Canning and cap screwing integrated production machine

By designing an integrated canned screw cap production machine and integrating filling and screw cap functions, the problem of low manual sealing efficiency is solved, automated production is realized, efficiency is improved and cost is reduced, and it is suitable for a variety of containers.

CN223134082UActive Publication Date: 2025-07-22DONGGUAN HONGTU MACHINERY EQUIPMENT CO LTD
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Patent Information

Application Number
CN202422489557.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-07-22
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

The existing filling production lines require manual sealing of the cover body after filling, resulting in low sealing efficiency and increasing human resource costs and reducing corporate economic benefits.

Method used

Design a canned and screw cap integrated production machine, integrating filling and screw cap functions, and automatically completing the filling and screw cap process through the machine, including conveyor belts, filling mechanisms, screw cap mechanisms, clamping mechanisms and other components to achieve automated production.

Benefits of technology

It improves filling and sealing efficiency, reduces human resource costs, is suitable for containers of different spacing and heights, expands the scope of use, reduces usage limitations, and improves production speed and enterprise economic benefits.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a filling and cap screwing integrated production machine which comprises a machine base, a conveying belt is fixedly installed on the upper surface of the machine base, a filling mechanism is fixedly installed on one side of the upper surface of the machine base, a cap screwing mechanism is fixedly installed on the other side of the upper surface of the machine base, and a cabinet body is arranged between the filling mechanism and the cap screwing mechanism. Two material blocking air cylinders are fixedly installed below the filling mechanism and located on the side position of the conveying belt, a material blocking plate is fixedly installed on output rods of the two material blocking air cylinders, the material blocking plate is designed to be of an L-shaped structure, a counting sensor is arranged below the filling mechanism, and a clamping mechanism is fixedly installed below the cap screwing mechanism and located on the upper surface of the machine base. Filling and follow-up cap screwing and sealing are integrated on one machine for unified production and processing, so that the filling and sealing efficiency of products can be effectively improved, the production speed of the products is improved, meanwhile, manual cap screwing is replaced by the machine, the human resource cost investment can be effectively reduced, and the production cost is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of filling processing, in particular to a canning and capping integrated production machine. Background Art

[0002] Filling production refers to the process of packaging products from raw materials through a series of production activities such as processing, transportation, assembly, and inspection. This process is widely used in many fields such as food, medicine, and cosmetics, and plays a key role in the packaging of goods. The characteristics of the filling production line are that it has greater flexibility and can adapt to the needs of multi-variety production;

[0003] However, the existing traditional filling production can only complete a single filling work during the production and processing. After the filling production, the container cap needs to be sealed manually. There is a technical problem of low sealing efficiency in manual cap sealing, and manual sealing requires a certain amount of human resource costs, which in turn increases the production cost of the product and reduces the economic benefits of the enterprise. For this reason, the utility model proposes an integrated canning capping production machine. Utility Model Content

[0004] The purpose of the utility model is to provide a canned capping integrated production machine to solve the problems raised in the above background technology.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a canned screw-capping integrated production machine, comprising a machine base, a conveyor belt is fixedly installed on the upper surface of the machine base, a filling mechanism is fixedly installed on one side of the upper surface of the machine base, and a screw-capping mechanism is fixedly installed on the other side of the upper surface of the machine base, a cabinet is arranged between the filling mechanism and the screw-capping mechanism, two material blocking cylinders are fixedly installed below the filling mechanism and at the side of the conveyor belt, and the output rods of the two material blocking cylinders are fixedly installed with a material blocking plate, and the material blocking plate adopts an "L"-shaped structural design, a counting sensor is arranged below the filling mechanism, a clamping mechanism is fixedly installed below the screw-capping mechanism and at the upper surface of the machine base, a plurality of clamping seats arranged at equal intervals are fixedly installed on the outer walls on both sides of the conveyor belt, a lifting light rod is movably inserted in the clamping seat, a secondary seat is fixedly installed on the top of the lifting light rod, a secondary light rod is movably inserted in the secondary seat, the secondary light rod is fixedly pressed against the secondary seat by a tightening bolt, and a guide plate is fixedly installed on the top of the secondary light rod.

[0006] Preferably, the filling mechanism comprises a primary guide rod, a secondary guide rod and a tertiary guide rod, a top plate is fixedly mounted on the top of the primary guide rod, the secondary guide rod and the tertiary guide rod, a secondary screw rod is rotatably mounted through a bearing between the secondary guide rod and the tertiary guide rod and located on the lower surface of the top plate, and a primary screw rod is rotatably mounted between the primary guide rod and the secondary guide rod and located on the lower surface of the top plate.

[0007] Preferably, a first threaded seat is threadedly connected to the secondary lead screw. Both sides of the first threaded seat are slidably connected to the secondary guide rod and the tertiary guide rod respectively. A driving cylinder is fixedly installed on the upper surface of the first threaded seat, and the bottom end of the output rod of the driving cylinder is fixedly connected to a sliding plate.

[0008] Preferably, a transverse guide rail is fixedly installed at the top end of the sliding plate. The transverse guide rail is perpendicularly connected to the sliding plate. A plurality of filling seats are slidably connected to the upper surface of the transverse guide rail, and a tightening bolt is threadedly connected to the filling seat.

[0009] Preferably, filling pipes are fixedly installed at the bottom ends of the plurality of filling seats. The top end of each filling pipe is fixedly connected to a filling pump through a pipeline.

[0010] Preferably, a liquid receiving sliding plate is threadedly connected to the primary lead screw. A liquid receiving cylinder is fixedly installed on the liquid receiving sliding plate, and a hopper is fixedly installed at the top end of the output rod of the liquid receiving cylinder. Adjusting handwheels are fixedly installed at the top ends of both the primary lead screw and the secondary lead screw.

[0011] Preferably, the capping mechanism includes a capping machine frame. A lifting lead screw is rotatably installed inside the capping machine frame. Guide rods are fixedly installed on both sides of the lifting lead screw. A sliding plate is threadedly connected to the lifting lead screw. Both sides of the sliding plate are sleeved outside the guide rods and are slidably connected to the guide rods.

[0012] Preferably, two adjusting seats are slidably connected to the sliding plate. Rotating capping motors are fixedly installed at the top ends of the two adjusting seats. The output shaft of the rotating capping motor is fixedly connected to a driving gear. Two driven gears are meshed and connected to one side of the driving gear. Rotating capping shafts are fixedly installed at the bottom ends of the two driven gears. A capping head is fixedly installed at the bottom end of the rotating capping shaft.

[0013] Preferably, a spacing lead screw is rotatably installed on one side of the sliding plate and at the side position of the adjusting seat. The spacing lead screw is a positive and negative threaded lead screw. Sliding blocks are threadedly connected to the positive and negative threads of the spacing lead screw. The two sliding blocks are respectively fixedly connected to the two adjusting seats. One ends of both the lifting lead screw and the spacing lead screw are fixedly connected to handwheels.

[0014] Preferably, the clamping mechanism includes side plates. There are two side plates in total. A coarse adjustment lead screw is rotatably installed between the two side plates. The coarse adjustment lead screw is a positive and negative screw. Distance adjusting plates are threadedly connected to the positive and negative threads of the coarse adjustment lead screw. Clamping cylinders are fixedly installed at the top ends of the two distance adjusting plates. The top end of the output rod of the clamping cylinder is fixedly installed with a clamping member. The two clamping members are placed on both sides of the conveyor belt.

[0015] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0016] By integrating both the filling and subsequent capping and sealing processes on one machine for unified production and processing, the present utility model can effectively improve the filling and sealing efficiency of products, increase the production speed of products. At the same time, replacing manual capping with a machine can effectively reduce the input of human resources costs, lower production costs, and improve the economic benefits of enterprises;

[0017] Meanwhile, when the filling mechanism of the present utility model is actually used, it can complete unified filling work for multiple groups, and can complete unified filling processing of multiple containers in a single filling operation, greatly improving the filling efficiency of containers and increasing the production speed. At the same time, the filling spacing and filling height have the characteristics of being dynamically adjustable, and can be used for filling containers with different bottle mouth spacings and different heights, greatly expanding the overall application range of the present utility model, reducing the usage limitations, and having a good usage effect;

[0018] Moreover, the capping mechanism is provided with a lifting lead screw. Through the thread driving effect of the lifting lead screw, the slide plate can be driven to move. Thus, the movement of the slide plate drives the capping head below to move, so that the working height of the capping head can be freely adjusted, enabling the capping mechanism of the present utility model to be applicable to capping containers with different heights, reducing the usage limitations, and increasing the application range;

[0019] At the same time, the spacing between the two capping heads is dynamically adjustable. During actual use, by adjusting the spacing, it can be applicable to rotating caps of different sizes. Through the free adjustment of the spacing, the two capping heads can be in full contact with the cap, avoiding capping gaps, having the effect of stably clamping the cap, effectively improving the quality and efficiency of capping, and preventing the situation of incomplete capping. Moreover, the spacing adjustment can be achieved by manually rotating the drive, which is convenient to adjust and has good practicability. It can be applicable to automatically cap caps of different sizes, effectively reducing the usage limitations and increasing the application range. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 is a front three-dimensional structural schematic diagram of the integrated production machine according to an embodiment of the present utility model;

[0021] Figure 2 is an embodiment of the present utility model Figure 1 of the enlarged structural schematic diagram of area A;

[0022] Figure 3 is a front three-dimensional structural schematic diagram of the filling mechanism according to an embodiment of the present utility model;

[0023] Figure 4 is a back three-dimensional structural schematic diagram of the filling mechanism according to an embodiment of the present utility model;

[0024] Figure 5 Schematic side three-dimensional structure diagram of the filling mechanism according to the embodiment of the present utility model;

[0025] Figure 6 Schematic front three-dimensional structure diagram of the capping mechanism according to the embodiment of the present utility model;

[0026] Figure 7 Schematic back three-dimensional structure diagram of the capping mechanism according to the embodiment of the present utility model;

[0027] Figure 8 Schematic gear transmission structure diagram of the capping mechanism according to the embodiment of the present utility model;

[0028] Figure 9 Schematic structure diagram of the clamping mechanism according to the embodiment of the present utility model.

[0029] In the figure: 1, machine base; 2, conveyor belt;

[0030] 3, filling mechanism; 301, first-level guide rod; 302, second-level guide rod; 303, third-level guide rod; 304, top plate; 305, first-level lead screw; 306, second-level lead screw; 307, first threaded seat; 308, driving cylinder; 309, sliding plate; 3010, horizontal guide rail; 3011, filling seat; 3012, tightening bolt; 3013, filling pipe; 3014, filling pump; 3015, liquid receiving sliding plate; 3016, liquid receiving cylinder; 3017, hopper; 3018, adjusting handwheel;

[0031] 4, capping mechanism; 401, capping machine frame; 402, lifting lead screw; 403, guide rod; 404, sliding plate; 405, adjusting seat; 406, capping motor; 407, driving gear; 408, driven gear; 409, capping shaft; 4010, capping head; 4011, spacing lead screw; 4012, sliding block;

[0032] 5, cabinet; 6, material blocking cylinder; 7, material blocking plate;

[0033] 8, clamping mechanism; 801, side plate; 802, coarse adjustment lead screw; 803, distance adjusting plate; 804, clamping cylinder; 805, clamping piece;

[0034] 9, clamping seat; 10, lifting optical rod; 11, second-level seat; 12, second-level optical rod; 13, tightening bolt; 14, diversion plate. Detailed implementation manners

[0035] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to 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. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0036] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "outer", "front end", "rear end", "both ends", "one end", "the other end", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation of the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0037] In the description of the present invention, it should be noted that unless otherwise clearly defined and limited, the terms "installed", "provided with", "connected", etc. should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the internal communication of two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0038] Please refer to Figures 1-9 , an embodiment provided by the present invention: a canned capping integrated production machine, including a machine base 1. A conveyor belt 2 is fixedly installed on the upper surface of the machine base 1. When the conveyor belt 2 works, it can convey and process the containers to be filled and capped, so that they can smoothly enter the filling and capping areas.

[0039] A filling mechanism 3 is fixedly installed on one side of the upper surface of the machine base 1, and a capping mechanism 4 is fixedly installed on the other side of the upper surface of the machine base 1. A cabinet 5 is arranged between the filling mechanism 3 and the capping mechanism 4. Control components are arranged in the cabinet 5. Two material blocking cylinders 6 are fixedly installed below the filling mechanism 3 and on the side of the conveyor belt 2. A material blocking plate 7 is fixedly installed on the output rods of the two material blocking cylinders 6. The material blocking plate 7 is designed in an "L" shape. A counting sensor is arranged below the filling mechanism 3.

[0040] With this structural design, the counting sensor can sense the number of containers. When the number of filled containers reaches the specified filling quantity, the control chip controls the material blocking cylinder 6 to work. When the material blocking cylinder 6 works, its output rod drives the material blocking plate 7 to extend, so that the specified number of containers can stay below the filling mechanism 3 to complete the unified filling work;

[0041] After the filling work is completed, the material blocking cylinder 6 drives the material blocking plate 7 to retract through the output rod, and the filled containers enter the capping area through the conveyor belt 2;

[0042] Below the capping mechanism 4 and on the upper surface of the machine base 1, a clamping mechanism 8 is fixedly installed. The clamping mechanism 8 is used to fixedly clamp the bottle body of the container during capping to prevent it from moving or shaking;

[0043] Among them, specifically referring to the attached Figure 2 As shown in the figure, a number of equally spaced clamping seats 9 are fixedly installed on the outer walls of both sides of the conveyor belt 2. A lifting optical rod 10 is movably inserted into the clamping seat 9. The top of the lifting optical rod 10 is fixedly installed with a secondary seat 11. A secondary optical rod 12 is movably inserted into the secondary seat 11. The secondary optical rod 12 is fixedly pressed against the secondary seat 11 through a tightening bolt 13. The top of the secondary optical rod 12 is fixedly installed with a diversion plate 14;

[0044] According to the above structure, by arranging diversion plates 14 on both sides of the conveyor belt 2, the diversion plates 14 can perform left and right limit diversion treatment on both sides of the container, avoiding the side fall of the container during transmission, which is convenient to use and has a certain limit diversion effect;

[0045] And through the arranged lifting optical rod 10, it can be movably inserted and telescoped in the clamping seat 9. Just tighten the bolt in the clamping seat 9 during fixation. In this way, the lifting of the lifting optical rod 10 can drive the diversion plate 14 to perform free height adjustment, so as to be applicable to the feeding and diversion work of containers with different heights;

[0046] And through the arranged secondary optical rod 12, it can be telescoped in the secondary seat 11, so as to adjust the distance between the two diversion plates 14, so as to be applicable to the diversion of containers with different bottle body sizes, which is convenient to use and effectively improves the applicable range of the structure.

[0047] In this embodiment, specifically referring to the attached Figures 3-5As shown in the figure, the filling mechanism 3 includes a first-level guide rod 301, a second-level guide rod 302, and a third-level guide rod 303. At the top ends of the first-level guide rod 301, the second-level guide rod 302, and the third-level guide rod 303, a top plate 304 is fixedly installed. Between the second-level guide rod 302 and the third-level guide rod 303 and on the lower surface of the top plate 304, a second-level lead screw 306 is rotatably installed through a bearing. Between the first-level guide rod 301 and the second-level guide rod 302 and on the lower surface of the top plate 304, a first-level lead screw 305 is rotatably installed. At the top ends of the first-level lead screw 305 and the second-level lead screw 306, adjusting handwheels 3018 are fixedly installed.

[0048] Among them, a first threaded seat 307 is threadedly connected to the second-level lead screw 306. When the second-level lead screw 306 rotates, the first threaded seat 307 thereon can perform linear up-and-down movement along the second-level lead screw 306. The two sides of the first threaded seat 307 are respectively slidably connected to the second-level guide rod 302 and the third-level guide rod 303. On the upper surface of the first threaded seat 307, a driving cylinder 308 is fixedly installed. The bottom end of the output rod of the driving cylinder 308 is fixedly connected to a sliding plate 309.

[0049] Furthermore, a transverse guide rail 3010 is fixedly installed at the top end of the sliding plate 309. The transverse guide rail 3010 is perpendicularly connected to the sliding plate 309. A plurality of filling seats 3011 are slidably connected to the upper surface of the transverse guide rail 3010. A tightening bolt 3012 is threadedly connected to the filling seat 3011.

[0050] At the bottom ends of a plurality of filling seats 3011, filling pipes 3013 are fixedly installed. At the top end of each filling pipe 3013, a filling pump 3014 is fixedly connected through a pipeline. In actual use, the filling pump 3014 is connected to an external container for holding filling liquid, and is used to input the filling liquid into the filling container.

[0051] According to the above structure, when the filling mechanism 3 of the present utility model is actually used, the filling pump 3014 can be connected to an external material box for holding liquid through a pipeline, so that the filling liquid can be transported to the filling seat 3011 through the filling pump 3014.

[0052] During filling, the driving cylinder 308 can drive the sliding plate 309 to descend through the output rod. When the sliding plate 309 descends, it will synchronously drive the filling pipe 3013 at the top end to descend, so that the filling pipe 3013 can be inserted into the filling container. At this time, a plurality of filling pumps 3014 work to fill the liquid into the container to complete the filling work.

[0053] After the filling work is completed, the driving cylinder 308 drives the sliding plate 309 to move upward and reset through the output rod, so that the filling pipe 3013 can be pulled out of the container. Then, the conveyor belt 2 works to transport the container to the next working station.

[0054] In the present utility model, the filling base 3011 is slidably connected to the transverse guide rail 3010. With this structural design, the filling base 3011 can move freely on the transverse guide rail 3010. When it is necessary to fix the filling base 3011, the tightening bolt 3012 can be manually tightened. This structural design can conveniently adjust the filling distance between the two filling heads freely, and can be dynamically adjusted for use with bottle mouths of different distances in actual use, greatly improving the applicable range of the present utility model, having the use characteristic of dynamically adjustable filling spacing, and effectively reducing the use limitations;

[0055] At the same time, the secondary lead screw 306 of the present utility model can be manually rotated under the action of the adjusting handwheel 3018. When the secondary lead screw 306 rotates, the first threaded seat 307 threadedly connected thereto can move dynamically up and down. Thus, the overall up and down displacement of the filling base 3011 is driven by the movement of the first threaded seat 307. With this structural design during use, the filling height of the filling base 3011 can be freely and dynamically adjusted, so that it can be used for filling containers of different heights, with small limitations in the applicable height of the containers and convenient use;

[0056] According to the above description, when the filling mechanism 3 of the present utility model is actually used, it can complete multiple groups of unified filling operations, and can complete the unified filling process of multiple containers in a single filling operation, greatly improving the filling efficiency of the containers and the production speed. At the same time, the filling spacing and filling height have the use characteristics of being dynamically adjustable, and can be used for filling bottle mouths of different distances and containers of different heights, greatly improving the overall use range of the present utility model, reducing the use limitations, and having a good use effect;

[0057] Among them, further, in order to perform liquid receiving treatment on the filled liquid and prevent the liquid from spilling, a liquid receiving slide plate 3015 is threadedly connected to the primary lead screw 305, and a liquid receiving cylinder 3016 is fixedly installed on the liquid receiving slide plate 3015, and a hopper 3017 is fixedly installed at the top end of the output rod of the liquid receiving cylinder 3016;

[0058] With this structural design, the liquid receiving cylinder 3016 can extend through the hopper 3017 at the top end of its output rod, so that the extended hopper 3017 can be placed at the side position of the container bottle mouth, so that the spilled liquid can fall into the hopper 3017 for liquid receiving treatment;

[0059] The first-stage lead screw 305 is provided and can be manually rotated by a handwheel. When the first-stage lead screw 305 rotates, the liquid receiving slide plate 3015 threadedly connected thereto can move up and down along the first-stage lead screw 305. Thus, the hopper 3017 is driven to displace by the up and down movement of the connecting slide plate 3015, so that the height of the hopper 3017 is dynamically adjustable, thereby being applicable to the use of bottle mouths of different heights, improving the scope of use and reducing the limitations of use.

[0060] In this embodiment, specifically refer to the attached drawings of the specification Figures 6-8 As shown, the capping mechanism 4 includes a capping machine frame 401. A lifting lead screw 402 is rotatably installed in the capping machine frame 401. The top end of the lifting lead screw 402 is fixedly connected with a handwheel. Guide rods 403 are fixedly installed on both sides of the lifting lead screw 402. A slide plate 404 is threadedly connected to the lifting lead screw 402. Both sides of the slide plate 404 are sleeved outside the guide rods 403 and are slidably connected to the guide rods 403;

[0061] Furthermore, two adjusting seats 405 are slidably connected to the slide plate 404. Capping motors 406 are fixedly installed at the top ends of the two adjusting seats 405. The output shafts of the capping motors 406 are fixedly connected with driving gears 407. Two driven gears 408 are meshed and connected to one side of the driving gear 407. Capping shafts 409 are fixedly installed at the bottom ends of the two driven gears 408. Capping heads 4010 are fixedly installed at the bottom ends of the capping shafts 409;

[0062] With this structural design, the capping motors 406 provided can work. When the capping motors 406 work, the driving gears 407 at their bottom ends are driven to rotate by their output shafts. When the driving gears 407 rotate, they will drive the two driven gears 408 to rotate synchronously. Thus, the capping heads 4010 are driven to rotate through the capping shafts 409 by the rotation of the two driven gears 408, so as to perform capping treatment on the caps of the containers by the rotating capping heads 4010, ensuring the sealing performance of the containers;

[0063] And the present utility model is provided with a lifting lead screw 402. The lifting lead screw 402 can be manually rotated under the drive of the handwheel. When the lifting lead screw 402 rotates, the slide plate 404 threadedly connected thereto will move up and down along the lifting lead screw 402. Thus, the capping heads 4010 below are driven to move by the movement of the slide plate 404, so that the working height of the capping heads 4010 can be freely adjusted, thereby enabling the capping mechanism 4 of the present utility model to be applicable to the capping treatment of containers of different heights, reducing the limitations of use and increasing the scope of application;

[0064] Furthermore, in order to make the cap screwing head 4010 of the present utility model applicable to the clamping and screwing operations of caps of different sizes, a spacing lead screw 4011 is rotatably installed on one side of the sliding plate 404 and located at the side of the adjusting seat 405 through a bearing. The spacing lead screw 4011 is a positive and negative threaded lead screw. Sliding blocks 4012 are threadedly connected to the positive and negative threads of the spacing lead screw 4011. The two sliding blocks 4012 are respectively fixedly connected to the two adjusting seats 405. One end of the spacing lead screw 4011 is fixedly connected to a handwheel;

[0065] With this structural design, the handwheel can manually drive the rotation of the spacing lead screw 4011. Since the spacing lead screw 4011 is a positive and negative threaded lead screw, when the spacing lead screw 4011 rotates, the two sliding blocks 4012 threadedly connected thereto will move relatively, that is, move away from each other or approach each other (this effect depends on the forward and reverse rotation of the spacing lead screw 4011). When the two sliding blocks 4012 move relatively, they will drive the two adjusting seats 405 to move relatively. In this way, the two groups of cap screwing heads 4010 below can be driven to move relatively by the movement of the two adjusting seats 405, so as to adjust the spacing between the two groups of cap screwing heads 4010. In actual use, by adjusting the spacing, it can be applicable to the rotation operations of caps of different sizes. Through the free adjustment of the spacing, the two groups of cap screwing heads 4010 can be in full contact with the cap, avoiding the occurrence of a screwing gap, having the use effect of stable clamping of the cap, effectively improving the quality and efficiency of screwing, avoiding the situation of incomplete screwing, and the spacing adjustment can be achieved by manual rotation drive, which is convenient to adjust, has good practicability, can be applicable to caps of different sizes for automatic screwing treatment, effectively reducing the use limitations and improving the applicable range.

[0066] In this embodiment, specifically refer to the attached drawings of the specification Figure 9 As shown, the clamping mechanism 8 includes side plates 801. There are two side plates 801 in total. A coarse adjustment lead screw 802 is rotatably installed between the two side plates 801 through a bearing. The coarse adjustment lead screw 802 is a positive and negative screw. Distance adjustment plates 803 are threadedly connected to the positive and negative threads of the coarse adjustment lead screw 802. Clamping cylinders 804 are fixedly installed at the tops of the two distance adjustment plates 803. The top of the output rod of the clamping cylinder 804 is fixedly installed with a clamping member 805. The two clamping members 805 are placed on both sides of the conveyor belt 2;

[0067] With this structural design, in actual use, when the filled container is conveyed by the conveyor belt 2 to the lower part of the cap screwing mechanism 4, the clamping cylinder 804 can work. When the clamping cylinder 804 works, it drives the clamping member 805 to extend through its output rod. In this way, the bottle body of the container can be clamped by the two extended clamping members 805 to avoid shaking during cap screwing and improve the stability of cap screwing;

[0068] The coarse adjustment lead screw 802 can be manually rotated. When the coarse adjustment lead screw 802 rotates, the two distance adjustment plates 803 on it move relative to each other. By this relative movement of the two distance adjustment plates 803, the two clamping cylinders 804 are driven to approach or move away from each other, so that the clamping force between the two clamping members 805 can be adjusted. At the same time, it can be used to clamp bottles with different diameters, improving the scope of use.

[0069] Working principle: Before the utility model is used, the filling pump 3014 of the filling mechanism 3 can be connected to an external liquid storage tank through a pipeline, so that the filling liquid can be transported to the filling seat 3011 through the filling pump 3014;

[0070] During use, the container to be filled is transported to the conveyor belt 2 through an external conveying device (manually placing the container or clamping and placing it with a manipulator, etc.). The conveyor belt 2 can transport the container to the lower part of the filling mechanism 3. The counting sensor can sense the number of transported containers. When the number of transported filled containers reaches the specified filling quantity, at this time, the control chip controls the material blocking cylinder 6 to work. When the material blocking cylinder 6 works, its output rod drives the material blocking plate 7 to extend, so that the specified number of containers can stay under the filling mechanism 3;

[0071] At this time, the driving cylinder 308 of the filling mechanism 3 can work. The driving cylinder 308 can drive the sliding plate 309 to descend through its output rod. When the sliding plate 309 descends, it will synchronously drive the filling pipe 3013 at the top to descend, so that the filling pipe 3013 can be inserted into the filled container. At this time, several filling pumps 3014 work to fill the liquid into the container to complete the filling work;

[0072] After the filling work is completed, the driving cylinder 308 drives the sliding plate 309 to move up and reset through its output rod, so that the filling pipe 3013 can be pulled out of the container. At this time, the staff can place a cover body for sealing on the filled container;

[0073] After the cover body is placed, the material blocking cylinder 6 drives the material blocking plate 7 to retract through its output rod. The filled container enters the capping area through the conveyor belt 2. At this time, the cover body of the container contacts the four capping heads 4010;

[0074] When the container enters the capping area, the clamping cylinder 804 can work. When the clamping cylinder 804 works, its output rod drives the clamping member 805 to extend, so that the two extended clamping members 805 can clamp the bottle body of the container to avoid shaking during capping and improve the capping stability;

[0075] After that, the screwing motor 406 can work. When the screwing motor 406 works, the output shaft drives the driving gear 407 at the bottom to rotate. When the driving gear 407 rotates, it drives the two driven gears 408 to rotate synchronously. Thus, the rotation of the two driven gears 408 drives the screwing head 4010 to rotate through the screwing shaft 409, so as to perform contact screwing treatment on the lid of the container through the rotating screwing head 4010, ensuring the sealing of the container.

[0076] After the screwing and sealing work is completed, the conveyor belt 2 continues to convey, transporting the sealed container filled with liquid to the next station for factory inspection, thereby completing the automatic filling and screwing and sealing work of the container.

[0077] The utility model integrates filling and subsequent screwing and sealing on one machine for unified production and processing, which can effectively improve the filling and sealing efficiency of products, increase the production speed of products. At the same time, replacing manual screwing with a machine can effectively reduce the input of human resources cost, reduce production costs, and improve the economic benefits of enterprises.

[0078] At the same time, the utility model is provided with guide plates 14 on both sides of the conveyor belt 2. Through the provided guide plates 14, the left and right limit and diversion treatment can be carried out on both sides of the container, avoiding the side fall of the container during transportation, which is convenient to use and has a certain limit and diversion effect.

[0079] And the lifting optical rod 10 can be inserted into the clamping seat 9 in a telescopic manner. When fixing, just tighten the bolt in the clamping seat 9. In this way, the lifting of the lifting optical rod 10 can drive the guide plate 14 to freely adjust the height, so as to be applicable to the feeding and diversion work of containers of different heights.

[0080] The secondary optical rod 12 can be telescoped in the secondary seat 11, so as to adjust the distance between the two guide plates 14, so as to be applicable to the diversion of containers with different bottle body sizes, which is convenient to use and effectively improves the applicable range of the structure.

[0081] In the utility model, the filling seat 3011 is slidably connected to the transverse guide rail 3010. With this structural design, the filling seat 3011 can move freely on the transverse guide rail 3010. When it is necessary to fix the filling seat 3011, the tightening bolt 3012 can be tightened manually. This structural design can conveniently adjust the filling distance between the two filling heads freely, and can be dynamically adjusted for bottle mouths with different distances during actual use, greatly improving the applicable range of the utility model, having the use characteristic of dynamically adjustable filling distance, and effectively reducing the use limitation.

[0082] Meanwhile, the secondary lead screw 306 of the present utility model can be manually rotated under the action of the adjusting handwheel 3018. When the secondary lead screw 306 rotates, the first threaded seat 307 threadedly connected thereto can move up and down dynamically. Thus, the filling seat 3011 is driven to move up and down integrally by the movement of the first threaded seat 307. When this structural design is in use, the filling height of the filling seat 3011 can be freely and dynamically adjusted, so as to be applicable to containers of different heights for filling. The limitation of the container height is small, and it is convenient to use;

[0083] According to the above description, when the filling mechanism 3 of the present utility model is actually used, it can complete multiple groups of unified filling operations, and can complete the unified filling process of multiple containers in a single filling operation, greatly improving the filling efficiency of the containers and the production speed. At the same time, the filling spacing and filling height have the use characteristics of dynamic adjustment, and can be applicable to bottle mouths with different spacings and containers with different heights for filling, greatly expanding the overall use range of the present utility model, reducing the use limitations, and having a good use effect;

[0084] Moreover, the capping mechanism 4 is provided with a lifting lead screw 402, and the lifting lead screw 402 can be manually rotated under the drive of the handwheel. When the lifting lead screw 402 rotates, the sliding plate 404 threadedly connected thereto will move up and down along the lifting lead screw 402. Thus, the capping head 4010 below is driven to move by the movement of the sliding plate 404, so as to freely adjust the working height of the capping head 4010. In this way, the capping mechanism 4 of the present utility model can be applicable to containers of different heights for capping, reducing the use limitations and increasing the applicable range;

[0085] Moreover, the handwheel provided can manually drive the spacing lead screw 4011 to rotate. Since the spacing lead screw 4011 is a forward and reverse threaded lead screw, when the spacing lead screw 4011 rotates, the two sliding blocks 4012 threadedly connected thereto will move relatively, that is, move away from each other or approach each other (this effect depends on the forward and reverse rotation of the spacing lead screw 4011). When the two sliding blocks 4012 move relatively, they will drive the two adjusting seats 405 to move relatively. Thus, the two groups of capping heads 4010 below can be driven to move relatively by the movement of the two adjusting seats 405, so as to adjust the spacing between the two groups of capping heads 4010. In actual use, by adjusting the spacing, it can be applicable to caps of different sizes for rotation work. Through the free adjustment of the spacing, the two groups of capping heads 4010 can be in full contact with the cap, avoiding capping gaps, having the use effect of stable clamping of the cap, effectively improving the capping quality and efficiency, avoiding the situation of incomplete capping, and the spacing adjustment can be driven by manual rotation, which is convenient to adjust, has good practicability, can be applicable to caps of different sizes for automatic capping, effectively reducing the use limitations and increasing the applicable range.

[0086] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above-mentioned exemplary embodiments, and the present utility model can be implemented in other specific forms without departing from the spirit or basic characteristics of the present utility model. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present utility model. Any reference signs in the claims should not be construed as limiting the claims involved.

Claims

1. An integrated production machine for canned capping, including a machine base (1), characterized in that, On the upper surface of the machine base (1), a conveyor belt (2) is fixedly installed. On one side of the upper surface of the machine base (1), a filling mechanism (3) is fixedly installed. On the other side of the upper surface of the machine base (1), a capping mechanism (4) is fixedly installed. A cabinet body (5) is arranged between the filling mechanism (3) and the capping mechanism (4). Below the filling mechanism (3) and on the side of the conveyor belt (2), two material blocking cylinders (6) are fixedly installed. The output rods of the two material blocking cylinders (6) are fixedly installed with a material blocking plate (7). The material blocking plate (7) is designed in an "L" shape. A counting sensor is arranged below the filling mechanism (3). Below the capping mechanism (4) and on the upper surface of the machine base (1), a clamping mechanism (8) is fixedly installed. On the outer walls of both sides of the conveyor belt (2), a number of clamping seats (9) are fixedly installed at equal intervals. An elevating optical rod (10) is movably inserted into the clamping seat (9). The top end of the elevating optical rod (10) is fixedly installed with a secondary seat (11). A secondary optical rod (12) is movably inserted into the secondary seat (11). The secondary optical rod (12) is fixedly pressed against the inside of the secondary seat (11) through a tightening bolt (13). The top end of the secondary optical rod (12) is fixedly installed with a diversion plate (14).

2. The integrated production machine for can capping according to claim 1, characterized in that: The filling mechanism (3) includes a first-level guide rod (301), a second-level guide rod (302), and a third-level guide rod (303). The top ends of the first-level guide rod (301), the second-level guide rod (302), and the third-level guide rod (303) are fixedly installed with a top plate (304). Between the second-level guide rod (302) and the third-level guide rod (303) and on the lower surface of the top plate (304), a second-level lead screw (306) is rotatably installed through a bearing. Between the first-level guide rod (301) and the second-level guide rod (302) and on the lower surface of the top plate (304), a first-level lead screw (305) is rotatably installed.

3. The integrated production machine for canned capping according to claim 2, wherein: A first threaded seat (307) is threadedly connected to the second-level lead screw (306). The two sides of the first threaded seat (307) are respectively slidably connected to the second-level guide rod (302) and the third-level guide rod (303). The upper surface of the first threaded seat (307) is fixedly installed with a driving cylinder (308). The bottom end of the output rod of the driving cylinder (308) is fixedly connected to a sliding plate (309).

4. The integrated production machine for can capping according to claim 3, characterized in that: The top end of the sliding plate (309) is fixedly installed with a transverse guide rail (3010). The transverse guide rail (3010) is perpendicularly connected to the sliding plate (309). A number of filling seats (3011) are slidably connected to the upper surface of the transverse guide rail (3010). A tightening bolt (3012) is threadedly connected to the filling seat (3011).

5. The integrated production machine for can capping according to claim 4, characterized in that: The bottom ends of a number of the filling seats (3011) are fixedly installed with filling pipes (3013). The top end of each filling pipe (3013) is fixedly connected to a filling pump (3014) through a pipeline.

6. The integrated production machine for canned capping according to claim 2, wherein: A liquid receiving slide plate (3015) is threadedly connected to the first-stage lead screw (305). A liquid receiving air cylinder (3016) is fixedly installed on the liquid receiving slide plate (3015). The top end of the output rod of the liquid receiving air cylinder (3016) is fixedly installed with a hopper (3017). Adjusting handwheels (3018) are fixedly installed at the top ends of both the first-stage lead screw (305) and the second-stage lead screw (306).

7. A canned capping integrated production machine according to claim 1, characterized in that: The capping mechanism (4) includes a capping machine frame (401). A lifting lead screw (402) is rotatably installed in the capping machine frame (401). Guide rods (403) are fixedly installed on both sides of the lifting lead screw (402). A slide plate (404) is threadedly connected to the lifting lead screw (402). The two sides of the slide plate (404) are sleeved outside the guide rods (403) and are slidably connected to the guide rods (403).

8. A canned capping integrated production machine according to claim 7, characterized in that: Two adjusting seats (405) are slidably connected to the slide plate (404). Capping motors (406) are fixedly installed at the top ends of the two adjusting seats (405). The output shaft of the capping motor (406) is fixedly connected to a driving gear (407). Two driven gears (408) are meshed and connected to one side of the driving gear (407). Capping shafts (409) are fixedly installed at the bottom ends of the two driven gears (408). A capping head (4010) is fixedly installed at the bottom end of the capping shaft (409).

9. The integrated production machine for can capping according to claim 7, characterized in that: A pitch lead screw (4011) is rotatably installed on one side of the slide plate (404) and on the side of the adjusting seat (405) through a bearing. The pitch lead screw (4011) is a positive and negative thread lead screw. Slide blocks (4012) are threadedly connected to the positive and negative threads of the pitch lead screw (4011). The two slide blocks (4012) are respectively fixedly connected to the two adjusting seats (405). One ends of both the lifting lead screw (402) and the pitch lead screw (4011) are fixedly connected with handwheels.

10. The integrated production machine for can capping according to claim 1, characterized in that: The clamping mechanism (8) includes side plates (801). There are two side plates (801) in total. A coarse adjustment lead screw (802) is rotatably installed between the two side plates (801) through a bearing. The coarse adjustment lead screw (802) is a positive and negative screw. Distance adjustment plates (803) are threadedly connected to the positive and negative threads of the coarse adjustment lead screw (802). Clamping air cylinders (804) are fixedly installed at the top ends of the two distance adjustment plates. The top end of the output rod of the clamping air cylinder (804) is fixedly installed with a clamping part (805). The two clamping parts (805) are placed on both sides of the conveyor belt (2).