A waste liquid treatment and recovery device for deep processing of traditional Chinese medicinal materials
Patent Information
- Application Number
- CN202611009522.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-07-08
- Publication Date
- 2026-08-21
AI Technical Summary
[0002]中药材深加工过程中,会产生大量的药渣和废液,这些废液中不仅含有未被完全提取的有效成分(如多糖、黄酮、生物碱等),还富含高浓度的有机物,若直接排放,既造成资源浪费,也带来较大的环保压力
1、本发明通过多个依次贴合设置的反应釜,配合内部的隔断组件和驱动组件,实现药液回收、生化处理和絮凝沉降的一体化分级处理,该装置能够对药渣进行挤压回收残留药液,并通过隔断组件的多状态切换,灵活控制物料的流向和排出,解决传统多设备流水线设置占地大和现场能耗高的问题。
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Figure CN122608237A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waste liquid treatment technology for traditional Chinese medicine materials, and in particular to a waste liquid treatment and recycling device for deep processing of traditional Chinese medicine materials. Background Technology
[0002] During the deep processing of Chinese medicinal herbs, a large amount of dregs and waste liquids are generated. These waste liquids not only contain incompletely extracted active ingredients (such as polysaccharides, flavonoids, alkaloids, etc.), but are also rich in high concentrations of organic matter. Direct discharge of these waste liquids will not only waste resources, but also bring great environmental pressure.
[0003] Currently, existing wastewater treatment devices typically employ a multi-equipment production line setup for graded and step-by-step processing, resulting in a large system footprint and making it impossible to centralize multi-process functions into a single device. Furthermore, the grading equipment requires multiple independent mixing units, leading to high energy consumption and increased production costs for enterprises. More challenging is the significant difference in treatment processes between medicinal residue and wastewater, with complex material flow paths and difficult connections between different processes, easily resulting in low processing efficiency and operational inconvenience. Therefore, we propose a wastewater treatment and recovery device for the deep processing of traditional Chinese medicinal materials. Summary of the Invention
[0004] In order to overcome the technical problems existing in the prior art, the present invention provides a waste liquid treatment and recycling device for deep processing of Chinese medicinal materials.
[0005] To solve the above-mentioned technical problems, the present invention provides the following technical solution: including a first reaction vessel, a second reaction vessel and a third reaction vessel, wherein infusion pipes are provided on the sides of the first reaction vessel, the second reaction vessel and the third reaction vessel, and partition components and drive components are provided inside the first reaction vessel, the second reaction vessel and the third reaction vessel; The partition assembly includes a first partition plate, a movable plate rotatably mounted on the inner side of the first partition plate, a first slot opened on the side of the movable plate, a first filter hole, a second filter hole and a discharge groove opened on the side of the first partition plate, the second slot, the discharge groove and the first filter hole are arranged in sequence, and the movable plate rotates the first partition plate to make the first slot, the first filter hole, the second filter hole and the discharge groove correspond to each other. The drive assembly includes a drive shaft, inside which are a power supply module, an electric push rod, and a damping block. The electric push rod pushes the damping block to fit against a first partition or a movable plate. The first partition or movable plate rotates synchronously with the drive shaft. A motor, a mating shaft, and a connecting rod are provided on the upper side of the drive shaft. A pressure plate is threaded onto the side of the mating shaft. The pressure plate moves up and down under the drive of the mating shaft.
[0006] Furthermore, the first partition is rotatably installed at the bottom inner side of the first, second, and third reaction vessels. The damping force on the side of the first partition is greater than the damping force on the side of the movable plate. The first filter holes are circumferentially arrayed and equidistantly opened on the inner side of the first partition.
[0007] Furthermore, the first slotted array is equidistantly and circumferentially opened through the side of the movable plate, the second slotted array is equidistantly and circumferentially opened through the side of the first partition, the second filter holes are equidistantly opened on the wall of the first slot, the discharge chute is equidistantly and circumferentially opened through the side of the first partition, and the sides of the first reactor, the second reactor and the third reactor are provided with circumferentially and circumferentially opened through-holes.
[0008] Furthermore, guide plates are fixedly installed on the outer sides of the first, second, and third reaction vessels corresponding to the positions of the movable plates, and guide pipes are fixedly installed through the sides of the guide plates. Third filter holes are equidistantly arranged in a circumferential array on the sides of the first, second, and third reaction vessels. An activated carbon plate is fixedly installed on the lower side of the third reaction vessel and is attached to the lower side of the first partition.
[0009] Furthermore, the drive shaft is located inside the first, second, and third reactors. The drive shaft is rotatably mounted on the inner side of the first partition plate. The movable plate is movably sleeved on the side of the drive shaft. The side of the drive shaft is provided with mounting grooves at equal intervals. A stirring rack is snapped into the inside of the mounting groove and is attached to the inner side of the first, second, and third reactors.
[0010] Furthermore, the power supply module is fixedly installed at the center of the drive shaft, the electric push rod is set at the position corresponding to the first partition and the movable plate, the damping block is fixedly installed at the output end of the electric push rod, and the drive shaft is symmetrically provided with slots on the upper and lower sides, and the slots pass through the drive shaft to the position of the power supply module. The slots between adjacent drive shafts are fitted with locking blocks.
[0011] Furthermore, the inner side of the first reactor is provided with equidistant sliding grooves, and the upper side of the first reactor is fixedly installed with a slide frame at equidistant positions corresponding to the sliding grooves, and the pressure plate is slidably installed on the inner side of the slide frame.
[0012] Furthermore, a mounting bracket is fixedly installed on the upper side of the carriage, the motor is fixedly installed on the upper side of the mounting bracket, the connecting rod is located at the output end of the motor and the connecting rod is snapped into the inside of the corresponding slot, the motor is locked to the connecting rod through a coupling, and the motor is fitted with a bushing and installed on the side of the connecting rod.
[0013] Compared with the prior art, the beneficial effects that this invention can achieve are: 1. This invention uses multiple reaction vessels arranged in sequence, along with internal partition components and drive components, to achieve integrated graded treatment of drug liquid recovery, biochemical treatment and flocculation sedimentation. This device can squeeze and recover residual drug liquid from drug residues, and flexibly control the flow direction and discharge of materials through multi-state switching of the partition components, solving the problems of large footprint and high on-site energy consumption in traditional multi-equipment production lines.
[0014] 2. By setting up a first reaction vessel, a second reaction vessel, and a third reaction vessel that are attached in sequence, and with the infusion pipe that runs through them, the present invention can complete the extrusion and recycling of drug residue, microbial biochemical degradation, and flocculation sedimentation treatment in the same device in sequence. This eliminates the need to transfer materials between multiple devices, shortens the processing flow, and improves production efficiency.
[0015] 3. This invention sets up a partition assembly consisting of a first partition and a movable plate at the bottom of the reactor, and utilizes the difference in damping force to achieve multiple states where the first partition can be fixed alone or rotate synchronously with the movable plate. When the first slot corresponds to the second slot, the waste liquid can flow downward. When the second filter hole corresponds to the first and third filter holes, the squeezed-out medicine liquid can be recovered through the guide plate. When the first slot corresponds to the discharge trough, the medicine residue or flocculents can be discharged through the matching tank. This design ensures that the various processes do not interfere with each other, resulting in better treatment effect.
[0016] 4. This invention connects to a motor via a drive shaft, and a pressure plate is threaded onto the outside of the drive shaft. When the drive shaft rotates counterclockwise, the pressure plate moves downward to squeeze the dregs and recover the medicinal liquid. When the drive shaft rotates clockwise, the pressure plate moves upward, and at the same time, the isolation component is driven to rotate and throw out the dregs. The squeezing and discharging share the same power source, reducing the energy consumption of the equipment. There is no need for manual cleaning of the dregs, reducing labor intensity.
[0017] 5. The present invention has a stirring rack that can be detachably installed on the side of the drive shaft. During the treatment process, the waste liquid and microbial agents or flocculants can be fully stirred to promote biochemical reaction and flocculation sedimentation. At the same time, when the stirring rack rotates with the drive shaft, it can also scrape and clean the inner wall of the reaction vessel to prevent materials from sticking to the wall and reduce the frequency of equipment maintenance. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a cross-sectional structural diagram of the present invention; Figure 3 This is a partial structural schematic diagram of the present invention; Figure 4 This is a partial exploded view of the partition component of the present invention; Figure 5 For the present invention Figure 2 A magnified structural diagram at point A; Figure 6 This is a schematic cross-sectional view of the reaction vessel of the present invention; Figure 7 For the present invention Figure 2 A magnified structural diagram at point B; Figure 8 For the present invention Figure 2 A magnified structural diagram at point C; Figure 9 This is a partial exploded view of the driving component of the present invention; Figure 10 For the present invention Figure 9 A magnified structural diagram at point D.
[0019] The components are as follows: 1. First reactor; 11. Infusion pipe; 12. Support frame; 2. Second reactor; 3. Third reactor; 4. Partition assembly; 41. First partition plate; 411. First filter hole; 42. Movable plate; 43. First slot; 431. Second filter hole; 44. Second slot; 45. Discharge chute; 451. Fitting chute; 46. Guide plate; 461. Guide pipe; 47. Third filter hole; 48. Activated carbon plate; 5. Drive assembly; 51. Drive shaft; 511. Mounting groove; 512. Stirring rack; 52. Power supply module; 521. Electric actuator; 522. Damping block; 53. Slot; 531. Slot; 54. Slide; 541. Slide frame; 542. Pressure plate; 55. Mounting frame; 56. Motor; 561. Connecting rod; 57. Fitting shaft. Detailed Implementation
[0020] To make the technical means, creative features, and achieved objectives and effects of this invention easier to understand, the invention is further described below with reference to specific embodiments. However, the following embodiments are merely preferred embodiments of this invention and not all of them. Other embodiments obtained by those skilled in the art based on the embodiments described herein without creative effort are all within the protection scope of this invention. Unless otherwise specified, the experimental methods in the following embodiments are conventional methods, and the materials and reagents used in the following embodiments are commercially available unless otherwise specified.
[0021] Example: Figure 1 and Figure 2As shown, a waste liquid treatment and recycling device for deep processing of traditional Chinese medicine includes a first reaction vessel 1, a second reaction vessel 2, and a third reaction vessel 3. The first reaction vessel 1, second reaction vessel 2, and third reaction vessel 3 are sequentially fitted together. Each of the three reaction vessels is a hollow cylindrical tube, and they are locked together by bolts. A liquid infusion pipe 11 is installed through the sides of each of the three reaction vessels. The liquid infusion pipe 11 is circular. The infusion tube 11 is connected to the material module, which can supply microbial agents and flocculants. Support frames 12 are equidistantly arranged on the lower side of the third reactor 3. The support frames 12 are fixed to the ground or base by screws. Isolation components 4 and drive components 5 are arranged inside the first reactor 1, the second reactor 2 and the third reactor 3. Isolation components 4 are used to seal the bottom of the first reactor 1, the second reactor 2 and the third reactor 3. Isolation components 4 are driven in conjunction with drive components 5 and can be used in multiple states.
[0022] like Figures 2 to 6As shown, the partition assembly 4 includes a first partition plate 41, which is rotatably installed at the bottom inner side of the first reactor 1, the second reactor 2, and the third reactor 3. The first partition plate 41 is an L-shaped annular plate. A movable plate 42, also an annular plate, is rotatably installed inside the first partition plate 41. The damping force on the side of the first partition plate 41 is greater than the damping force on the side of the movable plate 42. Four sets of first slots 43 are equidistantly arranged in a circumferential array on the side of the movable plate 42, and the first slots 43 penetrate the movable plate 42. The first slots 43 are fan-shaped slots. Second slots 44 are equidistantly arranged in a circumferential array on the side of the first partition plate 41, and the second slots 44 penetrate the first partition plate 41. The second slots 44 are fan-shaped slots. 2. When the first partition plate 41 rotates inside, the second slot 44 can be in a connected state corresponding to the position of the first slot 43. Second filter holes 431, which penetrate the movable plate 42, are equidistantly provided on the wall of the first slot 43. The second filter holes 431 are circular holes. First filter holes 411, which penetrate the first partition plate 41, are arranged in a circumferential array at equal intervals on the inner side of the first partition plate 41. When the first filter holes 411 and the second filter holes 431 are in corresponding positions, the liquid medicine flows out through its interior. Discharge troughs 45, which penetrate the first partition plate 41, are arranged in a circumferential array at equal intervals on the side of the first partition plate 41. The discharge troughs 45 are fan-shaped troughs. The second slot 44, the discharge trough 45, and the first filter holes 411 are arranged sequentially in the first reaction vessel 1, the second reaction vessel 2, and the third reaction vessel 3. A circular array of mating grooves 451 are provided on the side of the reactor vessel 1, 2, and 3. When the discharge chute 45 is aligned with the mating groove 451, the material inside can be discharged from the mating groove 451. A guide plate 46 is fixedly installed on the outside of the first reactor vessel 1, the second reactor vessel 2, and the third reactor vessel 3 at the position corresponding to the movable plate 42. The guide plate 46 is a circular annular plate with a "C"-shaped cross-section. A guide pipe 461 is fixedly installed through the side of the guide plate 46 and is connected to the liquid recovery module. A third filter hole 47 is provided on the side of the first reactor vessel 1, the second reactor vessel 2, and the third reactor vessel 3 in a circular array at equal intervals. The third filter hole 47 is a circular hole. A movable plate is provided on the lower side of the first partition plate 41 corresponding to the position inside the third reactor vessel 3. The activated carbon plate 48 is fixed to the lower side of the third reaction vessel 3 by screws, so that the waste liquid discharged at the end can be filtered through the activated carbon plate 48 to remove pigments and other impurities. Specifically, the first partition plate 41 or the movable plate 42 is driven to rotate by the components of the subsequent drive assembly 5. The movable plate 42 is driven to rotate alone. At this time, the damping force of the first partition plate 41 is large and it remains stationary. It can present two working states. First, the first slot 43 can communicate with the space corresponding to the second slot 44, and the waste liquid can flow into the space of the next process. Second, the second filter hole 431 can be corresponding to the first filter hole 411 and the third filter hole 47, and the separated liquid flows into the guide plate 46 and is discharged to the drug recovery module from the guide pipe 461.Additionally, the rotating movable plate 42 aligns the first slot 43 with the discharge trough 45. At this time, the first partition plate 41 and the movable plate 42 are synchronously driven to rotate, and the material accumulated inside the first slot 43 is flung by centrifugal force. When the discharge trough 45 aligns with the mating trough 451, the material is discharged through the mating trough 451, and collected by an external collection component.
[0023] like Figure 2 , Figure 3 and Figures 5 to 10 As shown, the drive assembly 5 includes a drive shaft 51, which is located inside the first reactor 1, the second reactor 2, and the third reactor 3. The drive shaft 51 is rotatably mounted inside the first partition plate 41. A movable plate 42 is movably sleeved on the side of the drive shaft 51. The drive shaft 51 is a cylindrical threaded rod with a cross-shaped cross section. Equally spaced mounting grooves 511 are provided on the side of the drive shaft 51. The mounting grooves 511 are U-shaped grooves. A stirring rack 512 is snapped into the mounting groove 511 and fits against the first reactor 1. Inside the second reactor 2 and the third reactor 3, the stirring rack 512 is a convex plate with equally spaced grooves on its sides. A power supply module 52, a cylindrical battery, is fixedly installed through the center of the drive shaft 51. An electric actuator 521 is fixedly installed inside the drive shaft 51, corresponding to the positions of the first partition 41 and the movable plate 42. The electric actuator 521 contacts the power supply module 52 to complete the circuit connection. A damping block 522 is fixedly installed at the output end of the electric actuator 521 and slides through the drive shaft 51. On the side, the damping block 522 is a circular block made of elastic rubber. It has symmetrical slots 53 on both the upper and lower sides of the drive shaft 51, extending through the drive shaft 51 to the power supply module 52. The slots 53 are regular hexagonal. A locking block 531 is installed inside the slots 53 between adjacent drive shafts 51, and the locking block 531 makes electrical contact with the corresponding power supply module 52. The slot 53 is a regular hexagonal block with a contact terminal at its center. Specifically, the locking block 531 connects the contacting power supply module 52 to the circuit. The electric actuator 521 can be directly powered, and the electric actuator 521 pushes the corresponding damping block 522 to fit against the inner side of the first partition 41 or the movable plate 42. When the drive shaft 51 rotates, it can drive the corresponding first partition 41 or the movable plate 42 to rotate. In addition, the internal drive shaft 51 of the first reaction vessel 1, the second reaction vessel 2 and the third reaction vessel 3 can be optionally equipped with a stirring frame 512. The stirring frame 512 can be rotated with the drive shaft 51 to stir the liquid and clean the inner side of the corresponding first reaction vessel 1, the second reaction vessel 2 or the third reaction vessel 3. The inner side of the first reactor 1 is provided with equally spaced sliding grooves 54, which are rectangular grooves. A slide frame 541 is fixedly installed on the upper side of the first reactor 1 at equal intervals corresponding to the sliding grooves 54. The slide frame 541 is a "C"-shaped plate. A pressure plate 542 is slidably installed on the inner side of the slide frame 541. The pressure plate 542 is a circular ring plate with protrusions on its side and a threaded groove on its inner side. A mounting bracket 55 is fixedly installed on the upper side of the slide frame 541. The mounting bracket 55 is a triangular ring bracket. A motor 56 is fixedly installed on the upper side of the mounting bracket 55, and the output end of the motor 56 extends from the center of the mounting bracket 55. A connecting rod 561 is provided at the output end of the motor 56, and the connecting rod 561 is snapped into the corresponding slot 53. The motor 56 is locked to the connecting rod 561 via a coupling. A mating shaft 57 is sleeved on the side of the connecting rod 561, and the mating shaft 57 is connected to... The drive shaft 51 is fitted together, and the mating shaft 57 has an extended thread on its side corresponding to the drive shaft 51. The mating shaft 57 is a round rod with a regular hexagonal groove on its side. The pressure plate 542 is threaded onto the outer side of the mating shaft 57. Specifically, the motor 56 is supported and fixed by the mounting bracket 55. The motor 56 drives the connecting rod 561 to rotate. The connecting rod 561 drives the mating shaft 57 and the corresponding drive shaft 51 to rotate synchronously. The adjacent drive shaft 51 is constrained by the locking block 531, so that the drive shaft 51 rotates accordingly. When the drive shaft 51 is driven to rotate counterclockwise, the slide 541 engages with the threads on the side of the mating shaft 57 and the drive shaft 51. The pressure plate 542 is constrained and slides downward inside the slide 541 and the slide groove 54, so that the pressure plate 542 can squeeze the material. Conversely, when the drive shaft 51 rotates clockwise, the pressure plate 542 is constrained and slides upward.
[0024] Working principle: In use: First, enter the first reaction vessel 1 area to concentrate on deep recovery of the medicinal liquid. For the processing of a batch of Chinese medicinal materials, firstly, put the dregs into the first reaction vessel 1. At this time, the second filter hole 431 of the movable plate 42 inside the first reaction vessel 1 corresponds to the first filter hole 411 and the third filter hole 47. The motor 56 drives the connecting rod 561 to rotate, and the synchronous cooperating shaft 57 and the drive shaft 51 rotate counterclockwise. The pressure plate 542 engages with the cooperating shaft 57 and the drive shaft 51 and moves downward. The pressure plate 542 can then squeeze the dregs. The residual medicinal liquid in the dregs flows into the guide plate 46 through the second filter hole 431, the first filter hole 411 and the third filter hole 47 for centralized collection. Then, through... The guide pipe 461 discharges to the liquid medicine recovery module. Then, the electric push rod 521 inside the first reaction vessel 1 pushes the damping block 522 to fit against the inner side of the movable plate 42. The movable plate 42 can be rotated by the drive shaft 51 so that the first slot 43 corresponds to the discharge chute 45. At this time, the drive shaft 51 is driven to rotate clockwise, and the electric push rod 521 pushes the damping block 522 to fit against the side of the first partition 41 and the movable plate 42. The first partition 41 and the movable plate 42 are driven to rotate as a whole. The slide 541 moves upward. When the first partition 41 and the movable plate 42 rotate, the release force generated causes the residue to be thrown out from the mating groove 451 through the first slot 43 and the discharge chute 45. The external collection structure can then collect it. The second step involves entering the second reactor 2 area for biochemical treatment. After the dregs are treated, the first slot 43 and the second slot 44 of the movable plate 42 inside the first reactor 1 correspond to each other. At this time, the discharge chute 45 and the matching chute 451 are staggered, and the first filter hole 411 and the second filter hole 431 are staggered. Waste liquid can directly enter the second reactor 2 area through the inside of the first reactor 1. The drive shaft 51 is driven counterclockwise and then clockwise. At this time, the pressure plate 542 on the side inside the first reactor 1 collects and cleans the waste liquid. The infusion pipe 11 on the side of the second reactor 2 delivers the microbial agent. The waste liquid and microbial agent are stirred by the stirring rack 512 to generate a biological reaction. During stirring, the dregs and liquid can be recycled again in the first reactor 1 area. The first slot 43 and the second slot 44 of the movable plate 42 inside the second reactor 2 correspond to each other, so that the waste liquid flows into the third reactor 3 area. Then the first partition 41 and the movable plate 42 are reset to isolate the waste liquid. The third step involves flocculation and sedimentation treatment in the third reactor 3 area. After the waste liquid enters the third reactor 3 area, the flocculant is introduced through the infusion pipe 11 on the side of the third reactor 3. The waste liquid and microbial agent are stirred by the stirring rack 512, and the flocculated material gradually settles. At this time, the first slot 43 of the movable plate 42 inside the third reactor 3 corresponds to the discharge trough 45. The first baffle 41 and the movable plate 42 are driven to rotate synchronously, and the flocculated material can be discharged and collected from the matching tank 451. Subsequently, the first slot 43 is aligned with the second slot 44, and the treated waste liquid can be adsorbed by the activated carbon plate 48 so that the waste liquid can be discharged in compliance with standards.
[0025] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited thereto. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the spirit of the present invention.
Claims
1. A waste liquid treatment and recycling device for deep processing of Chinese medicinal materials, comprising a first reaction vessel (1), a second reaction vessel (2) and a third reaction vessel (3), wherein the first reaction vessel (1), the second reaction vessel (2) and the third reaction vessel (3) are provided with infusion pipes (11) on their sides, and the first reaction vessel (1), the second reaction vessel (2) and the third reaction vessel (3) are provided with partition components (4) and drive components (5) inside; Its features are: The partition assembly (4) includes a first partition (41), a movable plate (42) is rotatably mounted on the inner side of the first partition (41), a first slot (43) is provided on the side of the movable plate (42), a first filter hole (411), a second filter hole (431) and a discharge groove (45) are provided on the side of the first partition (41), the second slot (44), the discharge groove (45) and the first filter hole (411) are arranged in sequence, and the movable plate (42) rotates on the first partition (41) to make the first slot (43), the first filter hole (411), the second filter hole (431) and the discharge groove (45) correspond to each other. The drive assembly (5) includes a drive shaft (51). Inside the drive shaft (51) are a power supply module (52), an electric push rod (521), and a damping block (522). The electric push rod (521) pushes the damping block (522) to fit against the first partition (41) or the movable plate (42). The first partition (41) or the movable plate (42) rotates synchronously with the drive shaft (51). The upper side of the drive shaft (51) is provided with a motor (56), a mating shaft (57), and a connecting rod (561). The side of the mating shaft (57) is threaded with a pressure plate (542). The pressure plate (542) moves up and down on the mating shaft (57) under drive.
2. The waste liquid treatment and recovery device for deep processing of traditional Chinese medicinal materials according to claim 1, characterized in that: The first partition (41) is rotatably installed on the inner bottom of the first reactor (1), the second reactor (2) and the third reactor (3). The damping force on the side of the first partition (41) is greater than the damping force on the side of the movable plate (42). The first filter holes (411) are circumferentially arrayed and equidistantly opened on the inner side of the first partition (41).
3. The waste liquid treatment and recovery device for deep processing of traditional Chinese medicinal materials according to claim 2, characterized in that: The first slot (43) is circumferentially arrayed and equidistantly opened through the side of the movable plate (42). The second slot (44) is circumferentially arrayed and equidistantly opened through the side of the first partition plate (41). The second filter hole (431) is equidistantly opened on the wall of the first slot (43). The discharge chute (45) is circumferentially arrayed and equidistantly opened through the side of the first partition plate (41). The sides of the first reactor (1), the second reactor (2) and the third reactor (3) are provided with circumferentially arrayed mating grooves (451) that penetrate through them.
4. The waste liquid treatment and recovery device for deep processing of traditional Chinese medicinal materials according to claim 3, characterized in that: A guide plate (46) is fixedly installed on the outer side of the first reactor (1), the second reactor (2) and the third reactor (3) at the position corresponding to the movable plate (42). A guide pipe (461) is fixedly installed through the side of the guide plate (46). The first reactor (1), the second reactor (2) and the third reactor (3) are provided with a third filter hole (47) through them in a circular array at equal intervals. An activated carbon plate (48) is fixedly installed on the lower side of the third reactor (3) and the activated carbon plate (48) is attached to the lower side of the first partition (41).
5. The waste liquid treatment and recovery device for deep processing of traditional Chinese medicinal materials according to claim 4, characterized in that: The drive shaft (51) is located inside the first reactor (1), the second reactor (2) and the third reactor (3). The drive shaft (51) is rotatably mounted on the inner side of the first partition (41). The movable plate (42) is movably sleeved on the side of the drive shaft (51). The side of the drive shaft (51) is provided with mounting grooves (511) at equal intervals. The inside of the mounting groove (511) is fitted with a stirring rack (512) and the stirring rack (512) is attached to the inner side of the first reactor (1), the second reactor (2) and the third reactor (3).
6. The waste liquid treatment and recovery device for deep processing of traditional Chinese medicinal materials according to claim 5, characterized in that: The power supply module (52) is fixedly installed in the center of the drive shaft (51). The electric push rod (521) is set in the position corresponding to the first partition (41) and the movable plate (42). The damping block (522) is fixedly installed at the output end of the electric push rod (521). The drive shaft (51) has symmetrical slots (53) on the upper and lower sides, and the slots (53) pass through the drive shaft (51) to the position of the power supply module (52). The slots (53) between adjacent drive shafts (51) are fitted with a card block (531).
7. The waste liquid treatment and recovery device for deep processing of traditional Chinese medicinal materials according to claim 6, characterized in that: The inner side of the first reactor (1) is provided with equidistant grooves (54), and the upper side of the first reactor (1) is fixedly installed with a slide frame (541) at equidistant positions corresponding to the grooves (54). The pressure plate (542) is slidably installed on the inner side of the slide frame (541).
8. The waste liquid treatment and recovery device for deep processing of traditional Chinese medicinal materials according to claim 7, characterized in that: A mounting bracket (55) is fixedly installed on the upper side of the slide (541). The motor (56) is fixedly installed on the upper side of the mounting bracket (55). The connecting rod (561) is located at the output end of the motor (56) and the connecting rod (561) is snapped into the inside of the corresponding slot (53). The motor (56) is locked to the connecting rod (561) through a coupling. The mating shaft (57) is sleeved and installed on the side of the connecting rod (561).