Flow-adjustable chlorophyll filtering device
By designing a chlorophyll filtration device that includes feeding, filtering, stirring, drying, and sieving mechanisms, the problems of filter membrane cleaning and particle sieving in traditional devices have been solved, achieving efficient filtration and grading of chlorophyll and improving the practicality of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANDONG GUANGTONGBAO PHARMA
- Filing Date
- 2025-06-03
- Publication Date
- 2026-05-08
AI Technical Summary
Traditional filtration devices struggle to clean the filter membrane and sieve particles in a timely manner during chlorophyll filtration, resulting in insufficient equipment practicality.
A chlorophyll filtration device was designed, which includes feeding, filtering, stirring, drying and screening mechanisms. The filter membrane is cleaned by the drying mechanism and the particles are screened by the screening mechanism to ensure the graded treatment of chlorophyll.
This technology enables efficient filtration, drying, and sieving of chlorophyll, improving the equipment's practicality and facilitating subsequent chlorophyll grading by staff.
Smart Images

Figure CN224207570U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of filtration devices, and in particular to a chlorophyll filtration device with adjustable flow rate. Background Technology
[0002] Chlorophyll is an important green pigment found in plants, algae, and some bacteria, playing a core role in photosynthesis. As the core pigment of photosynthesis, the diversity of its structure and function allows it to adapt to different environments. From green plants to deep-sea red algae, chlorophyll drives the energy conversion required for life activities by absorbing and transferring light energy. Chlorophyll also shows broad application potential in the food, medicine, and energy fields.
[0003] For example, the filtration device disclosed in the utility model patent with application number CN202320525400.9 represents a type of prior art whose main structure includes a placement seat, a funnel, a first connector, a mounting frame, a filter component, a connecting pipe, and a fixing block. The function of the filtration device is achieved through the cooperation of the placement seat, funnel, first connector, mounting frame, filter component, connecting pipe, and fixing block.
[0004] Traditional filtration devices struggle to clean the filter membrane in a timely manner during the chlorophyll filtration process, and also find it difficult to sieve chlorophyll particles by size after filtration is complete. Utility Model Content
[0005] To solve the above-mentioned technical problems, this utility model provides a flow-adjustable chlorophyll filtration device that, after chlorophyll filtration is completed, dries the chlorophyll in the filtration mechanism by activating a drying mechanism, and simultaneously cleans the filter membrane of the filtration mechanism. The dried chlorophyll is then discharged into a screening mechanism, which screens the dried chlorophyll, facilitating subsequent grading of the chlorophyll and improving the practicality of the equipment.
[0006] This utility model discloses an adjustable flow chlorophyll filtration device, including a feeding mechanism; it also includes a draining mechanism, a filtering mechanism, a stirring mechanism, a drying mechanism, and a sieving mechanism. The feeding mechanism is installed on the draining mechanism, which is above the sieving mechanism. The filtering mechanism is installed inside the draining mechanism, the stirring mechanism is installed inside the filtering mechanism, and the drying mechanism is installed on the sieving mechanism, located to the right of the draining mechanism. The feeding mechanism discharges chlorophyll stock solution from the raw material tank, which is then discharged into the filtering mechanism. The filtering mechanism rotates to filter the chlorophyll in the stock solution. Simultaneously, the stirring mechanism slowly stirs the chlorophyll stock solution within the filtering mechanism to prevent clumping during filtration. The filtered liquid is discharged through the draining mechanism for further processing. After chlorophyll filtration, the drying mechanism dries the chlorophyll within the filtering mechanism and cleans the filter membrane. The dried chlorophyll is discharged into the sieving mechanism, which sieves the dried chlorophyll for subsequent grading, improving the equipment's practicality.
[0007] Preferably, the feeding mechanism includes a first pipe, a peristaltic pump, a second pipe, and an electronic flow valve. The input end of the first pipe is connected to the output end of the raw liquid tank, the output end of the first pipe is connected to the input end of the peristaltic pump, the input end of the second pipe is connected to the output end of the peristaltic pump, and the output end of the second pipe is connected to the drainage mechanism. The output end of the second pipe is located above the filtration mechanism, and an electronic flow valve is installed on the second pipe. By starting the peristaltic pump, the raw liquid is discharged from the first pipe through the first pipe to the second pipe. The flow rate of the raw liquid in the second pipe is adjusted by regulating the electronic flow valve, thereby improving the practicality of the equipment.
[0008] Preferably, the drainage mechanism includes multiple support columns, a drainage tank, an exhaust pipe, and a drainage pipe. The bottom of the drainage tank is mounted on the top of the multiple support columns. The inlet of the exhaust pipe is connected to the top of the drainage tank, and the inlet of the drainage pipe is connected to the lower outer wall of the drainage tank. A valve is provided on the inlet of the drainage pipe. The multiple support columns support the drainage tank, which in turn supports the filtration mechanism. The filtered liquid is discharged through the drainage pipe, and excess gas in the drainage tank is discharged through the exhaust pipe, thus improving the practicality of the equipment.
[0009] Preferably, the filtration mechanism includes a first motor, a first drive wheel, a conveyor belt, a second drive wheel, a discharge pipe, and a filter membrane tank. The inner ring of the first drive wheel is mounted on the output end of the first motor, the inner ring of the conveyor belt is mounted on the outer wall of the discharge pipe, and the second drive wheel is fitted onto the outer ring of the first drive wheel and the conveyor belt. A valve is provided on the input end of the discharge pipe, which is rotatably mounted on the bottom end of the discharge tank. The output end of the filter membrane tank is connected to the input end of the discharge pipe. By starting the first motor, the first drive wheel rotates, which in turn drives the second drive wheel to rotate the conveyor belt. The rotation of the conveyor belt then rotates the discharge pipe, allowing chlorophyll to be filtered through the filter membrane tank. The filtered chlorophyll is then discharged through the discharge pipe, improving the practicality of the equipment.
[0010] Preferably, the stirring mechanism includes a second motor, a reducer, a stirring shaft, and multiple stirring blades. The input end of the reducer is connected to the output end of the second motor. Both the second motor and the reducer are installed at the top of the drain tank. The top of the stirring shaft is installed at the output end of the reducer. Multiple stirring blades are provided on the stirring shaft, and the stirring shaft is located inside the filter membrane tank. By starting the second motor and driving it through the reducer, the stirring shaft is rotated. The multiple stirring blades slowly stir the chlorophyll in the filter membrane tank, preventing clumping during the chlorophyll filtration process and improving the practicality of the equipment.
[0011] Preferably, the drying mechanism includes a third pipe, a filter element, an air pump, a heating chamber, a distribution pipe, and multiple air jet pipes. The filter element is installed on the inner wall of the third pipe. The output end of the third pipe is connected to the input end of the air pump, the output end of the air pump is connected to the input end of the heating chamber, and the output end of the heating chamber is connected to the input end of the distribution pipe. The distribution pipe has multiple output ends, and the input ends of the multiple air jet pipes are respectively installed on the multiple output ends of the distribution pipe. The multiple air jet pipes are equipped with multiple nozzles and are respectively installed on the inner wall of the drain tank. By starting the air pump, gas is discharged into the heating chamber through the third pipe. The filter element filters impurities in the gas, the heating chamber heats the gas, and the heated gas is discharged into the multiple air jet pipes through the distribution pipe, and then discharged into the filter membrane tank through the multiple air jet pipes to clean the inside of the filter membrane tank and dry the chlorophyll, thereby improving the practicality of the equipment.
[0012] Preferably, the screening mechanism includes a screening box, a screening plate, a discharge plate, and two sets of discharge ports. The screening plate is installed at an incline on the inner wall of the screening box, the bottom end of the discharge plate is installed at the bottom end of the screening box, and the input ends of the two sets of discharge ports are respectively installed on the left and right outer walls of the screening box. The dried chlorophyll is discharged into the screening box, the screening plate screens the chlorophyll, the screened chlorophyll is discharged through the discharge plate, and the chlorophyll in the screening box is discharged through the two sets of discharge ports respectively, improving the practicality of the equipment.
[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: The chlorophyll stock solution is discharged from the raw material tank by activating the feeding mechanism, and then discharged into the filtration mechanism via the draining mechanism. The filtration mechanism is activated to rotate and filter the chlorophyll in the stock solution. Simultaneously, the stirring mechanism is activated to slowly stir the chlorophyll stock solution in the filtration mechanism to prevent clumping during the chlorophyll filtration process. After filtration, the filtered liquid is discharged through the draining mechanism for further processing. After chlorophyll filtration is completed, the chlorophyll in the filtration mechanism is dried by activating the drying mechanism, and the filter membrane of the filtration mechanism is cleaned. The dried chlorophyll is discharged into the screening mechanism, which screens the dried chlorophyll, facilitating subsequent grading of the chlorophyll and improving the practicality of the equipment. Attached Figure Description
[0014] Figure 1 This is an isometric sectional view of the present invention;
[0015] Figure 2 This is an isometric schematic diagram of the feeding mechanism of this utility model;
[0016] Figure 3 This is an isometric schematic diagram of the drainage mechanism of this utility model;
[0017] Figure 4 This is an isometric schematic diagram of the filter mechanism of this utility model;
[0018] Figure 5 This is an isometric schematic diagram of the stirring mechanism of this utility model;
[0019] Figure 6 This is an isometric schematic diagram of the drying mechanism of this utility model;
[0020] Figure 7 This is a front cross-sectional view of the screening mechanism of this utility model.
[0021] The attached diagram is labeled as follows: 01, feeding mechanism; 11, first pipe; 12, peristaltic pump; 13, second pipe; 14, electronic flow valve; 02, drainage mechanism; 21, support column; 22, drainage tank; 23, exhaust pipe; 24, drainage pipe; 03, filtration mechanism; 31, first motor; 32, first drive wheel; 33, conveyor belt; 34, second drive wheel; 35, discharge pipe; 36, filter membrane tank; 04, stirring mechanism; 41, second motor; 42, reducer; 43, stirring shaft; 44, stirring blades; 05, drying mechanism; 51, third pipe; 52, filter element; 53, air pump; 54, heating box; 55, diversion pipe; 56, air jet pipe; 06, screening mechanism; 61, screening box; 62, screening plate; 63, discharge plate; 64, discharge port. Detailed Implementation
[0022] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete. Example
[0023] like Figure 1 As shown, a flow-adjustable chlorophyll filtration device includes a feeding mechanism 01; it also includes a draining mechanism 02, a filtering mechanism 03, a stirring mechanism 04, a drying mechanism 05, and a sieving mechanism 06. The feeding mechanism 01 is installed on the draining mechanism 02, the draining mechanism 02 is installed on top of the sieving mechanism 06, the filtering mechanism 03 is installed inside the draining mechanism 02, the stirring mechanism 04 is installed inside the filtering mechanism 03, and the drying mechanism 05 is installed on the sieving mechanism 06, with the drying mechanism 05 located to the right of the draining mechanism 02.
[0024] The chlorophyll stock solution is discharged from the raw material tank by starting the feeding mechanism 01, and then discharged into the filtration mechanism 03 through the draining mechanism 02. The filtration mechanism 03 is started to rotate and filter the chlorophyll in the stock solution. At the same time, the stirring mechanism 04 is started to slowly stir the chlorophyll stock solution in the filtration mechanism 03 to prevent clumping during the filtration process. After the filtration is completed, the liquid is discharged through the draining mechanism 02 and then processed. After the chlorophyll filtration is completed, the chlorophyll in the filtration mechanism 03 is dried by starting the drying mechanism 05. At the same time, the filter membrane of the filtration mechanism 03 is cleaned. The dried chlorophyll is discharged into the screening mechanism 06, which screens the dried chlorophyll to facilitate subsequent grading of the chlorophyll and improve the practicality of the equipment.
[0025] like Figure 2 As shown, the feeding mechanism 01 includes a first pipe 11, a peristaltic pump 12, a second pipe 13, and an electronic flow valve 14. The input end of the first pipe 11 is connected to the output end of the raw liquid tank, the output end of the first pipe 11 is connected to the input end of the peristaltic pump 12, the input end of the second pipe 13 is connected to the output end of the peristaltic pump 12, the output end of the second pipe 13 is connected to the draining mechanism 02, and the output end of the second pipe 13 is located above the filtration mechanism 03. An electronic flow valve 14 is provided on the second pipe 13.
[0026] like Figure 3 As shown, the drainage mechanism 02 includes multiple support columns 21, a drainage tank 22, an exhaust pipe 23, and a drainage pipe 24. The bottom end of the drainage tank 22 is installed on the top of the multiple support columns 21. The input end of the exhaust pipe 23 is connected to the top of the drainage tank 22. The input end of the drainage pipe 24 is connected to the lower part of the outer wall of the drainage tank 22. A valve is provided on the input end of the drainage pipe 24.
[0027] By starting the peristaltic pump 12, the raw liquid is discharged from the first pipe 11 to the second pipe 13. The flow rate of the raw liquid in the second pipe 13 is adjusted by adjusting the electronic flow valve 14. Multiple support columns 21 support the drain tank 22 respectively. The drain tank 22 supports the filter mechanism 03. The filtered liquid is discharged through the drain pipe 24. Excess gas in the drain tank 22 is discharged through the exhaust pipe 23, which improves the practicality of the equipment. Example
[0028] like Figure 4 and Figure 5 As shown, based on Embodiment 1, it also includes a filtration mechanism 03 and a stirring mechanism 04. The filtration mechanism 03 includes a first motor 31, a first drive wheel 32, a conveyor belt 33, a second drive wheel 34, a discharge pipe 35, and a filter membrane tank 36. The inner ring of the first drive wheel 32 is mounted on the output end of the first motor 31, and the inner ring of the conveyor belt 33 is mounted on the outer wall of the discharge pipe 35. The second drive wheel 34 is fitted onto the outer ring of the first drive wheel 32 and the conveyor belt 33. A valve is provided at the input end of the discharge pipe 35, and the discharge pipe 35 rotates... Installed at the bottom of the drain tank 22, the output end of the filter membrane tank 36 is connected to the input end of the discharge pipe 35; the stirring mechanism 04 includes a second motor 41, a reducer 42, a stirring shaft 43 and multiple stirring blades 44, the input end of the reducer 42 is connected to the output end of the second motor 41, the second motor 41 and the reducer 42 are both installed at the top of the drain tank 22, the top of the stirring shaft 43 is installed on the output end of the reducer 42, multiple stirring blades 44 are provided on the stirring shaft 43, and the stirring shaft 43 is located inside the filter membrane tank 36;
[0029] The first motor 31 is started to rotate the first transmission wheel 32, which in turn drives the second transmission wheel 34 to rotate the conveyor belt 33. The rotation of the conveyor belt 33 causes the discharge pipe 35 to rotate, filtering the chlorophyll through the filter membrane tank 36. The filtered chlorophyll is then discharged through the discharge pipe 35. The second motor 41 is started to rotate the stirring shaft 43 via the reducer 42. Multiple stirring blades 44 slowly stir the chlorophyll in the filter membrane tank 36 to prevent clumping during the chlorophyll filtration process and improve the practicality of the equipment. Example
[0030] like Figure 6 and Figure 7As shown, based on Embodiment 1, it also includes a drying mechanism 05 and a sieving mechanism 06. The drying mechanism 05 includes a third pipe 51, a filter element 52, an air pump 53, a heating box 54, a diversion pipe 55, and multiple air jet pipes 56. The filter element 52 is installed on the inner wall of the third pipe 51. The output end of the third pipe 51 is connected to the input end of the air pump 53. The output end of the air pump 53 is connected to the input end of the heating box 54. The output end of the heating box 54 is connected to the input end of the diversion pipe 55. Multiple air jet pipes 56 are provided on the diversion pipe 55. At the outlet, the input ends of multiple jet pipes 56 are respectively installed on multiple output ends of the diverter pipe 55, and multiple nozzles are provided on the multiple jet pipes 56. The multiple jet pipes 56 are respectively installed on the inner wall of the drain tank 22; the screening mechanism 06 includes a screening box 61, a screening plate 62, a discharge plate 63 and two sets of discharge ports 64. The screening plate 62 is installed obliquely on the inner wall of the screening box 61, the bottom end of the discharge plate 63 is installed on the bottom end of the screening box 61, and the input ends of the two sets of discharge ports 64 are respectively installed on the left and right outer walls of the screening box 61.
[0031] By activating the air pump 53, gas is discharged into the heating chamber 54 through the third pipe 51. The filter element 52 filters impurities in the gas, and the heating chamber 54 heats the gas. The heated gas is then discharged into multiple jet pipes 56 through the diversion pipe 55, and then discharged into the filter membrane tank 36 through the multiple jet pipes 56 to clean the inside of the filter membrane tank 36 and dry the chlorophyll. The dried chlorophyll is discharged into the screening box 61, where the screening plate 62 screens the chlorophyll. The screened chlorophyll is then discharged through the discharge plate 63. The chlorophyll in the screening box 61 is discharged through two sets of discharge ports 64, improving the practicality of the equipment.
[0032] like Figures 1 to 7As shown, this utility model discloses a flow-adjustable chlorophyll filtration device. During operation, the peristaltic pump 12 is activated to discharge the raw liquid through the first pipe 11 to the second pipe 13. The flow rate of the raw liquid in the second pipe 13 is adjusted by the electronic flow valve 14. Multiple support columns 21 support the discharge tank 22, which in turn supports the filtration mechanism 03. The filtered liquid is discharged through the discharge pipe 24, and excess gas in the discharge tank 22 is discharged through the exhaust pipe 23. Then, the first motor 31 is activated to rotate the first transmission wheel 32, which in turn rotates the conveyor belt 33 via the second transmission wheel 34. The rotation of the conveyor belt 33 rotates the discharge pipe 35, filtering the chlorophyll through the filter membrane tank 36. The filtered chlorophyll is then discharged through the discharge pipe 35. Finally, the second motor 41 is activated to reduce the flow rate of the chlorophyll. The high-speed motor 42 drives the stirring shaft 43 to rotate, and multiple stirring blades 44 slowly stir the chlorophyll in the filter membrane tank 36 to prevent clumping during chlorophyll filtration. Then, the air pump 53 is started to discharge gas through the third pipe 51 into the heating box 54. The filter element 52 filters impurities in the gas, and the heating box 54 heats the gas. The heated gas is discharged through the diversion pipe 55 into multiple air jet pipes 56, and then discharged into the filter membrane tank 36 to clean the inside of the filter membrane tank 36 and dry the chlorophyll. Finally, the dried chlorophyll is discharged into the screening box 61, where the screening plate 62 screens the chlorophyll. The screened chlorophyll is discharged through the discharge plate 63, and the chlorophyll in the screening box 61 is discharged through two sets of discharge ports 64 to improve the practicality of the equipment.
[0033] The peristaltic pump 12, electronic flow valve 14, first motor 31, second motor 41, reducer 42, air pump 53 and heating box 54 of this utility model are commercially available. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.
[0034] The main function of this utility model is as follows: after chlorophyll filtration is completed, the drying mechanism 05 is activated to dry the chlorophyll in the filtration mechanism 03, and at the same time the filter membrane of the filtration mechanism 03 is cleaned. The dried chlorophyll is discharged into the screening mechanism 06, and the screening mechanism 06 screens the dried chlorophyll, which facilitates the subsequent grading of chlorophyll by the staff and improves the practicality of the equipment.
[0035] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A flow-adjustable chlorophyll filtration device, comprising a feeding mechanism (01); characterized in that, It also includes a draining mechanism (02), a filtration mechanism (03), a stirring mechanism (04), a drying mechanism (05), and a sieving mechanism (06). The feeding mechanism (01) is installed on the draining mechanism (02), the draining mechanism (02) is installed on top of the sieving mechanism (06), the filtration mechanism (03) is installed inside the draining mechanism (02), the stirring mechanism (04) is installed inside the filtration mechanism (03), the drying mechanism (05) is installed on the sieving mechanism (06), and the drying mechanism (05) is located to the right of the draining mechanism (02).
2. The chlorophyll filtration device with adjustable flow rate as described in claim 1, characterized in that, The feeding mechanism (01) includes a first pipe (11), a peristaltic pump (12), a second pipe (13), and an electronic flow valve (14). The input end of the first pipe (11) is connected to the output end of the raw liquid tank, the output end of the first pipe (11) is connected to the input end of the peristaltic pump (12), the input end of the second pipe (13) is connected to the output end of the peristaltic pump (12), the output end of the second pipe (13) is connected to the draining mechanism (02), and the output end of the second pipe (13) is located above the filter mechanism (03). An electronic flow valve (14) is installed on the second pipe (13).
3. The chlorophyll filtration device with adjustable flow rate as described in claim 1, characterized in that, The draining mechanism (02) includes multiple support columns (21), a draining tank (22), an exhaust pipe (23), and a drain pipe (24). The bottom end of the draining tank (22) is installed on the top of the multiple support columns (21). The input end of the exhaust pipe (23) is connected to the top of the draining tank (22). The input end of the drain pipe (24) is connected to the lower part of the outer wall of the draining tank (22). A valve is provided on the input end of the drain pipe (24).
4. The chlorophyll filtration device with adjustable flow rate as described in claim 3, characterized in that, The filtration mechanism (03) includes a first motor (31), a first drive wheel (32), a conveyor belt (33), a second drive wheel (34), a discharge pipe (35), and a filter membrane barrel (36). The inner ring of the first drive wheel (32) is installed on the output end of the first motor (31), the inner ring of the conveyor belt (33) is installed on the outer wall of the discharge pipe (35), the second drive wheel (34) is fitted on the outer ring of the first drive wheel (32) and the conveyor belt (33), a valve is provided on the input end of the discharge pipe (35), the discharge pipe (35) is rotatably installed on the bottom end of the drain tank (22), and the output end of the filter membrane barrel (36) is connected to the input end of the discharge pipe (35).
5. The chlorophyll filtration device with adjustable flow rate as described in claim 4, characterized in that, The stirring mechanism (04) includes a second motor (41), a reducer (42), a stirring shaft (43), and multiple stirring blades (44). The input end of the reducer (42) is connected to the output end of the second motor (41). The second motor (41) and the reducer (42) are both installed on the top of the drain tank (22). The top of the stirring shaft (43) is installed on the output end of the reducer (42). Multiple stirring blades (44) are provided on the stirring shaft (43), and the stirring shaft (43) is located inside the filter membrane tank (36).
6. The chlorophyll filtration device with adjustable flow rate as described in claim 3, characterized in that, The drying mechanism (05) includes a third pipe (51), a filter element (52), an air pump (53), a heating box (54), a diversion pipe (55), and multiple jet pipes (56). The filter element (52) is installed on the inner wall of the third pipe (51). The output end of the third pipe (51) is connected to the input end of the air pump (53). The output end of the air pump (53) is connected to the input end of the heating box (54). The output end of the heating box (54) is connected to the input end of the diversion pipe (55). Multiple output ends are provided on the diversion pipe (55). The input ends of the multiple jet pipes (56) are respectively installed on the multiple output ends of the diversion pipe (55). Multiple nozzles are provided on the multiple jet pipes (56). The multiple jet pipes (56) are respectively installed on the inner wall of the drain tank (22).
7. The chlorophyll filtration device with adjustable flow rate as described in claim 1, characterized in that, The screening mechanism (06) includes a screening box (61), a screening plate (62), a discharge plate (63), and two sets of discharge ports (64). The screening plate (62) is installed at an angle on the inner wall of the screening box (61), the bottom end of the discharge plate (63) is installed at the bottom end of the screening box (61), and the input ends of the two sets of discharge ports (64) are respectively installed on the left and right outer walls of the screening box (61).
Citation Information
Patent Citations
Portable multifunctional novel filtering device
CN219449414U