Integrated processing equipment for multi-state mixing and canning
By incorporating a rotary conveyor and a feeding mechanism into the filling equipment, the problem of uneven material mixing is solved, enabling precise quantitative filling and improving filling quality and efficiency.
Patent Information
- Application Number
- CN202520623298.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-03
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-04-03
AI Technical Summary
Existing filling equipment cannot guarantee uniform mixing of two materials with large differences in particle size during the mixing process, resulting in inconsistent amounts of different materials after filling and affecting the filling quality.
The multi-mode mixing and filling equipment includes a rotary conveying mechanism, a first feeding mechanism, and a second feeding mechanism. The bottle body is conveyed by a rotary conveyor plate, and materials of different particle sizes are fed into the bottle body by the first feeding mechanism and the second feeding mechanism respectively, so as to achieve quantitative and precise filling.
This technology enables quantitative filling of two materials with different particle sizes, ensuring consistent material content in each bottle and improving filling quality and efficiency.
Smart Images

Figure CN223865153U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to canned equipment technical field, especially relate to integrated processing equipment for multi-state mixed canning. BACKGROUND
[0002] Medicines are also called drugs or pharmaceuticals, which are generally used for preventing, treating and diagnosing diseases of animals and plants. According to different types and use scenarios, medicines are divided into solid medicines, powder medicines and liquid medicines. During the production and preparation of medicines, they need to be filled. The solid medicine canning equipment is a device specially used for filling and packaging solid medicines.
[0003] A Chinese patent with the authorization announcement number CN110844133B discloses a mixed powder quantitative filling equipment for traditional Chinese medicine processing. It includes a canning cylinder, an adjusting column arranged on one side of the canning cylinder, a support table installed at the bottom of the adjusting column, a rotary motor installed at the top center position of the fixed cover, and a rotary shaft sequentially installed with a cutting stirring device, a mixing stirring device and a bulk material stirring device from top to bottom. In the mixed powder quantitative filling equipment for traditional Chinese medicine processing, the rotary shaft is sequentially installed with the cutting stirring device, the mixing stirring device and the bulk material stirring device from top to bottom, which can perform different stirring work on different spaces in the barrel, improve the mixing and stirring effect of traditional Chinese medicine, prevent traditional Chinese medicine from being blocked, the first clamping strip is completely clamped in the first clamping groove to realize the sealed connection of the bottom ring and the barrel. At the same time, the second clamping strip is clamped in the second clamping groove to further strengthen the sealing effect of the bottom ring and the barrel, preventing the internal material dust from overflowing during the stirring work.
[0004] The above-mentioned filling equipment can quantitatively fill different powders after mixing, but the uniform mixing of the two powders cannot be guaranteed during the mixing process, resulting in inconsistent amounts of different materials after canning, which affects the canning quality. UTILITY MODEL CONTENTS
[0005] The utility model provides a kind of integrated processing equipment for multi-state mixed canning to solve the technical problem that current filling equipment cannot guarantee the uniform mixing of the material with large difference in granularity during mixing process, which leads to inconsistent amounts of different materials after canning, affecting the canning quality.
[0006] To solve the above technical problem, the utility model discloses an integrated processing equipment for multi-state mixed canning, which comprises: a canning workbench, a rotary conveying mechanism, a first feeding mechanism and a second feeding mechanism are arranged on the canning workbench, the rotary conveying mechanism comprises a rotary conveying disc, the rotary conveying disc is configured to convey a canning bottle, the output end of the first feeding mechanism and the output end of the second feeding mechanism are located above the rotary conveying disc, the first feeding mechanism is configured to convey a first material into the canning bottle, and the second feeding mechanism is configured to convey a second material into the canning bottle.
[0007] Preferably, the rotating conveying mechanism comprises a first motor, the first motor is arranged on the canning workbench, a conveying end of the first motor is connected with a rotating conveying disc, a plurality of conveying grooves are arranged on an outer periphery of the rotating conveying disc, a semicircular plate is arranged at a bottom of the rotating conveying disc, the semicircular plate is connected with the canning workbench through a connecting column, arc-shaped guard plates are arranged on a circular arc side of the semicircular plate, and one side of the arc-shaped guard plates is slidably connected with an outer wall of the rotating conveying disc.
[0008] Preferably, the plurality of conveying grooves are arranged in a ring array about a center of the rotating conveying disc.
[0009] Preferably, the arc-shaped guard plates and the semicircular plate are designed in an integral molding manner.
[0010] Preferably, the canning device further comprises an automatic bottle arranging mechanism, an output end of the automatic bottle arranging mechanism is connected with an input end of the rotating conveying mechanism, and the automatic bottle arranging mechanism is configured to convey the canning bottles to the rotating conveying disc.
[0011] Preferably, the first feeding mechanism comprises a main material bin and an intermediate material bin, the main material bin is connected with the canning workbench through a supporting column, the intermediate material bin is installed on the canning workbench through a supporting frame, a first transmission pipeline is arranged between the main material bin and the intermediate material bin, a discharge valve is arranged at an input end of the first transmission pipeline, the first transmission pipeline is arranged in an inclined manner, one end of the first transmission pipeline is in communication with a bottom of the main material bin, the other end of the first transmission pipeline is connected with a side wall close to an upper end of the intermediate material bin, a height of the one end of the first transmission pipeline close to the main material bin is higher than a height of the other end of the first transmission pipeline close to the intermediate material bin, an anti-blocking assembly is arranged in the intermediate material bin, a canning pipe is arranged at a bottom of the intermediate material bin, the canning pipe is located at an eccentric position of a bottom wall of the intermediate material bin, a canning opening is arranged at the bottom wall of the intermediate material bin, the canning pipe is in communication with an inside of the intermediate material bin through the canning opening, and a first valve is arranged in the canning pipe.
[0012] Preferably, an outer wall of the intermediate material bin is made of a transparent material.
[0013] Preferably, the anti-blocking assembly comprises an agitating shaft arranged in the intermediate material bin, the agitating shaft is rotatably connected with inner walls of the intermediate material bin at upper and lower ends of the agitating shaft, a plurality of agitating plates are arranged on an outer wall of the agitating shaft, a second motor is arranged at an outer wall of an upper end of the intermediate material bin, and an output end of the second motor is connected with the upper end of the agitating shaft.
[0014] Preferably, a distribution disc is arranged in the intermediate material bin, a center of the distribution disc is connected with an outer wall of the agitating shaft, a bottom of the distribution disc is slidably connected with an inner wall of a bottom of the intermediate material bin, distribution holes are arranged in the distribution disc, and the distribution holes correspond to the canning opening.
[0015] Preferably, the second feeding mechanism comprises a first fixed plate, a second fixed plate and a second conveying pipeline, the first fixed plate and the second fixed plate are connected with the upper surface of the canning workbench respectively, the height of the first fixed plate is higher than the height of the second fixed plate, the second conveying pipeline is arranged obliquely above the first fixed plate and the second fixed plate, the side wall of the second conveying pipeline is provided with a first mounting plate and a second mounting plate respectively, the first mounting plate is connected with the upper end of the first fixed plate through a first spring, the second mounting plate is connected with the upper end of the second fixed plate through a second spring, the vibrator is arranged outside the second conveying pipeline, and the lower hopper is arranged above the first fixed plate and connected with the upper end of the second conveying pipeline.
[0016] The technical scheme of the utility model has the advantages that the utility model provides an integrated processing equipment for multi-state mixed canning, relates to the technical field of canning equipment, and comprises a canning workbench, a rotary conveying mechanism, a first feeding mechanism and a second feeding mechanism are arranged on the canning workbench, the rotary conveying mechanism comprises a rotary conveying disc, the rotary conveying disc is configured to convey a canning bottle body, the output end of the first feeding mechanism and the output end of the second feeding mechanism are located above the rotary conveying disc, the first feeding mechanism is configured to convey a first material into the canning bottle body, and the second feeding mechanism is configured to convey a second material into the canning bottle body.
[0017] Other features and advantages of the utility model will be set forth in the subsequent description, and partially become obvious from the description, or be understood by implementing the utility model. The purpose and other advantages of the utility model can be realized and obtained through the device specially pointed out in the written description and the drawings of the description.
[0018] The technical scheme of the utility model will be described in further detail below by means of the drawings and embodiments. BRIEF DESCRIPTION OF DRAWINGS
[0019] The drawings are used to provide further understanding of the utility model, and constitute part of the description, and are used to explain the utility model together with the embodiments of the utility model, and do not constitute limitation on the utility model. In the drawings:
[0020] Figure 1 It is the overall structure of the utility model for multi-state mixed canning integrated processing equipment top view;
[0021] Figure 2 It is the rotary conveying mechanism schematic view of the utility model for multi-state mixed canning integrated processing equipment;
[0022] Figure 3The utility model is used for the first feeding mechanism schematic diagram of the integrated processing equipment for multi-state mixed canning.
[0023] Figure 4 The utility model is used for the intermediate stock bin internal structure schematic diagram of the integrated processing equipment for multi-state mixed canning.
[0024] Figure 5 The utility model is used for the second feeding mechanism schematic diagram of the integrated processing equipment for multi-state mixed canning.
[0025] Figure 6 The utility model is used for the canning assembly schematic diagram of the integrated processing equipment for multi-state mixed canning.
[0026] Figure 7 The utility model is used for the intermediate transfer disc side view of the integrated processing equipment for multi-state mixed canning.
[0027] In the drawing: 1, canning workbench, 2, rotary conveying mechanism, 3, first feeding mechanism, 4, second feeding mechanism, 5, rotary conveying disc, 6, canning bottle body, 7, first motor, 8, conveying groove, 9, semicircle flat plate, 10, arc-shaped baffle, 11, automatic bottle arranging mechanism, 12, main stock bin, 13, intermediate stock bin, 14, support column, 15, support frame, 16, first transmission pipeline, 17, canning pipe, 18, canning mouth, 19, stirring shaft, 20, stirring plate, 21, second motor, 22, distributing disc, 23, distributing hole, 24, first fixed plate, 25, second fixed plate, 26, second transmission pipeline, 27, first mounting plate, 28, second mounting plate, 29, first spring, 30, second spring, 31, vibrator, 32, discharge hopper, 33, fixed table, 34, discharge hole, 35, electric push rod, 36, sliding plate, 37, storage hole, 38, transfer bin, 39, first material mouth, 40, second material mouth, 41, transfer disc, 42, third motor, 43, power cavity, 44, transfer hole, 45, moving block, 46, fourth motor, 47, gear, 48, rack. DETAILED DESCRIPTION
[0028] The preferred embodiments of the utility model are described below in combination with the drawings, and it should be understood that the preferred embodiments described here are only used for explaining and interpreting the utility model, and are not used for limiting the utility model.
[0029] Furthermore, in this utility model, the use of terms such as "first" and "second" is for descriptive purposes only and does not specifically refer to any order or sequence, nor is it intended to limit the utility model. They are merely used to distinguish components or operations described using the same technical terms, and should not be construed as indicating or implying their relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions and features of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. If the combination of technical solutions is contradictory or impossible to implement, such a combination should be considered non-existent and not within the scope of protection claimed by this utility model.
[0030] Example 1
[0031] This utility model embodiment provides an integrated processing equipment for multi-state mixed canning, such as... Figures 1-7 As shown, it includes: a filling workbench 1, on which a rotary conveying mechanism 2, a first feeding mechanism 3 and a second feeding mechanism 4 are provided. The rotary conveying mechanism 2 includes a rotary conveying disk 5, which is configured to convey canned bottles 6. The output ends of the first feeding mechanism 3 and the second feeding mechanism 4 are located above the rotary conveying disk 5. The first feeding mechanism 3 is configured to convey a first material into the canned bottle 6, and the second feeding mechanism 4 is configured to convey a second material into the canned bottle 6.
[0032] The working principle and beneficial effects of the above technical solution are as follows: During the bottling process, different feeding mechanisms are required for materials in different states. For example, if the first material to be bottled is in powder form and the second material to be bottled is in spherical form, the rotary conveyor mechanism 2 on the bottling workbench 1 conveys the bottling bottles 6 at equal intervals through the rotary conveyor plate 5. When the bottling bottle 6 reaches the output end of the first feeding mechanism 3, the first feeding mechanism 3 feeds a quantitative amount of the first material in powder form into the bottling bottle 6, achieving precise quantitative bottling of the first material. When the bottling bottle 6 containing the first material reaches the output end of the second feeding mechanism 4, the second feeding mechanism 4 feeds a quantitative amount of the second material in spherical form into the bottling bottle 6, achieving precise quantitative bottling of the second material. By setting the first feeding mechanism 3 and the second feeding mechanism 4, quantitative bottling of two materials with different particle sizes can be achieved, ensuring that the amount of the two materials in different bottling bottles 6 remains consistent, thus achieving precise bottling and improving bottling quality.
[0033] Example 2
[0034] Based on the above embodiment 1, as follows Figure 2As shown, the rotary conveying mechanism 2 includes a first motor 7, which is mounted on the filling workbench 1. The conveying end of the first motor 7 is connected to the rotary conveying disk 5. Several conveying grooves 8 are provided on the outer periphery of the rotary conveying disk 5. A semi-circular plate 9 is provided at the bottom of the rotary conveying disk 5. The semi-circular plate 9 is connected to the filling workbench 1 through a connecting column. An arc-shaped guard plate 10 is provided on the arc side of the semi-circular plate 9. One side of the arc-shaped guard plate 10 is slidably connected to the outer wall of the rotary conveying disk 5.
[0035] Several conveying troughs 8 are arranged in a circular array about the center of the rotating conveying disk 5;
[0036] The curved guard plate 10 and the semi-circular flat plate 9 are designed as a single piece;
[0037] It also includes an automatic bottle-discharging mechanism 11, the output end of which is connected to the input end of the rotary conveyor mechanism 2. The automatic bottle-discharging mechanism 11 is configured to convey the canned bottles 6 to the rotary conveyor plate 5.
[0038] The working principle and beneficial effects of the above technical solution are as follows: The automatic bottle-discharging mechanism 11 adopts an existing device. The automatic bottle-discharging mechanism 11 can arrange the canned bottles 6 and transport them sequentially to the rotary conveyor plate 5. Then, a single canned bottle 6 enters the conveying groove 8 of the rotary conveyor plate 5. The rotary conveyor plate 5 is disc-shaped. The first motor 7 starts and drives the rotary conveyor plate 5 to rotate at a preset angle. Then, the first motor 7 is turned off and restarted after a preset time. The above actions are repeated to realize the conveying of the canned bottles 6. During the conveying process, the bottom of the canned bottle 6 slides along the upper surface of the semi-circular plate 9, and at the same time, it slides on the arc-shaped guard plate 10. Under the limiting condition, the canned bottle 6 is prevented from detaching from the conveying trough 8. After the rotating conveyor disc 5 rotates at a preset angle, one of the canned bottles 6 is conveyed to the output end of the first feeding mechanism 3. At this time, the first feeding mechanism 3 fills the first material into the canned bottle 6 within a preset time. At the same time, the canned bottle 6 containing the first material is conveyed to the output end of the second feeding mechanism 4. The second feeding mechanism 4 fills the second material into the canned bottle 6 within a preset time. The two materials with different particle sizes are quantitatively filled separately, which improves the filling quality. In addition, the filling of the two materials is carried out at the same time, which can improve the filling efficiency.
[0039] Example 3
[0040] Based on Example 1 or 2, such as Figure 3 , Figure 4As shown, the first feeding mechanism 3 includes a main silo 12 and an intermediate silo 13. The main silo 12 is connected to the filling workbench 1 via a support column 14, and the intermediate silo 13 is mounted on the filling workbench 1 via a support frame 15. A first transmission pipeline 16 is provided between the main silo 12 and the intermediate silo 13. A discharge valve is provided at the input end of the first transmission pipeline 16. The first transmission pipeline 16 is inclined, with one end connected to the bottom of the main silo 12 and the other end connected to the intermediate silo 13. The silo 13 is connected to the upper side wall. The height of the first transmission pipeline 16 near the main silo 12 is higher than the height of the first transmission pipeline 16 near the intermediate silo 13. An anti-caking component is installed inside the intermediate silo 13. A filling pipe 17 is installed at the bottom of the intermediate silo 13. The filling pipe 17 is located at an eccentric position on the bottom wall of the intermediate silo 13. A filling port 18 is installed on the bottom wall of the intermediate silo 13. The upper end of the filling pipe 17 is connected to the interior of the intermediate silo 13 through the filling port 18. A first valve is installed inside the filling pipe 17.
[0041] The outer wall of the intermediate silo 13 is made of transparent material.
[0042] The working principle and beneficial effects of the above technical solution are as follows: The main material silo 12 stores the first material. When filling begins, the discharge valve is opened, and the first transmission pipeline 16 is inclined. The first material in the main material silo 12 can enter the intermediate material silo 13 through the first transmission pipeline 16. The anti-caking component can prevent the first material from clumping. The first material flows into the filling pipe 17. When the filling bottle 6 reaches directly below the filling pipe 17, the first valve is opened, and the first material can flow through the filling pipe 17 to the filling bottle 6, thus realizing the filling of the first material. The discharge port of the main material silo 12 intermittently opens and closes the discharge valve according to the number of filled bottles, so that the height of the first material in the intermediate material silo 13 is controlled within a preset range, ensuring that the powder material entering the intermediate material silo 13 maintains a stable density. Through the transparent side wall of the intermediate material silo 13, the state of the first material in the intermediate material silo 13 can be directly observed, making it convenient to open the discharge valve according to the storage amount of the first material to replenish the first material, so that the height of the first material is maintained within the preset range.
[0043] Example 4
[0044] Based on Example 3, such as Figure 4 As shown, the anti-caking component includes an agitator 19 disposed in the intermediate silo 13. The upper and lower ends of the agitator 19 are rotatably connected to the inner wall of the intermediate silo 13, and a plurality of agitator plates 20 are disposed on the outer wall of the agitator 19. A second motor 21 is disposed on the upper outer wall of the intermediate silo 13, and the output end of the second motor 21 is connected to the upper end of the agitator 19.
[0045] The working principle and beneficial effects of the above technical solution are as follows: the rotation of the second motor 21 can drive the agitator shaft 19 to rotate, the rotation of the agitator shaft 19 can drive the agitator plate 20 to rotate, and the agitator plate 20 can agitate the first material in the intermediate silo 13, thereby preventing the first material from clumping and ensuring the filling quality of the first material.
[0046] Example 5
[0047] Based on Example 4, such as Figure 4 As shown, a distribution plate 22 is provided in the intermediate silo 13. The center of the distribution plate 22 is connected to the outer wall of the stirring shaft 19. The bottom of the distribution plate 22 is slidably connected to the inner wall of the bottom of the intermediate silo 13. A distribution hole 23 is provided in the distribution plate 22, and the distribution hole 23 corresponds to the filling port 18.
[0048] The working principle and beneficial effects of the above technical solution are as follows: When the stirring shaft 19 rotates, it can drive the dispensing plate 22 to rotate, and the first material fills the dispensing hole 23. When the dispensing hole 23 is aligned with the filling port 18, the first material in the dispensing hole 23 can flow into the filling tube 17 through the filling port 18, so that the filling tube 17 stores a certain amount of the first material. When the first valve is opened, the dispensing hole 23 is separated from the filling port 18, and the first material will not flow into the filling tube 17. The certain amount of the first material in the filling tube 17 can then be filled into the filling bottle 6, realizing the quantitative filling of the first material. After filling is completed, the first valve is closed, which facilitates the replenishment of the first material into the filling tube 17.
[0049] Example 6
[0050] Based on any one of Examples 1-5, such as Figure 5 As shown, the second feeding mechanism 4 includes a first fixed plate 24, a second fixed plate 25, and a second transmission pipeline 26. The first fixed plate 24 and the second fixed plate 25 are respectively connected to the upper surface of the filling workbench 1. The height of the first fixed plate 24 is higher than that of the second fixed plate 25. The second transmission pipeline 26 is inclinedly arranged above the first fixed plate 24 and the second fixed plate 25. The side wall of the second transmission pipeline 26 is respectively provided with a first mounting plate 27 and a second mounting plate 28. The first mounting plate 27 is connected to the upper end of the first fixed plate 24 through a first spring 29. The second mounting plate 28 is connected to the upper end of the second fixed plate 25 through a second spring 30. A vibrator 31 is provided outside the second transmission pipeline 26. A hopper 32 is provided above the first fixed plate 24. The lower end of the hopper 32 is connected to the upper end of the second transmission pipeline 26.
[0051] The working principle and beneficial effects of the above technical solution are as follows: When the canned bottle 6 containing the first material is conveyed to the lower part of the second feeding mechanism 4, the vibrator 31 is activated to drive the second transmission pipeline 26 to vibrate. Since the second transmission pipeline 26 is inclined, the second material in the hopper 32 can enter the second transmission pipeline 26 and be conveyed to the top of the rotary conveyor 5 through the second transmission pipeline 26. When the canned bottle 6 stops at the output end of the second transmission pipeline 26, the second material is canned. The second transmission pipeline 26 can be made of transparent material to facilitate observation of the state of the second material in the second transmission pipeline 26. At least one vibrator 31 is provided outside the second transmission pipeline 26. When multiple vibrators 31 are provided, different vibration frequencies can be selected for different vibrators 31.
[0052] Example 7
[0053] Based on Example 6, such as Figures 5-7 As shown, a filling assembly is provided at the output end of the second transmission pipeline 26. The filling assembly includes a fixed platform 33, one end of which is connected to the side wall of the second fixed plate 25. A discharge hole 34 is provided at the end of the fixed platform 33 away from the second fixed plate 25. An electric push rod 35 is provided on the fixed platform 33. A sliding plate 36 is provided at one end of the electric push rod 35. The lower surface of the sliding plate 36 is slidably connected to the upper surface of the fixed platform 33. A storage hole 37 is provided through the sliding plate 36. A transfer chamber 38 is provided on the upper surface of the sliding plate 36. The side wall of the transfer chamber 38 is connected to the side wall of the second fixed plate 25 through a connecting plate. The transfer chamber 38 is cylindrical. A first material inlet 39 is provided at the upper end of the transfer chamber 38. A second material inlet 40 is provided at the lower end of the transfer chamber 38. A transfer plate 41 is provided inside the transfer chamber 38. The transfer plate 41 is disc-shaped. 1. The outer wall is slidably connected to the inner wall of the transfer chamber 38. A third motor 42 is set above the electric push rod 35. One end of the third motor 42 is connected to the side wall of the second fixed plate 25. The output end of the third motor 42 extends into the transfer chamber 38 and is connected to the center of the transfer plate 41. A power chamber 43 is set in the transfer plate 41. Transfer holes 44 are symmetrically set at the upper and lower ends of the power chamber 43. A moving block 45 is slidably set in the transfer hole 44. A fourth motor 46 is set in the power chamber 43. A gear 47 is set at the output end of the fourth motor 46. A rack 48 is set on both sides of the gear 47. The two racks 48 are centrally symmetrical about the center of the gear 47. One side wall of the rack 48 meshes with the gear 47. The other side of the rack 48 is slidably connected to the inner wall of the power chamber 43. The end of the rack 48 away from the gear 47 is connected to the moving block 45.
[0054] The working principle and beneficial effects of the above technical solution are as follows: A canning assembly is used to quantitatively fill the canned bottle 6 with the second material. Specifically, the third motor 42 can rotate intermittently 180°. The output end of the second transmission pipeline 26 is connected to the first material inlet 39 at the upper end of the transfer chamber 38 via a connecting hose. Initially, the transfer hole 44 is connected to the first material inlet 39. The second material enters the transfer hole 44 through the first material inlet 39 until the transfer hole 44 is filled. Then, the third motor 42 rotates, driving the transfer plate 41 to rotate, causing the transfer hole 44, filled with the second material, to rotate until it is connected to the second material inlet 40. The second material can then flow into the storage hole 37 through the second material inlet 40. The volume of the storage hole 37 is larger than the volume of the transfer hole 44. When the canned bottle 6 is conveyed to below the discharge hole 34, the electric push rod 35 is activated to push out the sliding plate 36 until the storage hole is filled. When the storage hole 37 is aligned with the discharge hole 34, the second material in the storage hole 37 is filled into the canning bottle 6 through the discharge hole 34. Then, the electric push rod 35 retracts, and the storage hole 37 is aligned with the second material inlet 40 again. The output end of the third motor 42 rotates 180°, so that the transfer hole 44, which is filled with the second material, rotates to align with the second material inlet 40. By repeating the above steps, a certain amount of the second material can be added to the storage hole 37, which facilitates the accurate filling of the second material. Starting the fourth motor 46 can drive the gear 47 to rotate. The rotation of the gear 47 can drive the rack 48 to slide along the inner wall of the power chamber 43, thereby driving the moving block 45 to slide in the transfer hole 44. Adjusting the position of the moving block 45 in the transfer hole 44 makes it easier to adjust the capacity of the transfer hole 44 to store the second material according to different filling volumes, which is more convenient and faster and improves filling efficiency.
[0055] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0056] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between them; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0057] Although the embodiments of this utility model have been disclosed above, they are not limited to the applications listed in the specification and embodiments. They can be applied to various fields suitable for this utility model. For those skilled in the art, other modifications can be easily made. Therefore, without departing from the general concept defined by the claims and their equivalents, this utility model is not limited to the specific details and the illustrations shown and described herein.
Claims
1. An integrated processing equipment for multi-state mixed canning, characterized in that, include: A filling workbench (1) is provided with a rotary conveying mechanism (2), a first feeding mechanism (3) and a second feeding mechanism (4). The rotary conveying mechanism (2) includes a rotary conveying disc (5), which is configured to convey the filling bottle (6). The output ends of the first feeding mechanism (3) and the second feeding mechanism (4) are located above the rotary conveying disc (5). The first feeding mechanism (3) is configured to convey a first material into the filling bottle (6), and the second feeding mechanism (4) is configured to convey a second material into the filling bottle (6).
2. The integrated processing equipment for multi-state mixed canning according to claim 1, characterized in that, The rotary conveying mechanism (2) includes a first motor (7), which is set on the filling workbench (1). The conveying end of the first motor (7) is connected to the rotary conveying disk (5). Several conveying grooves (8) are set on the outer periphery of the rotary conveying disk (5). A semi-circular plate (9) is set at the bottom of the rotary conveying disk (5). The semi-circular plate (9) is connected to the filling workbench (1) through a connecting column. An arc-shaped guard plate (10) is set on the arc side of the semi-circular plate (9). One side of the arc-shaped guard plate (10) is slidably connected to the outer wall of the rotary conveying disk (5).
3. The integrated processing equipment for multi-state mixed canning according to claim 2, characterized in that, Several conveying troughs (8) are arranged in a ring array about the center of the rotating conveying disk (5).
4. The integrated processing equipment for multi-state mixed canning according to claim 2, characterized in that, The curved guard plate (10) and the semi-circular flat plate (9) are designed as a single piece.
5. The integrated processing equipment for multi-state mixed canning according to claim 1, characterized in that, It also includes an automatic bottle-discharging mechanism (11), the output end of which is connected to the input end of the rotary conveyor mechanism (2), and the automatic bottle-discharging mechanism (11) is configured to convey the bottle body (6) to the rotary conveyor plate (5).
6. The integrated processing equipment for multi-state mixed canning according to claim 1, characterized in that, The first feeding mechanism (3) includes a main silo (12) and an intermediate silo (13). The main silo (12) is connected to the filling workbench (1) via a support column (14). The intermediate silo (13) is installed on the filling workbench (1) via a support frame (15). A first transmission pipeline (16) is provided between the main silo (12) and the intermediate silo (13). A discharge valve is provided at the input end of the first transmission pipeline (16). The first transmission pipeline (16) is inclined. One end of the first transmission pipeline (16) is connected to the bottom of the main silo (12), and the other end of the first transmission pipeline (16) is connected to the intermediate silo (13). The silo (13) is connected to the upper side wall. The height of the first transmission pipeline (16) near the main silo (12) is higher than the height of the first transmission pipeline (16) near the intermediate silo (13). An anti-caking component is installed in the intermediate silo (13). A filling pipe (17) is installed at the bottom of the intermediate silo (13). The filling pipe (17) is located at an eccentric position on the bottom wall of the intermediate silo (13). A filling port (18) is installed on the bottom wall of the intermediate silo (13). The upper end of the filling pipe (17) is connected to the interior of the intermediate silo (13) through the filling port (18). A first valve is installed in the filling pipe (17).
7. The integrated processing equipment for multi-state mixed canning according to claim 6, characterized in that, The outer wall of the intermediate silo (13) is made of transparent material.
8. The integrated processing equipment for multi-state mixed canning according to claim 6, characterized in that, The anti-caking component includes an agitator (19) installed in the intermediate silo (13). The upper and lower ends of the agitator (19) are rotatably connected to the inner wall of the intermediate silo (13). Several agitator plates (20) are installed on the outer wall of the agitator (19). A second motor (21) is installed on the upper outer wall of the intermediate silo (13). The output end of the second motor (21) is connected to the upper end of the agitator (19).
9. The integrated processing equipment for multi-state mixed canning according to claim 8, characterized in that, A distribution plate (22) is provided inside the intermediate silo (13). The center of the distribution plate (22) is connected to the outer wall of the stirring shaft (19). The bottom of the distribution plate (22) is slidably connected to the inner wall of the bottom of the intermediate silo (13). A distribution hole (23) is provided inside the distribution plate (22). The distribution hole (23) corresponds to the filling port (18).
10. The integrated processing equipment for multi-state mixed canning according to claim 1, characterized in that, The second feeding mechanism (4) includes a first fixed plate (24), a second fixed plate (25) and a second transmission pipeline (26). The first fixed plate (24) and the second fixed plate (25) are respectively connected to the upper surface of the filling workbench (1). The height of the first fixed plate (24) is higher than that of the second fixed plate (25). The second transmission pipeline (26) is inclinedly arranged above the first fixed plate (24) and the second fixed plate (25). The side wall of the second transmission pipeline (26) is respectively provided with a first mounting plate (27) and a second mounting plate (28). The first mounting plate (27) is connected to the upper end of the first fixed plate (24) through a first spring (29). The second mounting plate (28) is connected to the upper end of the second fixed plate (25) through a second spring (30). A vibrator (31) is provided outside the second transmission pipeline (26). A hopper (32) is provided above the first fixed plate (24). The lower end of the hopper (32) is connected to the upper end of the second transmission pipeline (26).
Citation Information
Patent Citations
A quantitative filling device for mixed powders in traditional Chinese medicine processing
CN110844133B