Stirring device for bottle processing

By designing a stirring device with scraping and supporting functions, the problem of material residue on the inner wall during bottle processing is solved, efficient stirring and convenient maintenance are achieved, and cleaning costs and equipment complexity are reduced.

CN223369752UActive Publication Date: 2025-09-23PANAN COUNTY TRIPLE DRUG PACKAGING CO LTD
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Patent Information

Application Number
CN202422867003.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-23
Publication Date
2025-09-23
Estimated Expiration
2034-11-23

AI Technical Summary

Technical Problem

The existing bottle processing equipment has residual materials on the inner wall after stirring, which leads to waste and frequent cleaning, and needs to be improved.

Method used

A stirring device for bottle processing is designed, which includes a stirring device, a scraping mechanism and a supporting device. The stirring device scrapes off the material on the inner wall during the stirring process, and the supporting device enables the cylinder to be converted into a state, which is convenient for disassembly and cleaning.

Benefits of technology

Effectively reduce material residue, reduce cleaning frequency, improve equipment usability and maintainability, simplify transmission structure, and reduce energy consumption and failure rate.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of bottle processing, and particularly relates to a stirring device for bottle processing, which comprises: a cylinder, which is internally provided with a stirring cavity; the stirring device is arranged on the barrel body and is used for stirring the materials in the barrel body, and meanwhile, the materials on the inner wall of the barrel body can be scraped off during stirring; the supporting device is arranged at the bottom of the cylinder body and used for supporting the cylinder body, and the cylinder body can be rotated to be converted into a horizontal state from a vertical state; wherein a feeding hole is formed in the top of the cylinder body, and a discharging hole is formed in the bottom of the cylinder body. The device has the beneficial effects that through the design of the stirring device, materials on the inner wall of the barrel body can be effectively scraped off in the stirring process, material residues and waste are reduced, meanwhile, due to the fact that the material residues are reduced, the cleaning frequency of the device is correspondingly reduced, and therefore the cleaning time and cost are saved.
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Description

Technical Field

[0001] The present application belongs to the technical field of bottle processing, and in particular relates to a stirring device for bottle processing. Background Art

[0002] During bottle processing, a bottle blowing machine is used to blow plastic particles softened into liquid into bottles. Because the bottles are blow-stretched by high-temperature softened plastic, the patent publication number CN217292954U discloses an injection molding machine stirring device, including a bottom plate and a box body, the top front side and the top rear side of the bottom plate are fixedly connected to a support plate, the front end and the rear end of the box body are fixedly connected to a rotating shaft, the two rotating shafts are respectively rotatably connected to the two support plates, the two rotating shafts are fixedly connected to the rotating plates at one end away from the box body, the two rotating plates are rotatably connected to a first electric cylinder, and the bottom ends of the two first electric cylinders are respectively rotatably connected to the two support plates, a plurality of slide slots are provided inside the box body, a slider is slidably provided inside each slide slot, the top end of each slider is fixedly connected to a sliding rod, the plurality of sliding rods extend to the upper side of the box body, the top ends of the plurality of sliding rods are connected to a box cover by a first screw, and the box cover is connected to the box body by a plurality of second screws.

[0003] The above patent achieves a stirring effect by setting a stirring plate and a stirring shaft for stirring, but after stirring, materials will remain on the inner wall. If these materials are not cleaned, they will continue to accumulate on the inner wall, causing waste. They need to be cleaned frequently and need to be improved. Utility Model Content

[0004] The purpose of this application is to provide a stirring device for bottle processing that can solve the above problems.

[0005] The purpose of this application is to provide a stirring device for bottle processing, comprising:

[0006] A cylinder having a stirring chamber provided therein;

[0007] The stirring device is provided on the cylinder body and is used to stir the material in the cylinder body and also to scrape the material off the inner wall of the cylinder body during stirring;

[0008] A supporting device is provided at the bottom of the cylinder and is used to support the cylinder and can also rotate the cylinder to change it from a vertical state to a horizontal state;

[0009] Among them, the top of the cylinder is provided with a feed port, and the bottom is provided with a discharge port.

[0010] The above-mentioned stirring device for bottle processing is used, and a stirring chamber is provided inside the barrel for accommodating the material to be stirred. A feed port is provided at the top of the barrel for facilitating the addition of material, and a discharge port is provided at the bottom for facilitating the discharge of the stirred material. The stirring device is provided on the barrel, and is not only used to stir the material in the barrel, but also has the function of scraping off the material remaining on the inner wall of the barrel during the stirring process, effectively reducing the accumulation of material on the inner wall and reducing the frequency of cleaning. The support device is provided at the bottom of the barrel, and not only supports the barrel, but also enables the barrel to switch between a vertical state and a horizontal state, so that the barrel can be easily disassembled and cleaned when cleaning is required, thereby improving the usability and maintainability of the equipment.

[0011] The design of the agitator effectively scrapes away material from the inner wall of the cylinder during mixing, reducing material residue and waste. This also reduces the frequency of equipment cleaning, saving cleaning time and costs. The support design allows for easy disassembly and cleaning of the cylinder, improving the equipment's usability and maintainability, and facilitating repair and replacement of the agitator.

[0012] Furthermore, the stirring device comprises:

[0013] The scraping mechanism includes a driving motor, a first rotating shaft arranged on the output shaft of the driving motor, and a scraping rod arranged on the first rotating shaft;

[0014] The stirring mechanism includes a second rotating shaft, a stirring blade provided on the second rotating shaft, and a linkage structure connected to the second rotating shaft, the linkage structure being used to connect the first rotating shaft and the second rotating shaft;

[0015] Among them, a through slot for the first rotating shaft to pass through is set inside the second rotating shaft, and the driving motor drives the first rotating shaft and the second rotating shaft to rotate at the same time through the linkage structure, and the rotation directions of the first rotating shaft and the second rotating shaft are opposite.

[0016] The drive motor is used to provide a power source for driving the entire stirring device to operate. The first rotating shaft is connected to the output shaft of the drive motor to transmit the power of the motor to the scraper rod. The scraper rod is arranged on the first rotating shaft and rotates as the first rotating shaft rotates, and is used to scrape the material on the inner wall of the cylinder. The second rotating shaft is connected to the first rotating shaft of the scraper mechanism through a linkage structure to achieve synchronous rotation, but the rotation direction is opposite. The stirring blade is arranged on the second rotating shaft to stir the material as the second rotating shaft rotates. The linkage structure is used to connect the first rotating shaft and the second rotating shaft to ensure that the two can rotate synchronously and in opposite directions, which not only simplifies the transmission structure, but also improves the stirring efficiency. At the same time, the interior of the second rotating shaft is designed with a through groove for the first rotating shaft to pass through, so that the first rotating shaft and the second rotating shaft can fit closely and achieve reverse rotation at the same time. The scraper rod also has the effect of auxiliary stirring, realizing the effect of double stirring.

[0017] The scraper mechanism effectively scrapes material off the inner wall of the cylinder through the rotation of the scraper rod, reducing material residue and improving mixing efficiency. The mixing and scraping mechanisms rotate synchronously in opposite directions through a linkage structure, creating a dual stirring effect that not only improves stirring uniformity but also enhances the mixing effect of materials. By designing the first and second rotating shafts as interleaved structures and utilizing the linkage structure to achieve synchronous counter-rotation, the transmission structure is simplified, reducing equipment complexity and maintenance costs.

[0018] Further: the linkage structure includes:

[0019] A mounting platform is provided on the cylinder;

[0020] The connecting seat is placed inside the mounting platform; one end of the connecting seat is connected to the second rotating shaft, and an inner gear ring is provided on the inner wall of the other end.

[0021] A connecting gear is provided on the outer wall of the first rotating shaft;

[0022] A connecting pinion is provided between the connecting gear and the inner gear ring and is rotatably connected to the mounting platform;

[0023] There are multiple connecting pinions, and each connecting pinion is meshed with the inner gear ring and the connecting gear.

[0024] The mounting platform is used to mount the connecting base and connecting pinion. One end of the connecting base is securely connected to the second rotating shaft and serves as an extension of the second rotating shaft. The other end of the connecting base is provided with an inner ring gear on its inner wall, which meshes with the connecting pinion. The connecting gear is mounted on the outer wall of the first rotating shaft and rotates coaxially with the first rotating shaft. Three or more connecting pinions are positioned between the connecting gear and the inner ring gear and mounted on the connecting base. Each connecting pinion meshes with the inner ring gear and the connecting gear, allowing the connecting pinions to rotate freely between the two gears, transmitting power and forming a planetary gear structure.

[0025] When the drive motor is started, the first shaft begins to rotate, driving the connecting gear to rotate. Since the connecting pinion is engaged with the connecting gear and the inner ring gear at the same time, the connecting pinion will rotate on the connecting seat and drive the inner ring gear to rotate, thereby driving the connecting seat to rotate and causing the second shaft to rotate in the opposite direction to the first shaft. This not only achieves synchronous reverse rotation of the two shafts, but also improves the uniformity and efficiency of stirring through the transmission of the connecting pinion.

[0026] The linkage structure, through the transmission of the connecting pinion, achieves synchronous counter-rotation of the first and second shafts, achieving high transmission efficiency and reducing energy loss. Since the two shafts rotate in opposite directions, the mixing flow field formed by the mixing blades and scraper rod within the barrel is more complex, helping to improve the uniformity of material mixing. The linkage design makes the entire mixing device more compact, reducing the equipment's space requirements. Furthermore, a single drive drives both shafts, reducing energy consumption, equipment wear and failure rates, and further lowering maintenance costs while improving efficiency.

[0027] Furthermore, the cylinder is also provided with a bearing that cooperates with the second rotating shaft.

[0028] The bearing arrangement enables smooth rotation of the second shaft, minimizing energy loss during rotation. This improves mixing efficiency and ensures more uniform mixing of materials. It also reduces direct contact between the second shaft and the drum, reducing wear and the risk of failure. This helps extend the life of the agitator, reduces maintenance costs, and ensures more stable operation.

[0029] Furthermore, the supporting device includes:

[0030] Support base plate;

[0031] Two connecting vertical plates are provided on the supporting bottom plate;

[0032] A linkage assembly includes rotating shafts provided on both sides of the cylinder and linkage rods connected to the rotating shafts;

[0033] An electric cylinder is provided on the connecting vertical plate, and its telescopic end is connected to the other end of the linkage rod;

[0034] Among them, the telescopic end of the electric cylinder is hingedly connected to the linkage rod, and the cylinder body can be driven to rotate through the telescopic movement of the electric cylinder.

[0035] The support base serves as the base of the entire support device, providing a stable support surface. It is arranged on the support base and is designed to be two, one on each side of the cylinder. The linkage assembly includes a rotating shaft arranged on both sides of the cylinder and a linkage rod connected to the rotating shaft. The rotating shaft is connected to the cylinder to ensure that the cylinder can rotate with the rotation of the rotating shaft. One end of the linkage rod is connected to the rotating shaft, and the other end is hingedly connected to the telescopic end of the electric cylinder to form a linkage relationship. The electric cylinder is arranged on the connecting vertical plate, and its telescopic end is hingedly connected to the other end of the linkage rod. The telescopic movement of the electric cylinder can drive the linkage rod and the rotating shaft to rotate, thereby driving the cylinder to rotate.

[0036] When the electric cylinder begins to extend or retract, its extended end drives the linkage rod through a hinged connection. Because one end of the linkage rod is connected to the rotating shaft, its movement translates into rotation of the shaft. The shaft is connected to the cylinder, so the cylinder rotates with the shaft. By controlling the extension and retraction speed of the electric cylinder, the rotation angle and speed of the cylinder can be precisely controlled. This allows the cylinder to be leveled and easily disassembled without the need for lifting equipment, improving disassembly efficiency.

[0037] Furthermore, the cylinder body also includes a cylinder cover, the feed port is arranged on the cylinder cover, and the cylinder cover and the cylinder body are connected by fasteners.

[0038] The cylinder cover is located on top of the cylinder to seal it and prevent spillage during mixing. Fasteners connect the cover to the cylinder, ensuring a tight seal and stability. These can be standard components like bolts and nuts, making installation and removal easy.

[0039] The beneficial effects of this application are:

[0040] 1. The design of the stirring device can effectively scrape off the material on the inner wall of the cylinder during the stirring process, reducing material residue and waste. At the same time, due to the reduction of material residue, the cleaning frequency of the equipment is also reduced accordingly, thus saving cleaning time and cost;

[0041] 2. The design of the support device allows the cylinder to be easily disassembled and cleaned, which improves the usability and maintainability of the equipment and also facilitates the inspection and replacement of the stirring device;

[0042] 3. The design of the linkage structure makes the entire mixing device more compact and reduces the space occupied by the equipment. At the same time, a single drive drives the dual-axis rotation, which reduces energy consumption while improving efficiency, reduces equipment wear and failure rate, and further reduces maintenance costs. BRIEF DESCRIPTION OF THE DRAWINGS

[0043] Figure 1 It is a structural diagram of the utility model;

[0044] Figure 2 It is a cross-sectional view of the utility model;

[0045] Figure 3 yes Figure 2 A magnified view of middle A;

[0046] Figure 4 It is a structural diagram of the linkage structure of the utility model.

[0047] The reference numerals in the figure are: 100, cylinder; 110, stirring chamber; 120, feed port; 130, discharge port; 140, bearing; 150, cylinder cover; 200, scraping mechanism; 210, driving motor; 220, first rotating shaft; 230, scraping rod; 300, stirring mechanism; 310, second rotating shaft; 320, stirring blade; 400, linkage structure; 410, mounting platform; 420, connecting seat; 421, inner ring gear; 430, connecting gear; 440, connecting pinion; 500, supporting device; 510, supporting bottom plate; 520, connecting vertical plate; 530, linkage assembly; 540, linkage rod; 550, electric cylinder. DETAILED DESCRIPTION

[0048] The following will be combined with the accompanying drawings in the embodiments of the present application to clearly describe the technical solutions in the embodiments of the present application. Obviously, the embodiments described are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field are within the scope of protection of this application.

[0049] The terms "first," "second," and the like in the specification and claims of this application are used to distinguish similar objects, and are not used to describe a specific order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate, so that the embodiments of this application can be implemented in an order other than that illustrated or described herein, and that the objects distinguished by "first," "second," and the like are generally of the same type, and do not limit the number of objects; for example, the first object can be one or more. In addition, the term "and / or" in the specification and claims refers to at least one of the connected objects, and the character " / " generally indicates that the objects connected are in an "or" relationship.

[0050] The following describes in detail the bottle processing stirring device provided in the embodiment of the present application through specific embodiments and their application scenarios in conjunction with the accompanying drawings.

[0051] Example 1:

[0052] like Figure 1 and Figure 2 As shown, the embodiment of the present application provides a stirring device for bottle processing, comprising:

[0053] The cylinder 100 has a stirring chamber 110 disposed therein;

[0054] A stirring device is provided on the cylinder 100 and is used to stir the material in the cylinder 100 and also to scrape the material off the inner wall of the cylinder 100 during stirring;

[0055] The supporting device 500 is provided at the bottom of the cylinder 100 and is used to support the cylinder 100 and can also rotate the cylinder 100 to change it from a vertical state to a horizontal state;

[0056] The top of the cylinder 100 is provided with a feed port 120 , and the bottom is provided with a discharge port 130 .

[0057] In some implementations of the embodiments of this application, Figure 1 As shown, a stirring device for bottle processing as described above is used, wherein a stirring chamber 110 is provided inside the barrel 100 for accommodating the material to be stirred, a feed port 120 is provided at the top of the barrel 100 for facilitating the addition of material, and a discharge port 130 is provided at the bottom for facilitating the discharge of the stirred material. The stirring device is provided on the barrel 100, and is not only used to stir the material in the barrel 100, but also has the function of scraping off the material remaining on the inner wall of the barrel 100 during the stirring process, effectively reducing the accumulation of material on the inner wall and reducing the frequency of cleaning. The supporting device 500 is provided at the bottom of the barrel 100, and not only plays the role of supporting the barrel 100, but also enables the barrel 100 to be converted between a vertical state and a horizontal state, so that the barrel 100 can be easily disassembled and cleaned when cleaning is required, thereby improving the usability and maintainability of the equipment.

[0058] The design of the stirring device effectively scrapes away material from the inner wall of the cylinder 100 during stirring, reducing material residue and waste. Furthermore, due to the reduced material residue, the frequency of equipment cleaning is also reduced, thereby saving cleaning time and costs. The design of the support device 500 allows for easy disassembly and cleaning of the cylinder 100, improving the ease of use and maintainability of the equipment and facilitating the inspection and replacement of the stirring device.

[0059] Example 2:

[0060] An embodiment of the present application provides a stirring device for bottle processing. In addition to the above-mentioned technical features, the stirring device for bottle processing in the embodiment of the present application also includes the following technical features.

[0061] like Figure 2 As shown, the stirring device includes:

[0062] The scraper mechanism 200 includes a drive motor 210, a first rotating shaft 220 disposed on the output shaft of the drive motor 210, and a scraper rod 230 disposed on the first rotating shaft 220;

[0063] The stirring mechanism 300 includes a second rotating shaft 310, a stirring blade 320 disposed on the second rotating shaft 310, and a linkage structure 400 connected to the second rotating shaft 310, the linkage structure 400 being used to connect the first rotating shaft 220 and the second rotating shaft 310;

[0064] The second rotating shaft 310 is provided with a through slot for the first rotating shaft 220 to pass through. The driving motor 210 drives the first rotating shaft 220 and the second rotating shaft 310 to rotate simultaneously through the linkage structure 400, and the rotation directions of the first rotating shaft 220 and the second rotating shaft 310 are opposite.

[0065] In an embodiment of the present application, the drive motor 210 is used to provide a power source for driving the entire stirring device to operate. The first rotating shaft 220 is connected to the output shaft of the drive motor 210 to transmit the power of the motor to the scraper rod 230. The scraper rod 230 is arranged on the first rotating shaft 220, and rotates as the first rotating shaft 220 rotates, and is used to scrape the material on the inner wall of the cylinder 100. The second rotating shaft 310 is connected to the first rotating shaft 220 of the scraping mechanism 200 through a linkage structure 400 to achieve synchronous rotation, but the rotation direction is opposite. The stirring blade 320 is arranged on the second rotating shaft 310, and stirs the material as the second rotating shaft 310 rotates. The linkage structure 400 is used to connect the first rotating shaft 220 and the second rotating shaft 310 to ensure that the two can rotate synchronously and in opposite directions, which not only simplifies the transmission structure but also improves the stirring efficiency. At the same time, the second rotating shaft 310 is designed with a through groove for the first rotating shaft 220 to pass through, so that the first rotating shaft 220 and the second rotating shaft 310 can fit closely and realize reverse rotation at the same time. The scraper rod 230 also has the effect of auxiliary stirring, realizing the effect of double stirring.

[0066] The scraper mechanism 200 effectively scrapes material from the inner wall of the cylinder 100 through the rotation of the scraper rod 230, reducing material residue and improving mixing efficiency. The stirring mechanism 300 and the scraper mechanism 200 achieve synchronous counter-rotation through a linkage structure 400, creating a dual stirring effect that not only improves stirring uniformity but also enhances the mixing effect of the materials. By designing the first rotating shaft 220 and the second rotating shaft 310 as an interlaced structure and utilizing the linkage structure 400 to achieve synchronous counter-rotation, the transmission structure is simplified, reducing equipment complexity and maintenance costs.

[0067] Example 3:

[0068] An embodiment of the present application provides a stirring device for bottle processing. In addition to the above-mentioned technical features, the stirring device for bottle processing in the embodiment of the present application also includes the following technical features.

[0069] like Figures 2 to 4 As shown, the linkage structure 400 includes:

[0070] The mounting platform 410 is provided on the cylinder 100;

[0071] The connecting seat 420 is inside the mounting platform 410; one end of the connecting seat is connected to the second rotating shaft 310, and an inner gear ring 421 is provided on the inner wall of the other end.

[0072] The connecting gear 430 is disposed on the outer wall of the first rotating shaft 220;

[0073] The connecting pinion 440 is disposed between the connecting gear 430 and the inner gear ring 421 and is rotatably connected to the mounting platform 410;

[0074] There are multiple connecting pinions 440 , and each connecting pinion 440 is engaged with the inner gear ring 421 and the connecting gear 430 .

[0075] In the embodiment of the present application, the mounting platform 410 is used to mount the connecting base 420 and the connecting pinion 440. One end of the connecting base 420 is firmly connected to the second rotating shaft 310. As an extension of the second rotating shaft 310, an inner ring gear 421 is provided on the inner wall of the other end of the connecting base 420 for meshing with the connecting pinion 440. The connecting gear 430 is disposed on the outer wall of the first rotating shaft 220 and rotates coaxially with the first rotating shaft 220. The connecting pinion 440 is disposed between the connecting gear 430 and the inner ring gear 421 and is mounted on the connecting base 420. There can be three or more connecting pinions 440, each of which meshes with the inner ring gear 421 and the connecting gear 430, allowing the connecting pinions 440 to rotate freely between the two gears and transmit power, thereby forming a planetary gear structure.

[0076] When the drive motor 210 is started, the first rotating shaft 220 begins to rotate, driving the connecting gear 430 to rotate. Since the connecting pinion 440 is engaged with the connecting gear 430 and the inner ring gear 421 at the same time, the connecting pinion 440 will rotate on the connecting seat 420 and drive the inner ring gear 421 to rotate, thereby driving the connecting seat 420 to rotate and causing the second rotating shaft 310 to rotate in the opposite direction to the first rotating shaft 220. This not only achieves the synchronous reverse rotation of the two rotating shafts, but also improves the uniformity and efficiency of stirring through the transmission of the connecting pinion 440.

[0077] The linkage structure 400 realizes the synchronous counter-rotation of the first rotating shaft 220 and the second rotating shaft 310 by connecting the transmission of the pinion 440, and has high transmission efficiency and reduces energy loss. Since the two rotating shafts rotate in opposite directions, the stirring flow field formed by the stirring blades 320 and the scraper rod 230 in the barrel 100 is more complex, which helps to improve the mixing uniformity of the materials. The design of the linkage structure 400 makes the entire stirring device more compact and reduces the space occupied by the equipment. At the same time, a single drive drives the rotation of the two shafts, which reduces energy consumption while improving efficiency, reduces equipment wear and failure rate, and further reduces maintenance costs.

[0078] Furthermore, a bearing 140 is provided on the cylinder 100 to cooperate with the second rotating shaft 310 .

[0079] The provision of bearing 140 enables smooth rotation of the second rotating shaft 310, reducing energy loss during rotation. This helps improve stirring efficiency and achieve more uniform mixing of materials. It also reduces direct contact between the second rotating shaft 310 and the barrel 100, thereby reducing the risk of wear and failure, helping to extend the service life of the stirring device, reduce maintenance costs, and make the stirring device more stable during operation.

[0080] Example 4:

[0081] An embodiment of the present application provides a stirring device for bottle processing. In addition to the above-mentioned technical features, the stirring device for bottle processing in the embodiment of the present application also includes the following technical features.

[0082] like Figure 1 As shown, the supporting device 500 includes:

[0083] Support base plate 510;

[0084] Two connecting vertical plates 520 are provided on the supporting base plate 510;

[0085] The linkage assembly 530 includes a rotating shaft provided on both sides of the cylinder 100 and a linkage rod 540 connected to the rotating shaft;

[0086] The electric cylinder 550 is provided on the connecting vertical plate 520, and its telescopic end is connected to the other end of the linkage rod 540;

[0087] The telescopic end of the electric cylinder 550 is hingedly connected to the linkage rod 540 , and the cylinder 100 can be driven to rotate by the telescopic movement of the electric cylinder 550 .

[0088] In an embodiment of the present application, the support base 510 serves as the base of the entire support device 500 and provides a stable support surface. It is arranged on the support base 510 and is designed to be two, respectively located on both sides of the cylinder 100. The linkage assembly 530 includes a rotating shaft arranged on both sides of the cylinder 100 and a linkage rod 540 connected to the rotating shaft. The rotating shaft is connected to the cylinder 100 to ensure that the cylinder 100 can rotate with the rotation of the rotating shaft. One end of the linkage rod 540 is fixedly connected to the rotating shaft, and the other end is hingedly connected to the telescopic end of the electric cylinder 550 to form a linkage relationship. The electric cylinder 550 is arranged on the connecting vertical plate 520, and its telescopic end is hingedly connected to the other end of the linkage rod 540. Through the telescopic movement of the electric cylinder 550, the linkage rod 540 and the rotating shaft can be driven to rotate, thereby driving the cylinder 100 to rotate.

[0089] When the electric cylinder 550 begins to extend and retract, its extended end drives the linkage rod 540 through a hinged connection. Because one end of the linkage rod 540 is connected to the rotating shaft, its movement translates into rotation of the shaft. The shaft is connected to the barrel 100, so the barrel 100 rotates as the shaft rotates. By controlling the extension and retraction speed of the electric cylinder 550, the rotation angle and speed of the barrel 100 can be precisely controlled. This allows the barrel 100 to be laid flat and easily disassembled without the need for lifting equipment, improving disassembly efficiency.

[0090] Example 5:

[0091] An embodiment of the present application provides a stirring device for bottle processing. In addition to the above-mentioned technical features, the stirring device for bottle processing in the embodiment of the present application also includes the following technical features.

[0092] As shown in the figure, the cylinder 100 further includes a cylinder cover 150 , and the feed port 120 is provided on the cylinder cover 150 , and the cylinder cover 150 and the cylinder 100 are connected by fasteners.

[0093] In this embodiment of the present application, a cap 150 is disposed on top of the cylinder 100 to seal the cylinder 100 and prevent spillage of materials during mixing. Fasteners connect the cap 150 to the cylinder 100 to ensure the seal and stability of the cylinder 100. These fasteners can be standard components such as bolts and nuts for easy installation and removal.

[0094] It should be noted that, in this article, the terms "comprise", "include" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, an element defined by the statement "comprises a ..." does not exclude the presence of other identical elements in the process, method, article or device comprising the element. In addition, it should be noted that the scope of the methods and devices in the embodiments of the present application is not limited to performing functions in the order shown or discussed, and may also include performing functions in a substantially simultaneous manner or in the opposite order according to the functions involved. For example, the described method may be performed in an order different from that described, and various steps may also be added, omitted, or combined. In addition, the features described with reference to certain examples may be combined in other examples.

[0095] The embodiments of the present application are described above in conjunction with the accompanying drawings, but the present application is not limited to the above-mentioned specific implementation methods. The above-mentioned specific implementation methods are merely illustrative and not restrictive. Under the guidance of this application, ordinary technicians in this field can also make many forms without departing from the purpose of this application and the scope of protection of the claims, all of which are within the protection of this application.

Claims

1. A stirring device for bottle processing, characterized in that: include: A cylinder (100) is provided with a stirring chamber (110) therein; A stirring device is provided on the cylinder (100) and is used to stir the material in the cylinder (100) and can also scrape the material off the inner wall of the cylinder (100) during stirring; A supporting device (500) is provided at the bottom of the cylinder (100) and is used to support the cylinder (100), and can also rotate the cylinder (100) to change it from a vertical state to a horizontal state; The top of the cylinder (100) is provided with a feed port (120), and the bottom is provided with a discharge port (130).

2. A stirring device for bottle processing according to claim 1, characterized in that: The stirring device comprises: The scraping mechanism (200) includes a driving motor (210), a first rotating shaft (220) arranged on the output shaft of the driving motor (210), and a scraping rod (230) arranged on the first rotating shaft (220); A stirring mechanism (300) includes a second rotating shaft (310), a stirring blade (320) disposed on the second rotating shaft (310), and a linkage structure (400) connected to the second rotating shaft (310), wherein the linkage structure (400) is used to connect the first rotating shaft (220) and the second rotating shaft (310); The second rotating shaft (310) is provided with a through slot for the first rotating shaft (220) to pass through, and the driving motor (210) drives the first rotating shaft (220) and the second rotating shaft (310) to rotate simultaneously through the linkage structure (400), and the rotation directions of the first rotating shaft (220) and the second rotating shaft (310) are opposite.

3. A stirring device for bottle processing according to claim 2, characterized in that: The linkage structure (400) comprises: A mounting platform (410) is provided on the cylinder (100); The connecting seat (420) is placed inside the mounting platform (410); one end of the connecting seat is connected to the second rotating shaft (310), and an inner gear ring (421) is provided on the inner wall of the other end. A connecting gear (430) is disposed on the outer wall of the first rotating shaft (220); A connecting pinion (440) is disposed between the connecting gear (430) and the inner gear ring (421) and is rotatably connected to the mounting platform (410); There are multiple connecting pinions (440), and each connecting pinion (440) is meshed with the inner gear ring (421) and the connecting gear (430).

4. A stirring device for bottle processing according to claim 3, characterized in that: The cylinder (100) is also provided with a bearing (140) that cooperates with the second rotating shaft (310).

5. The stirring device for bottle processing according to claim 4, characterized in that: The supporting device (500) comprises: Support base plate (510); Two connecting vertical plates (520) are provided on the supporting bottom plate (510); A linkage assembly (530) includes rotating shafts disposed on both sides of the cylinder (100) and linkage rods (540) connected to the rotating shafts; An electric cylinder (550) is provided on the connecting vertical plate (520), and its telescopic end is connected to the other end of the linkage rod (540); The telescopic end of the electric cylinder (550) is hingedly connected to the linkage rod (540), and the cylinder (100) can be driven to rotate by the telescopic movement of the electric cylinder (550).

6. The stirring device for bottle processing according to claim 5, characterized in that: The cylinder (100) further comprises a cylinder cover (150), the feed port (120) is arranged on the cylinder cover (150), and the cylinder cover (150) and the cylinder (100) are connected via fasteners.

Citation Information

Patent Citations

  • Stirring device of injection molding machine

    CN217292954U