Essence filling and capping device

By designing a feeding conveyor belt and a serum filling and capping device with multiple functional components, the problem of serum leakage during transportation was solved, enabling rapid filling and capping, and improving the practicality of the device and the quality of the finished product.

CN223705209UActive Publication Date: 2025-12-23ZHEJIANG YINGSHU COSMETICS TECH CO LTD
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Patent Information

Application Number
CN202520287672.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-22
Publication Date
2025-12-23
Estimated Expiration
2035-02-22

AI Technical Summary

Technical Problem

Existing serum filling and capping devices are prone to leakage during transportation, allowing external contaminants to enter the bottle and affecting the quality of the finished product.

Method used

An essence filling and capping device was designed, comprising a feeding conveyor belt, a filling section, a stopper section, an inclined frame, and a tightening section. The bottle is transported by the feeding conveyor belt, and the filling section, stopper section, and tightening section are used to achieve rapid filling and capping, thus avoiding leakage.

Benefits of technology

This effectively prevents leakage of the essence bottle during transportation, improving the practicality of the device and the quality of the finished product.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an essence filling and capping device, and relates to the technical field of cosmetic manufacturing. The feeding conveying belt comprises a feeding conveying belt body and a workbench, the workbench is arranged on one side of the feeding conveying belt body, tightening parts are arranged at the two ends of the side, away from the feeding conveying belt body, of the workbench, a plugging part is arranged at one end of the workbench, and an inclined frame is arranged on the side, close to the plugging part, of the workbench. By arranging the feeding part, the feeding conveying belt main body, the discharging part, the workbench, the tightening part, the inclined frame, the plugging part and the filling part, essence bottles can be conveyed to the feeding conveying belt main body through the feeding part, then the essence bottles can be conveniently conveyed through the feeding conveying belt main body, and in the essence bottle conveying process, the essence bottles can be conveniently conveyed through the feeding conveying belt main body. The essence filling and capping device has the advantages that essence can be quickly filled and capped by the aid of the filling portion, the plugging portion, the inclined frame and the tightening portion, leakage of essence bottles during repeated transportation is avoided, and practicality of the essence filling and capping device is effectively improved.
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Description

Technical Field

[0001] This application relates to the field of cosmetic manufacturing technology, specifically to an essence filling and sealing device. Background Technology

[0002] With the development of the times and the continuous improvement of living standards, people are paying more and more attention to self-care, especially hair care. Hair care serums are very popular. However, most existing hair care serums are stored in bottles for easy sale and transportation. Therefore, there is a need for a serum filling and sealing device.

[0003] Regarding the aforementioned technologies, the applicant believes that when the device is in operation, the essence bottle is moved below the filling device, the essence is filled using the filling head, and then the staff needs to move the filled essence bottle below the sealing device to seal the essence bottle. However, during repeated transportation, the essence liquid inside the essence bottle may leak, and external contaminants may enter the bottle, thus affecting the quality of the finished product. Utility Model Content

[0004] The purpose of this application is to provide an essence filling and capping device to solve the problem mentioned in the background art that the essence liquid filled inside the essence bottle will leak during repeated transportation, and external contaminants will also enter the bottle, thereby affecting the quality of the finished product.

[0005] To achieve the above objectives, this application provides the following technical solution: a serum filling and capping device, comprising a feeding conveyor belt body and a worktable, wherein the worktable is disposed on one side of the feeding conveyor belt body, and both ends of the worktable away from the feeding conveyor belt body are provided with tightening parts, one end of the worktable is provided with a stoppering part, and an inclined frame is provided on the side of the worktable near the stoppering part, the end of the feeding conveyor belt body near the stoppering part is provided with a filling part, and the side of the feeding conveyor belt body away from the worktable is provided with a feeding part.

[0006] By adopting the above technical solution, the feeding unit can transport the essence bottle to the main body of the feeding conveyor belt, and the main body of the feeding conveyor belt can then be used to conveniently transport the essence bottle. During the transport of the essence bottle, the filling unit, the stopper unit, the tilting frame and the tightening unit can be used to quickly fill and seal the essence, thus preventing leakage of the essence bottle during repeated transport and effectively improving the practicality of the device.

[0007] Preferably, the feeding section includes a placement truncated cone disposed on the side of the feeding conveyor belt body away from the worktable. A rotating rod is rotatably disposed at the top of the placement truncated cone, and an S-shaped steel plate is disposed at the bottom of the rotating rod. An inclined feeding plate is disposed on the side of the placement truncated cone away from the feeding conveyor belt body. Fixed blocks are evenly disposed at the top of the placement truncated cone, and adjusting bolts are internally threaded to the fixed blocks. Conveying plates are evenly disposed outside the adjusting bolts. The conveying plates are movably disposed at the top of the placement truncated cone, and the end of the conveying plate away from the placement truncated cone abuts against the top of the feeding conveyor belt body.

[0008] By adopting the above technical solution, the tilt of the inclined feed plate allows empty bottles to gradually accumulate on the placement platform. The operation of the rotary motor inside the placement platform drives the S-shaped steel plate to rotate, causing the glass bottles to be continuously squeezed and eventually enter the transmission channel between the conveyor plates. As the bottles accumulate, they continue to move forward in the transmission channel until they enter the main body of the feeding conveyor belt.

[0009] Preferably, a limit block is provided in the middle part of the top of the main body of the feeding conveyor belt, feeding baffles are evenly provided at both ends of the main body of the feeding conveyor belt, and spring pieces are provided at both ends of the top of the main body of the feeding conveyor belt near the workbench. An electric push rod is provided at the end of the spring piece away from the main body of the feeding conveyor belt, and a support rod is provided at the bottom end of the electric push rod.

[0010] By adopting the above technical solution, the electric push rod will push the spring to approach the worktable, preventing the next glass bottle from entering the worktable.

[0011] Preferably, a discharge section is provided at the end of the workbench away from the inclined feed plate. The discharge section includes a discharge conveyor belt body provided at the end of the workbench away from the inclined feed plate. A deflector baffle is provided at the top end of the discharge conveyor belt body near the workbench. A movable baffle is provided at the top end of the discharge conveyor belt body away from the workbench. A discharge block is provided at the top end of the workbench near the discharge conveyor belt body.

[0012] By adopting the above technical solution, the discharge block can block the glass bottles on the rotating plate and discharge the glass bottles into the discharge conveyor belt body. The discharge conveyor belt body can then transport the sealed essence to the subsequent processing stage.

[0013] Preferably, a rotating disk is rotatably connected to the top of the workbench, and limit grooves are evenly opened around the circumference of the rotating disk. An inclined frame is provided directly above the rotating disk, and an elastic roll is provided at the bottom of the inclined frame.

[0014] By adopting the above technical solution, when the aluminum cap is conveyed down from the inclined frame, it is at an inclined angle to the horizontal plane of the glass bottle mouth. As the glass bottle continues to rotate, the elastic roll will press the aluminum cap on top of the glass bottle.

[0015] Preferably, the tightening part includes three hydraulic cylinders disposed at both ends on the side of the worktable away from the main body of the feed conveyor belt. A fixed frame is disposed outside the output end of the three hydraulic cylinders. A rotating motor is disposed at the top of the fixed frame. A rotating rod is disposed at the output end of the rotating motor. A connecting frame is disposed outside the rotating rod. A rotating wheel is disposed at the bottom end of the connecting frame.

[0016] By adopting the above technical solution, the rotating wheel on the connecting frame can be moved to the outside of the aluminum cap of the glass bottle by the operation of the No. 3 hydraulic cylinder. Then, by the operation of the rotating motor and the transmission of the rotating rod, the rotating wheel can be driven to rotate continuously, thereby achieving the effect of tightening the aluminum cap.

[0017] Preferably, the plugging section includes a second hydraulic cylinder disposed at one end of the worktable near the inclined feed plate. A connecting block is disposed outside the output end of the second hydraulic cylinder. A rotating seat is disposed at the top of the connecting block. A rotating block is disposed at the end of the rotating seat away from the connecting block. An air suction pump is disposed at the top of the rotating block. An adsorption port is disposed at the output end of the air suction pump. The adsorption port is disposed on both sides of the bottom end of the rotating block. A plug conveying frame is disposed directly below the adsorption port.

[0018] By adopting the above technical solution, the suction pump can be used to suck the rubber stopper onto the suction port. Then, the rotary motor drives the rotating seat to rotate, which can rotate the rubber stopper to the top of the glass bottle. Then, the operation of the second hydraulic cylinder can drive the rotating seat to descend, which can push the rubber stopper into the mouth of the glass bottle.

[0019] Preferably, the filling unit includes a first hydraulic cylinder disposed at one end of the main body of the feeding conveyor belt near the inclined feeding plate. A movable frame is disposed outside the output end of the first hydraulic cylinder. Filling heads are evenly disposed at both ends of the movable frame. A conveying pipe is disposed at the top of the filling head. A first cylinder is disposed at both ends of the main body of the feeding conveyor belt near the inclined feeding plate. A first push rod is disposed at the output end of the first cylinder. A second cylinder is disposed at both ends of the main body of the feeding conveyor belt near the worktable. A second push rod is disposed at the output end of the second cylinder.

[0020] By employing the above technical solution, the operation of cylinder number two pushes cylinder number two out, and then the operation of cylinder number one pushes cylinder number one out, thus confining the glass bottle between cylinder number one and cylinder number two. Subsequently, the operation of hydraulic cylinder number one moves the movable frame and filling head downward until the filling head is aligned with the bottle opening for quantitative filling.

[0021] Compared with the prior art, the beneficial effects of this application are:

[0022] The device is equipped with a feeding section, a feeding conveyor belt body, a discharging section, a worktable, a tightening section, an inclined frame, a stoppering section, and a filling section. The feeding section transports the essence bottles onto the feeding conveyor belt body, which then facilitates the transport of the essence bottles. During the transport of the essence bottles, the filling section, stoppering section, inclined frame, and tightening section enable rapid filling and capping of the essence, effectively preventing leakage during repeated transport and significantly improving the practicality of the device. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this application;

[0024] Figure 2 This is a three-dimensional structural diagram of the filling section of this application;

[0025] Figure 3 For this application Figure 1 Enlarged structural diagram at point A in the middle;

[0026] Figure 4 This is a three-dimensional structural diagram of the electric actuator in this application;

[0027] Figure 5 This is a three-dimensional structural diagram of the insert section in this application;

[0028] Figure 6 This is a three-dimensional structural diagram of the inclined frame in this application;

[0029] Figure 7 This is a three-dimensional structural diagram of the tightening part of this application;

[0030] Figure 8 For this application Figure 1 Enlarged structural diagram at point B.

[0031] In the diagram: 1. Feeding section; 101. Inclined feed plate; 102. Conveyor plate; 103. Placement truncated cone; 104. Fixing block; 105. Adjusting bolt; 106. Rotating rod; 107. S-shaped steel plate; 2. Feeding conveyor belt body; 3. Discharge section; 301. Discharge conveyor belt body; 302. Movable baffle; 303. Discharge block; 304. Discharge baffle; 4. Workbench; 5. Tensioning section; 501. Fixing frame; 502. Connecting frame; 503. Rotating rod; 504. Rotating wheel; 505. Hydraulic cylinder No. 3; 506. Rotating motor; 6. Inclined frame 7. Stoppering section; 701. Stopper conveyor frame; 702. Hydraulic cylinder No. 2; 703. Suction port; 704. Connecting block; 705. Rotating seat; 706. Suction pump; 707. Rotating block; 8. Electric push rod; 9. Filling section; 901. Hydraulic cylinder No. 1; 902. Movable frame; 903. Filling head; 904. Conveying pipe; 905. Push rod No. 1; 906. Cylinder No. 1; 907. Cylinder No. 2; 908. Push rod No. 2; 10. Limiting block; 11. Feed baffle; 12. Spring sheet; 13. Support rod; 14. Elastic roll sheet; 15. Rotating disc. Detailed Implementation

[0032] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0033] Example 1

[0034] Please see Figures 1 to 8 This embodiment provides a technical solution: an essence filling and capping device, including a feeding conveyor belt body 2 and a workbench 4. The workbench 4 is located on one side of the feeding conveyor belt body 2, which facilitates the processing of glass bottles. Both ends of the workbench 4 away from the feeding conveyor belt body 2 are provided with tightening parts 5, which facilitates the tightening of aluminum caps on glass bottles. One end of the workbench 4 is provided with a stoppering part 7, which facilitates the insertion of rubber stoppers into the bottle mouth. An inclined frame 6 is provided on the side of the workbench 4 near the stoppering part 7, which facilitates pressing aluminum caps on top of glass bottles. The feeding conveyor belt body 2 is provided with a filling part 9 near the stoppering part 7, which facilitates quantitative filling of glass bottles. The feeding part 1 is provided on the side of the feeding conveyor belt body 2 away from the workbench 4.

[0035] The overall effect of the first embodiment is as follows: the essence bottle can be transported to the main body of the feeding conveyor belt 2 through the feeding part 1, and the essence bottle can be easily transported by the feeding conveyor belt 2. During the transport of the essence bottle, the essence can be quickly filled and capped by the filling part 9, the stopper part 7, the inclined frame 6 and the tightening part 5, which can prevent leakage of the essence bottle during repeated transport and effectively improve the practicality of the device.

[0036] Example 2

[0037] The feeding section 1 includes a placement truncated cone 103 disposed on the side of the feeding conveyor belt body 2 away from the worktable 4. A rotating rod 106 is rotatably disposed at the top of the placement truncated cone 103. An S-shaped steel plate 107 is fixedly connected to the bottom end of the rotating rod 106. An inclined feeding plate 101 is fixedly connected to the side of the placement truncated cone 103 away from the feeding conveyor belt body 2. Fixing blocks 104 are uniformly fixedly connected to the top of the placement truncated cone 103. Adjusting bolts 105 are threadedly connected to the inside of the fixing blocks 104. Conveyor plates 102 are uniformly disposed on the outside of the adjusting bolts 105. The conveyor plates 102 are movably disposed at the top of the placement truncated cone 103. The end of the conveyor plates 102 away from the placement truncated cone 103 abuts against the top of the feeding conveyor belt body 2.

[0038] The overall effect of Embodiment 2 is as follows: The inclination of the inclined feed plate 101 causes empty bottles to gradually accumulate on the placement pedestal 103. The operation of the rotary motor inside the placement pedestal 103 drives the S-shaped steel plate 107 to rotate, continuously compressing the glass bottles and ultimately guiding them into the transmission channel between the conveyor plates 102. As the bottles accumulate, they continuously move forward within the transmission channel until they enter the main body of the feed conveyor belt 2. By operating the adjusting bolt 105, the conveyor plate 102 can be moved, adjusting the width of the transmission channel to facilitate the transmission of bottles of different sizes.

[0039] Example 3

[0040] A limit block 10 is provided in the middle part of the top of the feeding conveyor belt body 2. Feed baffles 11 are evenly provided at both ends of the feeding conveyor belt body 2. An adjusting threaded rod is provided at one end of the feeding baffle 11, which can adjust the position of the feeding baffle 11 and facilitate the limiting of different types of glass bottles. The filling part 9 includes a first hydraulic cylinder 901 provided at one end of the feeding conveyor belt body 2 near the inclined feeding plate 101. A movable frame 902 is fixedly connected to the external part of the output end of the first hydraulic cylinder 901. The first hydraulic cylinder 901 can drive the movable frame 902 to move up and down. Filling heads 903 are evenly fixedly connected to both ends of the movable frame 902. A conveying pipe 904 is provided at the top of the filling head 903. 04 The end away from the filling head 903 is connected to the essence storage tank, which can facilitate the discharge of the essence inside the essence storage tank through the filling head 903. The two ends of the feeding conveyor belt body 2 near the inclined feeding plate 101 are equipped with a first cylinder 906. The output end of the first cylinder 906 is equipped with a first push rod 905. The two ends of the feeding conveyor belt body 2 near the worktable 4 are equipped with a second cylinder 907. The output end of the second cylinder 907 is equipped with a second push rod 908. The two ends of the top of the feeding conveyor belt body 2 near the worktable 4 are equipped with spring pieces 12. The end of the spring piece 12 away from the feeding conveyor belt body 2 is equipped with an electric push rod 8. The bottom end of the electric push rod 8 is equipped with a support rod 13.

[0041] The overall effect of Embodiment 3 is as follows: the glass bottle is moved to the bottom of the filling section 9 by the conveyor belt body 2. When the glass bottle moves to the bottom of the filling head 903, the operation of the second cylinder 907 pushes the second push rod 908 out. Then, the operation of the first cylinder 906 causes the first push rod 905 to also out, confining the glass bottle between the first push rod 905 and the second push rod 908. Subsequently, the operation of the first hydraulic cylinder 901 drives the movable frame 902 and the filling head 903 to move downward until the filling head 903 is aligned with the glass bottle mouth for quantitative filling. After filling is completed, the first push rod 905 and the second push rod 908 retract, and the glass bottle continues to move forward under the operation of the conveyor belt body 2. When the glass bottle is conveyed to the rotating disk 15, it enters the limiting groove inside the rotating disk 15. Then, the electric push rod 8 pushes the spring piece 12 close to the rotating disk 15, preventing the next glass bottle from entering the rotating disk 15.

[0042] Example 4

[0043] The stopper feeding unit 7 includes a second hydraulic cylinder 702 located at one end of the worktable 4 near the inclined feed plate 101. A connecting block 704 is fixedly connected to the output end of the second hydraulic cylinder 702. A rotating seat 705 is located at the top of the connecting block 704. A rotating block 707 is fixedly connected to the end of the rotating seat 705 away from the connecting block 704. An air suction pump 706 is fixedly connected to the top of the rotating block 707. An suction port 703 is located at the output end of the air suction pump 706. The suction ports 703 are located on both sides of the bottom end of the rotating block 707. A rubber stopper conveying frame 701 is located directly below the suction ports 703. The rubber stopper conveying frame 701 is connected to an external rubber stopper storage tank and can transport rubber stoppers from inside the storage tank to below the suction ports 703. A rotating disk 15 is rotatably connected to the top of the worktable 4. The rotating disk 15 has evenly spaced limit grooves around its perimeter, which can be used to limit the glass bottles. An inclined frame 6 is set directly above the rotating disk 15. The inclined frame 6 is connected to the external storage hopper and can continuously convey aluminum caps downward. An elastic roll 14 is set at the bottom of the inclined frame 6. The tightening part 5 includes three hydraulic cylinders 505 set at both ends on the side of the workbench 4 away from the main body of the feeding conveyor belt 2. A fixed frame 501 is fixedly connected to the output end of the three hydraulic cylinders 505. The fixed frame 501 can provide load-bearing capacity. A rotating motor 506 is fixedly connected to the top of the fixed frame 501. A rotating rod 503 is fixedly connected to the output end of the rotating motor 506. A connecting frame 502 is fixedly connected to the outside of the rotating rod 503. A rotating wheel 504 is fixedly connected to the bottom of the connecting frame 502.

[0044] The overall effect of Embodiment 4 is as follows: the operation of the internal rotary motor of the workbench 4 drives the rotating disk 15 to rotate, which causes the glass bottle inside the rotating disk 15 to rotate clockwise, moving the glass bottle below the stopper section 7. The external rubber stopper slides off the rubber stopper conveyor 701, and the operation of the suction pump 706 sucks the rubber stopper onto the suction port 703. Then, the rotary motor drives the rotating seat 705 to rotate, which rotates the rubber stopper above the glass bottle. Then, the operation of the second hydraulic cylinder 702 drives the rotating seat 705 to descend, which pushes the rubber stopper into the mouth of the glass bottle. Afterward, the rotating disk 15 continues to rotate, causing the glass bottle to move to... Below the inclined frame 6, the aluminum cap inside the inclined frame 6 covers the glass bottle. The inclined frame 6 is connected to the external storage hopper and can continuously convey the aluminum cap downwards. When the aluminum cap is conveyed down from the inclined frame 6, it has an inclined angle with the horizontal plane of the glass bottle mouth. As the glass bottle continues to rotate, the elastic roll 14 will press the aluminum cap on top of the glass bottle. Then the glass bottle will enter the lower part of the tightening part 5. Using the operation of the third hydraulic cylinder 505, the rotating wheel 504 on the connecting frame 502 can be moved to the outside of the aluminum cap of the glass bottle. Then, using the operation of the rotating motor 506, through the transmission of the rotating rod 503, the rotating wheel 504 can be driven to rotate continuously, which can achieve the effect of tightening the aluminum cap.

[0045] Example 5

[0046] A discharge section 3 is provided at the end of the workbench 4 away from the inclined feed plate 101. The discharge section 3 includes a discharge conveyor belt body 301 located at the end of the workbench 4 away from the inclined feed plate 101, which can facilitate the conveying of the essence bottles that have been filled and capped. A pouring baffle 304 is provided at the top end of the discharge conveyor belt body 301 near the workbench 4. A movable baffle 302 is provided at the top end of the discharge conveyor belt body 301 away from the workbench 4. An adjusting threaded rod is provided at one end of the movable baffle 302, which can adjust the position of the movable baffle 302 and facilitate the limiting of different types of glass bottles. A discharge block 303 is provided at the top end of the workbench 4 near the discharge conveyor belt body 301.

[0047] The effect achieved by the entire embodiment 5 is as follows: the discharge block 303 can block the glass bottles on the rotating disk 15, and the glass bottles can be discharged into the discharge conveyor belt body 301. The discharge conveyor belt body 301 can then transport the sealed essence to the subsequent processing stage.

[0048] Working principle: First, the power is turned on. Then, the operator places empty glass bottles on the inclined feeding plate 101. The inclination of the inclined feeding plate 101 causes the empty bottles to gradually accumulate on the placement platform 103. The rotating motor inside the placement platform 103 drives the S-shaped steel plate 107 to rotate, continuously compressing the glass bottles and ultimately pushing them into the transmission channel between the conveyor plates 102. As the bottles accumulate, they move forward in the transmission channel until they enter the main body of the feeding conveyor belt 2. By operating the adjusting bolt 105, the conveyor plate 102 can be moved, adjusting the width of the transmission channel to facilitate the transmission of bottles of different sizes.

[0049] Secondly, the glass bottle is moved to the bottom of the filling section 9 by the conveyor belt 2. When the glass bottle moves to the bottom of the filling head 903, the operation of the second cylinder 907 pushes the second push rod 908 out. Then, the operation of the first cylinder 906 causes the first push rod 905 to also out, confining the glass bottle between the first push rod 905 and the second push rod 908. Subsequently, the operation of the first hydraulic cylinder 901 drives the movable frame 902 and the filling head 903 to move downward until the filling head 903 is aligned with the glass bottle mouth for quantitative filling. After filling, the first push rod 905 and the second push rod 908 retract, and the glass bottle continues to move forward under the operation of the conveyor belt 2. When the glass bottle is conveyed to the rotating disk 15, it enters the limiting groove inside the rotating disk 15. Then, the electric push rod 8 pushes the spring piece 12 close to the rotating disk 15, preventing the next glass bottle from entering the rotating disk 15.

[0050] Finally, the operation of the internal rotary motor of the workbench 4 drives the rotating disk 15 to rotate, which in turn causes the glass bottle inside the disk 15 to rotate clockwise, moving the glass bottle below the stopper section 7. The external rubber stopper slides off the rubber stopper conveyor 701, and the suction pump 706 sucks the rubber stopper onto the suction port 703. Then, the rotary motor drives the rotating seat 705 to rotate, moving the rubber stopper above the glass bottle. The operation of the second hydraulic cylinder 702 then causes the rotating seat 705 to descend, inserting the rubber stopper into the bottle mouth. The rotating disk 15 continues to rotate, moving the glass bottle below the inclined frame 6, allowing the aluminum cap inside the inclined frame 6 to cover the glass bottle. The inclined frame 6 is connected to the external storage hopper, continuously conveying the aluminum cap downwards. When the cap is conveyed down from the inclined frame 6, it is at an angle to the horizontal plane of the glass bottle mouth. As the glass bottle continues to rotate, the elastic roll 14 presses the aluminum cap on top of the glass bottle. Then the glass bottle will enter the lower part of the tightening section 5. Using the operation of the No. 3 hydraulic cylinder 505, the rotating wheel 504 on the connecting frame 502 can be moved to the outside of the aluminum cap of the glass bottle. Then, using the operation of the rotating motor 506, the rotating wheel 504 can be driven to rotate continuously through the transmission of the rotating rod 503, which can achieve the effect of tightening the aluminum cap. After the cap is tightened, the rotating disk 15 continues to rotate until the glass bottle is blocked by the discharge block 303, and the glass bottle can be discharged into the discharge conveyor belt body 301. The discharge conveyor belt body 301 can transport the sealed essence to the next stage, effectively improving the practicality of the device.

[0051] Although embodiments of this application have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this application, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A serum filling and capping device, characterized in that: include: Feed conveyor belt body (2); The workbench (4) is located on one side of the feed conveyor belt body (2). Both ends of the workbench (4) away from the feed conveyor belt body (2) are provided with tightening parts (5). One end of the workbench (4) is provided with a stopper (7). The side of the workbench (4) near the stopper (7) is provided with an inclined frame (6). The side of the feed conveyor belt body (2) near the stopper (7) is provided with a filling part (9). The side of the feed conveyor belt body (2) away from the workbench (4) is provided with a feeding part (1).

2. The essence filling and capping device according to claim 1, characterized in that: The feeding section (1) includes a placement truncated cone (103) disposed on the side of the feeding conveyor belt body (2) away from the worktable (4). A rotating rod (106) is rotatably disposed at the top of the placement truncated cone (103), and an S-shaped steel plate (107) is disposed at the bottom of the rotating rod (106). An inclined feeding plate (101) is disposed on the side of the placement truncated cone (103) away from the feeding conveyor belt body (2). Fixed blocks (104) are evenly disposed at the top of the placement truncated cone (103). An adjusting bolt (105) is threadedly connected to the inside of the fixed block (104). A conveying plate (102) is evenly disposed on the outside of the adjusting bolt (105). The conveying plate (102) is movably disposed at the top of the placement truncated cone (103). The end of the conveying plate (102) away from the placement truncated cone (103) abuts against the top of the feeding conveyor belt body (2).

3. The essence filling and capping device according to claim 1, characterized in that: A limit block (10) is provided in the middle part of the top of the feeding conveyor belt body (2). Feed baffles (11) are evenly provided at both ends of the feeding conveyor belt body (2). Spring pieces (12) are provided at both ends of the top of the feeding conveyor belt body (2) near the worktable (4). An electric push rod (8) is provided at the end of the spring piece (12) away from the feeding conveyor belt body (2). A support rod (13) is provided at the bottom end of the electric push rod (8).

4. The essence filling and capping device according to claim 2, characterized in that: The workbench (4) is provided with a discharge section (3) at the end away from the inclined feed plate (101). The discharge section (3) includes a discharge conveyor belt body (301) at the end of the workbench (4) away from the inclined feed plate (101). A discharge baffle (304) is provided at the top end of the discharge conveyor belt body (301) near the workbench (4). A movable baffle (302) is provided at the top end of the discharge conveyor belt body (301) away from the workbench (4). A discharge block (303) is provided at the top end of the workbench (4) near the discharge conveyor belt body (301).

5. The essence filling and capping device according to claim 1, characterized in that: The top of the workbench (4) is rotatably connected to a rotating disk (15). Limiting grooves are evenly opened around the rotating disk (15). An inclined frame (6) is provided directly above the rotating disk (15). An elastic roll plate (14) is provided at the bottom of the inclined frame (6).

6. The essence filling and capping device according to claim 1, characterized in that: The tightening part (5) includes three hydraulic cylinders (505) located at both ends of the workbench (4) away from the main body (2) of the feed conveyor belt. A fixed frame (501) is provided outside the output end of the three hydraulic cylinders (505). A rotating motor (506) is provided at the top of the fixed frame (501). A rotating rod (503) is provided at the output end of the rotating motor (506). A connecting frame (502) is provided outside the rotating rod (503). A rotating wheel (504) is provided at the bottom end of the connecting frame (502).

7. The essence filling and capping device according to claim 1, characterized in that: The stopper feeding unit (7) includes a second hydraulic cylinder (702) located on the workbench (4) near the inclined feed plate (101). A connecting block (704) is provided outside the output end of the second hydraulic cylinder (702). A rotating seat (705) is provided at the top of the connecting block (704). A rotating block (707) is provided at the end of the rotating seat (705) away from the connecting block (704). An air suction pump (706) is provided at the top of the rotating block (707). An adsorption port (703) is provided at the output end of the air suction pump (706). The adsorption ports (703) are located on both sides of the bottom end of the rotating block (707). A rubber stopper conveyor (701) is provided directly below the adsorption port (703).

8. The essence filling and capping device according to claim 1, characterized in that: The filling unit (9) includes a first hydraulic cylinder (901) located at one end of the feeding conveyor belt body (2) near the inclined feeding plate (101). A movable frame (902) is provided outside the output end of the first hydraulic cylinder (901). Filling heads (903) are evenly arranged at both ends of the movable frame (902). A conveying pipe (904) is provided at the top of the filling head (903). A first cylinder (906) is provided at both ends of the feeding conveyor belt body (2) near the inclined feeding plate (101). A first push rod (905) is provided at the output end of the first cylinder (906). A second cylinder (907) is provided at both ends of the feeding conveyor belt body (2) near the worktable (4). A second push rod (908) is provided at the output end of the second cylinder (907).