Waste heat gas treatment equipment for sleep-aiding beverage production
By designing the annular adsorption component and power mechanism, the automatic switching and uniform utilization of activated carbon are achieved, solving the problems of low purification efficiency and waste of consumables in the waste heat gas treatment equipment during the production of sleep aid drinks, and improving the automation level and purification effect of the equipment.
Patent Information
- Application Number
- CN202610100650.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-26
- Publication Date
- 2026-03-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing waste heat gas treatment equipment used in the production of sleep aid drinks, the activated carbon is not utilized evenly, resulting in low purification efficiency, low automation, serious waste of consumables, and the existence of purification dead zones.
The device employs a ring-shaped adsorption component and a power mechanism, which enables automatic switching and uniform utilization of activated carbon through a rotating mechanism. This ensures high adsorption performance, reduces the frequency of manual replacement, and improves the automation level of the equipment.
This achieves uniform utilization of activated carbon, improves purification efficiency, reduces waste of consumables, avoids purification dead zones, and ensures stable operation of the equipment.
Smart Images

Figure CN121606992A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waste gas adsorption and purification technology, and in particular to waste heat gas treatment equipment used in the production of sleep aid beverages. Background Technology
[0002] In the production process of sleep aid beverages, waste heat gases are generated during steps such as cooking, extraction, concentration, sterilization, and drying (e.g., for powder products). Purifying these waste heat gases can effectively remove dust, volatile organic compounds, odor substances, trace amounts of raw material particles carried by water vapor, and potential microbial aerosols. Removing corrosive gas components and dust reduces corrosion and wear on exhaust pipes, fans, and subsequent processing equipment, lowering the risk of fire, extending equipment lifespan, and ensuring safe and stable production operation. It also eliminates the risk of cross-contamination in the production area, such as the spread of odors and microorganisms with airflow, ensuring a clean production environment and ultimately guaranteeing the safety and authentic flavor of the beverages.
[0003] In existing technologies for treating waste heat gases generated during the production of sleep aid drinks, a fixed adsorption structure is used. This results in the inability to continuously and uniformly replace activated carbon, leading to a rapid decline in adsorption performance after local saturation. Frequent manual replacement of activated carbon is necessary, increasing maintenance costs and reducing automation. Furthermore, the activated carbon used in existing waste heat gas treatment equipment is unevenly utilized in fixed locations. The utilization rate differs significantly between the area initially in contact with the waste gas and the activated carbon material piled up behind it, directly resulting in material waste. In addition, the purification process relies on a single channel, making it difficult to control the flow direction of the waste gas. Different areas of activated carbon exhibit varying adsorption performance, easily creating purification dead zones and affecting the uniformity and efficiency of waste gas treatment. Summary of the Invention
[0004] The present invention aims to at least partially solve one of the technical problems in the related art.
[0005] Therefore, the purpose of this invention is to provide a waste heat gas treatment device for the production of sleep aid beverages. This invention achieves automatic switching of activated carbon in the waste heat gas adsorption area, ensuring that the adsorption and purification performance is always maintained at a high level, and eliminating the need for frequent manual replacement of activated carbon materials. The device has a high degree of automation, improves purification efficiency, and solves the problem of inconsistent activated carbon utilization rates in different areas of the inner and outer rings during the operation of the first adsorption component. This makes the utilization of activated carbon in any area more uniform, improving the utilization rate of consumables.
[0006] To achieve the above objectives, the present invention provides a waste heat gas treatment device for the production of sleep aid beverages. The treatment device includes: a base plate, a power mechanism, and an adsorption component. The power mechanism is installed on the surface of the base plate, and an adsorption component is built on the top of the power mechanism. The adsorption component includes a first adsorption component and a second adsorption component, and both the first adsorption component and the second adsorption component are filled with activated carbon material. The adsorption component uses the internal activated carbon material to adsorb and purify the injected waste heat gas. The processing equipment further includes: a conveying mechanism, a recycling bin, a recycling port, a rotating mechanism, and a support plate. The support plate is welded to the rear of the base plate. The top of the support plate is used to fix the first adsorption component and the second adsorption component. Both ends of the second adsorption component are provided with conveying mechanisms. The conveying mechanisms are used to discharge the used activated carbon inside the first adsorption component and the second adsorption component. The recycling bin is installed on the surface of the base plate. The top of the recycling bin is provided with a recycling port. The rotating mechanism is installed at the bottom of the first adsorption component and the second adsorption component, and the rotating mechanism is used to drive the activated carbon inside the first adsorption component and the second adsorption component to rotate.
[0007] Furthermore, the first adsorption component includes: The first annular track comprises a first docking channel, an air inlet pipe, a feeding port, a flow guide channel, and an air delivery pipe. The first docking channel is integrally formed on the inner wall of the first annular track. The top of the first docking channel is connected to the air inlet pipe. The flow guide channel is integrally formed on the outer side of the first annular track. The end of the flow guide channel is connected to the air delivery pipe. The air intake pipe is used to transport waste heat gas to the interior of the first docking channel and the first annular track. The first docking channel and the guide channel are on the same horizontal straight line, and the interior of the first docking channel and the guide channel are both provided with diaphragms, which are used to contain the activated carbon material.
[0008] Furthermore, the second adsorption component includes a second annular track, a second docking channel, and an exhaust pipe. The inner ring of the second annular track is provided with the second docking channel, and the top of the second docking channel is connected to the exhaust pipe. The height of the first annular track is higher than the height of the second annular track, and the feeding port is located at the top of the first annular track.
[0009] Furthermore, the gas delivery pipe passes through the inside of the first annular track and connects to the outside of the second annular track. The gas delivery pipe transports the waste heat gas flowing inside from the outside of the second annular track to the inside of the second annular track. The second docking channel is used to transport the waste heat gas inside the second annular track to the exhaust pipe. A diaphragm is provided in the area of the inner side of the second annular track near the second docking channel and the gas delivery pipe.
[0010] Furthermore, the conveying mechanism includes: The conveying channel includes a horizontal cavity, a vertical cavity, an inclined plate, a partition, and a lower convex plate. The inner side of the conveying channel has a horizontal cavity, and the end of the horizontal cavity is connected to the vertical cavity. An inclined plate is also inserted inside the horizontal cavity. The inner ring of the first and second annular tracks is integrally formed with a partition. The partition has an overall annular structure, and one end of the inclined plate is fixedly connected to the surface of the partition.
[0011] Furthermore, the inclined plate is used to push the activated carbon accumulated inside the first and second annular tracks into the interior of the horizontal cavity, which is connected to the interior of the vertical cavity. The bottom of the feeding port is integrally formed with a lower convex plate, the bottom of which is embedded in the top area of the inner wall of the first and second annular tracks, and the lower convex plate is used to level the top of the activated carbon accumulated in the first and second annular tracks.
[0012] Furthermore, there are two conveying mechanisms, one of which is connected to the second adsorption component and has an activated carbon waste channel at its end. The interior of the activated carbon waste channel is connected to the interior of the vertical cavity, and the activated carbon waste channel is used to discharge the conveyed activated carbon waste into the recycling box at the bottom.
[0013] Furthermore, the power mechanism includes: The system comprises a drive shaft, a motor, a drive gear, a toothed belt, a driven shaft, and a support base. The outer casing of the motor is screwed onto the surface of the base plate. The output end of the motor is connected to the drive shaft. The drive gear is keyed to the surface of the drive shaft. A toothed belt is fitted onto the surface of the drive gear. A support base is also embedded in the surface of the base plate. A driven shaft is inserted into the top of the support base. A driven gear is keyed to the surface of the driven shaft. The other end of the toothed belt is fitted onto the surface of the driven gear.
[0014] Furthermore, the rotating mechanism includes: The turntable comprises a rotating disk, a surrounding plate, a retaining ring, and a slot. The bottom of the turntable is screwed to the surface of a drive shaft or a driven shaft. The side of the turntable is integrally formed with a surrounding plate. The inner side of the surrounding plate is integrally formed with a retaining ring. A slot is provided between the retaining ring and the surrounding plate. The bottom of the first or second annular track of the retaining ring is embedded upward into the inner side, and both the inner and outer sides of the retaining ring are in contact with the inner walls of the first and second annular tracks.
[0015] Furthermore, the bottom of the partition is embedded inside the slot, the bottom of the inclined plate is pressed against the surface of the support ring, there are two rotating mechanisms, and the power mechanism is used to control the two rotating mechanisms to rotate synchronously in the same direction.
[0016] The technical solution provided by this invention may include the following beneficial effects: 1. This waste heat gas treatment equipment for sleep aid beverage production is equipped with a ring-shaped adsorption component. By placing activated carbon material inside the ring-shaped adsorption component and controlling the rotation mechanism below with the power equipment at the bottom, the activated carbon distributed in the ring inside can be continuously rotated. This changes the activated carbon area through which the waste heat gas passes, achieving an automatic switching effect of activated carbon in the waste heat gas adsorption area. This ensures that the adsorption and purification performance is always maintained at a high level, and there is no need to frequently replace the activated carbon material manually. The equipment has a high degree of automation and improves the purification efficiency.
[0017] 2. The waste heat gas treatment equipment for the production of sleep aid drinks is equipped with two adsorption treatment areas: a first adsorption component and a second adsorption component. With the above structure, after the activated carbon in the first adsorption component has completed its adsorption, it can be automatically transferred to the second adsorption component. After being transported by the conveying mechanism, the activated carbon is partially reorganized. This solves the problem of inconsistent utilization rate of activated carbon in different areas of the inner and outer rings when the first adsorption component is running, making the utilization of activated carbon in any area more uniform and improving the utilization rate of consumables.
[0018] 3. This waste heat gas treatment equipment for the production of sleep aid drinks transfers and transports waste heat gas through pipelines, and simultaneously transfers the activated carbon material used. By setting the number of adsorption layers, the number of times the activated carbon can be reused can be directly controlled, making the purification and adsorption process of waste heat gas more uniform and avoiding dead zones in the purification and adsorption.
[0019] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0020] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, wherein: Figure 1 This is a schematic diagram of the structure of a waste heat gas treatment device for the production of sleep aid beverages according to an embodiment of the present invention; Figure 2 This is a side sectional view of a waste heat gas treatment device for the production of sleep aid beverages according to an embodiment of the present invention; Figure 3This is the present invention. Figure 2 Enlarged view of region A in the middle; Figure 4 This is a schematic diagram of the structure of the adsorption component in a waste heat gas treatment device for the production of sleep aid beverages according to an embodiment of the present invention; Figure 5 This is a schematic diagram of the rotating mechanism in a waste heat gas treatment device for the production of sleep aid beverages, according to an embodiment of the present invention. Figure 6 This is a schematic diagram of the power mechanism in a waste heat gas treatment device for the production of sleep aid beverages according to an embodiment of the present invention; Figure 7 This is a split view of the conveying mechanism in a waste heat gas treatment device for the production of sleep aid beverages according to an embodiment of the present invention; As shown in the figure: 1. Base plate; 2. Recycling box; 3. Recycling port; 4. Power mechanism; 5. First adsorption component; 6. Second adsorption component; 7. Conveying mechanism; 8. Rotating mechanism; 9. First annular track; 10. Diaphragm; 11. Feeding port; 12. Second annular track; 13. Partition plate; 14. Inclined plate; 15. Air inlet pipe; 16. First docking channel; 17. Guide channel; 18. Air supply pipe; 19. Second docking channel; 20. Exhaust pipe; 21. Activated carbon waste channel; 22. Turntable; 23. Enclosure plate; 24. Support ring; 25. Slot; 26. Drive shaft; 27. Motor; 28. Drive gear; 29. Toothed belt; 30. Driven shaft; 31. Support base; 32. Driven gear; 33. Lower convex plate; 34. Conveying channel; 35. Horizontal cavity; 36. Vertical cavity; 37. Support plate. Detailed Implementation
[0021] Embodiments of the present invention are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the invention, and should not be construed as limiting the invention. Rather, embodiments of the invention include all variations, modifications, and equivalents falling within the spirit and scope of the appended claims.
[0022] like Figures 1 to 7 As shown in the figure, the present invention proposes a waste heat gas treatment device for the production of sleep aid beverages. The treatment device includes: a base plate 1, a power mechanism 4, and an adsorption component. The power mechanism 4 is installed on the surface of the base plate 1, and an adsorption component is built on the top of the power mechanism 4. The adsorption component includes a first adsorption component 5 and a second adsorption component 6, and both the first adsorption component 5 and the second adsorption component 6 are filled with activated carbon material. The adsorption component uses the internal activated carbon material to adsorb and purify the injected waste heat gas. The processing equipment further includes: a conveying mechanism 7, a recycling box 2, a recycling port 3, a rotating mechanism 8, and a support plate 37. The support plate 37 is welded to the rear of the base plate 1. The top of the support plate 37 is used to fix the first adsorption component 5 and the second adsorption component 6. Both ends of the second adsorption component 6 are provided with conveying mechanisms 7. The conveying mechanisms 7 are used to discharge the used activated carbon inside the first adsorption component 5 and the second adsorption component 6. The recycling box 2 is installed on the surface of the base plate 1. The top of the recycling box 2 is provided with a recycling port 3. The rotating mechanism 8 is installed at the bottom of the first adsorption component 5 and the second adsorption component 6, and the rotating mechanism 8 is used to drive the activated carbon inside the first adsorption component 5 and the second adsorption component 6 to rotate.
[0023] When the waste heat gas treatment equipment for the production of sleep aid beverages is in use, activated carbon material is conveyed into the interior through the feeding port 11 at the top of the first annular track 9, and waste heat gas is conveyed into the interior of the first annular track 9 through the air inlet pipe 15. With the help of the activated carbon material filled inside, the purpose of single adsorption and purification can be achieved. After the first adsorption component 5 has completed the adsorption of waste heat gas, it will be conveyed into the interior of the second adsorption component 6 through the air supply pipe 18 to achieve the second adsorption and purification process.
[0024] The activated carbon material inside the first adsorption component 5 is rotated by the power mechanism 4 at the bottom, which controls the rotating mechanism 8 to rotate the activated carbon material accumulated on the surface. After rotating to the area of the conveying mechanism 7, it is automatically pushed and discharged into the second adsorption component 6. Inside the second adsorption component 6, the activated carbon is shuffled again and used until the secondary adsorption and purification process is completed. Then, it is discharged back into the recycling box 2 through another conveying mechanism 7. In this embodiment, the first adsorption component 5 includes: The first annular track 9 comprises a first docking channel 16, an air inlet pipe 15, a feeding port 11, a flow guide channel 17, and an air delivery pipe 18. The first docking channel 16 is integrally formed on the inner wall of the first annular track 9. The top end of the first docking channel 16 is connected to the air inlet pipe 15. The flow guide channel 17 is integrally formed on the outer side of the first annular track 9. The end of the flow guide channel 17 is connected to the air delivery pipe 18. The air intake pipe 15 is used to transport waste heat gas to the interior of the first docking channel 16 and the first annular track 9. The first docking channel 16 and the guide channel 17 are on the same horizontal straight line, and the interior of the first docking channel 16 and the guide channel 17 are both provided with a diaphragm 10, which is used to contain the activated carbon material.
[0025] The second adsorption component 6 includes a second annular track 12, a second docking channel 19, and an exhaust pipe 20. The inner ring of the second annular track 12 is provided with the second docking channel 19, and the top end of the second docking channel 19 is connected to the exhaust pipe 20. The height of the first annular track 9 is higher than the height of the second annular track 12, and the feeding port 11 is located at the top end of the first annular track 9.
[0026] The gas delivery pipe 18 passes through the inside of the first annular track 9 and connects to the outside of the second annular track 12. The gas delivery pipe 18 transports the waste heat gas flowing inside from the outside of the second annular track 12 to the inside of the second annular track 12. The second docking channel 19 is used to transport the waste heat gas inside the second annular track 12 to the exhaust pipe 20. A diaphragm 10 is provided in the area of the inside of the second annular track 12 near the second docking channel 19 and the gas delivery pipe 18.
[0027] Equipped with a ring-shaped adsorption component, activated carbon material is placed inside the ring-shaped adsorption component. The rotating mechanism 8 below is controlled by the power device at the bottom to rotate, which directly drives the internally ring-shaped activated carbon to rotate continuously. This changes the activated carbon area through which the waste heat gas passes, achieving an automatic switching effect of activated carbon in the waste heat gas adsorption area. This ensures that the adsorption and purification performance is always maintained at a high level, and there is no need to frequently replace the activated carbon material manually. The equipment has a high degree of automation and improves the purification efficiency.
[0028] Specifically, the waste heat gas is transported from the inlet pipe 15 at the top of the first annular track 9 into the interior of the first annular track 9, passes through the inner side of the inner ring of the first annular track 9, and then passes through the outer guide channel 17 into the inlet pipe 15. The end of the inlet pipe 15 is directly connected to the interior of the second annular track 12, and the waste heat gas is transported from the outside of the second annular track 12 into the interior of the second annular track 12. During this process, the activated carbon inside the second annular track 12 is used to re-adsorb and purify the waste heat gas. Finally, after passing through, it is discharged through the exhaust pipe 20. In this embodiment, the conveying mechanism 7 includes: The conveying channel 34 includes a horizontal cavity 35, a vertical cavity 36, an inclined plate 14, a partition plate 13, and a lower convex plate 33. The conveying channel 34 has a horizontal cavity 35 on its inner side, and the vertical cavity 36 is connected to the end of the horizontal cavity 35. An inclined plate 14 is also inserted inside the horizontal cavity 35. The inner ring of the first annular track 9 and the second annular track 12 is integrally formed with a partition plate 13. The partition plate 13 has an overall annular structure, and one end of the inclined plate 14 is fixedly connected to the surface of the partition plate 13.
[0029] The inclined plate 14 is used to push the activated carbon accumulated inside the first annular track 9 and the second annular track 12 into the interior of the horizontal cavity 35. The horizontal cavity 35 is connected to the interior of the vertical cavity 36. The bottom of the feeding port 11 is integrally formed with a lower convex plate 33. The bottom of the lower convex plate 33 is embedded in the top area of the inner wall of the first annular track 9 and the second annular track 12, and the lower convex plate 33 is used to level the top of the activated carbon accumulated in the first annular track 9 and the second annular track 12.
[0030] There are two conveying mechanisms 7, and one of them is connected to the second adsorption component 6. The end of the conveying mechanism 7 is connected to the activated carbon waste channel 21. The interior of the activated carbon waste channel 21 is connected to the interior of the vertical cavity 36, and the activated carbon waste channel 21 is used to discharge the conveyed activated carbon waste into the recycling box 2 at the bottom.
[0031] The system is equipped with two adsorption processing areas: a first adsorption component 5 and a second adsorption component 6. With the help of the above structure, after the activated carbon in the first adsorption component 5 has completed its adsorption, it can be automatically transferred to the second adsorption component 6. After being transported by the conveying mechanism 7, the activated carbon is partially reorganized. This solves the problem of inconsistent utilization of activated carbon in different areas of the inner and outer rings when the first adsorption component 5 is running, making the utilization of activated carbon in any area more uniform and improving the utilization rate of consumables.
[0032] Specifically, activated carbon is piled up in the inner areas of the first annular track 9 and the second annular track 12 and supported by the rotating mechanism 8. During the process of the activated carbon being filled from the feeding port 11 onto the rotating mechanism 8, the top layer of activated carbon is flattened by the lower convex plate 33 to avoid compression during the filling process, which would prevent the rotating mechanism 8 from moving the activated carbon on the surface synchronously. As the power mechanism 4 drives the rotating mechanism 8 to rotate continuously, the used activated carbon is eventually moved to the area of the inclined plate 14. At this time, the inclined plate 14 pushes the nearby activated carbon toward the horizontal cavity 35, and finally the activated carbon is transported along the vertical channel at the end to the interior of the second annular track 12 or to the activated carbon waste channel 21 for discharge. In this embodiment, the power mechanism 4 includes: The system includes a drive shaft 26, a motor 27, a drive gear 28, a toothed belt 29, a driven shaft 30, and a support base 31. The outer casing of the motor 27 is screwed onto the surface of the base plate 1. The output end of the motor 27 is connected to the drive shaft 26. The surface of the drive shaft 26 is keyed to the drive gear 28. The surface of the drive gear 28 is fitted with the toothed belt 29. The surface of the base plate 1 is also fitted with the support base 31. The top end of the support base 31 is inserted into the driven shaft 30. The surface of the driven shaft 30 is keyed to the driven gear 32. The other end of the toothed belt 29 is fitted onto the surface of the driven gear 32.
[0033] The rotating mechanism 8 includes: The turntable 22, the surrounding plate 23, the ring 24, and the slot 25 are provided. The bottom of the turntable 22 is screwed to the surface of the drive shaft 26 or the driven shaft 30. The side of the turntable 22 is integrally formed with the surrounding plate 23. The inner side of the surrounding plate 23 is integrally formed with the ring 24. The slot 25 is provided between the ring 24 and the surrounding plate 23. The ring 24 is embedded upward from the bottom of the first annular track 9 or the second annular track 12 into the inner side. The inner and outer sides of the ring 24 are in contact with the inner walls of the first annular track 9 and the second annular track 12.
[0034] The bottom of the partition 13 is embedded in the slot 25, the bottom of the inclined plate 14 is pressed against the surface of the ring 24, there are two rotating mechanisms 8, and the power mechanism 4 is used to control the two rotating mechanisms 8 to rotate synchronously in the same direction.
[0035] Waste heat gas is transferred and transported through pipelines, and the activated carbon material used is also transferred simultaneously. By setting the number of adsorption layers, the number of times the activated carbon can be reused can be directly controlled, making the purification and adsorption process of waste heat gas more uniform and avoiding dead zones in the purification and adsorption process.
[0036] Specifically, after starting the motor 27, the motor 27 will drive the drive shaft 26 to rotate. The drive shaft 26 will drive the active gear 28 on the surface to rotate. The active gear 28 will be linked to the driven gear 32 at the other end through the toothed belt 29 on the surface. The driven gear 32 will drive the driven shaft 30 to rotate synchronously in the same direction. The bottom of the driven shaft 30 is embedded in the support base 31 through the bearing. The active shaft and the driven shaft 30 are fixedly connected to two different rotating mechanisms 8 at the top, so that the driving effect of the two sets of rotating mechanisms 8 can be achieved at the same time.
[0037] The rotating mechanism 8 connects to the bottom of the first annular track 9 or the second annular track 12 via the side enclosure 23, thereby sealing the inner area used for storing activated carbon. The activated carbon section is supported by the middle support ring 24, allowing the accumulated activated carbon to continuously switch between adsorption and purification of waste heat gas.
[0038] In this embodiment, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Furthermore, in the description of this invention, unless otherwise stated, "a plurality of" means two or more.
[0039] Any process or method description in the flowchart or otherwise herein can be understood as representing a module, segment, or portion of code comprising one or more executable instructions for implementing a particular logical function or process, and the scope of the preferred embodiments of the invention includes additional implementations in which functions may be performed not in the order shown or discussed, including substantially simultaneously or in reverse order depending on the functions involved, as will be understood by those skilled in the art to which embodiments of the invention pertain.
[0040] In the description of this specification, references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0041] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.
Claims
1. A waste heat gas treatment apparatus for sleep-aiding beverage production, characterized by, The processing equipment includes a bottom plate (1), a power mechanism (4) and an adsorption assembly, the surface of the bottom plate (1) is provided with the power mechanism (4), the top end of the power mechanism (4) is provided with the adsorption assembly, the adsorption assembly includes a first adsorption assembly (5) and a second adsorption assembly (6), and the inside of the first adsorption assembly (5) and the second adsorption assembly (6) is filled with activated carbon material, and the adsorption assembly is used for adsorbing and purifying the injected waste heat gas through the activated carbon material inside. The processing equipment further includes a conveying mechanism (7), a recovery box (2), a recovery port (3), a rotating mechanism (8) and a supporting plate (37), the supporting plate (37) is welded at the back of the bottom plate (1), the top end of the supporting plate (37) is used for fixing the first adsorption assembly (5) and the second adsorption assembly (6), the two ends of the second adsorption assembly (6) are provided with the conveying mechanism (7), the conveying mechanism (7) is used for discharging the activated carbon used in the first adsorption assembly (5) and the second adsorption assembly (6), the recovery box (2) is installed on the surface of the bottom plate (1), the top end of the recovery box (2) is provided with the recovery port (3), and the rotating mechanism (8) is installed at the bottom of the first adsorption assembly (5) and the second adsorption assembly (6), and the rotating mechanism (8) is used for driving the activated carbon inside the first adsorption assembly (5) and the second adsorption assembly (6) to rotate.
2. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 1, characterized by, The first adsorption assembly (5) includes: A first annular track (9), a first docking channel (16), an air inlet pipeline (15), a feeding port (11), a flow guide channel (17) and an air feeding pipeline (18), the inner wall of the first annular track (9) is integrally formed with the first docking channel (16), the top end of the first docking channel (16) is connected with the air inlet pipeline (15), the outer side of the first annular track (9) is integrally formed with the flow guide channel (17), and the end of the flow guide channel (17) is connected with the air feeding pipeline (18). The air inlet pipeline (15) is used for conveying the waste heat gas to the inside of the first docking channel (16) and the first annular track (9), the first docking channel (16) and the flow guide channel (17) are on the same horizontal straight line, and the inside of the first docking channel (16) and the flow guide channel (17) is provided with a diaphragm (10), and the diaphragm (10) is used for surrounding the activated carbon material.
3. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 2, characterized by, The second adsorption assembly (6) includes a second annular track (12), a second docking channel (19) and an exhaust pipeline (20), the inner ring part of the second annular track (12) is provided with the second docking channel (19), the top end of the second docking channel (19) is connected with the exhaust pipeline (20), the height of the first annular track (9) is higher than the height of the second annular track (12), and the feeding port (11) is arranged at the top end of the first annular track (9).
4. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 3, characterized by, The air feeding pipe (18) is communicated with the outside of the second annular track (12) after bypassing the inside of the first annular track (9) as a whole, the air feeding pipe (18) transports the waste heat gas flowing inside from the outside of the second annular track (12) to the inside of the second annular track (12), the second connecting channel (19) is used for transporting the waste heat gas in the inside of the second annular track (12) into the exhaust pipe (20), and the inside of the second annular track (12) is provided with a diaphragm (10) near the second connecting channel (19) and the area of the air feeding pipe (18).
5. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 3, characterized by, The conveying mechanism (7) comprises: The conveying channel (34), the horizontal cavity (35), the vertical cavity (36), the inclined plate (14), the partition plate (13) and the lower convex plate (33), the inside of the conveying channel (34) is provided with the horizontal cavity (35), the end of the horizontal cavity (35) is connected with the vertical cavity (36), the inside of the horizontal cavity (35) is further provided with the inclined plate (14), the inner ring part of the first annular track (9) and the second annular track (12) is integrally formed with the partition plate (13), the partition plate (13) is annular as a whole, and one end of the inclined plate (14) is fixedly connected with the surface of the partition plate (13).
6. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 5, wherein The inclined plate (14) is used for pushing the activated carbon accumulated in the inside of the first annular track (9) and the second annular track (12) into the inside of the horizontal cavity (35), the inside of the horizontal cavity (35) is communicated with the inside of the vertical cavity (36), the bottom of the feeding port (11) is integrally formed with the lower convex plate (33), the bottom of the lower convex plate (33) is embedded into the inner wall top end area of the first annular track (9) and the second annular track (12), and the lower convex plate (33) is used for flattening the top end of the activated carbon accumulated in the first annular track (9) and the second annular track (12).
7. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 6, wherein The number of the conveying mechanism (7) is two, and one end of the conveying mechanism (7) connected with the second adsorption assembly (6) is connected with the activated carbon waste channel (21), the inside of the activated carbon waste channel (21) is communicated with the inside of the vertical cavity (36), and the activated carbon waste channel (21) is used for discharging the conveyed activated carbon waste into the bottom recovery box (2).
8. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 5, wherein The power mechanism (4) comprises: The driving shaft (26), the motor (27), the driving gear (28), the toothed belt (29), the driven shaft (30) and the support base (31), the shell part of the motor (27) is screwed on the surface of the bottom plate (1), the output end of the motor (27) is connected with the driving shaft (26), the surface of the driving shaft (26) is key-connected with the driving gear (28), the surface of the driving gear (28) is sleeved with the toothed belt (29), the surface of the bottom plate (1) is further embedded with the support base (31), the top end of the support base (31) is embedded with the driven shaft (30), the surface of the driven shaft (30) is key-connected with the driven gear (32), and the other end of the toothed belt (29) is sleeved on the surface of the driven gear (32).
9. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 8, wherein The rotating mechanism (8) comprises: A rotating disc (22), a surrounding plate (23), a supporting ring (24) and a clamping groove (25), the bottom of the rotating disc (22) is screwed on the surface of a driving shaft (26) or a driven shaft (30), the side of the rotating disc (22) is integrally formed with the surrounding plate (23), the inner side of the surrounding plate (23) is integrally formed with the supporting ring (24), the clamping groove (25) is arranged between the supporting ring (24) and the surrounding plate (23), the bottom of the first annular track (9) or the second annular track (12) of the supporting ring (24) is embedded into the inner side upward, and the inner side and the outer side of the supporting ring (24) are in close contact with the inner wall of the first annular track (9) and the second annular track (12).
10. The waste heat gas treatment apparatus for sleep-aiding beverage production according to claim 9, wherein The bottom of the partition plate (13) is embedded into the inner part of the clamping groove (25), the bottom of the inclined plate (14) is pressed on the surface of the supporting ring (24), the number of the rotating mechanism (8) is two, and the power mechanism (4) is used for controlling the synchronous and same-direction rotating movement of the two rotating mechanisms (8).