A mixed ion exchange resin filter purifier

By introducing a rotating resin particle mechanism and an automatic cleaning system into the purifier, the problems of low purification efficiency and frequent replacement caused by suspended matter attachment are solved, achieving efficient sewage treatment and cost reduction.

CN119707028BActive Publication Date: 2025-09-26JIANGYIN SUQING NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202510169006.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-09-26
Estimated Expiration
2045-02-17

AI Technical Summary

Technical Problem

The resin particle board in the existing purifier is easily reduced in efficiency due to the attachment of suspended matter during use, and the resin particle board needs to be replaced frequently, which increases the cost of sewage treatment.

Method used

The main body plate adopts a rectangular structure, which includes a resin particle rotating mechanism and a cleaning mechanism. The spherical resin particles are rotated by a motor-driven worm gear system, and are equipped with a brush for automatic cleaning. A pressure sensor is used to detect the weight of the resin particle board to determine the replacement time.

Benefits of technology

It effectively prevents the attachment of suspended matter, improves the sewage purification efficiency, extends the service life of the resin particle board, and reduces the replacement frequency and treatment cost.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of filter purifiers, and in particular to a mixed ion exchange resin filter purifier, comprising a main body plate of a rectangular structure, a first placement groove being provided at the upper end of the main body plate, a rotating resin particle mechanism for performing primary ion exchange on sewage being provided on the side of the main body plate, the rotating resin particle mechanism comprising two first empty grooves and a second empty groove of the same size, the ends of several rotating grooves being respectively communicated with the first empty groove or the second empty groove, and a cleaning mechanism for cleaning attachments from the rotating resin particle mechanism being provided on the side of the main body plate; during purification, several spherical resin particles are rotated under the drive of a connecting rod, which can effectively prevent sticky impurities remaining in the sewage from causing adjacent spherical resin particles to stick together, thereby ensuring the passability of the sewage during purification.
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Description

Technical Field

[0001] The present invention relates to the technical field of filter purifiers, in particular to a mixed ion exchange resin filter purifier. Background Art

[0002] A mixed ion exchange resin filter purifier is a device that uses ion exchange resin purification technology to treat anionic and cationic impurities in water to soften and purify the water. The exchange resin in existing purifiers is generally a resin particle board, which is composed of several small particles. When in use, the sewage to be purified is purified by the resin particles inside the resin particle board and then discharged, thereby removing the ionic impurities in the sewage.

[0003] Before sewage is subjected to ion exchange removal, it is necessary to use decomposition agents and other substances to remove the sticky suspended matter in the sewage, thereby preventing the suspended matter from adhering to the surface of the resin particles during ion exchange purification. However, in actual treatment, the suspended impurities in the sewage are often not completely removed. During ion exchange purification in sewage, since several resin particles in the resin particle board cannot rotate, the sticky suspended matter in the sewage will adhere to the surface of the particles, causing adjacent particles to stick together, reducing the efficiency of sewage ion treatment. The resin particle board used for existing sewage ion removal cannot clean itself, resulting in the ion exchange resin having to be replaced after long-term use, increasing the cost of sewage treatment. Summary of the Invention

[0004] The purpose of the present invention is to solve the shortcomings of the background technology and to propose a mixed ion exchange resin filter purifier.

[0005] To achieve the above objectives, the technical solution adopted by the present invention is: a mixed ion exchange resin filter purifier, comprising a main body plate of a rectangular structure, a first placement groove is provided at the upper end of the main body plate, and a rotating resin particle mechanism for performing primary ion exchange on the sewage is provided on the side of the main body plate, and the rotating resin particle mechanism includes two first empty grooves and a second empty groove of the same size, the first empty groove is provided on one side surface of the main body plate, and the second empty groove is provided on the side surface of the main body plate adjacent to the first empty groove, and a plurality of rotating grooves are respectively provided on the four sides of the main body plate, and the ends of the plurality of rotating grooves are respectively communicated with the first empty groove or the second empty groove, and a cleaning mechanism for cleaning attachments on the rotating resin particle mechanism is provided on the side surface of the main body plate, and a fixed resin particle mechanism for performing secondary ion exchange on the sewage is provided in the first placement groove, and the lower end of the main body plate is fixedly connected to four symmetrically arranged support seats.

[0006] Preferably, the main body plate is rotatably connected to connecting rods in a plurality of rotating grooves, and the side surfaces of a plurality of connecting rods are fixedly connected to a plurality of equidistantly arranged spherical resin particles, and no two adjacent spherical resin particles are in contact with each other.

[0007] Preferably, the ends of several of the connecting rods are fixedly connected to worm gears in the first empty slot and the second empty slot by bolts, the main plate is fixedly connected to the first motor in the first empty slot and the second empty slot, and the transmission shaft ends of the two first motors are fixedly connected to worm gears.

[0008] Preferably, the side surfaces of the two worms are respectively engaged with the side surfaces of a plurality of worm wheels, the other ends of the two worms are respectively fixedly connected to rotating rods, and the other ends of the two rotating rods are respectively rotatably connected to the main plate.

[0009] Preferably, the cleaning mechanism includes several third empty slots opened on the side of the main body plate, several of the third empty slots are respectively located below the rotating slot, several of the third empty slots are fixedly connected to the first electric telescopic rods, several of the telescopic ends of the first electric telescopic rods are respectively fixedly connected to the first fixed bodies, the side surfaces of the first fixed bodies are respectively slidably matched with the first placement slots, several of the upper ends of the first fixed bodies are respectively opened with limiting slots, and several of the first fixed bodies are respectively slidably set with limiting bodies in the limiting slots.

[0010] Preferably, a fourth slot is provided at the upper end of several of the limiting bodies, several of the limiting bodies are fixedly connected to a second electric telescopic rod in the fourth slot, the telescopic ends of several of the second electric telescopic rods are fixedly connected to a first pressure sensor, and the upper ends of several of the first pressure sensors are fixedly connected to a brush.

[0011] Preferably, several of the first fixed bodies are fixedly connected to the second motors in the limiting grooves, and several of the transmission shaft ends of the second motors are fixedly connected to threaded rods. Several of the side surfaces of the limiting bodies are provided with threaded grooves, and several of the threaded grooves are arranged with the threaded rods through threads.

[0012] Preferably, the main body plate includes a second placement groove provided at the lower end of the inner side of the main body plate, a guide groove is provided at the lower end of the second placement groove, and the guide groove is a rotating groove structure whose height gradually decreases from the outside to the inside, and a water outlet hole communicating with the guide groove is provided at the lower end of the main body plate, four symmetrically arranged second pressure sensors are fixedly connected to the inner side of the lower end of the main body plate, and the upper ends of the four second pressure sensors are fixedly connected to a resin particle board, the water outlet hole is connected to the water pipe, and an installation groove is provided through the side of the main body plate, and a partition is provided in the installation groove.

[0013] Compared with the prior art, the present invention has the following beneficial effects:

[0014] 1. The two first motors respectively drive the worms to rotate, and the two worms respectively cooperate to drive a number of worm wheels to rotate, and the several worm wheels respectively drive the connecting rods to rotate, so that the several connecting rods drive the spherical resin particles on the side to rotate, and then the sewage containing ions is poured into the first placement tank. The sewage passes through multiple layers of several rotating spherical resin particles. The several rotating spherical resin particles can fully ensure that the surface of the spherical resin particles is in contact with the sewage, so that the ions in the sewage are fully exchanged with the surface of the spherical resin particles, thereby removing harmful ions in the sewage. During purification, the several spherical resin particles are driven by the connecting rods to rotate, which can effectively prevent the sticky impurities remaining in the sewage from causing adjacent spherical resin particles to stick together, thereby ensuring the passability of the sewage during purification and improving the efficiency of sewage treatment;

[0015] 2. During the movement of the limiter, the second electric telescopic rod extends. When the brush contacts the spherical resin particles on the side of the connecting rod, the second electric telescopic rod stops extending under the control of the first pressure sensor. Then, the reciprocating brush can automatically clean the surface of the spherical resin particles, thereby improving the efficiency of subsequent sewage treatment. During cleaning, pouring cleaning liquid into the first placement tank can ensure that the surface of the spherical resin particles is completely cleaned. Then, the weight of the resin particle board can be detected by the second pressure sensor at the lower end of the resin particle board. When the weight of the resin particle board increases to a certain range, the resin particle board must be replaced. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 The overall structure of the present invention is shown in FIG. Figure 1 ;

[0017] Figure 2 The overall structure of the present invention is shown in FIG. Figure 2 ;

[0018] Figure 3 This is a partial structural section of the present invention Figure 1 ;

[0019] Figure 4 This is a partial structural section of the present invention Figure 2 ;

[0020] Figure 5 For the present invention Figure 3 A magnified view of point A;

[0021] Figure 6 For the present invention Figure 3 Enlarged view of point B;

[0022] Figure 7 For the present invention Figure 3 Enlarged view of point C;

[0023] Figure 8 For the present invention Figure 3 Enlarged view of point D;

[0024] Figure 9 For the present invention Figure 4 Enlarged view of point E.

[0025] 1. Main body plate; 2. Resin particle rotating mechanism; 3. Cleaning mechanism; 4. Resin particle fixing mechanism; 5. Support seat; 11. First placement slot; 21. First empty slot; 22. Rotating rod; 23. Worm; 24. Worm gear; 25. Rotating slot; 26. Spherical resin particles; 27. Second empty slot; 28. Connecting rod; 29. ​​First motor; 31. First fixed body; 32. First electric telescopic rod; 33. Third empty slot; 34. Limiting slot; 35. Threaded rod; 36. Limiting body; 37. Fourth empty slot; 38. Second electric telescopic rod; 39. Brush; 310. Second motor; 311. Threaded slot; 312. First pressure sensor; 41. Second placement slot; 42. Resin particle board; 43. Guide slot; 44. Water outlet; 45. Second pressure sensor; 46. Partition; 47. Mounting slot. DETAILED DESCRIPTION

[0026] The following description is intended to disclose the present invention so that those skilled in the art can implement the present invention. The preferred embodiments described below are merely examples, and those skilled in the art may conceive of other obvious variations.

[0027] See also Figure 1 - Figure 9 A mixed ion exchange resin filter purifier includes a main body plate 1 with a rectangular structure, a first placement groove 11 is opened at the upper end of the main body plate 1, and a rotating resin particle mechanism 2 for performing primary ion exchange on sewage is provided on the side of the main body plate 1.

[0028] In this embodiment, the rotating resin particle mechanism 2 includes two first empty slots 21 and second empty slots 27 of the same size. The first empty slot 21 is opened on one side of the main plate 1, and the second empty slot 27 is opened on the side of the main plate 1 adjacent to the first empty slot 21. The four side surfaces of the main plate 1 are respectively provided with a plurality of rotating slots 25, and the ends of the plurality of rotating slots 25 are respectively communicated with the first empty slot 21 or the second empty slot 27.

[0029] The main body plate 1 is rotatably connected to a plurality of connecting rods 28 in the rotating grooves 25 . The sides of the plurality of connecting rods 28 are fixedly connected to a plurality of equidistantly arranged spherical resin particles 26 , and no two adjacent spherical resin particles 26 are in contact with each other.

[0030] The ends of several connecting rods 28 are fixedly connected to the worm gear 24 in the first empty slot 21 and the second empty slot 27 by bolts, and the main plate 1 is fixedly connected to the first motor 29 in the first empty slot 21 and the second empty slot 27, respectively. The transmission shaft ends of the two first motors 29 are fixedly connected to the worm 23 respectively.

[0031] The side surfaces of the two worms 23 are respectively engaged with the side surfaces of a plurality of worm wheels 24 . The other ends of the two worms 23 are respectively fixedly connected to the rotating rods 22 . The other ends of the two rotating rods 22 are respectively rotatably connected to the main plate 1 .

[0032] Specifically, the two first motors 29 respectively drive the worm 23 to rotate, and the two worms 23 respectively drive the multiple worm wheels 24 to rotate, and the multiple worm wheels 24 respectively drive the connecting rods 28 to rotate, so that the multiple connecting rods 28 drive the spherical resin particles 26 on the side to rotate.

[0033] In this embodiment, a cleaning mechanism 3 for cleaning the attached matter from the rotating resin particle mechanism 2 is provided on the side surface of the main body plate 1 .

[0034] The cleaning mechanism 3 includes several third empty slots 33 opened on the side of the main plate 1, and several of the third empty slots 33 are respectively located below the rotating slot 25. Several first electric telescopic rods 32 are fixedly connected in the third empty slots 33, and the telescopic ends of several first electric telescopic rods 32 are respectively fixedly connected to the first fixed bodies 31. The side surfaces of the first fixed bodies 31 are respectively slidably matched with the first placement slots 11. The upper ends of several first fixed bodies 31 are respectively provided with limiting slots 34, and several first fixed bodies 31 are respectively slidably provided with limiting bodies 36 in the limiting slots 34.

[0035] A fourth slot 37 is respectively provided at the upper end of several of the limiting bodies 36, and several of the limiting bodies 36 are fixedly connected to a second electric telescopic rod 38 in the fourth slot 37, and the telescopic ends of several of the second electric telescopic rods 38 are respectively fixedly connected to a first pressure sensor 312, and the upper ends of several of the first pressure sensors 312 are respectively fixedly connected to a brush 39.

[0036] Several of the first fixed bodies 31 are fixedly connected to the second motors 310 in the limiting grooves 34, and the transmission shaft ends of several of the second motors 310 are fixedly connected to the threaded rods 35. Several of the side surfaces of the limiting bodies 36 are penetrated by threaded grooves 311, and several of the threaded grooves 311 are arranged with the threaded rods 35 through threads.

[0037] Specifically, several second motors 310 drive the threaded rod 35 to rotate respectively, and the threaded rod 35 cooperates to drive the limiter 36 to move back and forth. During the movement of the limiter 36, the second electric telescopic rod 38 extends, and the brush 39 contacts the spherical resin particles 26 on the side of the connecting rod 28.

[0038] In this embodiment, a resin particle fixing mechanism 4 for performing ion exchange on sewage is provided in the first placement tank 11 , and four symmetrically arranged support seats 5 are fixedly connected to the lower end of the main body plate 1 .

[0039] The main body plate 1 includes a second placement groove 41 opened at the lower end of the inner side of the main body plate 1, and a guide groove 43 is opened at the lower end of the second placement groove 41. The guide groove 43 is a rotating groove structure with a height gradually decreasing from the outside to the inside. The lower end of the main body plate 1 is opened with a water outlet 44 connected to the guide groove 43. Four symmetrically arranged second pressure sensors 45 are fixedly connected to the inner side of the lower end of the main body plate 1. The upper ends of the four second pressure sensors 45 are fixedly connected to the resin particle board 42. The water outlet 44 is connected to the water pipe. An installation groove 47 is opened through the side of the main body plate 1, and a partition 46 is arranged in the installation groove 47.

[0040] Specifically, open the partition 46 and take out the resin particle board 42 through the installation groove 47. The weight of the resin particle board 42 can be detected by the second pressure sensor 45 at the lower end of the resin particle board 42. When the weight of the resin particle board 42 increases to a certain range, the resin particle board 42 must be replaced to improve the reliability of sewage treatment.

[0041] When in use, the four support bases 5 are placed on a horizontal surface, and then the two first motors 29 are started. The two first motors 29 respectively drive the worm 23 to rotate, and the two worms 23 respectively cooperate to drive the plurality of worm gears 24 to rotate, and the plurality of worm gears 24 respectively drive the connecting rods 28 to rotate, so that the plurality of connecting rods 28 drive the spherical resin particles 26 on the side to rotate, and then the sewage containing ions is poured into the first placement tank 11. The sewage passes through multiple layers of the plurality of rotating spherical resin particles 26. The plurality of rotating spherical resin particles 26 can fully ensure that the surface of the spherical resin particles 26 is in contact with the sewage, so that the sewage The ions are fully exchanged with the surface of the spherical resin particles 26, thereby removing harmful ions in the sewage. During purification, several spherical resin particles 26 are rotated under the drive of the connecting rod 28, which can effectively prevent the sticky impurities remaining in the sewage from causing adjacent spherical resin particles 26 to stick together, ensuring the passability of sewage during purification and improving the efficiency of sewage treatment. After that, the sewage that has undergone the initial ion exchange enters the resin particle board 42 for secondary ion exchange purification. At this time, the suspended sticky impurities in the sewage are completely removed, which can prevent the resin particles in the resin particle board 42 from sticking together, thereby increasing the service life of the resin particle board 42.

[0042] After the sewage treatment is completed, the partition 46 is opened and the resin particle board 42 is taken out through the installation slot 47. Then, several second motors 310 are started. The several second motors 310 respectively drive the threaded rod 35 to rotate, and the threaded rod 35 cooperates to drive the limit body 36 to move back and forth. During the movement of the limit body 36, the second electric telescopic rod 38 extends. When the brush 39 contacts the spherical resin particles 26 on the side of the connecting rod 28, the second electric telescopic rod 38 stops extending under the control of the first pressure sensor 312. Then, the reciprocating brush 39 can clean the surface of the spherical resin particles 26, thereby improving the efficiency of subsequent sewage treatment. During cleaning, cleaning liquid is poured into the first placement tank 11 to ensure that the surface of the spherical resin particles 26 is completely cleaned. Then, the weight of the resin particle board 42 can be detected by the second pressure sensor 45 at the lower end of the resin particle board 42. When the weight of the resin particle board 42 increases to a certain range, the resin particle board 42 must be replaced to improve the reliability of sewage treatment.

[0043] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions merely illustrate the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. A mixed ion exchange resin filter purifier, comprising a main body plate (1) of a rectangular parallelepiped structure, wherein a first placement groove (11) is provided at the upper end of the main body plate (1), characterized in that: The side of the main plate (1) is provided with a rotating resin particle mechanism (2) for performing primary ion exchange on sewage. The rotating resin particle mechanism (2) includes two first empty slots (21) and a second empty slot (27) of the same size. The first empty slot (21) is provided on one side of the main plate (1), and the second empty slot (27) is provided on the side of the main plate (1) adjacent to the first empty slot (21). The four sides of the main plate (1) are respectively provided with a plurality of rotating slots (25). The ends of the plurality of rotating slots (25) are respectively communicated with the first empty slot (21) or the second empty slot (27). The side of the main plate (1) is provided with a cleaning mechanism for cleaning the attached matter on the rotating resin particle mechanism (2). (3), a fixed resin particle mechanism (4) for re-ion exchange of sewage is provided in the first placement tank (11), the lower end of the main plate (1) is fixedly connected to four symmetrically arranged support seats (5), the cleaning mechanism (3) includes a plurality of third empty slots (33) opened on the side of the main plate (1), a plurality of the third empty slots (33) are respectively located below the rotating slot (25), a plurality of the third empty slots (33) are fixedly connected to first electric telescopic rods (32), the telescopic ends of a plurality of the first electric telescopic rods (32) are respectively fixedly connected to first fixed bodies (31), the sides of the first fixed bodies (31) are respectively slidably matched with the first placement tank (11), and a plurality of the first fixed bodies (31) are respectively slidably matched with the first placement tank (11). The upper ends of the fixed bodies (31) are provided with limiting grooves (34), and the limiting bodies (36) are slidably arranged in the limiting grooves (34) on the plurality of first fixed bodies (31). The upper ends of the plurality of limiting bodies (36) are provided with fourth slots (37), and the plurality of limiting bodies (36) are fixedly connected to second electric telescopic rods (38) in the fourth slots (37). The telescopic ends of the plurality of second electric telescopic rods (38) are fixedly connected to first pressure sensors (312), and the upper ends of the plurality of first pressure sensors (312) are fixedly connected to brushes (39), and the plurality of first fixed bodies (31) are fixedly connected to second motors (310) in the limiting grooves (34). The transmission shaft ends of several second motors (310) are respectively fixedly connected to threaded rods (35), the side surfaces of several limiting bodies (36) are penetrated with threaded grooves (311), and several threaded grooves (311) are arranged with threaded rods (35) by threaded matching. The main body plate (1) is rotatably connected to connecting rods (28) in several rotating grooves (25), and the side surfaces of several connecting rods (28) are respectively fixedly connected to several equidistantly arranged spherical resin particles (26), and there is no contact between two adjacent spherical resin particles (26). The ends of several connecting rods (28) are respectively fixedly connected to worm gears (24) in the first empty groove (21) and the second empty groove (27) by bolts.The main body plate (1) is fixedly connected to a first motor (29) in the first slot (21) and the second slot (27), respectively. The transmission shaft ends of the two first motors (29) are fixedly connected to worms (23), and the side surfaces of the two worms (23) are respectively engaged with the side surfaces of a plurality of worm wheels (24). The other ends of the two worms (23) are respectively fixedly connected to rotating rods (22), and the other ends of the two rotating rods (22) are respectively rotatably connected to the main body plate (1).

2. A mixed ion exchange resin filter purifier according to claim 1, characterized in that: The main body plate (1) includes a second placement groove (41) provided at the lower end of the inner side of the main body plate (1), a guide groove (43) provided at the lower end of the second placement groove (41), the guide groove (43) being a rotating groove structure with a height gradually decreasing from the outer side to the inner side, a water outlet hole (44) communicating with the guide groove (43) provided at the lower end of the main body plate (1), four symmetrically arranged second pressure sensors (45) fixedly connected to the inner side of the lower end of the main body plate (1), the upper ends of the four second pressure sensors (45) fixedly connected to the resin particle board (42), the water outlet hole (44) being connected to the water pipe, a mounting groove (47) provided through the side of the main body plate (1), a partition (46) being provided in the mounting groove (47).

Citation Information

Patent Citations

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