An apparatus for producing multi-stage small molecular group water
By designing a multi-stage small molecule cluster water equipment, the self-cleaning filter screen is achieved by using water pressure to drive the cleaning and vibration components, which solves the problem of residual scale on the filter screen, extends its service life, stabilizes the water flow, and reduces the maintenance frequency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- 万灵子能量科技(北京)集团有限公司
- Filing Date
- 2024-10-22
- Publication Date
- 2026-05-19
AI Technical Summary
In existing small molecule cluster water preparation devices, residual scale on the filter screen components leads to reduced water flow and increased water pressure in the pipeline. Furthermore, the filter screen components require frequent maintenance or replacement, affecting the continuity of production.
Design a multi-stage small molecule cluster water device, which consists of a buffer tank, a pressure pump, a filter cartridge, a cleaning pump and a cleaning component. The cleaning component is driven by water pressure to scrape off scale, and the filter screen is vibrated by a vibrating ball and a collision component. Combined with the cleaning pump, the scale is extracted to achieve self-cleaning.
It extends the lifespan of the filter screen, reduces the frequency of maintenance, maintains a stable water flow, prevents scale from clogging again, and improves production continuity.
Smart Images

Figure CN119080109B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of small molecule cluster water preparation technology, specifically to a device for generating multi-stage small molecule cluster water. Background Technology
[0002] Ordinary water consists of 15 to 20 water molecules bonded together by hydrogen bonds. This type of water is generally called macromolecular cluster water. Under specific physicochemical conditions, the hydrogen bonds between macromolecular cluster water are broken, and water formed by 5 to 8 water molecules re-associating is called small molecule cluster water. Small molecule cluster water has advantages such as high permeability, high diffusion capacity, high solubility, high oxygen content, weak alkalinity, and the ability to scavenge free radicals and promote metabolism. Therefore, small molecule cluster water can promote cell growth and development and maintain cell activity.
[0003] For example, Chinese patent CN211619980U discloses a device for preparing small molecule cluster water, which includes a preparation tank. Heating blocks are fixedly installed on both sides of the inner cavity of the preparation tank, and water pumps are fixedly connected to the bottom of both sides of the preparation tank. The output end of the water pump is connected to a water outlet pipe. This invention solves the problem that existing methods for preparing small molecule cluster water require several processing steps, such as heating, which are inconvenient to move to each processing point and require workers to transport it.
[0004] For example, Chinese patent CN205662381U discloses a water purifier that can generate small molecule cluster water. This utility model adds a device for generating small molecule cluster water before the reverse osmosis membrane filter cartridge, which can improve the filtration efficiency of the reverse osmosis membrane filter cartridge.
[0005] The aforementioned prior art devices for preparing small molecule cluster water require filtering the water using a filter assembly before preparation. However, after prolonged use, scale residue accumulates on the filter assembly. If not cleaned promptly, this can lead to reduced water flow, increased water pressure in the pipes, and decreased filtration performance, thus affecting the continuity of the small molecule cluster water production process. Furthermore, since the filter assembly lacks self-cleaning capabilities, it requires frequent maintenance or replacement, which is quite cumbersome.
[0006] To address the above issues, a device for generating multi-stage small molecule cluster water is proposed. Summary of the Invention
[0007] The purpose of this invention is to provide a device for generating multi-stage small molecule cluster water. By using this device, the problems mentioned above, such as scale residue on the filter assembly, reduced water flow, high water pressure in the pipeline, and decreased filtration performance, which affect the continuity of the small molecule cluster water production process, are solved. In addition, it also solves the problem that the filter assembly does not have self-cleaning ability and therefore requires frequent maintenance or replacement, which is quite cumbersome.
[0008] To achieve the above objectives, the present invention provides the following technical solution: a device for generating multi-stage small molecule cluster water, comprising a buffer tank and a generating device disposed on one side of the buffer tank. The outlet at the bottom of the buffer tank is connected to the generating device via a pipe. A pressurizing pump, a filter cartridge, and a cleaning pump are also disposed on one side of the buffer tank. The air inlet at the top of the buffer tank is connected to the pressurizing pump via a pipe. The water inlet at the top of the buffer tank is connected to the filter cartridge via a pipe. A filter screen assembly and an adjusting assembly are fixedly installed on the inner wall of the inner cavity of the filter cartridge. A cleaning assembly is rotatably installed on one side wall of the filter screen assembly. The cleaning assembly is connected to the cleaning pump via a pipe. A collision assembly is fixedly installed on the side wall of the cleaning assembly near the filter screen assembly. The collision assembly is rotatably disposed through the filter screen assembly. The collision assembly is attached to the side wall of the other side of the filter screen assembly. The filter screen assembly, the adjusting assembly, the cleaning assembly, and the collision assembly are concentrically arranged.
[0009] Furthermore, the filter assembly includes a filter screen fixedly installed on the inner wall of the filter cylinder cavity. The filter screen has several filter holes and several deep grooves. A vibrating ball is installed in the inner cavity of the deep groove, and the vibrating ball is elastically connected to the inner wall of the deep groove cavity by a first spring.
[0010] Furthermore, the adjustment assembly includes a mounting bracket fixedly installed on the inner wall of the filter cartridge cavity and a load-bearing plate fixedly installed on the mounting bracket. Several limiting rods are fixedly installed on one side wall of the load-bearing plate, and a sliding plate is slidably sleeved on the several limiting rods. The sliding plate and the load-bearing plate are elastically connected by a second spring, and the limiting rods are set in the inner ring of the second spring. A sliding column is fixedly installed on the other side wall of the sliding plate. The sliding column is slidably installed through the load-bearing plate and can form a snap-fit relationship with the load-bearing plate. An adjustment ring is fixedly installed on the end of the sliding column away from the sliding plate.
[0011] Furthermore, the cleaning assembly includes a rotating cylinder rotatably mounted on one side wall of the filter screen and a sealing connecting ring fixedly mounted on the side wall of the rotating cylinder. The sealing connecting ring is connected to the cleaning pump through a pipe. Four cylinders are fixedly mounted on the outer circumference of the rotating cylinder, and the four cylinders are arranged in a circumferential array. Four cleaning plates are also fixedly mounted on the outer circumference of the rotating cylinder. Each cleaning plate has a slanted shovel fixedly mounted on its side wall. The slanted shovel is tightly fitted and slidably mounted on the side wall of the filter screen.
[0012] Furthermore, a clearance groove is provided on the side wall of the adjusting ring, and four triangular arc plates are fixedly installed at the edge of the side wall of the adjusting ring. The four triangular arc plates are arranged in a circular array, and a guide plate is fixedly installed at the top of each of the four triangular arc plates.
[0013] Furthermore, the rotating cylinder includes a cylinder body, the inside of which is provided with an irregularly shaped cavity. A telescopic locking block is slidably installed on the inner wall of the concave part at the lower end of the cylinder body. The telescopic locking block and the cylinder body are elastically connected by a third spring. The irregularly shaped cavity is connected to the sealing connecting ring.
[0014] Furthermore, the cleaning plate includes a shell fixedly installed on the outer periphery of the cylinder. The shell has a collection chamber inside, which is connected to the irregularly shaped chamber. The shell also has an air passage inside, which is connected to the chamber where the telescopic snap-fit block is installed. The air passage is isolated from the irregularly shaped chamber and the collection chamber. A sealing plate is slidably installed on the side wall of the collection chamber. The sealing plate is elastically connected to the side wall of the air passage by a fourth spring.
[0015] Furthermore, the filter screen includes a filter screen body, an mounting ring is fixedly installed on one side wall of the filter screen body, a rotating cylinder is rotatably mounted on the mounting ring, and a collision component is rotatably disposed in the inner ring of the mounting ring.
[0016] Furthermore, the mounting ring includes a ring body, on which a limiting groove is formed, and several arc-shaped grooves are formed on the side wall of the limiting groove, which can form a snap-fit relationship with the telescopic snap-fit block.
[0017] Furthermore, the collision assembly includes a connecting rod fixedly mounted on the cylinder, with a striking arm fixedly sleeved at the end of the connecting rod away from the cylinder.
[0018] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0019] When a large amount of scale remains on the filter screen, the water pressure in the pipe increases. This water pressure drives the adjusting component to move, which in turn causes the cleaning component to rotate clockwise. During this rotation, the scale on the filter screen is scraped off and collected. This alleviates the problem of reduced water flow and increased pipe pressure caused by a large amount of scale buildup after a period of use. It not only extends the lifespan of the filter screen but also reduces the frequency of cleaning and maintenance, saving manpower. The scraped-off scale is collected and pumped out by the cleaning pump to prevent it from continuously floating in the water. This process causes blockage. After the cleaning pump removes the scale, it pumps descaling agent into the irregularly shaped chamber and collection chamber through pipes and a sealing ring. Then, the cleaning pump removes the descaling agent and pumps in clean water to clean the irregularly shaped chamber and collection chamber. This prevents scale from overflowing during the next cleaning, avoiding difficulties in descaling and worsening of blockage. During its return to its original position, the vibrating ball continuously taps the inner wall of the deep tank, causing the filter screen to vibrate. This not only shakes the scale out of the filter holes but also loosens the scale on the filter screen, making it easier for the inclined scraper to remove the scale. Attached Figure Description
[0020] Figure 1 This is a top view of the overall structure of the present invention;
[0021] Figure 2 This is a bottom view of the overall structure of the present invention;
[0022] Figure 3 This is a schematic diagram showing the installation positions of the filter assembly, adjustment assembly, and cleaning assembly of the present invention;
[0023] Figure 4 This is a schematic diagram showing the installation position of the collision component of the present invention;
[0024] Figure 5 This is a partial cross-sectional schematic diagram of the filter assembly, cleaning assembly, and collision assembly of the present invention;
[0025] Figure 6 For the present invention Figure 5 Enlarged view of point A;
[0026] Figure 7 This is a cross-sectional schematic diagram of the cleaning plate of the present invention;
[0027] Figure 8 For the present invention Figure 7 Enlarged view of point B;
[0028] Figure 9 This is a disassembly diagram of the filter assembly and cleaning assembly of the present invention;
[0029] Figure 10 For the present invention Figure 9Enlarged view of point C;
[0030] Figure 11 This is a schematic diagram showing the installation position of the striking rod of the present invention;
[0031] Figure 12 This is a three-dimensional structural schematic diagram of the adjusting ring of the present invention;
[0032] Figure 13 For the present invention Figure 12 Enlarged view of point D.
[0033] In the diagram: 1. Buffer tank; 2. Generating device; 3. Pipeline; 4. Pressurization pump; 5. Filter cartridge; 6. Cleaning pump; 7. Filter assembly; 71. Filter screen; 711. Filter body; 712. Mounting ring; 7121. Ring body; 7122. Limiting groove; 7123. Arc groove; 72. Filter holes; 73. Deep groove; 74. Vibrating ball; 75. First spring; 8. Adjustment assembly; 81. Mounting bracket; 82. Support plate; 83. Limiting rod; 84. Slide plate; 85. Sliding column; 86. Adjustment ring; 86 1. Triangular arc plate; 862. Clearance groove; 863. Guide plate; 87. Second spring; 9. Cleaning assembly; 91. Rotating cylinder; 911. Cylinder body; 912. Irregularly shaped chamber; 913. Telescopic locking block; 914. Third spring; 92. Cylinder; 93. Sealing connecting ring; 94. Cleaning plate; 941. Housing; 942. Collection chamber; 943. Sealing plate; 944. Air passage; 945. Fourth spring; 95. Slanted shovel plate; 10. Collision assembly; 101. Connecting rod; 102. Striking rod. Detailed Implementation
[0034] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0035] To address the technical problem of excessive scale buildup on filter 71 after a period of use, leading to reduced water flow and increased pressure in pipe 3, such as... Figure 1 - Figure 13 As shown, the following preferred technical solutions are provided:
[0036] A device for generating multi-stage small molecule cluster water includes a buffer tank 1 and a generating device 2 disposed on one side of the buffer tank 1. The outlet at the bottom of the buffer tank 1 is connected to the generating device 2 via a pipe 3. The buffer tank 1 helps to relieve pressure in the pipe 3. The generating device 2 has a built-in chip for generating small molecule cluster water. A pressure pump 4, a filter cartridge 5, and a cleaning pump 6 are also disposed on one side of the buffer tank 1. The air inlet at the top of the buffer tank 1 is connected to the pressure pump 4 via a pipe 3, and the water inlet at the top of the buffer tank 1 is connected to the filter cartridge 5 via a pipe 3. The pressure pump 4 is mainly used to regulate the pressure inside the buffer tank 1, so that the pressure in the buffer tank 1 remains constant. This ensures that the flow rate of water entering the generating device 2 is consistent, and that the generating device 2 has a consistent action time on the incoming water, thus guaranteeing the quality of the small molecule cluster water.
[0037] A filter screen assembly 7 and an adjusting assembly 8 are fixedly installed on the inner wall of the filter cylinder 5. A cleaning assembly 9 is rotatably installed on one side wall of the filter screen assembly 7. The filter screen assembly 7 is used to filter water. The filtered water enters the buffer tank 1 through the pipe 3, and then enters the generator 2 through the pipe 3 to produce small molecule water. When there is a lot of scale on the filter screen assembly 7, the flow rate of water through the filter screen assembly 7 decreases, which increases the water pressure inside the pipe 3. The increased water pressure will push the adjusting assembly 8 to move. During the movement of the adjusting assembly 8, the cleaning assembly 9 will rotate 90° clockwise to scrape off and collect the scale on the surface of the filter screen assembly 7. Since the cleaning assembly 9 is connected to the cleaning pump 6 through the pipe 3, the cleaning pump 6 will pump away the scale collected in the inner cavity of the cleaning assembly 9 and clean the inner cavity of the cleaning assembly 9. After the scale on the surface of the filter screen assembly 7 is cleaned, the flow rate of water through the filter screen assembly 7 returns to normal, and the water pressure inside the pipe 3 also returns to normal. At this time, the adjusting assembly 8 returns to its original position.
[0038] A collision component 10 is fixedly installed on the side wall of the cleaning component 9 near the filter screen component 7. The collision component 10 is rotatably mounted on the filter screen component 7 and is attached to the side wall of the filter screen component 7 on the other side. When the cleaning component 9 rotates, it will drive the collision component 10 to rotate synchronously. During the rotation of the collision component 10, it will collide with the filter screen component 7, causing the filter screen component 7 to vibrate and loosen the scale on the filter screen component 7, which is conducive to the cleaning component 9 scraping off the scale. The filter screen component 7, the adjustment component 8, the cleaning component 9 and the collision component 10 are concentrically arranged. The purpose of this arrangement is to ensure that each component can operate normally.
[0039] The filter assembly 7 includes a filter screen 71 fixedly installed on the inner wall of the filter cylinder 5. The filter screen 71 has several filter holes 72 and several deep grooves 73. A vibrating ball 74 is installed in the inner cavity of the deep groove 73. The vibrating ball 74 is elastically connected to the inner wall of the deep groove 73 by a first spring 75. When the cleaning assembly 9 rotates, it will synchronously drive the collision assembly 10 to rotate. During the rotation of the collision assembly 10, it will apply pressure to the vibrating ball 74, causing the vibrating ball 74 to deviate in the inner cavity of the deep groove 73. When the collision assembly 10 passes the vibrating ball 74, under the elastic force of the first spring 75, the vibrating ball 74 begins to return to its original position. Under the action of inertia, the vibrating ball 74 will continuously strike the inner wall of the deep groove 73 during the return process, causing the filter screen 71 to vibrate. This can not only shake off the scale in the filter holes 72, but also loosen the scale on the filter assembly 7, which is conducive to the cleaning assembly 9 scraping off the scale.
[0040] The adjustment assembly 8 includes a mounting bracket 81 fixedly installed on the inner wall of the filter cartridge 5 and a support plate 82 fixedly installed on the mounting bracket 81. Several limiting rods 83 are fixedly installed on one side wall of the support plate 82, and a sliding plate 84 is slidably mounted on each of the limiting rods 83. The sliding plate 84 and the support plate 82 are elastically connected by a second spring 87, with the limiting rods 83 located within the inner ring of the second spring 87. A sliding column 85 is fixedly installed on the other side wall of the sliding plate 84, and the sliding column 85 is slidably mounted on the support plate 82. The sliding column 85 and the support plate 82 can form a snap-fit relationship, similar to the snap-fit of an umbrella handle. When the water pressure inside the pipe 3 exerts pressure on the sliding plate 84 exceeding the range of the snap-fit and the elastic force of the second spring 87, the snap-fit relationship between the sliding column 85 and the support plate 82 is released, allowing the sliding plate 84, sliding column 85, and adjustment ring 86 to slide. This causes the cleaning component 9 to rotate 90° clockwise, achieving the cleaning effect. If the pressure exerted by the water pressure inside the pipe 3 on the sliding plate 84 does not exceed the range of the snap-fit and the elastic force of the second spring 87, the sliding plate 84, the sliding column 85, and the adjusting ring 86 cannot slide. When the scale on the filter screen 71 is cleaned and the pressure inside the pipe 3 returns to normal, the sliding plate 84, the sliding column 85, and the adjusting ring 86 return to their original positions under the elastic force of the second spring 87. At the same time, the snap-fit relationship between the sliding column 85 and the load-bearing plate 82 is restored. The adjusting ring 86 is fixedly installed at the end of the sliding column 85 away from the sliding plate 84. When a large amount of scale is generated on the filter screen 71 and the water pressure inside the pipe 3 increases, the water pressure pushes the sliding plate 84, the sliding column 85, and the adjusting ring 86 to move. The adjusting ring 86 will contact the cleaning component 9, causing the cleaning component 9 to rotate 90° clockwise to clean the scale on the surface of the filter screen 71.
[0041] The cleaning assembly 9 includes a rotating cylinder 91 rotatably mounted on one side wall of the filter screen 71 and a sealing connecting ring 93 fixedly mounted on the side wall of the rotating cylinder 91. The sealing connecting ring 93 is connected to the cleaning pump 6 through a pipe 3. Four cylinders 92 are fixedly mounted on the outer periphery of the rotating cylinder 91 and arranged in a circumferential array. Four cleaning plates 94 are also fixedly mounted on the outer periphery of the rotating cylinder 91. Each cleaning plate 94 has a slanted shovel 95 fixedly mounted on its side wall. The slanted shovel 95 is tightly fitted and slidably mounted on the side wall of the filter screen 71.
[0042] The side wall of the adjusting ring 86 is provided with a clearance groove 862, so that the sealing connection ring 93 and the pipe 3 will not restrict the movement distance of the adjusting ring 86. Four triangular arc plates 861 are fixedly installed at the edge of the side wall of the adjusting ring 86. The four triangular arc plates 861 are arranged in a circular array. A guide plate 863 is fixedly installed at the top of each of the four triangular arc plates 861.
[0043] Specifically, when there is a large amount of scale on the filter screen 71, the flow rate of water through the filter screen 71 decreases, causing the water pressure inside the pipe 3 to increase. When the pressure exerted by the water on the sliding plate 84 exceeds the bearing capacity of the snap-fit and the elastic force of the second spring 87, the snap-fit relationship between the sliding column 85 and the load-bearing plate 82 is released. The increased water pressure will push the sliding plate 84, the sliding column 85, and the adjusting ring 86 to move. During the movement of the adjusting ring 86, the triangular arc plate 861 on the adjusting ring 86 will apply pressure to the cylinder 92. Since the triangular arc plate 861 is triangularly set, under the action of the inclined surface of the triangular arc plate 861, the cylinder 92 will drive the rotating cylinder 91 to rotate clockwise. Rotating 90°, the rotating cylinder 91 simultaneously drives the cleaning plate 94 and the inclined shovel plate 95 to rotate 90° clockwise. During the rotation, the inclined shovel plate 95 scrapes up the scale on the filter screen 71. At this time, the cleaning plate 94 cooperates with the pipe 3 and the cleaning pump 6 to suck the scale scraped up by the inclined shovel plate 95 into the inner cavity of the cleaning plate 94. Through the above settings, the scale on the surface of the filter screen 71 can be scraped off and collected, thereby alleviating the problem of a large amount of scale remaining on the filter screen 71 after a period of use, which leads to a decrease in water flow and an increase in the pressure of the pipe 3. This not only extends the service life of the filter screen 71, but also reduces the frequency of cleaning and maintenance, saving manpower.
[0044] To address the technical problem of scale removal being collected in the irregularly shaped chamber 912 and collection chamber 942, affecting subsequent scale collection, such as... Figure 5 - Figure 13 As shown, the following preferred technical solutions are provided:
[0045] The rotating cylinder 91 includes a cylinder body 911, and an irregularly shaped cavity 912 is provided inside the cylinder body 911. A telescopic locking block 913 is slidably installed on the inner wall of the concave part at the lower end of the cylinder body 911. The telescopic locking block 913 and the cylinder body 911 are elastically connected by a third spring 914. The irregularly shaped cavity 912 is connected to the sealing connecting ring 93.
[0046] The cleaning plate 94 includes a housing 941 fixedly installed on the outer wall of the outer periphery of the cylinder 911. The housing 941 has a collection chamber 942 inside, which is connected to the irregularly shaped chamber 912. The housing 941 also has an air passage 944 inside, which is connected to the chamber where the telescopic snap block 913 is installed. The air passage 944 is isolated from the irregularly shaped chamber 912 and the collection chamber 942. A sealing plate 943 is slidably installed on the side wall of the collection chamber 942. The sealing plate 943 is elastically connected to the side wall of the air passage 944 by a fourth spring 945.
[0047] The filter screen 71 includes a filter screen body 711, an mounting ring 712 is fixedly installed on one side wall of the filter screen body 711, a rotating cylinder 91 is rotatably installed on the mounting ring 712, and the collision component 10 is rotatably disposed in the inner ring of the mounting ring 712.
[0048] The mounting ring 712 includes a ring body 7121, a limiting groove 7122 is provided on the ring body 7121, and a number of arc-shaped grooves 7123 are provided on the side wall of the limiting groove 7122. The arc-shaped grooves 7123 can form a snap-fit relationship with the telescopic snap-fit block 913.
[0049] Specifically, when there is too much residual scale on the filter screen 71, the water pressure in the pipe 3 increases. When the water pressure exceeds the withstand range of the snap-fit and the elastic force of the second spring 87, the increased water pressure will push the slide plate 84, the slide column 85, and the adjusting ring 86 to move. During the movement of the adjusting ring 86, it will apply pressure to the cylinder 92, causing the cylinder 92 to tend to rotate the cylinder 911. When the rotational force on the cylinder 911 is greater than the elastic force of the third spring 914 and the frictional force, and because the side wall of the arc groove 7123 is curved, when the rotational force reaches a sufficiently large value, the telescopic snap-fit block 913 will retract into the cylinder 911 and compress the gas inside the air passage 944. The air pressure inside the air passage 944 increases, and the air pressure is greater than the elastic force of the fourth spring 945. At this time, the sealing plate 943 is pushed upward, and the sealing plate 943 and the collection chamber 942... There are gaps between the side walls. After the inclined shovel 95 scrapes up the scale on the filter screen 71, the scale will be sucked into the inner cavity of the collection chamber 942 through the gap between the sealing plate 943 and the side wall of the collection chamber 942 under the action of the cleaning pump 6. Then, it will be drawn out by the cleaning pump 6 through the irregular chamber 912, the sealing connecting ring 93 and the pipe 3. When the cleaning component 9 rotates 90° clockwise, the scale remaining on the filter screen 71 will also be cleaned. At the same time, the telescopic locking block 913 moves to the position of another arc groove 7123. Under the elastic force of the third spring 914, the telescopic locking block 913 pops out and locks into the inner cavity of the arc groove 7123, realizing the positioning of the cleaning component 9. At the same time, the air pressure inside the air passage 944 decreases, and the sealing plate 943 returns to its original position under the elastic force of the fourth spring 945, sealing the collection chamber 942.
[0050] With the above setup, the scraped-off scale can be collected and extracted by the cleaning pump 6, preventing the scale from floating in the water and causing further blockage. After the cleaning pump 6 extracts the scale, it pumps descaling agent into the irregular cavity 912 and the collection chamber 942 through the pipe 3 and the sealing ring 93. Then, the cleaning pump 6 extracts the descaling agent and pumps in clean water to clean the irregular cavity 912 and the collection chamber 942, preventing the scale collected in the irregular cavity 912 and the collection chamber 942 from overflowing during the next scale removal, thus avoiding difficulties in descaling and exacerbating the blockage.
[0051] To address the technical problems of limescale being difficult to remove and hard-to-clean areas, such as... Figure 9 - Figure 12 As shown, the following preferred technical solutions are provided:
[0052] The collision assembly 10 includes a connecting rod 101 fixedly mounted on the cylinder 911, and a striking rod 102 is fixedly sleeved on the end of the connecting rod 101 away from the cylinder 911.
[0053] Specifically, when the cylinder 911 rotates, it synchronously drives the connecting rod 101 and the striking rod 102 to rotate. During the rotation, the striking rod 102 applies pressure to the vibrating ball 74 in the deep groove 73, causing the vibrating ball 74 to deviate in the inner cavity of the deep groove 73. When the striking rod 102 passes the vibrating ball 74, under the elastic force of the first spring 75, the vibrating ball 74 begins to return to its original position. Under the action of inertia, the vibrating ball 74 will continuously strike the inner wall of the deep groove 73 during the return process, causing the filter screen 71 to vibrate. This not only shakes off the scale in the filter holes 72, but also loosens the scale on the filter screen 71, which is beneficial for the inclined scraper plate 95 to scrape off the scale.
[0054] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0055] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A device for generating multi-stage small molecule cluster water, comprising a buffer tank (1) and a generating device (2) disposed on one side of the buffer tank (1), wherein the outlet at the bottom of the buffer tank (1) is connected to the generating device (2) via a pipe (3), and a pressure pump (4), a filter cartridge (5) and a cleaning pump (6) are respectively disposed on one side of the buffer tank (1), wherein the air inlet at the top of the buffer tank (1) is connected to the pressure pump (4) via a pipe (3), and the water inlet at the top of the buffer tank (1) is connected to the filter cartridge (5) via a pipe (3), characterized in that: The filter cylinder (5) has a filter screen assembly (7) and an adjustment assembly (8) fixedly installed on the inner wall of the inner cavity. A cleaning assembly (9) is rotatably installed on one side wall of the filter screen assembly (7). The cleaning assembly (9) is connected to the cleaning pump (6) through a pipe (3). A collision assembly (10) is fixedly installed on the side wall of the cleaning assembly (9) near the filter screen assembly (7). The collision assembly (10) is rotatably installed on the filter screen assembly (7). The collision assembly (10) is attached to the side wall of the filter screen assembly (7) on the other side. The filter screen assembly (7), the adjustment assembly (8), the cleaning assembly (9) and the collision assembly (10) are concentrically arranged. The filter assembly (7) includes a filter screen (71) fixedly installed on the inner wall of the filter cylinder (5). The filter screen (71) has a plurality of filter holes (72) and a plurality of deep grooves (73). A vibrating ball (74) is provided in the inner cavity of the deep groove (73). The vibrating ball (74) and the inner wall of the deep groove (73) are elastically connected by a first spring (75). The cleaning assembly (9) includes a rotating cylinder (91) rotatably mounted on one side wall of the filter screen (71) and a sealing connecting ring (93) fixedly mounted on the side wall of the rotating cylinder (91). The sealing connecting ring (93) is connected to the cleaning pump (6) through a pipe (3). Four cylinders (92) are fixedly mounted on the outer periphery of the rotating cylinder (91). The four cylinders (92) are arranged in a circular array. Four cleaning plates (94) are also fixedly mounted on the outer periphery of the rotating cylinder (91). Each cleaning plate (94) has a slanted shovel plate (95) fixedly mounted on its side wall. The slanted shovel plate (95) is tightly fitted and slidably mounted on the side wall of the filter screen (71). The rotating cylinder (91) includes a cylinder body (911), and an irregularly shaped cavity (912) is opened inside the cylinder body (911). A telescopic snap-fit block (913) is slidably installed on the inner wall of the concave part at the lower end of the cylinder body (911). The telescopic snap-fit block (913) and the cylinder body (911) are elastically connected by a third spring (914). The irregularly shaped cavity (912) is connected to the sealing connecting ring (93). The cleaning plate (94) includes a shell (941) fixedly installed on the outer wall of the outer periphery of the cylinder (911). The shell (941) has a collection chamber (942) inside, which is connected to the irregular cavity (912). The shell (941) also has an air passage (944) inside, which is connected to the cavity where the telescopic snap block (913) is installed. The air passage (944) is isolated from the irregular cavity (912) and the collection chamber (942). A sealing plate (943) is slidably installed on the side wall of the collection chamber (942). The sealing plate (943) and the side wall of the air passage (944) are elastically connected by a fourth spring (945). The collision assembly (10) includes a connecting rod (101) fixedly mounted on the cylinder (911), and a striking rod (102) is fixedly sleeved at one end of the connecting rod (101) away from the cylinder (911).
2. The device for generating multi-stage small molecule cluster water according to claim 1, characterized in that: The adjustment assembly (8) includes a mounting bracket (81) fixedly installed on the inner wall of the filter cylinder (5) and a load-bearing plate (82) fixedly installed on the mounting bracket (81). Several limiting rods (83) are fixedly installed on one side wall of the load-bearing plate (82). A sliding plate (84) is slidably mounted on the several limiting rods (83). The sliding plate (84) and the load-bearing plate (82) are elastically connected by a second spring (87). The limiting rods (83) are located in the inner ring of the second spring (87). A sliding column (85) is fixedly installed on the other side wall of the sliding plate (84). The sliding column (85) is slidably mounted on the load-bearing plate (82). The sliding column (85) and the load-bearing plate (82) can form a snap-fit relationship. An adjustment ring (86) is fixedly installed at the end of the sliding column (85) away from the sliding plate (84).
3. The device for generating multi-stage small molecule cluster water according to claim 2, characterized in that: The side wall of the adjusting ring (86) is provided with a clearance groove (862). Four triangular arc plates (861) are fixedly installed at the edge of the side wall of the adjusting ring (86). The four triangular arc plates (861) are arranged in a circular array. A guide plate (863) is fixedly installed at the top of each of the four triangular arc plates (861).
4. The device for generating multi-stage small molecule cluster water according to claim 1, characterized in that: The filter screen (71) includes a filter screen body (711), an mounting ring (712) is fixedly installed on one side wall of the filter screen body (711), a rotating cylinder (91) is rotatably installed on the mounting ring (712), and a collision component (10) is rotatably disposed in the inner ring of the mounting ring (712).
5. The device for generating multi-stage small molecule cluster water according to claim 4, characterized in that: The mounting ring (712) includes a ring body (7121), a limiting groove (7122) is provided on the ring body (7121), and a number of arc-shaped grooves (7123) are provided on the side wall of the limiting groove (7122). The arc-shaped grooves (7123) and the telescopic snap-fit block (913) can form a snap-fit relationship.