requirements of different specifications or special-shaped bottles, improves the applicability and stability of the device, and improves the compactness and filling speed of the material through vibration components, and improves the processing efficiency.

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Abstract

The invention discloses an automatic feeding bottle body clamp and a using method thereof, and belongs to the technical field of bottle body clamps. The automatic feeding bottle body clamp comprises a driving part, bottle opening rotating frames are rotationally connected to the two sides of the interior of the driving part, and a dismounting and mounting assembly is arranged on one side of each bottle opening rotating frame. According to the mounting and dismounting device, by arranging the mounting and dismounting assembly, when the sliding groove seat moves to a proper position, a first spring drives a sliding rod and a limiting clamping groove to be clamped with each other through a limiting plate, so that the position of the sliding groove seat is fixed, rapid mounting of the attaching cushion block is completed, and the mounting and dismounting efficiency of the attaching cushion block is improved by rapidly mounting and dismounting the attaching cushion block. According to the device, the replacement and maintenance efficiency of the attaching cushion block can be improved, the maintenance cost is reduced, and the position of the attaching cushion block can be adjusted through the adaptation of the sliding rod and the limiting clamping grooves in different positions, so that the clamping requirements of different specifications or special-shaped bottle bodies are met, and the overall applicability of the device is improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of bottle grippers, and particularly relates to an automatic feeding bottle gripper and its usage method. Background Art

[0002] An automatic feeding bottle gripper is a key device for an automated production line, usually composed of a jaw mechanism, a drive system (such as a cylinder, a servo motor), and a control system. It is mainly applied to the packaging links of industries such as food, beverage, medicine, and cosmetics, and is used to achieve the rapid and precise grasping and feeding of bottled products. Its core function is to clamp the bottle body mechanically or pneumatically, and cooperate with a conveyor belt or a robotic arm to complete the positioning, transfer, and placement of the bottle body, significantly improving the production efficiency and the degree of automation of the production line, effectively reducing the labor cost and product loss, and is an indispensable part of a modern intelligent packaging production line.

[0003] The document with the publication number CN220762676U discloses a bionic Venus flytrap soft gripper, including: a mounting base and a pair of sheet-shaped jaws. Each sheet-shaped jaw includes a limiting bending layer, a bending air cavity layer, and a fixed end; the symmetrically arranged bending air cavity layers face outwards; there is a main air cavity and two sub-air cavities on the bending air cavity layer, and there are also an air inlet one and an air inlet two; the main air cavity includes a plurality of horizontally arranged transverse air chambers, and adjacent two transverse air chambers are connected through a series airway, and the transverse air chambers are then connected to the air inlet one; the sub-air cavity is provided with a plurality of longitudinal air chambers, and adjacent two longitudinal air chambers are connected through a transverse airway or a longitudinal airway, and the longitudinal air chambers are then connected to the air inlet two. After the horizontal and vertical air cavities are inflated, the middle air cavity provides a bending force to drive the overall structure to bend, and the air cavities on both sides perform a wrapping movement, thereby completing the grasping movement; it is made of silica gel, with a soft texture and light weight, and can grasp and carry objects with smooth surfaces and easy to damage, such as fruits;

[0004] The document with the publication number CN218138133U discloses an adaptive jaw device, including: a pneumatic jaw; a jaw assembly, which is arranged below the pneumatic jaw and fixedly connected to the pneumatic jaw, and clamps or loosens a clamping part under the drive of the pneumatic jaw. The jaw assembly is two symmetrically arranged jaws, and each jaw includes: a fixed rod body, which is fixed on the pneumatic jaw; a jaw body, which is arranged on the fixed rod body through an elastic body; wherein, the jaw body adaptively adjusts the distance between the two jaws in the jaw assembly under the action of the elastic body, so as to facilitate the clamping of a special-shaped clamping part. This device can make the jaws fit the special-shaped clamping part when clamping the special-shaped clamping part, and has a buffering effect, avoiding the wear of the special-shaped clamping part, and the whole clamping process is firm and has good stability. However, in the actual use process, the clamping device is mostly fixed, and it is more troublesome to replace and maintain after damage, which is likely to affect the feeding efficiency. Therefore, improvements are needed. Summary of the Invention

[0005] The object of the present invention is to propose an automatic feeding bottle body clamp and its use method to solve the problem that most clamping devices are fixed, which is troublesome to replace and maintain after damage and easily affects the feeding efficiency.

[0006] To achieve the above object, the present invention adopts the following technical solutions:

[0007] An automatic feeding bottle body clamp includes a driving member. On both sides inside the driving member, there are rotatably connected bottle mouth rotating frames. On one side of the bottle mouth rotating frame, there is a disassembly and assembly component. On one side of the disassembly and assembly component, there is a buffer component. Below the bottle mouth rotating frame, there is a linkage rod. Inside the linkage rod, there is a vibration component. On one side of the linkage rod, there is a flexible connection block;

[0008] The disassembly and assembly component includes a sliding groove seat slidably connected to the bottle mouth rotating frame. The cross-sectional shape of the sliding groove seat is U-shaped. On one side of the bottle mouth rotating frame, there is a mounting frame. On one side of the mounting frame, there is a sliding hole. A sliding rod is slidably connected inside the sliding hole. One end of the sliding rod extends to the other side of the bottle mouth rotating frame and is slidably connected to the bottle mouth rotating frame. On one side inside the sliding groove seat, there are a plurality of limit card slots distributed in a linear array. The sliding rod can be mutually clamped with the limit card slots.

[0009] As a further description of the above technical solution:

[0010] On both sides of the bottle mouth rotating frame, there are symmetrically distributed sliding grooves. Inside the sliding groove seat, there are two symmetrically distributed sliding blocks. The sliding grooves are slidably connected to the sliding blocks. The cross-sectional shape of the bottle mouth rotating frame is L-shaped.

[0011] As a further description of the above technical solution:

[0012] One end of the sliding rod away from the limit card slot is connected with a pull button. The outer surface of the pull button is provided with anti-slip lines. The outer surface of the sliding rod is connected with a limit plate. A first spring is sleeved on the outer surface of the sliding rod. The two ends of the first spring are respectively connected with one side of the mounting frame and one side of the limit plate. One side of the limit plate is in contact with one side of the bottle mouth rotating frame. The cross-sectional shape of the limit plate is circular.

[0013] As a further description of the above technical solution:

[0014] The buffer assembly includes a connection box. One side of the connection box is connected to one side of the sliding groove seat. A plurality of piston cylinders filled with buffer medium are connected inside the connection box. A piston plate is slidably connected inside the piston cylinder. One side of the piston plate is connected to a piston rod. The end of the piston rod away from the piston plate extends outside the piston cylinder. One ends of the plurality of piston rods are connected to a plurality of connecting plates. One side of the connecting plate away from the piston rod is connected to a fitting cushion block. An arc-shaped groove is formed inside the fitting cushion block.

[0015] As a further description of the above technical solution:

[0016] A return spring is sleeved on the outer surface of the piston cylinder. Two ends of the return spring are respectively connected to one side of the inner wall of the connection box and one side of the connecting plate.

[0017] As a further description of the above technical solution:

[0018] A plurality of flow holes are formed on one side of the piston plate. The plurality of flow holes are arranged in a circumferential array along the axial center position of the piston rod. The flow holes are used for the flow of the buffer medium.

[0019] As a further description of the above technical solution:

[0020] The vibration assembly includes a rotating shaft. A cavity is formed inside the linkage rod. The rotating shaft is rotatably connected to the cavity through a bearing. A driving cam is connected to the outer surface of the rotating shaft. A moving plate is attached to one side of the driving cam. A plurality of moving rods capable of automatic reset are connected to the side of the moving plate away from the driving cam. The plurality of moving rods are arranged in an equidistant linear array. One end of the moving rod away from the moving plate is connected to a vibrating plate. One side of the vibrating plate is attached to one side of the inner wall of the cavity. An installation plate is connected inside the cavity. The moving rod is slidably connected to the installation plate. A second spring is sleeved on the outer surface of the moving rod. Two ends of the second spring are respectively connected to one side of the installation plate and one side of the moving plate.

[0021] As a further description of the above technical solution:

[0022] The moving plate is slidably connected to the cavity. Two sides of the moving plate are attached to the inner wall of the cavity. One side of the bottle mouth rotating frame is fixedly installed with a driving motor through a mounting seat. One end of the rotating shaft extends outside the cavity and is connected to one end of the output shaft of the driving motor.

[0023] As a further description of the above technical solution:

[0024] Inside the driving member, there are conventional driving parts such as electric push rods, racks, and gears, which are used to drive the relative rotation of two bottle mouth rotating frames. The top of the driving member is connected to a rotating member, and the rotating member is in transmission connection with an external transportation line. The center position of the bottle mouth rotating frame is connected to a connecting round rod, the other end of the connecting round rod is connected to a linkage rod, one side of the linkage rod is connected to a flexible connecting block, and one side of the flexible connecting block is connected to a plurality of fitting particles distributed in a linear array.

[0025] A method for using an automatic feeding bottle body clamp specifically includes the following steps:

[0026] S1. During use, the staff installs the device on the external transportation line. Then, the staff slidably connects the sliding groove seat with the bottle mouth rotating frame and makes the slider fit with the sliding groove to complete the installation of the sliding groove seat. When the sliding groove seat moves to a suitable position, the first spring drives the limiting plate to perform a reset movement, and the limiting plate drives the sliding rod to move downward in a reset manner, so that the sliding rod is engaged with the limiting card slot, thereby completing the fixation of the position of the sliding groove seat and thus completing the quick installation of the fitting cushion block.

[0027] S2. When the fitting cushion block clamps the bottle mouth of the bottle body, the arc-shaped groove inside the fitting cushion block contacts the bottle mouth, causing the fitting cushion block to receive a reverse force. The fitting cushion block drives the piston rod and the return spring to move. At this time, the piston rod drives the piston plate to move in the piston cylinder. During this process, the buffer medium flows through the flow holes, and the resistance of the flowing medium to the piston plate makes the movement process of the fitting cushion block relatively slow and uniform. The fitting cushion block cooperates with the return spring to achieve self-adaptive adjustment of the pressure on the bottle mouth.

[0028] S3. After completing the clamping of the bottle body and the bottle mouth, when the external transportation line cooperates with the device to place the bottle body under the injection pipe for injection, the driving motor is started. The driving motor drives the rotating shaft to rotate, the rotating shaft drives the driving cam to rotate, the driving cam cooperates with the second spring to drive the moving plate to perform a reciprocating motion, the moving plate drives a plurality of moving rods to perform a reciprocating motion, and the moving rods drive the vibrating plate to vibrate the inner wall of the cavity, so that the vibration is transmitted to the flexible connecting block and the fitting particles, thereby driving the bottle body to vibrate, and thus being able to vibrate the material entering the bottle body to improve the processing efficiency.

[0029] In summary, due to the adoption of the above technical solutions, the beneficial effects of the present invention are:

[0030] 1. In the present invention, by providing a disassembly and assembly component, when the sliding groove seat moves to a suitable position, the first spring drives the sliding rod and the limit card slot to be mutually clamped through the limit plate, thereby completing the fixation of the position of the sliding groove seat, and thus completing the quick installation of the fitting cushion block. Through the quick installation and removal of the fitting cushion block, the replacement and maintenance efficiency of the fitting cushion block can be improved, the maintenance cost can be reduced, and through the adaptation between the sliding rod and the limit card slots at different positions, the position of the fitting cushion block can be adjusted, so as to meet the clamping requirements of different specifications or special-shaped bottle bodies, improve the overall applicability of the device. At the same time, the adaptation and limitation between the slider and the sliding groove, on the one hand, can limit the sliding groove seat to prevent it from falling off, and on the other hand, can improve the stability during the movement between the sliding groove seat and the split port rotating frame.

[0031] 2. In the present invention, by providing a buffer component, the arc-shaped groove inside the fitting cushion block contacts the bottle mouth, causing the fitting cushion block to receive a reverse force. The fitting cushion block drives the piston rod and the piston plate to move in the piston cylinder. And the buffer medium flows through the flow holes, and the resistance of the flowing medium to the piston plate makes the movement process of the fitting cushion block relatively slow and uniform. Through the fitting cushion block cooperating with the return spring to achieve the adaptive adjustment of the pressure on the bottle mouth, and cooperating with the linkage between the buffer medium and the piston plate, the pressure on the bottle mouth is prevented from being too large, so as to avoid the bottle mouth being deformed or damaged due to excessive clamping pressure, and reduce the bottle mouth damage rate.

[0032] 3. In the present invention, by providing a vibration component, the driving motor drives the vibration plate to knock on the inner wall of the cavity through the rotating shaft, the driving cam, the second spring, the moving plate and the moving rod, so that the vibration is transmitted to the flexible connection block and the fitting particles, thereby driving the bottle body to vibrate. Thus, the material entering the bottle body can be vibrated. On the one hand, the material entering the bottle body can be made more compact, improving the filling capacity. On the other hand, the vibration can avoid material accumulation, improve the filling speed, and thus improve the processing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 is an overall three-dimensional structure schematic diagram of an automatic feeding bottle body clamp proposed by the present invention;

[0034] Figure 2 is a three-dimensional structure schematic diagram of another perspective of an automatic feeding bottle body clamp proposed by the present invention;

[0035] Figure 3 is a three-dimensional structure schematic diagram of the disassembly and assembly component and the buffer component of an automatic feeding bottle body clamp proposed by the present invention;

[0036] Figure 4 is an automatic feeding bottle body clamp proposed by the present invention Figure 3 partial enlarged structure schematic diagram of part A;

[0037] Figure 5 Schematic three-dimensional structure diagram of a buffer component of an automatic feeding bottle body clamp proposed by the present invention;

[0038] Figure 6 Schematic three-dimensional disassembled structure diagram of a disassembly and assembly component of an automatic feeding bottle body clamp proposed by the present invention;

[0039] Figure 7 Schematic three-dimensional sectional structure diagram of a vibration component of an automatic feeding bottle body clamp proposed by the present invention;

[0040] Figure 8 proposed by the present invention for an automatic feeding bottle body clamp Figure 7 Enlarged structure diagram of part B;

[0041] Figure 9 Schematic three-dimensional internal structure diagram of a vibration component of an automatic feeding bottle body clamp proposed by the present invention.

[0042] Legend:

[0043] 1. Rotating part; 2. Driving part; 3. Bottle mouth rotating frame; 4. Connecting round rod; 5. Fitting particles; 6. Linking rod; 7. Disassembly and assembly component; 701. Sliding groove seat; 702. Sliding groove; 703. Slide block; 704. Mounting frame; 705. Pull button; 706. Limiting plate; 707. First spring; 708. Sliding rod; 8. Buffer component; 801. Fitting cushion block; 802. Connecting box; 803. Connecting plate; 804. Piston rod; 805. Piston cylinder; 806. Piston plate; 807. Flow hole; 808. Return spring; 9. Vibration component; 901. Driving motor; 902. Cavity; 903. Vibration plate; 904. Mounting plate; 905. Rotating shaft; 906. Second spring; 907. Moving rod; 908. Moving plate; 909. Driving cam; 10. Flexible connection block. Detailed implementation manners

[0044] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0045] Please refer to Figures 1-9 , the present invention provides a technical solution:

[0046] An automatic feeding bottle body clamp includes a driving member 2. On both sides inside the driving member 2, there are rotatably connected bottle mouth rotating frames 3. On one side of the bottle mouth rotating frame 3, there is a disassembly and assembly component 7. On one side of the disassembly and assembly component 7, there is a buffer component 8. Below the bottle mouth rotating frame 3, there is a linkage rod 6. Inside the linkage rod 6, there is a vibration component 9. On one side of the linkage rod 6, there is a flexible connection block 10. Inside the driving member 2, there are conventional driving parts such as an electric push rod, a rack, and a gear, which are used to drive the relative rotation of the two bottle mouth rotating frames 3. The top of the driving member 2 is connected to a rotating member 1, and the rotating member 1 is in transmission connection with an external transportation line. The center position of the bottle mouth rotating frame 3 is connected to a connecting round rod 4, and the other end of the connecting round rod 4 is connected to the linkage rod 6. On one side of the linkage rod 6, there is a flexible connection block 10. On one side of the flexible connection block 10, there are a plurality of fitting particles 5 distributed in a linear array.

[0047] The disassembly and assembly component 7 includes a sliding groove seat 701 slidably connected to the bottle mouth rotating frame 3. The cross-sectional shape of the sliding groove seat 701 is U-shaped. On one side of the bottle mouth rotating frame 3, there is a mounting frame 704. On one side of the mounting frame 704, there is a sliding hole, and a sliding rod 708 is slidably connected inside the sliding hole. One end of the sliding rod 708 extends to the other side of the bottle mouth rotating frame 3 and is slidably connected to the bottle mouth rotating frame 3. On one side inside the sliding groove seat 701, there are a plurality of limiting card slots distributed in a linear array, and the sliding rod 708 can be mutually clamped with the limiting card slots. On both sides of the bottle mouth rotating frame 3, there are symmetrically distributed sliding grooves 702. Inside the sliding groove seat 701, there are two symmetrically distributed sliding blocks 703, and the sliding grooves 702 are slidably connected to the sliding blocks 703. The cross-sectional shape of the bottle mouth rotating frame 3 is L-shaped. The end of the sliding rod 708 away from the limiting card slot is connected to a pull button 705, and the outer surface of the pull button 705 is provided with anti-slip patterns. The outer surface of the sliding rod 708 is connected to a limiting plate 706. A first spring 707 is sleeved on the outer surface of the sliding rod 708, and both ends of the first spring 707 are respectively connected to one side of the mounting frame 704 and one side of the limiting plate 706. One side of the limiting plate 706 is in contact with one side of the bottle mouth rotating frame 3, and the cross-sectional shape of the limiting plate 706 is circular.

[0048] The implementation manner is specifically as follows: By providing a disassembly and assembly component 7, when the sliding groove base 701 moves to a proper position, the first spring 707 drives the sliding rod 708 and the limiting slot to be mutually clamped through the limiting plate 706, thereby completing the fixation of the position of the sliding groove base 701, and thus completing the quick installation of the fitting cushion block 801. Through the quick installation and removal of the fitting cushion block 801, the replacement and maintenance efficiency of the fitting cushion block 801 can be improved, the maintenance cost can be reduced, and through the adaptation between the sliding rod 708 and the limiting slots at different positions, the adjustment of the position of the fitting cushion block 801 can be realized, so as to meet the clamping requirements of different specifications or special-shaped bottle bodies, and the overall applicability of the device is improved. At the same time, the adaptation and limitation between the slider 703 and the sliding groove 702, on the one hand, can limit the sliding groove base 701 to prevent the sliding groove base 701 from falling off, and on the other hand, can improve the stability when the sliding groove base 701 moves with the split port rotating frame. By providing the limiting plate 706, the maximum amount of the moving stroke of the sliding rod 708 can be limited to prevent the excessive movement of the moving rod 907 from damaging the limiting slot, and the service lives of the sliding rod 708 and the limiting slot are improved.

[0049] The buffer assembly 8 includes a connection box 802. One side of the connection box 802 is connected to one side of the sliding groove base 701. A plurality of piston cylinders 805 filled with buffer media are connected inside the connection box 802. A piston plate 806 is slidably connected inside the piston cylinder 805. One side of the piston plate 806 is connected to a piston rod 804. The end of the piston rod 804 away from the piston plate 806 extends outside the piston cylinder 805, and one ends of a plurality of piston rods 804 are connected to a plurality of connecting plates 803. One side of the connecting plate 803 away from the piston rod 804 is connected to a fitting cushion block 801. An arc-shaped groove is formed inside the fitting cushion block 801. A return spring 808 is sleeved on the outer surface of the piston cylinder 805. Two ends of the return spring 808 are respectively connected to one side of the inner wall of the connection box 802 and one side of the connecting plate 803. A plurality of flow holes 807 are formed on one side of the piston plate 806. The plurality of flow holes 807 are arranged in a circumferential array along the axial center position of the piston rod 804, and the flow holes 807 are used for the flow of the buffer medium.

[0050] The implementation method is specifically as follows: By setting the buffer assembly 8, the arc groove inside the fitting cushion block 801 contacts the bottle mouth, so that the fitting cushion block 801 is subjected to a reverse force. The fitting cushion block 801 drives the piston rod 804 and the piston plate 806 to move in the piston cylinder 805. Moreover, the buffer medium flows through the flow hole 807, and the resistance of the flowing medium to the piston plate 806 makes the movement process of the fitting cushion block 801 relatively slow and uniform. The fitting cushion block 801 cooperates with the return spring 808 to achieve the adaptive adjustment of the pressure on the bottle mouth, and cooperates with the linkage between the buffer medium and the piston plate 806 to avoid excessive pressure on the bottle mouth, thereby avoiding excessive clamping pressure causing deformation or damage to the bottle mouth, reducing the damage rate of the bottle mouth. And a vertical anti-slip groove 702 is formed in the arc groove to increase the friction with the bottle mouth and reduce the risk of the bottle mouth falling off.

[0051] The vibration assembly 9 includes a rotating shaft 905. A cavity 902 is formed inside the linkage rod 6. The rotating shaft 905 is rotatably connected to the cavity 902 through a bearing. A driving cam 909 is connected to the outer surface of the rotating shaft 905. A moving plate 908 is attached to one side of the driving cam 909. A plurality of moving rods 907 capable of automatic reset are connected to the side of the moving plate 908 away from the driving cam 909. The plurality of moving rods 907 are distributed in an equidistant linear array. One end of the moving rod 907 away from the moving plate 908 is connected to a vibration plate 903. One side of the vibration plate 903 is attached to one side of the inner wall of the cavity 902. An installation plate 904 is connected inside the cavity 902. The moving rod 907 is slidably connected to the installation plate 904. A second spring 906 is sleeved on the outer surface of the moving rod 907. Two ends of the second spring 906 are respectively connected to one side of the installation plate 904 and one side of the moving plate 908. The moving plate 908 is slidably connected to the cavity 902. Both sides of the moving plate 908 are attached to the inner wall of the cavity 902. One side of the bottle mouth rotating frame 3 is fixedly installed with a driving motor 901 through a mounting seat. One end of the rotating shaft 905 extends outside the cavity 902 and is connected to one end of the output shaft of the driving motor 901.

[0052] The implementation method is specifically as follows: By setting the vibration assembly 9, the driving motor 901 drives the vibration plate 903 to knock on the inner wall of the cavity 902 through the rotating shaft 905, the driving cam 909, the second spring 906, the moving plate 908 and the moving rod 907, so that the vibration is transmitted to the flexible connection block 10 and the fitting particles 5, thereby driving the bottle body to vibrate, so that the materials entering the bottle body can be vibrated. On the one hand, the materials entering the bottle body can be made more compact, improving the filling capacity. On the other hand, the vibration can avoid material accumulation and improve the filling speed, thereby improving the processing efficiency.

[0053] A method for using an automatic feeding bottle body clamp specifically includes the following steps:

[0054] S1. During use, the operator installs this device with an external transportation line. After that, the operator slidably connects the sliding groove base 701 with the bottle mouth rotating frame 3 and makes the slider 703 fit with the sliding groove 702 to achieve the installation of the sliding groove base 701. When the sliding groove base 701 moves to a proper position, the first spring 707 drives the limiting plate 706 to perform a reset movement, and the limiting plate 706 drives the sliding rod 708 to move downward in a reset manner, so that the sliding rod 708 is engaged with the limiting card slot, thereby completing the fixation of the position of the sliding groove base 701 and thus completing the quick installation of the fitting cushion block 801.

[0055] S2. When the fitting cushion block 801 clamps the bottle mouth of the bottle body, the arc-shaped groove inside the fitting cushion block 801 contacts the bottle mouth, so that the fitting cushion block 801 is subjected to a reverse acting force. The fitting cushion block 801 drives the piston rod 804 and the return spring 808 to move. At this time, the piston rod 804 drives the piston plate 806 to move inside the piston cylinder 805. During this process, the buffer medium flows through the flow hole 807, and the resistance of the flowing medium to the piston plate 806 makes the movement process of the fitting cushion block 801 relatively slow and uniform.

[0056] S3. After completing the clamping of the bottle body and the bottle mouth, when the external transportation line cooperates with this device to place the bottle body under the filling pipe for filling, the drive motor 901 is started. The drive motor 901 drives the rotating shaft 905 to rotate, the rotating shaft 905 drives the drive cam 909 to rotate, and the drive cam 909 cooperates with the second spring 906 to drive the moving plate 908 to perform a reciprocating movement. The moving plate 908 drives a plurality of moving rods 907 to perform a reciprocating movement, and the moving rods 907 drive the vibrating plate 903 to vibrate the inner wall of the cavity 902, so that the vibration is transmitted to the flexible connection block 10 and the fitting particles 5, thereby driving the bottle body to vibrate.

[0057] Working principle: During use, the operator installs this device with an external transportation line. After that, the operator slidably connects the sliding groove base 701 with the bottle mouth rotating frame 3 and makes the slider 703 fit with the sliding groove 702 to achieve the installation of the sliding groove base 701. When the sliding groove base 701 moves to a proper position, the first spring 707 drives the limiting plate 706 to perform a reset movement, and the limiting plate 706 drives the sliding rod 708 to move downward in a reset manner, so that the sliding rod 708 is engaged with the limiting card slot, thereby completing the fixation of the position of the sliding groove base 701 and thus completing the quick installation of the fitting cushion block 801. By quickly installing and removing the fitting cushion block 801, the replacement and maintenance efficiency of the fitting cushion block 801 can be improved.

[0058] When the fitting pad 801 clamps the bottle mouth of the bottle body, the arc-shaped groove inside the fitting pad 801 contacts the bottle mouth, causing the fitting pad 801 to receive a reverse force. The fitting pad 801 drives the piston rod 804 and the return spring 808 to move. At this time, the piston rod 804 drives the piston plate 806 to move within the piston cylinder 805. During this process, the buffer medium flows through the flow hole 807, and the resistance of the flowing medium to the piston plate 806 makes the movement process of the fitting pad 801 relatively slow and uniform. The fitting pad 801 cooperates with the return spring 808 to achieve adaptive adjustment of the pressure on the bottle mouth and avoid damage to the bottle mouth.

[0059] After the clamping of the bottle body and the bottle mouth is completed, when the external transportation line cooperates with this device to place the bottle body under the injection pipe for injection, the drive motor 901 is started. The drive motor 901 drives the rotating shaft 905 to rotate, and the rotating shaft 905 drives the drive cam 909 to rotate. The drive cam 909 cooperates with the second spring 906 to drive the moving plate 908 to perform a reciprocating motion. The moving plate 908 drives a plurality of moving rods 907 to perform a reciprocating motion, and the moving rods 907 drive the vibrating plate 903 to vibrate the inner wall of the cavity 902, so that the vibration is transmitted to the flexible connection block 10 and the fitting particles 5, thereby driving the bottle body to vibrate, and thus being able to vibrate the material entering the bottle body and improve the processing efficiency.

[0060] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. An automatic bottle feeding clamp, comprising a driving member (2), characterized in that: Both sides of the driving member (2) are rotatably connected to a bottle mouth rotating frame (3); a disassembly assembly (7) is provided on one side of the bottle mouth rotating frame (3); a buffer assembly (8) is provided on one side of the disassembly assembly (7); a connecting rod (6) is provided below the bottle mouth rotating frame (3); a vibration assembly (9) is provided inside the connecting rod (6); and a flexible connecting block (10) is connected to one side of the connecting rod (6); The disassembly assembly (7) comprises a sliding groove seat (701) slidably connected to the bottle mouth rotating frame (3); the cross-section of the sliding groove seat (701) is U-shaped; one side of the bottle mouth rotating frame (3) is connected to a mounting frame (704); one side of the mounting frame (704) is provided with a sliding hole; a sliding rod (708) is slidably connected in the sliding hole; one end of the sliding rod (708) extends to the other side of the bottle mouth rotating frame (3) and is slidably connected to the bottle mouth rotating frame (3); one side of the interior of the sliding groove seat (701) is provided with a plurality of limiting slots distributed in a linear array; the sliding rod (708) can be mutually engaged with the limiting slots.

2. The automatic bottle loading clamp according to claim 1, characterized in that: Both sides of the bottle mouth rotating frame (3) are provided with symmetrically distributed sliding grooves (702); two symmetrically distributed sliding blocks (703) are connected inside the sliding groove seat (701); the sliding grooves (702) are slidably connected to the sliding blocks (703); and the cross-section of the bottle mouth rotating frame (3) is L-shaped.

3. The automatic bottle loading clamp according to claim 1, characterized in that: The end of the sliding rod (708) away from the limiting slot is connected to a pull button (705), and the outer surface of the pull button (705) is provided with anti-slip textures. The outer surface of the sliding rod (708) is connected to a limiting plate (706). The outer surface of the sliding rod (708) is sleeved with a first spring (707), and the two ends of the first spring (707) are respectively connected to one side of the mounting frame (704) and one side of the limiting plate (706). One side of the limiting plate (706) is in contact with one side of the bottle mouth rotating frame (3), and the cross-sectional shape of the limiting plate (706) is circular.

4. The automatic bottle loading clamp according to claim 1, characterized in that: The buffer assembly (8) includes a connection box (802), one side of which is connected to one side of the sliding groove seat (701), a plurality of piston cylinders (805) filled with buffer media are connected inside the connection box (802), a piston plate (806) is slidably connected inside the piston cylinder (805), a piston rod (804) is connected to one side of the piston plate (806), one end of the piston rod (804) away from the piston plate (806) extends to the outside of the piston cylinder (805), and one end of the plurality of piston rods (804) is connected to a plurality of connection plates (803), a side of the connection plate (803) facing away from the piston rod (804) is connected to a fitting pad (801), and an arc groove is provided on the inner side of the fitting pad (801).

5. The automatic bottle loading clamp according to claim 4, characterized in that: The outer surface of the piston cylinder (805) is sleeved with a return spring (808), and the two ends of the return spring (808) are respectively connected to one side of the inner wall of the connection box (802) and one side of the connection plate (803).

6. The automatic bottle loading clamp according to claim 4, characterized in that: A plurality of flow holes (807) are provided on one side of the piston plate (806), and the plurality of flow holes (807) are distributed in a circular array along the axial position of the piston rod (804), and the flow holes (807) are used for the flow of buffer medium.

7. The automatic bottle loading clamp according to claim 1, characterized in that: The vibration component (9) comprises a rotating shaft (905), a cavity (902) is provided inside the linkage rod (6), the rotating shaft (905) is rotatably connected to the cavity (902) via a bearing, the outer surface of the rotating shaft (905) is connected to a driving cam (909), a moving plate (908) is attached to one side of the driving cam (909), and a plurality of moving rods (907) capable of automatically resetting are connected to the side of the moving plate (908) away from the driving cam (909), and the plurality of moving rods (907) are arranged in an equidistant linear array. The movable rod (907) is arranged in a row, one end of the movable rod (907) away from the movable plate (908) is connected to the vibration plate (903), one side of the vibration plate (903) is in contact with one side of the inner wall of the cavity (902), the cavity (902) is connected with a mounting plate (904), the movable rod (907) is slidably connected to the mounting plate (904), the outer surface of the movable rod (907) is sleeved with a second spring (906), and the two ends of the second spring (906) are respectively connected to one side of the mounting plate (904) and one side of the movable plate (908).

8. The automatic bottle loading clamp according to claim 7, characterized in that: The movable plate (908) is slidably connected in the cavity (902), and both sides of the movable plate (908) are in contact with the inner wall of the cavity (902). A driving motor (901) is fixedly mounted on one side of the bottle mouth rotating frame (3) via a mounting seat, and one end of the rotating shaft (905) extends to the outside of the cavity (902) and is connected to one end of the output shaft of the driving motor (901).

9. The automatic bottle loading clamp according to claim 1, characterized in that: The driving member (2) is internally provided with conventional driving parts such as an electric push rod, a rack and a gear, etc., for driving the two bottle mouth rotating frames (3) to rotate relative to each other. The top of the driving member (2) is connected to a rotating member (1), and the rotating member (1) is connected to an external transport line in a transmission manner. The center of the bottle mouth rotating frame (3) is connected to a connecting round rod (4), and the other end of the connecting round rod (4) is connected to a connecting rod (6). One side of the connecting rod (6) is connected to a flexible connecting block (10), and one side of the flexible connecting block (10) is connected to a plurality of linear array-distributed bonding particles (5).

10. A method for using an automatic bottle loading clamp, characterized in that: An automatic bottle loading clamp applied to any one of claims 1 to 9, specifically comprising the following steps: S1. When in use, the staff installs the device with the external transport line, and then the staff connects the sliding groove seat (701) with the bottle mouth rotating frame (3) by sliding, and makes the slider (703) and the sliding groove (702) fit each other, so as to realize the installation of the sliding groove seat (701). When the sliding groove seat (701) moves to a suitable position, the first spring (707) drives the limiting plate (706) to perform a reset movement, and the limiting plate (706) drives the sliding rod (708) to perform a reset movement downward, so that the sliding rod (708) and the limiting slot are mutually engaged, thereby completing the fixing of the position of the sliding groove seat (701), thereby completing the quick installation of the fitting pad (801); S2. When the fitting pad (801) clamps the bottle mouth of the bottle body, the arc groove inside the fitting pad (801) contacts the bottle mouth, so that the fitting pad (801) is subjected to a reverse force, and the fitting pad (801) drives the piston rod (804) and the return spring (808) to move. At this time, the piston rod (804) drives the piston plate (806) to move in the piston cylinder (805). During this process, the buffer medium flows through the circulation hole (807), and the resistance of the circulating medium to the piston plate (806) makes the movement process of the fitting pad (801) relatively slow and uniform. The fitting pad (801) cooperates with the return spring (808) to achieve adaptive adjustment of the bottle mouth pressure; S3. After the bottle body and the bottle mouth are clamped, when the external transport line cooperates with the device to place the bottle body under the injection pipe for injection, the drive motor (901) is started, the drive motor (901) drives the rotating shaft (905) to rotate, the rotating shaft (905) drives the driving cam (909) to rotate, the driving cam (909) cooperates with the second spring (906) to drive the moving plate (908) to reciprocate, the moving plate (908) drives the multiple moving rods (907) to reciprocate, the moving rods (907) drive the vibration plate (903) to knock and vibrate the inner wall of the cavity (902), so that the vibration is transmitted to the flexible connecting block (10) and the bonding particles (5), thereby driving the bottle body to vibrate, so that the material entering the bottle body can be vibrated, thereby improving the processing efficiency.

Citation Information

Patent Citations

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