Vacuum feeding machine for spirally pushing superfine plant charcoal powder
The spiral-push ultrafine plant charcoal powder vacuum feeder, which combines spiral pushing with vacuum technology, solves the safety hazards and sealing problems in the conveying of ultrafine plant charcoal powder, realizes automated and continuous material conveying, and improves production efficiency and material purity.
Patent Information
- Application Number
- CN202520385621.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-06
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-03-06
AI Technical Summary
In existing technologies, the conveying methods for ultrafine plant charcoal powder have safety hazards, poor sealing, easy leakage, affect material purity, and are inefficient. In particular, manual operation is unstable in small-scale production, affecting the stability of the production process and product quality.
The spiral pusher vacuum feeder for ultrafine plant charcoal powder, which combines spiral pushing with vacuum technology, achieves automated and continuous material conveying through the design of buffer box, filter column and discharge port, reducing friction and leakage, and improving material purity and production efficiency.
It enables safe, stable, and high-speed transport of ultrafine plant charcoal powder, reduces manual intervention, improves production efficiency and material purity, and reduces labor intensity and material waste.
Smart Images

Figure CN223722168U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to automatic technology field especially relates to spiral push super fine plant charcoal powder vacuum feeding machine. BACKGROUND
[0002] Before the emergence of vacuum feeding machine, for super fine plant charcoal powder and other materials, traditional mechanical conveying mode such as mechanical conveying belt and scraper conveyor is often adopted, however, these conveying modes have many problems, the friction between mechanical parts and materials is easy to produce static electricity, which has potential safety hazard for flammable plant charcoal powder, and the sealing property is poor in the mechanical conveying process, which is easy to cause charcoal powder leakage, resulting in environmental pollution and material waste, and it is also difficult to guarantee the purity of materials, in some small-scale production or relatively backward technical scene, manual carrying and feeding of plant charcoal powder are common operation modes, which not only have great labor intensity and low efficiency, but also the instability of manual operation is easy to cause inaccurate material adding amount, affecting the stability of production process and product quality.
[0003] In modern industrial production, improving production efficiency and reducing production cost are important targets pursued by enterprises, for industries requiring a large amount of super fine plant charcoal powder, such as chemical industry, pharmacy and food, traditional material conveying mode has been unable to meet the production demand, vacuum feeding machine can realize automatic material conveying, greatly improving the feeding speed and accuracy and reducing manual intervention, thereby improving production efficiency, spiral conveying combined with vacuum technology has unique advantages in conveying super fine plant charcoal powder, spiral pushing can assist the flow of materials in the vacuum pipeline and overcome the possible blockage and accumulation of materials in the pipeline. CONTENT OF THE UTILITY MODEL
[0004] In order to make up for the above shortcomings, the utility model provides a spiral push super fine plant charcoal powder vacuum feeding machine, aiming at improving the problems of air circulation and low efficiency in the prior art.
[0005] In order to achieve the above purpose, the utility model adopts the following technical scheme: the spiral push super fine plant charcoal powder vacuum feeding machine, including the shell, the top of the shell is fixedly connected with the buffer box, the left side of the shell is fixedly connected with the top cover, the right side of the shell is fixedly connected with the bottom cover, the left side of the bottom cover is rotatably connected with the rotating shaft, the outer wall of the rotating shaft is fixedly connected with the rotating ring, the outer wall of the rotating ring is rotatably connected with the filter column, the outer wall of the filter column is provided with the filter port, the outer wall right side of the filter column is fixedly connected with the connecting block, the left side of the connecting block is fixedly connected with the triangular block, the bottom left side of the shell is provided with the discharge port, the top of the buffer box is fixedly connected with the feeding device, the feeding device is used for cutting off the feeding.
[0006] As a further description of the above technical scheme:
[0007] The feeding device comprises a first buffer box, the bottom of the first buffer box is fixedly connected with the shell, a first sliding slot is formed in the middle of the first buffer box, a first rotating block is slidably connected with the inner wall of the first sliding slot, a rotating column is rotatably connected with the right side of the first rotating block, a second buffer box is fixedly connected with the top of the first buffer box, a second sliding slot is formed in the middle of the second buffer box, a second rotating block is slidably connected with the inner wall of the second sliding slot, and a feeding port is fixedly connected with the top of the second buffer box.
[0008] As a further description of the above technical solution:
[0009] The top right side of the feeding port is rotatably connected with a connecting shaft, the left side of the connecting shaft is fixedly connected with a feeding cover.
[0010] As a further description of the above technical solution:
[0011] The right side of the second rotating block is fixedly connected with a first handrail, and the right side of the first rotating block is fixedly connected with a second handrail.
[0012] As a further description of the above technical solution:
[0013] The right side of the shell is fixedly connected with a rubber ring, and the right side of the filter column is fixedly connected with a sealing sheet.
[0014] As a further description of the above technical solution:
[0015] The bottom of the discharging port is rotatably connected with a discharging cover, and the front side of the discharging port is fixedly connected with a lock catch.
[0016] As a further description of the above technical solution:
[0017] The bottom of the shell is fixedly connected with a supporting block, and the outer wall of the supporting block is fixedly connected with a support.
[0018] As a further description of the above technical solution:
[0019] The middle right side of the support is fixedly connected with a fixed block, and the top of the fixed block is fixedly connected with a motor.
[0020] The utility model has the advantages of the following beneficial effects:
[0021] 1、in the utility model, first open the feeding cover, pour the carbon powder into the feeding port, the carbon powder will first enter the second buffer box, after all pour into, close the feeding cover and start the second rotating block, at this moment, the carbon powder will randomly fall into the first buffer box, after all enter, close the second rotating block and start the first rotating block, so that the carbon powder will smoothly enter the buffer box.
[0022] 2. In the utility model, carbon powder enters filter column from buffer tank, then opens, drives rotating shaft to rotate, at this time, carbon powder is stirred by rotating ring and pushes to left side, after rotating, carbon powder is thrown out to outside from filter port, and impurities are retained in the inside, finally, due to the setting of triangular block, carbon powder will gradually discharge from discharge port. BRIEF DESCRIPTION OF DRAWINGS
[0023] Figure 1 The front side elevational view of the spiral pushing superfine plant carbon powder vacuum feeding machine is provided for the utility model;
[0024] Figure 2 The front side perspective view of the spiral pushing superfine plant carbon powder vacuum feeding machine is provided for the utility model;
[0025] Figure 3 The partial structure exploded view of the spiral pushing superfine plant carbon powder vacuum feeding machine is provided for the utility model;
[0026] Figure 4 The partial structure display view of the spiral pushing superfine plant carbon powder vacuum feeding machine is provided for the utility model;
[0027] Figure 5 The partial structure schematic view of the spiral pushing superfine plant carbon powder vacuum feeding machine is provided for the utility model.
[0028] LEGEND:
[0029] 1, shell, 2, feeding device, 201, first buffer tank, 202, first chute, 203, first rotating block, 204, rotating column, 205, second buffer tank, 206, second chute, 207, second rotating block, 208, feeding port, 209, feeding cover, 210, connecting shaft, 211, first handrail, 212, second handrail, 3, buffer tank, 4, top cover, 5, bottom cover, 6, rotating shaft, 7, rotating ring, 8, filter column, 9, filter port, 10, connecting block, 11, triangular block, 12, discharge port, 13, sealing sheet, 14, rubber ring, 15, discharge cover, 16, lock catch, 17, support, 18, supporting block, 19, fixed block, 20, motor. DETAILED DESCRIPTION
[0030] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.
[0031] Please refer to the drawings in the embodiments of the utility model Figure 1 ,Figure 2 and attached Figure 3 The utility model provides a kind of embodiment provided by the utility model: spiral pushing superfine plant charcoal powder vacuum feeding machine, including shell 1, the top of the shell 1 is fixedly connected with buffer box 3, the left side of the shell 1 is fixedly connected with top cover 4, the right side bottom cover 5 of the shell 1, the left side of the bottom cover 5 is rotatably connected with rotating shaft 6, the outer wall of the rotating shaft 6 is fixedly connected with rotating ring 7, the outer wall of the rotating ring 7 is rotatably connected with filter column 8, the outer wall of the filter column 8 is equipped with filter port 9, the outer wall right side of the filter column 8 is fixedly connected with connecting block 10, the left side of the connecting block 10 is fixedly connected with triangular block 11, the bottom left side of the shell 1 is equipped with discharge port 12, the top of the buffer box 3 is fixedly connected with feeding device 2, and the feeding device 2 is used to cut off feeding, and the top of the shell 1 is designed fixedly connected with a buffer box 3, which can effectively reduce the impact force generated when material enters the inside of shell 1, the left side of the shell 1 is fixedly connected with a top cover 4, which not only plays a role in protecting internal structure, but also provides a closed environment for the shell 1, the right side of the shell 1 is designed as bottom cover 5, the left side of the bottom cover 5 is connected with the shell 1 by rotating shaft 6, the outer wall of the rotating shaft 6 is fixedly connected with a rotating ring 7, the outer wall of the rotating ring 7 is rotatably connected with filter column 8, the outer wall of the filter column 8 is equipped with a plurality of filter ports 9, these filter ports 9 can effectively filter out unwanted impurities, the outer wall right side of the filter column 8 is fixedly connected with a connecting block 10, the left side of the connecting block 10 is fixedly connected with a triangular block 11, and the design of the triangular block 11 can increase the stability of structure, in addition, the bottom left side of the shell 1 is equipped with a discharge port 12, to facilitate the discharge of material, to realize the continuous feeding of material, the top of the buffer box 3 is fixedly connected with a feeding device 2;
[0032] Specific, the top of the shell 1 is designed to fixedly connected with a buffer tank 3, can effectively reduce the impact force generated when the material into the shell 1 inside, thereby protecting the structure inside the shell 1 is not damaged, the top of the buffer tank 3 is fixedly connected with the feeding device 2, the feeding device 2 is used for the partition of feeding, ensure that the material can be evenly and continuously into the shell 1, the left side of the shell 1 is fixedly connected with a top cover 4, the top cover 4 not only plays a protective role in the internal structure, at the same time also provides a closed environment for the shell 1, prevent the outside impurities into, the right side of the shell 1 is designed as a bottom cover 5, the left side of the bottom cover 5 is connected with the shell 1 through the rotating shaft 6, the outer wall of the rotating shaft 6 is fixedly connected with a rotating ring 7, the outer wall of the rotating ring 7 is rotatably connected with a filter column 8, the outer wall of the filter column 8 is provided with a plurality of filter port 9, these filter port 9 can effectively filter out the impurities, ensure the purity of the material, the outer wall right side of the filter column 8 is fixedly connected with a connecting block 10, the left side of the connecting block 10 is fixedly connected with a triangular block 11, the design of the triangular block 11 can increase the stability of the structure, prevent the structure deformation in the process of use, in addition, the bottom left side of the shell 1 is provided with a discharge port 12, facilitate the discharge of the material.
[0033] Please refer to the attached Figure 2 , attached Figure 3 and attached Figure 5The feeding device 2 comprises a first buffer box 201, the bottom of the first buffer box 201 is fixedly connected with the shell 1, a first sliding groove 202 is formed in the middle of the first buffer box 201, a first rotating block 203 is slidably connected with the inner wall of the first sliding groove 202, a rotating column 204 is rotatably connected with the right side of the first rotating block 203, a second buffer box 205 is fixedly connected with the top of the first buffer box 201, a second sliding groove 206 is formed in the middle of the second buffer box 205, a second rotating block 207 is slidably connected with the inner wall of the second sliding groove 206, a feeding port 208 is fixedly connected with the top of the second buffer box 205, a supporting block 18 is fixedly connected with the bottom of the shell 1, and a support 17 is fixedly connected with the outer wall of the supporting block 18; the bottom of the first buffer box 201 is tightly combined with the shell 1 through fixed connection, an opening, that is, the first sliding groove 202, is designed in the middle of the first buffer box 201, a first rotating block 203 is slidably connected with the inner wall of the first sliding groove 202, the first rotating block 203 can smoothly slide along the inner wall of the first sliding groove 202, a rotating column 204 is rotatably connected with the right side of the first rotating block 203, in addition, a second buffer box 205 is fixedly connected with the top of the first buffer box 201, an opening, that is, the second sliding groove 206, is also formed in the middle of the second buffer box 205, a second rotating block 207 is slidably connected with the inner wall of the second sliding groove 206, the second rotating block 207 can also smoothly slide along the inner wall of the second sliding groove 206, and a feeding port 208 is fixedly connected with the top of the second buffer box 205; the feeding port 208 is used for feeding materials into the feeding device 2, in order to provide additional support, a supporting block 18 is fixedly connected with the bottom of the shell 1, and a support 17 is fixedly connected with the outer wall of the supporting block 18;
[0034] Specifically, the bottom of the first buffer box 201 is tightly connected to the outer shell 1 via a fixed connection, ensuring the stability and durability of the device. An opening, called the first slide groove 202, is designed in the middle of the first buffer box 201. A first rotating block 203 is slidably connected to the inner wall of the first slide groove 202, allowing the first rotating block 203 to slide smoothly along the inner wall of the first slide groove 202, ensuring the flexibility and ease of operation of the device. To the right of the first rotating block 203, there is a rotating column 204, which is connected to the first rotating block 203 via a rotatable connection, allowing the first rotating block 203 to rotate more stably and improving the reliability of the device. Furthermore, the first buffer box 201... A second buffer box 205 is fixedly connected to the top of 01. This second buffer box 205 also has an opening in its middle position, which is called a second slide 206. A second rotating block 207 is also slidably connected to the inner wall of the second slide 206. The second rotating block 207 can also slide smoothly along the inner wall of the second slide 206, which enhances the flexibility and ease of operation of the device. A feed port 208 is also fixedly connected to the top of the second buffer box 205. This feed port 208 is used to feed materials into the feeding device 2 to ensure smooth material transmission. In order to provide additional support, a support block 18 is also fixedly connected to the bottom of the outer shell 1. A bracket 17 is fixedly connected to the outer wall of the support block 18.
[0035] Please see the appendix Figure 1 Appendix Figure 3 and attached Figure 5 The right side of the second rotating block 207 is fixedly connected to a first handrail 211, the right side of the first rotating block 203 is fixedly connected to a second handrail 212, the top right side of the feed inlet 208 is rotatably connected to a connecting shaft 210, and the left side of the connecting shaft 210 is fixedly connected to a feed cover 209. The right side of the second rotating block 207 is designed to be fixedly connected to the first handrail 211, allowing users to hold the handrail when using the equipment, thereby improving the safety and comfort of operation. The right side of the first rotating block 203 is fixedly connected to the second handrail 212 to provide another stable grip point. In addition, the top right side of the feed inlet 208 is designed to be rotatably connected to a connecting shaft 210, allowing the feed inlet 208 to be flexibly adjusted in position as needed to adapt to materials of different sizes or shapes. The left side of the connecting shaft 210 is fixedly connected to a feed cover 209, which protects the connecting shaft 210 from interference by external debris.
[0036] Specifically, the right side of the second rotating block 207 is fixedly connected with the first handrail 211, so as to provide a stable holding point for the user, so that the user can hold the handrail more comfortably and safely when operating the device. The right side of the first rotating block 203 is also designed to be fixedly connected with the second handrail 212 to provide another stable holding point, ensuring that the user can obtain good support and control when using the device. The top right side of the feed inlet 208 can be rotatably connected with a connecting shaft 210, allowing the feed inlet 208 to be flexibly adjusted in position when needed to adapt to materials of different sizes or shapes, thereby improving the adaptability and flexibility of the device. The left side of the connecting shaft 210 is fixedly connected with a feed cover 209, which serves to protect the connecting shaft 210 from external debris, ensuring normal operation of the device and prolonging its service life.
[0037] Please refer to the attached Figure 2 , attached Figure 3 and attached Figure 5 , the right side of the shell 1 is fixedly connected with a rubber ring 14, the right side of the filter column 8 is fixedly connected with a sealing sheet 13, the bottom of the discharge port 12 is rotatably connected with a discharge cover 15, the front side of the discharge port 12 is fixedly connected with a lock catch 16, the middle right side of the bracket 17 is fixedly connected with a fixed block 19, the top of the fixed block 19 is fixedly connected with a motor 20, the right side of the shell 1 is designed to be fixedly connected with a rubber ring 14, which can ensure that the shell 1 has good sealing performance during use. At the same time, the right side of the filter column 8 is also designed to be fixedly connected with a sealing sheet 13, which helps to prevent liquid leakage during filtration. In addition, the bottom of the discharge port 12 is rotatably connected with a discharge cover 15, which allows the discharge cover 15 to be flexibly opened and closed, making it convenient for the operator to control the discharge of the material as needed. The front side of the discharge port 12 is also fixedly connected with a lock catch 16, which provides additional safety for the discharge port 12, ensuring that the discharge port 12 will not accidentally open during transportation or movement. In order to further enhance the stability of the device, the middle right side of the bracket 17 is fixedly connected with a fixed block 19, and the top of the fixed block 19 is fixedly connected with a motor 20. The motor 20 allows the entire device to be operated automatically, improving work efficiency.
[0038] Specifically, the right side of the shell 1 is designed to be fixedly connected with a rubber ring 14, which ensures that the shell 1 can maintain good sealing performance in various use environments, preventing the intrusion of external substances and the leakage of internal substances. The rubber ring 14, as a commonly used sealing material, has softness and elasticity, which enables it to closely fit the surface of the shell 1, further enhancing the sealing effect of the connection part. The right side of the filter column 8 is also designed to be fixedly connected with a sealing sheet 13, which plays a crucial role in the filtering process. The sealing sheet 13 can prevent liquid from leaking from the connection part of the filter column 8 during the filtering process, ensuring the smooth progress of the filtering process and the reliability of the filtering effect. The bottom part of the discharge port 12 is rotatably connected with a discharge cover 15, which can be flexibly opened and closed. The rotatable connection of the discharge cover 15 not only facilitates operation but also improves the efficiency of the discharging process. The front side of the discharge port 12 is also fixedly connected with a lock catch 16, which provides additional safety protection for the discharge port 12. The lock catch 16 can ensure that the discharge port 12 does not accidentally open during transportation or movement, thereby avoiding accidental leakage and waste of materials. In order to further enhance the stability and reliability of the equipment, the middle right side of the bracket 17 is fixedly connected with a fixed block 19, and the top part of the fixed block 19 is fixedly connected with a motor 20. The setting of the motor 20 enables the entire equipment to realize automatic operation.
[0039] Working principle: when working, open the feeding cover 209, pour the carbon powder into the feeding port 208, first the carbon powder enters the second buffer tank 205, after the carbon powder is poured in, close the feeding cover 209, open the second rotating block 207, the carbon powder falls into the first buffer tank 201, after all, enter, close the second rotating block 207, open the first rotating block 203, and the carbon powder falls into the buffer tank 3.
[0040] The carbon powder first enters the filter column 8 from the buffer tank 3, then 22 is opened, the rotating shaft 6 is driven to rotate by 22, at this time the carbon powder is stirred by the rotating ring 7 and pushed to the left, the carbon powder is thrown out from the filter port 9 to the outer layer after rotation, and the impurities are left in the inner part, finally, due to the setting of the triangular block 11, the carbon powder is slowly discharged from the discharge port 12.
[0041] Finally, it should be noted that the above description is only a preferred embodiment of the present application and is not intended to limit the present application. Although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments or make equivalent substitutions for some technical features, as long as they are within the spirit and principles of the present application. Any modification, equivalent substitution, improvement, etc. made within the scope of the present application shall be included in the protection scope of the present application.
Claims
1. A spiral pushing ultra-fine plant charcoal powder vacuum feeding machine, comprising a shell (1), characterized in that: The top of the shell (1) is fixedly connected with a buffer tank (3), the left side of the shell (1) is fixedly connected with a top cover (4), the right side of the shell (1) is fixedly connected with a bottom cover (5), the left side of the bottom cover (5) is rotatably connected with a rotating shaft (6), the outer wall of the rotating shaft (6) is fixedly connected with a rotating ring (7), the outer wall of the rotating ring (7) is rotatably connected with a filter column (8), the outer wall of the filter column (8) is provided with a filter port (9), the outer wall right side of the filter column (8) is fixedly connected with a connecting block (10), the left side of the connecting block (10) is fixedly connected with a triangular block (11), the bottom left side of the shell (1) is provided with a discharge port (12), the top of the buffer tank (3) is fixedly connected with a feeding device (2), and the feeding device (2) is used for the partition of feeding.
2. The spiral pushing ultra-fine plant charcoal powder vacuum feeding machine according to claim 1, characterized in that: The feeding device (2) comprises a first buffer tank (201), the bottom of the first buffer tank (201) is fixedly connected with the shell (1), the middle part of the first buffer tank (201) is provided with a first chute (202), the inner wall of the first chute (202) is slidably connected with a first rotating block (203), the right side of the first rotating block (203) is rotatably connected with a rotating column (204), the top of the first buffer tank (201) is fixedly connected with a second buffer tank (205), the middle part of the second buffer tank (205) is provided with a second chute (206), the inner wall of the second chute (206) is slidably connected with a second rotating block (207), and the top of the second buffer tank (205) is fixedly connected with a feeding port (208).
3. The spiral pushing ultra-fine plant charcoal powder vacuum feeding machine according to claim 2, characterized in that: The top right side of the feeding port (208) is rotatably connected with a connecting shaft (210), the left side of the connecting shaft (210) is fixedly connected with a feeding cover (209).
4. The spiral pushing ultra-fine plant charcoal powder vacuum feeding machine according to claim 2, characterized in that: The right side of the second rotating block (207) is fixedly connected with a first handrail (211), and the right side of the first rotating block (203) is fixedly connected with a second handrail (212).
5. The spiral pushing ultra-fine plant charcoal powder vacuum feeding machine according to claim 1, characterized in that: The right side of the filter column (8) is fixedly connected with a sealing sheet (13).
6. The spiral pushing ultra-fine plant charcoal powder vacuum feeding machine according to claim 1, characterized in that: The bottom of the discharge port (12) is rotatably connected with a discharge cover (15), and the front side of the discharge port (12) is fixedly connected with a lock catch (16).
7. The spiral pushing ultra-fine plant charcoal powder vacuum feeding machine according to claim 1, characterized in that: The bottom of the shell (1) is fixedly connected with a supporting block (18), and the outer wall of the supporting block (18) is fixedly connected with a support (17).
8. The spiral pushing ultra-fine plant charcoal powder vacuum feeding machine according to claim 7, characterized in that: The middle right side of the support (17) is fixedly connected with a fixed block (19), and the top of the fixed block (19) is fixedly connected with a motor (20).