Plant extraction device capable of achieving rapid discharging

By employing a ring-shaped water jet cleaning system, a telescopic cylinder clamping mechanism, and a vibration design based on a linear drive mechanism, the problems of slow material feeding speed and unstable receiving container in traditional plant extraction devices have been solved, achieving rapid material feeding and efficient extraction.

CN224126609UActive Publication Date: 2026-04-17西藏米利生物科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
西藏米利生物科技有限公司
Filing Date
2025-05-15
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Traditional plant extraction devices have slow feeding speeds, materials tend to stick to the inner wall of the feeding pipe, and the receiving container is unstable and prone to tipping over, causing material spillage and affecting feeding efficiency.

Method used

The system employs a ring-shaped water jet cleaning system, a telescopic cylinder for clamping the receiving container, a linear drive mechanism for vibrating the extraction tank, and an overflow prevention cover. Combined with anti-slip silicone pads and a protective net, it enables rapid material discharge and stable clamping of the receiving container.

Benefits of technology

It improves the feeding speed and efficiency, avoids material blockage and spillage, and ensures the continuity of the extraction process and the quality of the materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of extraction devices, in particular to a quick-discharging plant extraction device which comprises a water pan, the upper end of the water pan is fixedly connected with a base; an annular water pipe for upward spraying is mounted on the inner side of the base; the upper end of the base is fixedly connected with left-right symmetrical supporting plates. A material receiving container clamping plate is arranged on the inner side of the supporting plate. In the blanking process, the extraction tank vibrates up and down, so that unsmooth blanking caused by adhesion of materials and the like is effectively avoided, and the blanking speed is remarkably increased; the telescopic air cylinders with the two sides installed on the outer sides of the supporting plates are synchronously started, the material receiving container clamping plates are pushed to move inwards, a material receiving container is firmly clamped, the device can automatically clean the discharging pipe of the extraction tank, it is avoided that viscous materials block or pollute the discharging pipe of the extraction tank, and the subsequent discharging efficiency of the extraction tank is guaranteed.
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Description

Technical Field

[0001] This utility model relates to the field of extraction device technology, and in particular to a plant extraction device with rapid feeding. Background Technology

[0002] In the modern plant extraction industry, the feeding process of plant extracts is a key step. Plant extraction equipment is a key device that uses solvents to separate and purify specific components from plants. Its technological development revolves around improving extraction efficiency, ensuring component activity, and achieving environmentally friendly production.

[0003] Traditional feeding devices often use fixed feeding pipes. During the feeding process, materials are prone to sticking to the inner wall of the feeding pipe due to factors such as humidity and viscosity, which slows down the feeding speed or even causes blockage. At the same time, the fixing method of the receiving container is also relatively simple. It is often simply placed under the equipment without effective fixing measures, which makes it easy for it to shake or tilt during the extraction process, causing the material to spill. Utility Model Content

[0004] To overcome the problems of slow feeding speed and easy adhesion of materials in the above-mentioned plant extraction device, as well as the unstable placement of the receiving container, which makes it easy to tip over and affect the feeding efficiency.

[0005] The technical solution is as follows: A plant extraction device for rapid material feeding includes a water receiving tray; a base is fixedly connected to the upper end of the water receiving tray; an annular water pipe for upward spraying is installed inside the base; symmetrical support plates are fixedly connected to the upper end of the base; a material receiving container clamping plate is provided on the inner side of the support plates; a telescopic cylinder is installed on the outer side of the support plates; the output end of the telescopic cylinder is connected to the material receiving container clamping plate; an extraction tank is provided on the upper end of the base; a linear drive mechanism is fixedly connected to the rear end of the base; a linkage block is fixedly connected to the output end of the linear drive mechanism; and the extraction tank is welded to the front end of the linkage block.

[0006] Furthermore, the right end of the annular water pipe is connected to an inlet for connecting to an external water source; the inner side of the annular water pipe is equipped with annularly distributed nozzles; the nozzles are set at an angle.

[0007] Furthermore, an overflow cover is welded to the upper part of the base; the front end of the overflow cover has an opening; the top view of the overflow cover is semi-circular.

[0008] Furthermore, the linear drive mechanism includes a mounting slot, a drive motor, a threaded rod, and a threaded sleeve; the mounting slot is fixedly connected to the rear end of the base; the drive motor is mounted on the upper end of the mounting slot; the threaded rod is mounted on the lower end of the output shaft of the drive motor; the drive motor is used to drive the threaded rod to rotate; the threaded sleeve is connected to the outer side of the threaded rod; the threaded rod drives the threaded sleeve to move along the axis of the threaded rod; a linkage block is fixedly connected to the outer wall of the threaded sleeve.

[0009] Furthermore, the receiving container clamping plate has a semi-circular structure; the clamping end of the receiving container clamping plate is equipped with an anti-slip silicone pad.

[0010] Furthermore, a drain pipe is connected to the left end of the water receiving tray; an inclined ramp is fixedly connected to the bottom inner side of the water receiving tray; the inclined ramp is used to guide the liquid to flow out more quickly.

[0011] Furthermore, a retaining ring is welded to the upper end of the inner side of the water receiving tray; the upper end of the retaining ring supports an isolation net; the upper end of the isolation net is fitted and connected to the retaining ring.

[0012] The beneficial effects are as follows: During the feeding process, the drive motor can also drive the threaded rod to rotate in both directions, causing the extraction tank to vibrate up and down. This design effectively avoids feeding difficulties caused by material adhesion, significantly improves the feeding speed, and ensures the continuity and efficiency of the extraction process. After the feeding is completed, the device can automatically clean the feeding pipe of the extraction tank, preventing viscous substances from clogging or contaminating the feeding pipe of the extraction tank, thus ensuring the feeding efficiency and material quality of subsequent extraction tanks. By synchronously activating the telescopic cylinders installed on both sides of the support plate, the receiving container clamping plate is pushed inward until the receiving container is firmly clamped, ensuring the stability of the receiving container during the extraction process and preventing material spillage caused by shaking or tilting of the receiving container, thereby improving the accuracy and efficiency of feeding. Attached Figure Description

[0013] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0014] Figure 2 This is a three-dimensional structural diagram of the present invention from another angle;

[0015] Figure 3 This is a schematic diagram of the internal three-dimensional structure of the spill cover of this utility model.

[0016] Figure 4 This is a three-dimensional structural diagram of the lower end of this utility model;

[0017] Figure 5 This is a three-dimensional structural diagram of the linear drive mechanism linked to the extraction tank of this utility model;

[0018] Figure 6 This is a three-dimensional cross-sectional view of the water receiving tray of this utility model.

[0019] In the attached diagram, the following are the reference numerals: 1. Water receiving tray; 2. Base; 3. Annular water pipe; 4. Support plate; 5. Material receiving container clamping plate; 6. Extraction tank; 701. Mounting groove; 702. Drive motor; 703. Threaded rod; 704. Threaded sleeve; 8. Linkage block; 9. Overflow cover; 10. Nozzle; 11. Telescopic cylinder; 12. Water inlet; 13. Drain pipe; 15. Opening; 16. Inclined ramp; 17. Retaining ring; 18. Isolation net. Detailed Implementation

[0020] The present invention will now be described in detail with reference to the accompanying drawings and specific embodiments.

[0021] like Figures 1-5 As shown, this utility model provides an embodiment: a plant extraction device for rapid material feeding, including a water receiving tray 1; a base 2 is fixedly connected to the upper end of the water receiving tray 1; an annular water pipe 3 for upward spraying is installed inside the base 2; a left-right symmetrical support plate 4 is fixedly connected to the upper end of the base 2; a material receiving container clamping plate 5 is provided on the inner side of the support plate 4; a telescopic cylinder 11 is installed on the outer side of the support plate 4; the output end of the telescopic cylinder 11 is connected to the material receiving container clamping plate 5; an extraction tank 6 is provided on the upper end of the base 2; a linear drive mechanism is fixedly connected to the rear end of the base 2; a linkage block 8 is fixedly connected to the output end of the linear drive mechanism; the extraction tank 6 is welded to the front end of the linkage block 8; the right end of the annular water pipe 3 is connected to an inlet 12 for connecting to an external water source; annularly evenly distributed nozzles 10 are installed inside the annular water pipe 3; the nozzles 10 are inclined.

[0022] A suitable receiving container is smoothly placed into the water receiving tray 1 through the base 2, at which point the receiving container is positioned between the two receiving container clamping plates 5. Simultaneously, the telescopic cylinders 11 mounted on the outer sides of the support plates 4 are activated, extending the piston rods of the telescopic cylinders 11 and pushing the receiving container clamping plates 5 inward until the receiving container is securely clamped. The linear drive mechanism drives the extraction tank 6 to move downward in a linear motion until the discharge pipe of the extraction tank 6 extends into the receiving container. The discharge valve of the extraction tank 6 is opened to discharge the material. During the discharge process, the linear drive mechanism operates in conjunction with the previous... The extraction tank 6 at the end vibrates up and down, a design that effectively avoids material blockage caused by adhesion and other reasons, significantly improving the feeding speed. After the feeding is completed, the linear drive mechanism drives the extraction tank 6 to reset, releases the clamp of the receiving container, removes the receiving container, and turns on the external water source switch, allowing water to flow into the annular water pipe 3. The water flows upward through the nozzle 10 on the inner side of the annular water pipe 3, cleaning the feeding pipe of the extraction tank 6, preventing viscous substances from clogging or contaminating the feeding pipe of the extraction tank 6, and ensuring the feeding efficiency and material quality of the subsequent extraction tank 6 feeding pipe.

[0023] Please see Figure 2In this embodiment, an overflow cover 9 is welded to the upper end of the base 2; the front end of the overflow cover 9 is provided with an opening 15; the top view of the overflow cover 9 is semi-arc; the receiving container clamping plate 5 has a semi-arc structure; the clamping end of the receiving container clamping plate 5 is provided with an anti-slip silicone pad; the overflow cover 9 is used to prevent liquid from splashing out when the plant extraction device is discharging or when the cleaning process is being carried out. At the same time, the clamping end of the receiving container clamping plate 5 is provided with an anti-slip silicone pad, which enhances the friction between the receiving container clamping plate 5 and the receiving container and prevents the receiving container from shifting during the clamping process.

[0024] Please see Figure 5 In this embodiment, the linear drive mechanism includes a mounting groove 701, a drive motor 702, a threaded rod 703, and a threaded sleeve 704. The mounting groove 701 is fixedly connected to the rear end of the base 2. The drive motor 702 is mounted on the upper end of the mounting groove 701. The threaded rod 703 is mounted on the lower end of the output shaft of the drive motor 702. The drive motor 702 is used to drive the threaded rod 703 to rotate. The threaded sleeve 704 is connected to the outer side of the threaded rod 703. The threaded rod 703 drives the threaded sleeve 704 to move along the axial direction of the threaded rod 703. A linkage block 8 is fixedly connected to the outer wall of the threaded sleeve 704. When the drive motor 702 starts to run, it drives the threaded rod 703 to rotate through the output shaft. The rotation of the threaded rod 703 drives the threaded sleeve 704 to move linearly along the axial direction of the threaded rod 703 through the thread meshing action. The linear movement of the threaded sleeve 704 is transmitted to the extraction tank 6 through the linkage block 8, causing the extraction tank 6 to move linearly upward or downward synchronously.

[0025] Please see Figure 6 In this embodiment, a drain pipe 13 is connected to the left end of the water receiving tray 1; an inclined ramp 16 is fixedly connected to the bottom inner side of the water receiving tray 1; the inclined ramp 16 is used to guide the liquid to flow out faster; a baffle ring 17 is welded to the upper inner side of the water receiving tray 1; an isolation net 18 is supported on the upper end of the baffle ring 17; the upper end of the isolation net 18 is fitted and connected to the baffle ring 17; the water receiving tray 1, as the main container for liquid collection, and in conjunction with the isolation net 18 supported on the upper end of the baffle ring 17, effectively prevents liquid from overflowing and causing environmental pollution. At the same time, the inclined ramp 16 at the bottom forms a natural slope difference, which utilizes the gravity of the liquid itself, so that after the liquid enters the water receiving tray 1, it can flow naturally along the inclined ramp 16 towards the drain pipe 13, avoiding internal liquid residue.

[0026] When using this extraction device, the first step is to connect the inlet 12 of the annular water pipe 3 to an external water source, and put the appropriate receiving container into the front opening 15 of the overflow cover 9, and place it steadily into the upper end of the isolation net 18 of the water receiving tray 1. At this time, the receiving container is located between the two receiving container clamping plates 5.

[0027] The second step is to simultaneously activate the telescopic cylinders 11 installed on the outside of the support plate 4 on both sides. The piston rod of the telescopic cylinder 11 extends and pushes the receiving container clamping plate 5 to move inward until the receiving container is firmly clamped.

[0028] Third, the drive motor 702 of the linear drive mechanism starts to run, and drives the threaded rod 703 to rotate through the output shaft. The rotation of the threaded rod 703 drives the threaded sleeve 704 to move linearly along the axial direction of the threaded rod 703 through the thread meshing action. The linear movement of the threaded sleeve 704 is transmitted to the extraction tank 6 through the linkage block 8, which drives the extraction tank 6 to move downward in a linear motion until the feed pipe of the extraction tank 6 extends into the receiving container.

[0029] The fourth step is to open the discharge pipe valve of the extraction tank 6 to discharge the material. During the discharge process, the drive motor 702 drives the threaded rod 703 to rotate in both directions. The threaded sleeve 704 moves up and down along the path of the threaded rod 703 within a predetermined range, which in turn causes the extraction tank 6 at the front end to vibrate up and down. The design can effectively avoid the material from being stuck due to adhesion and other reasons, and significantly improve the discharge speed.

[0030] Fifth step: After the material feeding is completed, the linear drive mechanism drives the extraction tank 6 to reset, releases the clamp of the receiving container, takes out the receiving container, turns on the external water source switch, and allows water to flow into the annular water pipe 3. The water flows upward through the nozzle 10 on the inner side of the annular water pipe 3 to clean the feeding pipe of the extraction tank 6, preventing viscous substances from clogging or contaminating the feeding pipe of the extraction tank 6, and ensuring the feeding efficiency and material quality of the subsequent feeding pipe of the extraction tank 6; the wastewater collected in the water receiving tray 1 is discharged through the drain pipe 13.

Claims

1. A plant extraction device with rapid discharge, comprising a water receiving tray (1); characterized in that: A base (2) is fixedly connected to the upper end of the water receiving tray (1); an annular water pipe (3) for upward spraying is installed on the inner side of the base (2); a left-right symmetrical support plate (4) is fixedly connected to the upper end of the base (2); a material receiving container clamping plate (5) is provided on the inner side of the support plate (4); a telescopic cylinder (11) is installed on the outer side of the support plate (4); the output end of the telescopic cylinder (11) is connected to the material receiving container clamping plate (5); an extraction tank (6) is provided on the upper end of the base (2); a linear drive mechanism is fixedly connected to the rear end of the base (2); a linkage block (8) is fixedly connected to the output end of the linear drive mechanism; and the extraction tank (6) is welded to the front end of the linkage block (8).

2. The rapid discharging plant extraction device of claim 1, wherein, The right end of the annular water pipe (3) is connected to an inlet (12) for connecting to an external water source; the inner side of the annular water pipe (3) is equipped with annularly distributed nozzles (10); the nozzles (10) are set at an angle.

3. The rapid discharging plant extraction device of claim 1, wherein, An overflow cover (9) is welded to the upper end of the base (2); the overflow cover (9) has an opening (15) at the front end; the overflow cover (9) is semi-circular when viewed from above.

4. The rapid discharging plant extraction device of claim 1, wherein, The linear drive mechanism includes a mounting slot (701), a drive motor (702), a threaded rod (703), and a threaded sleeve (704); the mounting slot (701) is fixedly connected to the rear end of the base (2); the drive motor (702) is mounted on the upper end of the mounting slot (701); the threaded rod (703) is mounted on the lower end of the output shaft of the drive motor (702); the drive motor (702) is used to drive the threaded rod (703) to rotate; the threaded sleeve (704) is connected to the outer side of the threaded rod (703); the threaded rod (703) drives the threaded sleeve (704) to move along the axis of the threaded rod (703); a linkage block (8) is fixedly connected to the outer wall of the threaded sleeve (704).

5. The rapid discharging plant extraction device of claim 1, wherein, The receiving container clamping plate (5) has a semi-arc structure; the clamping end of the receiving container clamping plate (5) is provided with an anti-slip silicone pad.

6. The rapid discharging plant extraction device of claim 1, wherein, The left end of the water receiving tray (1) is connected to the drain pipe (13); away from the drain pipe (13); the inclined ramp (16) is used to guide the liquid to flow out faster.

7. The rapid discharging plant extraction device of claim 6, wherein, A retaining ring (17) is welded to the upper end of the inner side of the water receiving tray (1); the upper end of the retaining ring (17) carries an isolation net (18); the upper end of the isolation net (18) is fitted and connected to the retaining ring (17).