Ultrafine pulverizer applied to dendrobium nobile

By designing an ultra-micro pulverizer that incorporates a cell wall disruptor and a nano-grinder, the problem of the difficulty in releasing the active ingredients of Dendrobium has been solved, enabling the active ingredients to be fully utilized and easily absorbed, thus improving the medicinal effects of Dendrobium products.

CN223543130UActive Publication Date: 2025-11-14HANGZHOU YUNZHONGYU NETWORK TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422955472.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-02
Publication Date
2025-11-14
Estimated Expiration
2034-12-02

AI Technical Summary

Technical Problem

Existing processing methods for Dendrobium are insufficient to effectively break down cell walls, resulting in the inability to fully release active ingredients and affecting its medicinal efficacy.

Method used

An ultra-micro pulverizer comprising a cell wall disruptor and a nano-grinder was designed. It disrupts cell walls through high-frequency vibration and micro-jet, and processes active ingredients into ultra-micro molecular structures.

Benefits of technology

This method enables the full release and easy absorption of the active ingredients in Dendrobium, ensuring the full utilization of these active ingredients and improving the medicinal effects of Dendrobium products.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223543130U_ABST
    Figure CN223543130U_ABST
Patent Text Reader

Abstract

The utility model discloses an ultrafine grinder applied to dendrobium nobile, and relates to the technical field of dendrobium nobile processing, the ultrafine grinder applied to the dendrobium nobile comprises a supporting table, and further comprises a grinding mechanism arranged on the top surface of the supporting table and used for breaking cell walls of the dendrobium nobile, and the grinding mechanism comprises a cell wall breaking machine; the discharging end of the cell wall breaking machine is communicated with a connecting pipeline through a discharging funnel; the grinding mechanism is arranged below the cell wall breaking machine and used for conducting nanocrystallization treatment on the dendrobium nobile subjected to wall breaking, the grinding mechanism comprises a nanometer grinding machine, an input funnel communicated with the connecting pipeline is arranged above the nanometer grinding machine, a movable cover is detachably installed on the nanometer grinding machine, and the movable cover is connected with the mobile phone. And the movable cover is provided with a buffer funnel communicated with the nanometer grinding machine. According to the ultrafine grinder applied to the dendrobium nobile, the dendrobium nobile can be pretreated, so that effective components of the dendrobium nobile can be fully released, an ultra-micro molecular structure easy to absorb is formed, and full play of the active components is ensured.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of Dendrobium processing technology, specifically to an ultrafine pulverizer for Dendrobium. Background Technology

[0002] Dendrobium is a traditional Chinese medicine with various medicinal values ​​and effects. It can be consumed in diverse and convenient ways. The main active ingredient in Dendrobium is known to be polysaccharides, and its important active ingredient is alkaloids. In addition, Dendrobium also contains flavonoids, polyphenols, bibenzyl groups, phenanthrene, and other active substances. Modern research shows that Dendrobium has effects such as improving immunity, protecting the liver and reducing inflammation, anti-tumor activity, nourishing the stomach, replenishing yin and tonifying deficiency, anti-fatigue, and anti-oxidation and anti-aging. Furthermore, because Dendrobium contains dietary fiber, it can promote intestinal peristalsis and accelerate the excretion of metabolic waste products.

[0003] Currently, the traditional processing method for Dendrobium products is to grind it into powder. However, due to the obstruction of the cell wall, the active ingredients in Dendrobium are difficult to be fully released, which limits the effectiveness of the active ingredients.

[0004] Therefore, in order to address the above problems, the applicant needs to design an ultrafine pulverizer for Dendrobium to solve the problem. Utility Model Content

[0005] The purpose of this invention is to provide an ultrafine pulverizer for Dendrobium orchids to solve the problems mentioned in the background section.

[0006] To achieve the above objectives, this utility model provides the following technical solution: an ultrafine pulverizer for Dendrobium, comprising a support platform,

[0007] It also includes: a crushing mechanism set on the top surface of the support platform, and the crushing mechanism is used to break the cell wall of Dendrobium. The crushing mechanism includes a cell wall breaking machine. The discharge end of the cell wall breaking machine is detachably installed with a discharge funnel, and the lower part of the discharge funnel is connected to a connecting pipe for discharge.

[0008] The grinding mechanism is located below the cell wall breaking machine and is used to nano-process the broken Dendrobium. The grinding mechanism includes a nano grinder, and an input funnel connected to a connecting pipe is provided above the nano grinder. A movable cover is detachably installed on the nano grinder. A buffer funnel located below the output port of the input funnel is fixedly installed on the movable cover and is connected to the nano grinder. Clamping components are fixedly installed on both sides of the movable cover of the nano grinder and are used to clamp the movable cover.

[0009] Furthermore, a buffer chamber is detachably installed on the cell wall disruptor, and a feed funnel is fixedly connected to the buffer chamber.

[0010] The above structural design facilitates the addition of Dendrobium officinale material using the feeding funnel and allows for the storage of large quantities of Dendrobium officinale material at once, thereby improving work efficiency.

[0011] Furthermore, the clamping component includes a clamping plate that abuts against the movable cover, and a handle is fixedly welded to the clamping plate. A slide rod is rotatably provided on the inner side of the clamping plate, and a connecting rod is fixedly connected to one end of the slide rod. Connecting blocks are fixedly provided at both ends of the connecting rod, and the connecting blocks are fixedly connected to the nano-grinding machine.

[0012] The above structural design utilizes connecting blocks, connecting rods, and sliding rods to facilitate the support of the clamping plate. During use, external force can be used to rotate the handle to drive the clamping plate to rotate. The rotation of the clamping plate away from the movable cover facilitates the removal of the movable cover.

[0013] Furthermore, a hollow sleeve is threaded onto the end of the slide bar away from the connecting rod, and a pressing plate is fixedly provided on the side of the hollow sleeve near the clamping plate.

[0014] With the above structural design, when in use, the hollow sleeve is rotated by external force. The movement of the hollow sleeve will drive the pressing plate to move. The movement of the pressing plate will squeeze the clamping plate to apply pressure to the movable cover, which is convenient for firmly clamping the movable cover and easy to install.

[0015] Furthermore, a column is fixedly installed on the bottom surface of the support platform, and a base is fixedly installed on the bottom surface of the column.

[0016] The above structural design utilizes a base and columns to facilitate support of the support platform, thereby improving the load-bearing capacity of the support platform.

[0017] Furthermore, a stabilizing base is provided below the cell wall breaker, and the bottom surface of the stabilizing base is fixedly connected to the top surface of the support platform. A base is provided below the nano-grinding machine, and the bottom surface of the base is fixedly connected to the top surface of the base.

[0018] The above structural design utilizes a stable base to easily support the cell wall disruptor and nano-grinding machine, thereby improving their stability and steadiness during use.

[0019] Compared with the prior art, the beneficial effects of this utility model are: the ultrafine pulverizer applied to Dendrobium can pre-treat Dendrobium, allowing the effective components of Dendrobium to be fully released and forming easily absorbed ultrafine molecular structures, ensuring the full utilization of active ingredients. The specific details are as follows:

[0020] 1. In use, the ultrafine pulverizer applied to Dendrobium involves feeding Dendrobium material into the buffer chamber through a feeding funnel. The Dendrobium in the buffer chamber slowly enters the cell wall disruptor, which uses strong shock waves and micro-jet streams generated by high-frequency vibration to break down the cell wall structure of the Dendrobium, thereby fully releasing the active ingredients within the cells. The pre-processed Dendrobium is then transported to the input funnel via a connecting pipe by the fan inside the cell wall disruptor. The Dendrobium in the input funnel falls into the buffer funnel, and then enters the nano-grinding mill. The nano-grinding mill processes the active ingredients of Dendrobium into ultrafine molecular structures, improving the solubility and stability of the active ingredients, thereby allowing the effective components of Dendrobium to be fully released and forming easily absorbed ultrafine molecular structures, ensuring the full utilization of the active ingredients.

[0021] 2. When using this ultrafine pulverizer for Dendrobium, external force is used to rotate the hollow sleeve. The movement of the hollow sleeve will drive the pressing plate to move. The movement of the pressing plate will squeeze the clamping plate and apply pressure to the movable cover, which will help to firmly clamp the movable cover. After the Dendrobium is processed, the hollow sleeve is rotated in the opposite direction. The hollow sleeve will drive the pressing plate away from the clamping plate, which will cause the clamping plate to disengage, making it easy to remove the movable cover and thus convenient to take out the processed Dendrobium. The working efficiency is high. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model;

[0023] Figure 2 This is a three-dimensional structural diagram of the crushing mechanism of this utility model;

[0024] Figure 3 This is a three-dimensional structural diagram of the grinding mechanism of this utility model;

[0025] Figure 4 This is a three-dimensional structural diagram of the clamping component of this utility model.

[0026] In the diagram: 1. Support platform; 2. Crushing mechanism; 3. Grinding mechanism; 10. Feeding funnel; 11. Column; 12. Base; 20. Cell wall breaking machine; 21. Buffer bin; 22. Discharge funnel; 23. Connecting pipe; 24. Stabilizing base; 30. Nano grinder; 31. Input funnel; 32. Movable cover; 33. Buffer funnel; 34. Clamping component; 35. Base; 340. Clamping plate; 341. Handle; 342. Slide rod; 343. Connecting rod; 344. Connecting block; 345. Hollow sleeve; 346. Pressing plate. Detailed Implementation

[0027] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0028] like Figures 1-4 As shown, this utility model discloses an ultrafine pulverizer for Dendrobium, including a support platform 1 and a pulverizing mechanism 2 disposed on the top surface of the support platform 1. The pulverizing mechanism 2 is used to break the cell walls of Dendrobium. The pulverizing mechanism 2 includes a cell wall breaker 20, which uses high-frequency vibration to subject the cells to continuous impact, thereby causing tiny cracks in the cell walls, ultimately leading to cell wall rupture. A discharge funnel 22 is detachably installed at the discharge end of the cell wall breaker 20, and a connecting pipe 23 for discharge is connected below the discharge funnel 22. A buffer chamber 21 is detachably installed on the cell wall breaker 20, and a feed funnel 10 is fixedly connected to the buffer chamber 21. A grinding mechanism 3 is disposed below the cell wall breaker 20, and the grinding mechanism 3 is used to perform nano-processing on the pulverized Dendrobium. The grinding mechanism 3 includes nano-processing mechanism 20. The grinding mill 30, and the nano-grinding mill 30 is provided with an input funnel 31 connected to the connecting pipe 23. The nano-grinding mill 30 can grind materials to the nano level, making the active ingredients more dispersed and uniform, thereby improving the quality and stability of the extract. The nano-grinding mill 30 is detachably installed with a movable cover 32. The movable cover 32 is fixedly installed with a buffer funnel 33 located below the output port of the input funnel 31, and the buffer funnel 33 is connected to the nano-grinding mill 30. The bottom surface of the support platform 1 is fixedly provided with a column 11, and the bottom surface of the column 11 is fixedly provided with a base 12. The cell wall breaking machine 20 is provided with a stabilizing seat 24, and the bottom surface of the stabilizing seat 24 is fixedly connected to the top surface of the support platform 1. The nano-grinding mill 30 is provided with a base 35, and the bottom surface of the base 35 is fixedly connected to the top surface of the base 12.

[0029] With the above structural design, during use, Dendrobium material is fed into the buffer chamber 21 through the feeding funnel 10. The Dendrobium in the buffer chamber 21 will slowly enter the cell wall disruptor 20. The cell wall disruptor 20 will destroy the cell wall structure of Dendrobium through strong shock waves and micro-jet generated by high-frequency vibration, thereby fully releasing the active ingredients in the cells. The pre-processed Dendrobium will be transported to the input funnel 31 through the connecting pipe 23 by the fan inside the cell wall disruptor 20. The Dendrobium in the input funnel 31 will fall into the buffer funnel 33. The Dendrobium in the buffer funnel 33 will enter the nano-grinding mill 30. The nano-grinding mill 30 will process the active ingredients of Dendrobium into ultra-small molecular structures, improve the solubility and stability of the active ingredients, thereby allowing the effective ingredients of Dendrobium to be fully released and forming easily absorbed ultra-small molecular structures, ensuring the full utilization of the active ingredients.

[0030] The nano-grinding machine 30 has clamping components 34 fixedly installed on both sides of the movable cover 32. The clamping components 34 are used to clamp the movable cover 32. The clamping components 34 include a clamping plate 340 that abuts against the movable cover 32. A handle 341 is fixedly welded on the clamping plate 340. A slide rod 342 is rotatably installed on the inner side of the clamping plate 340. A connecting rod 343 is fixedly connected to one end of the slide rod 342. Connecting blocks 344 are fixedly installed at both ends of the connecting rod 343. The connecting blocks 344 are fixedly connected to the nano-grinding machine 30. A hollow sleeve 345 is threaded on the end of the slide rod 342 away from the connecting rod 343. A pressing plate 346 is fixedly installed on the side of the hollow sleeve 345 near the clamping plate 340.

[0031] Through the above structural design, the hollow sleeve 345 is rotated by external force. The movement of the hollow sleeve 345 will drive the pressing plate 346 to move. The movement of the pressing plate 346 will squeeze the clamping plate 340 to apply pressure to the movable cover 32, which is convenient for firmly clamping the movable cover 32. After the dendrobium is processed, the hollow sleeve 345 is rotated in the opposite direction. The hollow sleeve 345 will drive the pressing plate 346 away from the clamping plate 340, which will cause the clamping plate 340 to disengage, making it easy to remove the movable cover 32. This makes it convenient to take out the processed dendrobium, resulting in high work efficiency.

[0032] Working Principle: When using this ultra-fine pulverizer for Dendrobium, external force is used to rotate the hollow sleeve 345. The movement of the hollow sleeve 345 will drive the pressing plate 346 to move. The movement of the pressing plate 346 will squeeze the clamping plate 340 to apply pressure to the movable cover 32, which will help to firmly clamp the movable cover 32. After installation, Dendrobium material is fed into the buffer chamber 21 through the feed funnel 10. The Dendrobium in the buffer chamber 21 will slowly enter the cell wall breaking machine 20. The cell wall breaking machine 20 will destroy the cell wall structure of Dendrobium through strong shock waves and micro-jet generated by high-frequency vibration, thereby fully releasing the active ingredients in the cells. The preliminarily processed Dendrobium will be transported by the internal fan of the cell wall breaking machine 20 through the connecting pipe. 23 is conveyed to the input funnel 31. The Dendrobium in the input funnel 31 will fall into the buffer funnel 33. The Dendrobium in the buffer funnel 33 will enter the nano-grinding machine 30. The nano-grinding machine 30 processes the active ingredients of Dendrobium into ultra-small molecular structures, improving the solubility and stability of the active ingredients, thereby allowing the effective ingredients of Dendrobium to be fully released and forming easily absorbed ultra-small molecular structures, ensuring the full utilization of the active ingredients. After the Dendrobium is processed, the hollow sleeve 345 is rotated in the reverse direction. The hollow sleeve 345 will drive the pressing plate 346 away from the clamping plate 340, causing the clamping plate 340 to disengage, making it easy to remove the movable cover 32, thus facilitating the removal of the processed Dendrobium. The work efficiency is high.

[0033] Based on the above-described preferred embodiments of this utility model, and through the foregoing description, those skilled in the art can make various changes and modifications without departing from the technical concept of this utility model. The technical scope of this utility model is not limited to the contents of the specification, but must be determined according to the scope of the claims.

Claims

1. An ultrafine pulverizer for Dendrobium, comprising a support platform (1), Its features are, Also includes: The crushing mechanism (2) is set on the top surface of the support platform (1) and is used to break the cell wall of Dendrobium. The crushing mechanism (2) includes a cell wall breaking machine (20). The discharge end of the cell wall breaking machine (20) is detachably installed with a discharge funnel (22), and the lower part of the discharge funnel (22) is connected to a connecting pipe (23) for discharge. The grinding mechanism (3) is located below the cell wall breaking machine (20) and is used to nano-process the broken Dendrobium. The grinding mechanism (3) includes a nano grinder (30) and an input funnel (31) connected to the connecting pipe (23) is provided above the nano grinder (30). A movable cover (32) is installed on the nano grinder (30). A buffer funnel (33) is fixedly provided on the movable cover (32) below the output port of the input funnel (31) and is connected to the nano grinder (30). Clamping components (34) are fixedly provided on both sides of the movable cover (32) of the nano grinder (30) and are used to clamp the movable cover (32).

2. The ultrafine pulverizer for Dendrobium according to claim 1, characterized in that: The cell wall breaking machine (20) is equipped with a buffer chamber (21), and a feed funnel (10) is fixedly connected to the buffer chamber (21).

3. The ultrafine pulverizer for Dendrobium according to claim 1, characterized in that: The clamping component (34) includes a clamping plate (340) that abuts against the movable cover (32), and a handle (341) is fixedly welded on the clamping plate (340). A slide rod (342) is rotatably provided on the inner side of the clamping plate (340), and a connecting rod (343) is fixedly connected to one end of the slide rod (342). Connecting blocks (344) are fixedly provided at both ends of the connecting rod (343), and the connecting blocks (344) are fixedly connected to the nano-grinding machine (30).

4. The ultrafine pulverizer for Dendrobium according to claim 3, characterized in that: The sliding rod (342) is threaded with a hollow sleeve (345) at the end away from the connecting rod (343), and a pressing plate (346) is fixedly provided on the side of the hollow sleeve (345) near the clamping plate (340).

5. The ultrafine pulverizer for Dendrobium according to claim 1, characterized in that: The bottom surface of the support platform (1) is fixedly provided with a column (11), and the bottom surface of the column (11) is fixedly provided with a base (12).

6. The ultrafine pulverizer for Dendrobium according to claim 5, characterized in that: The cell wall breaking machine (20) is provided with a stabilizing base (24) below it, and the bottom surface of the stabilizing base (24) is fixedly connected to the top surface of the support platform (1). The nano grinder (30) is provided with a base (35) below it, and the bottom surface of the base (35) is fixedly connected to the top surface of the base (12).