Filtering device for stock solution of daily necessities
By designing a detachable filter plate structure and a pulsed electromagnet vibration system, the problems of inconvenient disassembly and particle clogging in existing filter devices have been solved. This achieves efficient disassembly of the filter structure and high-frequency vibration unblocking, improving the ease of disassembly and filtration efficiency of the filter device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BIOMI BRAND MANAGEMENT (HANGZHOU) CO LTD
- Filing Date
- 2025-05-23
- Publication Date
- 2026-05-15
AI Technical Summary
Existing daily-use liquid filtration devices are difficult to disassemble after filtration, resulting in poor disassembly convenience. Furthermore, particles can easily clog the filter pores during filtration, affecting filtration efficiency.
A daily-use liquid filtration device was designed, which adopts a detachable filter plate structure and a pulse electromagnet vibration system. The filter plate can be easily disassembled by screws and knobs, and high-frequency vibration is used to prevent particles from clogging the filter holes.
It enables convenient disassembly of the filter structure and efficient filtration, improving the ease of disassembly and filtration efficiency of the device.
Smart Images

Figure CN224236262U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of daily necessities liquid filtration technology, specifically a daily necessities liquid filtration device. Background Technology
[0002] A stock solution is a pure, undiluted, or unprocessed liquid nutrient. Stock solutions for daily necessities typically have high concentrations of active ingredients that can provide specific nutritional or health benefits to the skin or other parts of the body. During the production of daily necessities, filtration devices are required to filter and process the stock solutions.
[0003] A Chinese patent with authorization announcement number CN 115337694 B discloses a filtration device for pharmaceutical raw liquid containing fine particles, including a chamber to be filtered and a purification chamber disposed below the chamber to be filtered. A partition plate is disposed between the chamber to be filtered and the purification chamber, and the partition plate has several communicating holes. A filter cylinder is inserted into the communicating holes and disposed within the chamber to be filtered. The filter cylinder includes a supporting shell, and a filter screen is disposed on the outside of the supporting shell. An annular fixing plate is disposed on one side of the supporting shell of the purification chamber, and the end of the filter screen is fixedly disposed between the annular fixing plate and the partition plate. This application uses an outer casing to avoid clogging, facilitating backwashing and preventing blockage. Furthermore, since the remaining filtrate after recovery can be directly used, although the single-cycle recovery rate is low, the overall cycle recovery rate is guaranteed, and the pressure drop of the recovery structure itself is very low.
[0004] Existing filtration devices typically require cleaning of the filter structure after filtering daily necessities liquid. However, the filter structure is difficult to disassemble easily, resulting in poor disassembly convenience. Therefore, a daily necessities liquid filtration device is proposed to address the above problems. Utility Model Content
[0005] In order to overcome the shortcomings of the existing technology and solve the problems existing in the existing technology, this utility model proposes a daily necessities raw liquid filtration device.
[0006] The technical solution adopted by this utility model to solve its technical problem is a daily-use product liquid filtration device, including a stand, a filter cylinder mounted on the stand, a cover rotatably connected to the filter cylinder, two sets of first rod seats mounted on the side wall of the cover, each first rod seat having a first threaded hole, a screw installed in the first threaded hole, and a knob mounted on the screw, two sets of second rod seats mounted on the side wall of the filter cylinder, each second rod seat having a second threaded hole, an inner cylinder slidably connected to the inner wall of the filter cylinder, a mounting frame fixedly mounted on the inner wall of the inner cylinder, a fixing rod mounted on the mounting frame, a positioning block threadedly mounted on the top of the fixing rod, a third filter plate placed on the mounting frame, a first connecting rod mounted on the third filter plate, a second filter plate mounted on the first connecting rod, and a second... A connecting rod is used, on which a first filter plate is mounted. A fixed frame is mounted on the filter cylinder, and a rotating frame is rotatably mounted on the fixed frame. The rotating frame is fixedly connected to the cover. The cover is placed on the filter cylinder, and a feed pipe is mounted on the cover. A handle is mounted on the cover. By unscrewing two screws from the two second rod seats, the cover and filter cylinder are unlocked. Then, the cover is lifted, and the positioning block is rotated to unscrew the positioning block from the fixed rod, thus unlocking the first, second, and third filter plates. Since the first, second, and third filter plates are integrated into one piece under the connection of the first and second connecting rods, they can be directly removed from the mounting frame, enabling convenient disassembly of the filter structure and improving the ease of disassembly of the device.
[0007] Preferably, a discharge pipe is installed at the bottom of the filter cylinder, and a valve is installed on the discharge pipe. A control panel is installed on the side wall of the filter cylinder. An assembly groove is opened on the inner wall of the filter cylinder, and a pulse electromagnet is installed on the inner wall of the assembly groove. The pulse electromagnet is connected to the control panel through an internal circuit. A vibrating plate is installed in the assembly groove, and the inner wall of the vibrating plate is fixedly connected to the inner cylinder. A spring is installed between the vibrating plate and the assembly groove. An iron plate is installed on the vibrating plate, and the iron plate is located below the pulse electromagnet. The daily necessities concentrate is filtered three times in sequence through the first filter plate, the second filter plate, and the third filter plate, achieving high-quality filtration of the daily necessities concentrate. During this process, the first filter plate, the second filter plate, and the third filter plate vibrate at high frequency. Under the action of vibration force, the filtration speed of the daily necessities concentrate can be accelerated. At the same time, the vibration force will drive the particles in the concentrate to vibrate, avoiding the particles in the concentrate from clogging the filter holes, achieving efficient unblocking of the filter holes, and helping to improve filtration efficiency.
[0008] The advantages of this utility model are:
[0009] 1. This utility model unlocks the cover and filter cylinder by unscrewing the two screws from the two second rod seats; then, by lifting the cover and rotating the positioning block to unscrew it from the fixing rod, the first filter plate, second filter plate, and third filter plate are unlocked. Since the first filter plate, second filter plate, and third filter plate are an integral structure connected by the first connecting rod and the second connecting rod, the first filter plate, second filter plate, and third filter plate can be directly removed from the mounting bracket, realizing convenient disassembly of the filter structure and improving the ease of disassembly of the device.
[0010] 2. This utility model achieves high-quality filtration of daily necessities by passing the raw liquid through a first filter plate, a second filter plate, and a third filter plate in sequence. During this process, the first, second, and third filter plates vibrate at high frequency. Under the action of vibration, the filtration speed of the raw liquid can be accelerated. At the same time, the vibration will drive the particles in the raw liquid to vibrate, preventing the particles in the raw liquid from clogging the filter holes, thus achieving efficient unblocking of the filter holes and improving filtration efficiency. Attached Figure Description
[0011] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0012] Figure 1 This is a first-person perspective 3D structural diagram;
[0013] Figure 2 This is a schematic diagram of the internal three-dimensional structure of the filter cylinder;
[0014] Figure 3 This is a schematic diagram of the three-dimensional structure of the mounting bracket;
[0015] Figure 4 A schematic diagram of the three-dimensional structure of the filter plate;
[0016] Figure 5 This is a schematic diagram of the three-dimensional structure of the pulse electromagnet.
[0017] In the diagram: 1. Leg; 2. Filter cylinder; 3. Fixed frame; 4. Rotating frame; 5. Cover; 6. Feed pipe; 7. Handle; 8. First rod seat; 9. Screw; 10. Knob; 11. Second rod seat; 12. Inner cylinder; 13. Mounting frame; 14. Fixed rod; 15. Positioning block; 16. Third filter plate; 17. First connecting rod; 18. Second filter plate; 19. Second connecting rod; 20. First filter plate; 21. Discharge pipe; 22. Valve; 23. Control panel; 24. Assembly slot; 25. Pulse electromagnet; 26. Vibrating plate; 27. Spring; 28. Iron sheet. Detailed Implementation
[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.
[0019] Please see Figure 1-4As shown, a daily-use product concentrate filtration device includes a stand 1, a filter cylinder 2 mounted on the stand 1, a cover 5 rotatably connected to the filter cylinder 2, two sets of first rod seats 8 mounted on the side wall of the cover 5, each first rod seat 8 having a first threaded hole, a screw 9 fitted into the first threaded hole, and a knob 10 mounted on the screw 9; two sets of second rod seats 11 mounted on the side wall of the filter cylinder 2, each second rod seat 11 having a second threaded hole; an inner cylinder 12 slidably connected to the inner wall of the filter cylinder 2, a mounting bracket 13 fixedly mounted on the inner wall of the inner cylinder 12, a fixing rod 14 mounted on the mounting bracket 13, and a positioning device threaded onto the top of the fixing rod 14. Block 15, a third filter plate 16 is placed on the mounting bracket 13, a first connecting rod 17 is installed on the third filter plate 16, a second filter plate 18 is installed on the first connecting rod 17, a second connecting rod 19 is installed on the second filter plate 18, a first filter plate 20 is installed on the second connecting rod 19, a fixed bracket 3 is installed on the filter cylinder 2, a rotating bracket 4 is rotatably installed on the fixed bracket 3, the rotating bracket 4 is fixedly connected to the cover 5, the cover 5 is placed on the filter cylinder 2, a feed pipe 6 is installed on the cover 5, and a handle 7 is installed on the cover 5; during operation, after the existing filtration device has filtered the daily product concentrate, it usually needs to be cleaned. The structure was cleaned, but due to the difficulty in easily disassembling the filter structure, the disassembly of the device was not convenient. By turning the two knobs 10, the two screws 9 were rotated, and the two screws 9 were unscrewed from the two second rod seats 11, thus unlocking the cover 5 and the filter cylinder 2. Then, the cover 5 was lifted, and the positioning block 15 was rotated and unscrewed from the fixing rod 14, thus unlocking the first filter plate 20, the second filter plate 18, and the third filter plate 16. Since the first filter plate 20, the second filter plate 18, and the third filter plate 16 are an integral structure connected by the first connecting rod 17 and the second connecting rod 19, the disassembly of the device is difficult. Then, the first filter plate 20, the second filter plate 18, and the third filter plate 16 are directly removed from the mounting bracket 13, realizing convenient disassembly of the filter structure. After cleaning the first filter plate 20, the second filter plate 18, and the third filter plate 16, they are threaded onto the fixing rod 14. Then, the positioning block 15 is screwed onto the fixing rod 14, realizing the locking of the first filter plate 20, the second filter plate 18, and the third filter plate 16 by the mounting bracket 13 and the positioning block 15. This structure allows for convenient disassembly of the filter structure, which helps to improve the ease of disassembly of the device.
[0020] Please see Figure 5As shown, a discharge pipe 21 is installed on the bottom side of the filter cylinder 2, and a valve 22 is installed on the discharge pipe 21. A control panel 23 is installed on the side wall of the filter cylinder 2. An assembly groove 24 is opened on the inner wall of the filter cylinder 2, and a pulse electromagnet 25 is installed on the inner wall of the assembly groove 24. The pulse electromagnet 25 is connected to the control panel 23 through an internal circuit. A vibrating plate 26 is installed in the assembly groove 24. The inner wall of the vibrating plate 26 is fixedly connected to the inner cylinder 12. A spring 27 is installed between the vibrating plate 26 and the assembly groove 24. An iron plate 28 is installed on the vibrating plate 26, and the iron plate 28 is located at the pulse electromagnet 25. Below; During operation, existing filtration devices are prone to clogging filter holes when filtering daily necessities raw liquids due to the presence of particles in the liquid. Since the filter holes cannot be cleared, the filtration efficiency is affected, resulting in low filtration efficiency. By pouring the daily necessities raw liquid into the filter cylinder 2 through the feed pipe 6, the daily necessities raw liquid is filtered three times in sequence through the first filter plate 20, the second filter plate 18, and the third filter plate 16. The area of the filter holes on the first filter plate 20, the second filter plate 18, and the third filter plate 16 decreases in sequence, thus achieving high-quality filtration of the daily necessities raw liquid.
[0021] During this process, a sinusoidal current is fed into the pulse electromagnet 25 via a wire through the control panel 23, magnetizing the pulse electromagnet 25. The sinusoidal current switches between positive and negative half-cycles. At the instant of each switching, the sinusoidal current disappears. The frequency of the positive and negative half-cycle switching is very high, therefore the magnetic field frequency generated by the pulse electromagnet 25 is also very high. The magnetic force generated by the pulse electromagnet 25 is also instantaneous. At the instant the pulse electromagnet 25 generates magnetic force, it attracts the iron plate 28 to move towards the pulse electromagnet 25. The iron plate 28 drives the vibrating plate 26 to move vertically upward, and the vibrating plate 26 drives the inner cylinder 12 to move vertically upward. Afterward, the magnetic force disappears. Under the tension of spring 27, spring 27 pulls vibrating plate 26 to move vertically downward. Vibrating plate 26 drives inner cylinder 12 to move vertically downward. Due to the extremely high switching frequency of magnetic field generation and disappearance, inner cylinder 12 generates high-frequency vibration. Inner cylinder 12 drives mounting bracket 13 on it to vibrate at high frequency. Mounting bracket 13 drives the first filter plate 20, second filter plate 18 and third filter plate 16 installed on it to vibrate at high frequency. Under the action of vibration force, the filtration speed of daily product concentrate can be accelerated. At the same time, vibration force will drive the particles in concentrate to vibrate, avoiding the particles in concentrate from clogging the filter holes, realizing efficient unblocking of filter holes, which is conducive to improving filtration efficiency.
[0022] Working principle: Existing filtration devices, after filtering daily necessities, typically require cleaning of the filter structure. However, the difficulty in easily disassembling the filter structure leads to poor disassembly convenience. By rotating two knobs 10, two screws 9 are rotated, unscrewing them from the two second rod seats 11, thus unlocking the cover 5 and filter cylinder 2. Then, the cover 5 is lifted, and the positioning block 15 is rotated, unscrewing it from the fixing rod 14, unlocking the first filter plate 20, the second filter plate 18, and the third filter plate 16. Since the first filter plate 20, the second filter plate 18, and the third filter plate 16 are a single integrated structure connected by the first connecting rod 17 and the second connecting rod 19, they can then be directly removed from the mounting bracket 13, achieving convenient disassembly of the filter structure. After cleaning plate 16, the first filter plate 20, the second filter plate 18, and the third filter plate 16 are threaded onto the fixing rod 14. Then, the positioning block 15 is screwed onto the fixing rod 14, thus locking the first filter plate 20, the second filter plate 18, and the third filter plate 16 with the mounting bracket 13 and the positioning block 15. This structure allows for easy disassembly of the filter structure, which improves the ease of disassembly of the device. In the process of filtering daily necessities raw liquid, the particles in the raw liquid are prone to clogging the filter holes. Since the filter holes cannot be cleared, the filtration efficiency is easily affected, resulting in low filtration efficiency. By pouring the daily necessities raw liquid into the filter cylinder 2 through the feed pipe 6, the daily necessities raw liquid is filtered three times in sequence through the first filter plate 20, the second filter plate 18, and the third filter plate 16. The area of the filter holes on the first filter plate 20, the second filter plate 18, and the third filter plate 16 decreases in sequence, thus achieving high-quality filtration of the daily necessities raw liquid.During this process, a sinusoidal current is fed into the pulse electromagnet 25 via a wire through the control panel 23, magnetizing the pulse electromagnet 25. The sinusoidal current switches between positive and negative half-cycles. At the instant of each switching, the sinusoidal current disappears. The frequency of the positive and negative half-cycle switching is very high, therefore the magnetic field frequency generated by the pulse electromagnet 25 is also very high. The magnetic force generated by the pulse electromagnet 25 is also instantaneous. At the instant the pulse electromagnet 25 generates magnetic force, it attracts the iron plate 28 to move towards the pulse electromagnet 25. The iron plate 28 drives the vibrating plate 26 to move vertically upward, and the vibrating plate 26 drives the inner cylinder 12 to move vertically upward. Afterward, the magnetic force disappears. Under the tension of spring 27, spring 27 pulls the vibrating plate 26 to move vertically downwards. The vibrating plate 26 drives the inner cylinder 12 to move vertically downwards. Due to the extremely high switching frequency of the magnetic field's generation and disappearance, the inner cylinder 12 generates high-frequency vibration. The inner cylinder 12 drives the mounting bracket 13 on it to vibrate at a high frequency. The mounting bracket 13 drives the first filter plate 20, the second filter plate 18, and the third filter plate 16 mounted on it to vibrate at a high frequency. Under the action of vibration, the filtration speed of the daily-use product concentrate can be accelerated. At the same time, the vibration force will cause the particles in the concentrate to vibrate, preventing the particles in the concentrate from clogging the filter holes, achieving efficient unblocking of the filter holes, and helping to improve filtration efficiency.
[0023] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model.
Claims
1. A daily-use product concentrate filtration device, characterized in that: Includes a stand (1), on which a filter cylinder (2) is mounted, and a cover (5) is rotatably connected to the filter cylinder (2). Two sets of first rod seats (8) are mounted on the side wall of the cover (5). A first threaded hole is opened in the first rod seat (8), and a screw (9) is assembled in the first threaded hole. A knob (10) is installed on the screw (9). Two sets of second rod seats (11) are mounted on the side wall of the filter cylinder (2). A second threaded hole is opened in the second rod seat (11). An inner cylinder (12) is slidably connected to the inner wall of the filter cylinder (2). An installation frame (13) is fixedly installed on the inner wall of the inner cylinder (12). A fixing rod (14) is installed on the installation frame (13). A positioning block (15) is threaded onto the top of the fixing rod (14). A third filter plate (16) is placed on the installation frame (13). A first connecting rod (17) is installed on the third filter plate (16). A second filter plate (18) is installed on the first connecting rod (17). A second connecting rod (19) is installed on the second filter plate (18). A first filter plate (20) is installed on the second connecting rod (19).
2. The daily-use product concentrate filtration device according to claim 1, characterized in that: A fixed frame (3) is installed on the filter cylinder (2), and a rotating frame (4) is rotatably installed on the fixed frame (3). The rotating frame (4) is fixedly connected to the cover (5).
3. The daily-use product concentrate filtration device according to claim 1, characterized in that: The cover (5) is placed on the filter cylinder (2), and a feed pipe (6) is installed on the cover (5). A handle (7) is installed on the cover (5).
4. The daily-use product concentrate filtration device according to claim 1, characterized in that: The filter cylinder (2) is equipped with a discharge pipe (21) at the bottom, a valve (22) is installed on the discharge pipe (21), and a control panel (23) is installed on the side wall of the filter cylinder (2).
5. The daily-use product concentrate filtration device according to claim 1, characterized in that: The filter cylinder (2) has an assembly groove (24) on its inner wall. A pulse electromagnet (25) is installed on the inner wall of the assembly groove (24). The pulse electromagnet (25) is connected to the control panel (23) through an internal circuit.
6. A daily necessities raw material filtration device according to claim 5, characterized in that: The assembly slot (24) is equipped with a vibrating plate (26), the inner wall of the vibrating plate (26) is fixedly connected to the inner cylinder (12), a spring (27) is installed between the vibrating plate (26) and the assembly slot (24), and an iron plate (28) is installed on the vibrating plate (26), the iron plate (28) is located below the pulse electromagnet (25).