Vibration auxiliary material adding machine

Through the design of the rotating unit and the lifting unit, flexible adjustment of the height and angle of the cutting port of the auxiliary material additive machine is achieved, solving the problem of insufficient universality and flexibility of existing equipment, and improving the adaptability and stability of the equipment.

CN223149774UActive Publication Date: 2025-07-25SHENYANG POPLAND DRINKS CO LTD
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Patent Information

Application Number
CN202422180213.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-05
Publication Date
2025-07-25
Estimated Expiration
2034-09-05

AI Technical Summary

Technical Problem

The existing auxiliary material additive machines have poor versatility. One additive machine is difficult to apply to the addition of auxiliary materials with different needs. The height and angle of the additive materials are limited, and the flexibility of using is poor.

Method used

By setting up a rotating unit and a lifting unit, flexible adjustment and positioning of the height and direction angle of the discharge port are achieved, including a motor-driven rotating seat, rack and rack mechanism and ratchet pawl mechanism, ensuring the stability and flexibility of the discharge port position.

Benefits of technology

It increases the versatility and flexibility of the equipment. One device can adapt to the needs of multiple auxiliary material additions. The height and angle of the outlet are adjustable and stable, adapting to different auxiliary material addition requirements, and are highly practical.

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Abstract

A vibration auxiliary material adding machine belongs to the technical field of material adding machines and comprises a base, a barrel is arranged at the top end of the base through a rotating unit in a relative rotating mode, a plurality of telescopic arms are vertically installed in the barrel, a feeding hopper is fixedly installed at the top ends of the telescopic arms, a discharging opening is formed in the side wall of the feeding hopper, and a supporting arm is vertically and fixedly installed in the middle of the bottom end of the feeding hopper. A rack is fixedly installed on the left side wall of the supporting arm, and a lifting unit used for driving the rack to move in the vertical direction is arranged in the barrel. The height, direction and angle of the feed opening can be flexibly adjusted and positioned, the use requirements for adding different auxiliary materials are met, the universality and flexibility of the equipment are improved, one piece of equipment can meet the use requirements for adding multiple auxiliary materials, practicability is high, position locking can be automatically achieved after the rack moves upwards, and the equipment is convenient to use. And the rack and the feeding hopper cannot automatically move downwards under the action of gravity, so that the position of the discharging opening is stable after the height is adjusted.
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Description

Technical Field

[0001] The utility model belongs to the technical field of material adding machines, and in particular relates to a vibrating auxiliary material adding machine. Background Art

[0002] The material adding machine is mainly used for automatic continuous weighing, quantitative feeding and batching metering control of block, granular and powdery materials.

[0003] The related art (publication number CN217946958U) discloses a peanut butter auxiliary material adding machine, which achieves the goal of facilitating the quantitative addition of auxiliary materials to peanut butter, avoids the situation where too much or too little auxiliary materials are added to peanut butter, avoids the situation where the production cost of peanut butter increases due to too much auxiliary materials, and avoids the situation where the production quality of peanut butter is unqualified due to too little auxiliary materials.

[0004] During the existing Pengpengliang processing, a variety of auxiliary materials need to be added. Due to the different weights and viscosities of various auxiliary materials, the auxiliary material adding machines used in the adding process are also different. The versatility of existing auxiliary material adding machines is poor. One adding machine is difficult to meet the auxiliary material adding needs of different needs. The height and angle of adding auxiliary materials are limited, and the flexibility of using the adding machine is poor. Utility Model Content

[0005] Aiming at the problems that the existing auxiliary material adding machines in the prior art have poor versatility, one adding machine is difficult to adapt to the auxiliary material adding needs of different requirements, the height and angle of adding auxiliary materials are limited, and the flexibility of using the adding machine is poor, the utility model provides a vibrating auxiliary material adding machine, which can flexibly adjust and position the height and direction angle of the feeding port, adapt to the use requirements of adding auxiliary materials with different requirements, increase the versatility and flexibility of the equipment, and one device can adapt to the use requirements of adding multiple auxiliary materials, and has strong practicality. Its specific technical scheme is as follows:

[0006] A vibrating auxiliary material adding machine comprises a base, a cylinder is arranged on the top of the base so as to rotate relatively via a rotating unit, a plurality of telescopic arms are vertically installed in the cylinder, a feed hopper is fixedly installed on the top of the telescopic arm, a discharge port is installed on the side wall of the feed hopper, a support arm is vertically and fixedly installed in the middle of the bottom end of the feed hopper, a rack is fixedly installed on the left side wall of the support arm, and a lifting unit for driving the rack to move in a vertical direction is arranged in the cylinder.

[0007] In the above technical solution, the rotating unit includes a rotating seat fixedly installed in the middle of the bottom end of the cylinder body, and the bottom end of the rotating seat is rotatably connected inside the base. A first gear is fixedly installed on the rotating seat. A first rotating shaft is rotatably connected inside the base in the vertical direction. A second gear is fixedly installed on the first rotating shaft. The second gear is meshed and connected with the first gear. A motor is installed on the lower surface of the base, and the output end of the motor is connected to the first rotating shaft.

[0008] In the above technical solution, the lifting unit includes a second rotating shaft rotatably connected in the cylinder body from front to back. A third gear is fixedly installed on the second rotating shaft. A third rotating shaft is rotatably connected inside the cylinder body, and the third rotating shaft is arranged parallel to the second rotating shaft. A fourth gear is fixedly installed on the third rotating shaft;

[0009] Among them, the fourth gear is meshed and connected with the third gear, and the diameter of the fourth gear is smaller than that of the third gear. The third gear is meshed and connected with the rack.

[0010] In the above technical solution, a ratchet wheel is fixedly installed on the third rotating shaft. A fixed rod is fixedly installed on the inner wall of the cylinder body. A handle and a ratchet pawl are rotatably connected to the front end of the fixed rod. The handle and the ratchet pawl are fixedly connected. A supporting rod is fixedly installed on the inner wall of the cylinder body. A leaf spring is installed at the front end of the supporting rod. The leaf spring is arranged above the ratchet pawl, and the end of the leaf spring is attached to the upper part of the ratchet pawl. The free end of the ratchet pawl is embedded into the gap on the side wall of the ratchet wheel.

[0011] In the above technical solution, the handle penetrates and extends out of the side wall of the cylinder body, and a through groove for the up and down movement of the handle is opened on the side wall of the cylinder body.

[0012] In the above technical solution, a rotating support assembly is arranged on the side wall of the cylinder body. The rotating support assembly includes a slideway opened on the upper surface of the base, and also includes a plurality of groups of connecting arms fixedly installed on the side wall of the cylinder body. The bottom end of the connecting arm is rotatably connected with a rolling ball, and the rolling ball is rollingly embedded in the slideway.

[0013] In the above technical solution, columns are respectively installed at the four corners of the bottom end of the base, and universal wheels are respectively rotatably arranged at the bottom end of each column.

[0014] A vibration auxiliary material adding machine of the present utility model has the following beneficial effects compared with the prior art:

[0015] I. Aiming at the problem that the existing auxiliary material adding machines have poor versatility, it is difficult for one adding machine to meet the auxiliary material adding requirements of different needs, the height and angle of adding auxiliary materials are limited, and the flexibility of using the adding machine is poor. The utility model can adjust and position the height of the feeding hopper relative to the cylinder body, so as to flexibly adjust the height of adding auxiliary materials at the blanking port. At the same time, it can adjust the direction angle of the blanking port, so as to make the blanking port meet the requirements of adding auxiliary materials in different directions. Compared with the traditional adding machine, the utility model can flexibly adjust and position the height and direction angle of the blanking port, adapt to the use requirements of adding auxiliary materials with different needs, increase the versatility and flexibility of the equipment, and one equipment can adapt to the use requirements of adding a variety of auxiliary materials, with strong practicability;

[0016] II. Through the motor, the first rotating shaft, the second gear, the first gear and the rotating seat, the utility model can make the rotating seat drive the cylinder body, the telescopic arm, the feeding hopper and the blanking port to rotate synchronously relative to the base, so as to realize the adjustment of the direction angle of the blanking port and meet the adding function of different angles of the blanking port;

[0017] III. Through the slideway, the connecting arm and the rolling ball, the utility model can assist in ensuring the stability of the cylinder body when the cylinder body rotates relative to the base, play a role in rotating and supporting the cylinder body, and further ensure the stability of the overall equipment;

[0018] IV. By setting the second rotating shaft, the third gear, the fourth gear and the rack, the utility model can make the rack drive the feeding hopper to move up and down vertically relative to the cylinder body, so as to adjust the height of the blanking port and meet the requirements of adding auxiliary materials at different heights of the blanking port;

[0019] V. By setting the ratchet wheel, the ratchet pawl and the leaf spring, the utility model can limit the ratchet wheel, the fourth gear, the third rotating shaft and the third gear after clockwise rotation, prevent the third gear from rotating clockwise under the action of the gravity of the rack, and thus realize the automatic locking of the position of the rack after the rack moves upward, ensure that the rack and the feeding hopper will not move downward automatically under the action of gravity, and ensure the stable position of the blanking port after adjusting the height;

[0020] In summary, the utility model can flexibly adjust and position the height and direction angle of the blanking port, adapt to the use requirements of adding auxiliary materials with different needs, increase the versatility and flexibility of the equipment, one equipment can adapt to the use requirements of adding a variety of auxiliary materials, with strong practicability, and the rack can automatically lock the position after moving upward, ensure that the rack and the feeding hopper will not move downward automatically under the action of gravity, and ensure the stable position of the blanking port after adjusting the height. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a schematic structural diagram of the feeding hopper of the utility model;

[0022] Figure 2 Schematic cross-sectional structure diagram of the cylinder of the present utility model;

[0023] Figure 3 Schematic structure diagram of the telescopic arm of the present utility model;

[0024] Figure 4 Schematic structure diagram of the base of the present utility model;

[0025] Figure 5 Schematic cross-sectional structure diagram of the rotating seat of the present utility model;

[0026] Figures 1 to 5 In the figure, 1. Base, 2. Cylinder, 3. Feeding hopper, 4. Discharge opening, 5. Rotating seat, 6. First gear, 7. First rotating shaft, 8. Second gear, 9. Motor, 10. Slideway, 11. Connecting arm, 12. Ball, 13. Telescopic arm, 14. Support arm, 15. Rack, 16. Second rotating shaft, 17. Third gear, 18. Third rotating shaft, 19. Fourth gear, 20. Ratchet, 21. Fixed rod, 22. Handle, 23. Pawl, 24. Supporting rod, 25. Leaf spring, 26. Pillar, 27. Universal wheel. Specific embodiments

[0027] The following combines specific implementation cases and appendices Figures 1 to 5 to further illustrate the present utility model, but the present utility model is not limited to these embodiments.

[0028] Refer to Figures 1 to 5 As shown, a vibration auxiliary material adding machine for adding auxiliary materials in the processing of Pengpengliang includes a base 1. The top of the base 1 is provided with a cylinder 2 that rotates relative to the base 1 through a rotating unit. The cylinder 2 can rotate relative to the base 1. A plurality of telescopic arms 13 are vertically installed in the cylinder 2. In this embodiment, two telescopic arms 13 are provided. The top of the telescopic arm 13 is fixedly installed with a feeding hopper 3. The telescopic arm 13 can connect the cylinder 2 and the feeding hopper 3. When the feeding hopper 3 moves up and down relative to the cylinder 2, with the setting of the telescopic arm 13, the connection between the cylinder 2 and the feeding hopper 3 can still be ensured. A discharge opening 4 is installed on the side wall of the feeding hopper 3. By adjusting the height or angle of the feeding hopper 3, the height or angle of the discharge opening 4 can be adjusted. The inner wall of the bottom end of the feeding hopper 3 is inclined towards the discharge opening 4, so as to ensure that the materials in the inner cavity of the feeding hopper 3 can all be output through the discharge opening 4. A support arm 14 is vertically and fixedly installed in the middle of the bottom end of the feeding hopper 3. A rack 15 is fixedly installed on the left side wall of the support arm 14. A lifting unit for driving the rack 15 to move in the vertical direction is arranged in the cylinder 2. Through the lifting unit, the vertical movement of the rack 15 and the support arm 14 is realized, that is, the adjustment of the height where the feeding hopper 3 and the discharge opening 4 are located is realized.

[0029] Main reference Figure 1 , Figure 4 , Figure 5 As shown, the rotating unit includes a rotating seat 5 fixedly installed at the middle of the bottom end of the cylinder body 2, and the bottom end of the rotating seat 5 is rotatably connected to the inside of the base 1 through a bearing. A first gear 6 is fixedly installed on the rotating seat 5. A first rotating shaft 7 is rotatably connected to the inside of the base 1 along the vertical direction through a bearing. A second gear 8 is fixedly installed on the first rotating shaft 7. The second gear 8 is meshed with the first gear 6. When the second gear 8 rotates, it drives the first gear 6 to drive the rotating seat 5 to rotate, so as to cause the cylinder body 2 installed at the top end of the rotating seat 5 to rotate, realizing the adjustment of the orientation angles of the feeding hopper 3 and the discharging opening 4 at the top end of the cylinder body 2, meeting the requirement of feeding with the discharging opening 4 facing different angles. A motor 9 is installed on the lower surface of the base 1. The output end of the motor 9 is connected to the first rotating shaft 7. The motor 9 drives the first rotating shaft 7 to rotate, and then drives the second gear 8 to rotate;

[0030] The motor 9 drives the first rotating shaft 7 and the motor 9 to rotate, so as to cause the first gear 6 to drive the rotating seat 5 to rotate synchronously, so as to cause the cylinder body 2 fixedly connected to the top end of the rotating seat 5 to drive the telescopic arm 13 and the feeding hopper 3 to rotate circumferentially, thereby adjusting the direction angle of the discharging opening 4 on the side wall of the feeding hopper 3.

[0031] A rotating support assembly is arranged on the side wall of the cylinder body 2. The rotating support assembly includes a slideway 10 opened on the upper surface of the base 1, and also includes a plurality of connecting arms 11 fixedly installed on the side wall of the cylinder body 2. The bottom end of the connecting arm 11 is rotatably connected to a rolling ball 12 through a bearing. The rolling ball 12 is rollingly embedded in the slideway 10; during the rotation of the cylinder body 2, the connecting arm 11 on the outer wall of the cylinder body 2 drives the rolling ball 12 to roll along the inner cavity of the slideway 10. The rolling ball 12 assists in supporting the rotation of the cylinder body 2 relative to the base 1 and ensures the normal circumferential rotation of the cylinder body 2.

[0032] Main reference Figure 2 and Figure 3As shown, the lifting unit includes a second rotating shaft 16 that is rotatably connected to the cylinder 2 from front to back, a third gear 17 is fixedly installed on the second rotating shaft 16, a third rotating shaft 18 is rotatably connected to the cylinder 2, and the third rotating shaft 18 is arranged parallel to the second rotating shaft 16, and a fourth gear 19 is fixedly installed on the third rotating shaft 18; wherein the fourth gear 19 is meshedly connected with the third gear 17, and the diameter of the fourth gear 19 is smaller than the diameter of the third gear 17, so as to ensure that when the third gear 17 drives the rack 15 to move The fourth gear 19 will not interfere with the vertical movement of the rack 15. The third gear 17 is meshed with the rack 15, and the third shaft 18 is rotated clockwise to drive the fourth gear 19 and the ratchet 20 to rotate synchronously, so as to prompt the third gear 17 and the second shaft 16 to rotate counterclockwise, thereby prompting the rack 15 meshing with the side wall of the third gear 17 and the support arm 14 to move upward, so as to drive the feed hopper 3 and the discharge port 4 at the top of the support arm 14 to move upward synchronously, so as to adjust the height of the discharge port 4 upward.

[0033] Main references Figure 2 As shown, a ratchet 20 is fixedly installed on the third rotating shaft 18, and a fixing rod 21 is fixedly installed on the inner wall of the cylinder 2. The front end of the fixing rod 21 is rotatably connected with a handle 22 and a pawl 23, and the handle 22 and the pawl 23 are fixedly connected. A supporting rod 24 is fixedly installed on the inner wall of the cylinder 2, and a leaf spring 25 is installed on the front end of the supporting rod 24. The leaf spring 25 is arranged above the pawl 23, and the end of the leaf spring 25 fits above the pawl 23. The free end of the pawl 23 is embedded in the gap of the side wall of the ratchet 20. During the upward movement of the feed hopper 3, the telescopic arm 13 is forced to stretch; as the ratchet 20 rotates clockwise, the pawl 23 is forced to swing intermittently counterclockwise, and the leaf spring 25 is driven to deform upward. When the ratchet 20 rotates a unit angle, the elastic force of the leaf spring 25 causes the pawl 23 to swing clockwise to the gap embedded in the outer wall of the ratchet 20, so as to limit the ratchet 20 after the clockwise rotation, that is, to realize the rotation. After the ratchet 20, the fourth gear 19 and the third gear 17 are manually adjusted, the position of the rack 15, the support arm 14, the feed hopper 3 and the discharge port 4 are limited to ensure that the rack 15, the support arm 14, the feed hopper 3 and the discharge port 4 are stable and will not move downward after moving upward; when the height of the discharge port 4 is adjusted downward, the left end of the handle 22 is pressed downward to prompt the pawl 23 to drive the leaf spring 25 to deform upward until the end of the pawl 23 is separated from the gap in the outer wall of the ratchet 20. At this time, the third rotating shaft 18 is driven counterclockwise by external force to drive the ratchet 20 and the fourth gear 19 to rotate counterclockwise synchronously, prompting the third gear 17 to rotate clockwise to drive the rack 15, the support arm 14, the feed hopper 3 and the discharge port 4 to move downward, and the pressing effect on the handle 22 is removed. Under the elastic force of the leaf spring 25, the pawl 23 is re-embedded in the gap of the outer wall of the ratchet 20 to limit the rotated ratchet 20 to ensure the stable position of the discharge port 4 after downward adjustment.

[0034] In addition, the handle 22 penetrates and extends out of the side wall of the cylinder body 2, and a through groove for the up-and-down movement of the handle 22 is provided on the side wall of the cylinder body 2, so as to ensure that the handle 22 can move upward or downward along the through groove provided on the side wall of the cylinder body 2 under the action of an external force, and drive the pawl 23 to be embedded in or separated from the gap on the outer wall of the ratchet wheel 20.

[0035] Mainly refer to Figure 1 and Figure 2 As shown, support columns 26 are respectively installed at the four corners of the bottom end of the base 1, and universal wheels 27 are respectively rotatably arranged at the bottom ends of each support column 26. Through the arrangement of the universal wheels 27, the overall movement of the device to the required position can be realized flexibly, which is convenient for the movement and positioning of the device.

[0036] It should be noted that the motor 9 in this application adopts a self-locking motor commonly used in the market with an output end that can be locked. Its output end can be self-locked when it stops operating and will not rotate under external force. The telescopic arm 13 is composed of two mutually sleeved rod bodies, and its total length can be changed under the action of an external force. The telescopic arm 13 supports and connects the relative movement between the feed hopper 3 and the cylinder body 2, ensuring that the feed hopper 3 always moves vertically relative to the cylinder body 2 under the action of an external force; a vibration motor is installed on the side wall of the feed hopper 3 to assist the material in the feed hopper 3. There is no need to elaborate on the above existing components too much here.

[0037] The working principle of a vibration auxiliary material adding machine in this embodiment is as follows:

[0038] When adjusting the direction angle of the material outlet 4, the motor 9 is started to drive the first rotating shaft 7 and the motor 9 to rotate, so as to drive the first gear 6 to drive the rotating seat 5 to rotate synchronously, so that the cylinder body 2 fixedly connected to the top end of the rotating seat 5 drives the telescopic arm 13 and the feed hopper 3 to rotate circumferentially, thereby adjusting the direction angle of the material outlet 4 on the side wall of the feed hopper 3; during the rotation of the cylinder body 2, the connecting arm 11 on the outer wall of the cylinder body 2 drives the rolling ball 12 to roll along the inner cavity of the slideway 10, and the rolling of the rolling ball 12 is used to assist in supporting the rotation of the cylinder body 2 relative to the base 1 and ensure the normal circumferential rotation of the cylinder body 2;

[0039] When adjusting the height of the discharge port 4, the third rotating shaft 18 is rotated clockwise to drive the fourth gear 19 and the ratchet 20 to rotate synchronously, so as to cause the third gear 17 and the second rotating shaft 16 to rotate counterclockwise, thereby causing the rack 15 and the support arm 14 meshing with the side wall of the third gear 17 to move upward, so as to drive the feed hopper 3 and the discharge port 4 at the top of the support arm 14 to move upward synchronously, so as to adjust the height of the discharge port 4 upward; in the process of the feed hopper 3 moving upward, the telescopic arm 13 is forced to stretch; as the ratchet 20 moves clockwise, the telescopic arm 13 is forced to stretch; The ratchet 23 is forced to intermittently swing counterclockwise when the ratchet 20 rotates clockwise, and the leaf spring 25 is driven to deform upward. When the ratchet 20 rotates a unit angle, the elastic force of the leaf spring 25 causes the ratchet 23 to swing clockwise to the gap embedded in the outer wall of the ratchet 20, so as to limit the ratchet 20 after the clockwise rotation, that is, to limit the ratchet 20, the fourth gear 19, and the third gear 17 after the rotation adjustment, so as to ensure that the rack 15, the support arm 14, the feed hopper 3, and the discharge port 4 are in a stable position after the upward movement and will not move downward.

[0040] In addition, since the rack 15, the support arm 14, and the feed hopper 3 have a certain deadweight, the rack 15, the support arm 14, and the feed hopper 3 have a downward force after moving upward, but since the pawl 23 is embedded in the gap of the outer wall of the ratchet 20, the ratchet 20 cannot rotate counterclockwise, thereby ensuring that the fourth gear 19 cannot rotate counterclockwise and the third gear 17 cannot rotate clockwise, so that the rack 15 meshing with the outer wall of the third gear 17 cannot move downward under the action of its own weight, thereby ensuring that the rack 15 is automatically locked after being adjusted upward and will not move downward;

[0041] When the height of the discharge port 4 is adjusted downward, the left end of the handle 22 is pressed downward to cause the pawl 23 to drive the leaf spring 25 to deform upward until the end of the pawl 23 is separated from the gap in the outer wall of the ratchet 20. At this time, the third rotating shaft 18 is driven to rotate counterclockwise with the help of external force to drive the ratchet 20 and the fourth gear 19 to rotate counterclockwise synchronously, so as to cause the third gear 17 to rotate clockwise to drive the rack 15, the support arm 14, the feed hopper 3, and the discharge port 4 to move downward, and the pressing action on the handle 22 is removed. Under the action of the elastic force of the leaf spring 25, the pawl 23 is re-embedded in the gap of the outer wall of the ratchet 20 to limit the rotated ratchet 20, so as to ensure the stability of the position of the discharge port 4 after downward adjustment;

[0042] The utility model can flexibly adjust and position the height and direction angle of the discharge port 4, adapt to the use requirements of adding auxiliary materials with different needs, increase the versatility and flexibility of the equipment, and one device can adapt to the use requirements of adding multiple auxiliary materials. It is highly practical, and the rack 15 can automatically lock the position after moving upward to ensure that the rack 15 and the feed hopper 3 will not automatically move downward under the action of gravity, so as to ensure the stable position of the discharge port 4 after the height is adjusted.

[0043] The above are only the preferred embodiments of the present utility model and are not intended to limit the present utility model. For those skilled in the art, various modifications and variations can be made to the present utility model. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. A vibration auxiliary material adding machine, comprising a base (1), characterized in that, At the top of the base (1), a cylinder (2) is rotatably arranged relative to the base through a rotating unit. Inside the cylinder (2), a plurality of telescopic arms (13) are vertically installed. At the top of the telescopic arms (13), a feeding hopper (3) is fixedly installed. On the side wall of the feeding hopper (3), a blanking port (4) is installed. In the middle of the bottom end of the feeding hopper (3), a support arm (14) is vertically and fixedly installed. On the left side wall of the support arm (14), a rack (15) is fixedly installed. Inside the cylinder (2), a lifting unit is provided for driving the rack (15) to move in the vertical direction.

2. The vibration auxiliary material adding machine according to claim 1, wherein: The rotating unit includes a rotating seat (5) fixedly installed in the middle of the bottom end of the cylinder (2), and the bottom end of the rotating seat (5) is rotatably connected inside the base (1). A first gear (6) is fixedly installed on the rotating seat (5). Inside the base (1), a first rotating shaft (7) is rotatably connected in the vertical direction. A second gear (8) is fixedly installed on the first rotating shaft (7). The second gear (8) is meshed and connected with the first gear (6). A motor (9) is installed on the lower surface of the base (1). The output end of the motor (9) is connected to the first rotating shaft (7).

3. The vibration auxiliary material adding machine according to claim 1, characterized in that: The lifting unit includes a second rotating shaft (16) rotatably connected inside the cylinder (2) from front to back. A third gear (17) is fixedly installed on the second rotating shaft (16). Inside the cylinder (2), a third rotating shaft (18) is rotatably connected, and the third rotating shaft (18) is arranged parallel to the second rotating shaft (16). A fourth gear (19) is fixedly installed on the third rotating shaft (18). Among them, the fourth gear (19) is meshed and connected with the third gear (17), and the diameter of the fourth gear (19) is smaller than the diameter of the third gear (17). The third gear (17) is meshed and connected with the rack (15).

4. The vibration auxiliary material adding machine according to claim 3, characterized in that: A ratchet (20) is fixedly installed on the third rotating shaft (18). A fixed rod (21) is fixedly installed on the inner wall of the cylinder (2). At the front end of the fixed rod (21), a handle (22) and a ratchet pawl (23) are rotatably connected. The handle (22) and the ratchet pawl (23) are fixedly connected. A supporting rod (24) is fixedly installed on the inner wall of the cylinder (2). At the front end of the supporting rod (24), a leaf spring (25) is installed. The leaf spring (25) is arranged above the ratchet pawl (23), and the end of the leaf spring (25) fits against the upper part of the ratchet pawl (23). The free end of the ratchet pawl (23) is embedded into the gap on the side wall of the ratchet (20).

5. The vibration auxiliary material adding machine according to claim 4, characterized in that: The handle (22) penetrates and extends out of the side wall of the cylinder (2), and a through groove for the up and down movement of the handle (22) is opened on the side wall of the cylinder (2).

6. The vibration auxiliary material adding machine according to claim 2, characterized in that: A rotating support assembly is arranged on the side wall of the cylinder (2). The rotating support assembly includes a slideway (10) opened on the upper surface of the base (1), and also includes a plurality of groups of connecting arms (11) fixedly installed on the side wall of the cylinder (2). The bottom end of the connecting arm (11) is rotatably connected with a rolling ball (12), and the rolling ball (12) is rollingly embedded in the slideway (10).

7. A vibration auxiliary material adding machine according to claim 1, characterized in that: Four corner positions at the bottom end of the base (1) are respectively provided with support columns (26), and universal wheels (27) are respectively rotatably arranged at the bottom ends of each of the support columns (26).

Citation Information

Patent Citations

  • Peanut butter auxiliary material adding machine

    CN217946958U