Disinfection and filtration integrated equipment for mineral water production
The mineral water production equipment, which uses floating components to drive the sealing plate and L-shaped racks for linkage, solves the problems of insufficient mixing and large equipment footprint caused by the separation of disinfection and filtration. It achieves full contact between disinfectant and water and compact equipment, improving disinfection efficiency and production continuity.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- LEQI HEALTH IND (JIANGSU) CO LTD
- Filing Date
- 2026-03-16
- Publication Date
- 2026-04-21
AI Technical Summary
In existing mineral water production, the separate setup of disinfection and filtration methods leads to insufficient mixing of disinfectant and water, unstable disinfection effect, large equipment footprint, and complex pipeline connections, which is not conducive to the intensive use of production space.
The floating component automatically drives the sealing plate to move as the water level rises and falls. Combined with the linkage between the L-shaped rack and the rotating component, the disinfectant in the storage cylinder is reciprocated and disturbed during the rise and fall of the water level, which enhances the disinfection and adsorption effect and integrates the disinfection and filtration functions into the same device.
It significantly extends the contact time between the disinfectant and the water, improves disinfection efficiency and adsorption uniformity, reduces the equipment footprint, and enhances the continuity and automation of the production process.
Smart Images

Figure CN121894772A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of water treatment technology, and in particular relates to an integrated disinfection and filtration device for mineral water production. Background Technology
[0002] In the mineral water production process, disinfection and filtration are the core steps to ensure water quality safety. Current treatment methods typically separate disinfection and filtration into two independent operations: first, the raw water is treated with disinfectants (such as chlorine tablets or ozone granules) or adsorbents (activated carbon granules) for sterilization and adsorption; then, suspended solids, impurities, and some microorganisms are removed through filtration equipment.
[0003] However, the above step-by-step processing method has the following shortcomings in practical applications: In existing disinfection and filtration methods, the mixing of disinfectants or adsorbents with water is often insufficient, leading to sedimentation or uneven local concentrations of disinfectants or adsorbents. This results in unstable disinfection or adsorption effects, especially when the water flow rate changes, making it difficult to guarantee the effective contact time between the disinfectant or adsorbent and the water. At the same time, disinfection and filtration equipment are often set up separately, resulting in a large production line footprint and complex pipeline connections, which is not conducive to the intensive use of production space. Summary of the Invention
[0004] The purpose of this invention is to provide an integrated disinfection and filtration device for mineral water production that can automatically drive the sealing plate to move by a floating component as the water level rises and falls, control the opening and closing state of the water flow channel, and combine the linkage between the L-shaped rack and the rotating component to make the disinfectant in the storage cylinder reciprocate and disturb during the rise and fall of the water level, which significantly prolongs the contact time between the disinfectant and the water and enhances the disinfection and adsorption effect.
[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution: The present invention is an integrated disinfection and filtration device for mineral water production, comprising a box assembly and a disinfection adsorption filtration assembly; the box assembly includes a box body, a floating component slidingly disposed inside the box body, and a filter screen inserted and fitted inside the box body; the disinfection adsorption filtration assembly includes a treatment component installed inside the box body, two sealing components slidingly disposed inside the box body, and a rotating component rotating inside the treatment component; the box body includes a box body, and the box body has a through-hole opening near the top on its two opposite outer sides for disinfection adsorption filtration. The component has a matching mounting port. A vertical pipe is connected to the top of the outer shell of the housing. A connecting cover is fixed to the inner wall of the vertical pipe above the housing. A guide pipe that slides with the floating component is connected to the center of the connecting cover. The processing component includes a processing frame that can be detachably installed inside the mounting port. A U-shaped plate is fixed to one outer side of the processing frame. Guide channels are fixed to the two inner sides of the U-shaped plate. A displacement plate slides between the two guide channels. An L-shaped rack that meshes with the rotating component is fixed to one side of the displacement plate. A U-shaped lifting plate that slides with the floating component is fixed to the other side of the displacement plate.
[0006] Furthermore, a number of guide rods are fixed to the top of the outer shell of the box; the floating component includes a sliding rod that slides inside the guide tube, and a special-shaped top plate that slides through the number of guide rods is fixed to the top of the sliding rod. A number of first springs that are respectively sleeved on the number of guide rods are fixed to the bottom of the special-shaped top plate, and the bottom of the first springs is fixedly connected to the top of the outer shell of the box.
[0007] Furthermore, several floating rods are fixed in a circular array near the bottom of the sliding rod, and a buoyancy ball is fixed at the bottom of each floating rod. Two symmetrical diagonal rods are fixed in a circular array near the bottom of the sliding rod, and a first sliding ball is fixed at the end of each diagonal rod. A first flow groove is provided through both opposite sides of the processing frame, and several diagonal rods are fixed in a linear array at the top of the processing frame. The sealing component includes a push plate that slides through the diagonal rods, and the bottom of the push plate slides in conjunction with the first sliding ball. A sealing plate that fits against the inner wall of the processing frame is fixed at the bottom of the push plate, and a second flow groove that is offset from the first flow groove is provided through the side of the sealing plate.
[0008] Furthermore, the top of the push plate is fixed with several second springs respectively sleeved on the inclined rods in a linear array, and the ends of the second springs are fixedly connected to the top of the processing frame; the bottom of the U-shaped plate is fixed with two vertical rods that slide through and are slidably fitted on the displacement plate, and a third spring sleeved on the vertical rods is fixed between the displacement plate and the U-shaped plate; an extension plate is fixed on one side of the irregular top plate, and several L-shaped extension rods are fixed on the side of the extension plate, and the ends of the L-shaped extension rods are fixed with second sliding balls that fit against the top of the U-shaped lifting plate; several support rods are fixed on the bottom of the processing frame, and support covers adapted to the buoyancy balls are fixed on the top of the support rods; and several turbulence flow plates are equidistantly arranged on the inner wall of the storage cylinder.
[0009] Furthermore, the processing rack has rotating holes through both opposite sides; the rotating component includes a rotating shaft sealed and rotated on the rotating hole, the end of the rotating shaft is fixed outside the housing with a rotating gear meshing with an L-shaped rack, a storage cylinder is fixed on the circumferential side of the rotating shaft, the two ends of the storage cylinder are closed, an arc-shaped opening is opened on the outer circumferential side of the storage cylinder, two first ear plates are fixed on the inner wall of the arc-shaped opening, an arc-shaped plate is snapped onto the arc-shaped opening, two second ear plates are fixed at both ends of the arc-shaped plate, and a water inlet hole is through the surface of the storage cylinder and the arc-shaped plate.
[0010] Furthermore, a rectangular opening is provided through one outer side of the housing below the mounting port, and an L-shaped mounting plate is detachably snapped into the rectangular opening. Slanted panels are fixed to the two inner side walls of the housing below the processing rack, and a slanted sliding groove is fixed to one side of the slanted panel for sliding with the filter screen.
[0011] Furthermore, a guide plate is fixedly installed on the inner wall of the box below the two inclined panels and fixedly installed at the bottom of the two inclined panels; a water outlet pipe is connected to one outer side of the box below the rectangular opening; and a water inlet pipe is connected to the top of the box.
[0012] Furthermore, solenoid valves are provided on the outer periphery of both the water outlet pipe and the water inlet pipe; a vertical plate is fixed to the top of the outer shell of the box, a brake motor is fixed to the side of the vertical plate, a swing arm is fixed to the output shaft of the brake motor, the end of the swing arm is attached to the bottom of the irregular top plate and is adapted to forcibly drive the irregular top plate to rise to release the buoyancy ball from its supported state, and a controller electrically connected to the solenoid valves and the brake motor is fixed to one outer side of the box.
[0013] The present invention has the following beneficial effects: 1. The present invention automatically drives the sealing plate to move by the floating part as the water level rises and falls, controls the opening and closing state of the water flow channel, and combines the linkage between the L-shaped rack and the rotating part to make the disinfectant in the storage cylinder reciprocate and disturb during the rise and fall of the water level, which significantly prolongs the contact time between the disinfectant and the water body and enhances the disinfection and adsorption effect.
[0014] 2. During use, the rise and fall of the water level causes the disinfectant in the storage tank to be disturbed in opposite directions, which makes the disinfectant fully mixed with the water, avoids disinfectant deposition or uneven local concentration, and improves disinfection efficiency and adsorption uniformity.
[0015] 3. This invention integrates disinfection and filtration functions into the same device. Through the coordinated work of the housing component and the disinfection adsorption filtration component, the disinfection, adsorption and filtration process of mineral water raw materials is realized, reducing the equipment footprint and improving the continuity and automation level of the production process. Attached Figure Description
[0016] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of an integrated disinfection and filtration device for mineral water production.
[0018] Figure 2 This is a schematic diagram of the cross-sectional structure of the housing assembly.
[0019] Figure 3 This is a schematic diagram of the structure of a disinfection adsorption filtration unit.
[0020] Figure 4 This is a structural schematic diagram of the box-shaped component.
[0021] Figure 5 This is a schematic diagram of the cross-sectional structure of the box-shaped component.
[0022] Figure 6 This is a schematic diagram of the filter screen.
[0023] Figure 7 This is a schematic diagram of the floating component.
[0024] Figure 8 This is a schematic diagram of the processing component.
[0025] Figure 9 This is a top view of the component being processed.
[0026] Figure 10 This is a schematic diagram of the sealing component.
[0027] Figure 11 This is a schematic diagram of the rotating component.
[0028] Figure 12 This is a side view of the rotating component.
[0029] Figure 13 This is a schematic diagram of the cross-sectional structure of the rotating component.
[0030] The attached diagram lists the components represented by each number as follows: 1-Box assembly, 2-Disinfection adsorption filtration assembly, 3-Box component, 4-Floating component, 5-Filter screen, 6-Processing component, 7-Sealing component, 8-Rotating component, 301-Box body, 302-Mounting port, 303-Vertical pipe, 304-Connecting cover, 305-Guide pipe, 306-Guide rod, 307-Rectangular opening, 308-L-shaped mounting plate, 309-Slanted panel, 310-Slanted slide, 311-Guide plate, 312-Outlet pipe, 313-Inlet pipe, 314-Vertical plate, 315-Brake motor, 316-Swing arm, 317-Controller, 401-Slide rod, 402-Irregular top plate, 403-First spring, 404-Floating rod, 405-Buoyancy ball, 406-Slanted rod, 407 - First slider, 408-Extension plate, 409-L-shaped extension rod, 410-Second slider, 601-Processing frame, 602-U-shaped plate, 603-Guide channel, 604-Displacement plate, 605-L-shaped rack, 606-U-shaped lifting plate, 607-First flow channel, 608-Angled rod, 609-Vertical rod, 610-Third spring, 611-Support rod, 612-Support cover, 613-Rotating hole, 701-Push plate, 702-Blocking plate, 703-Second flow channel, 704-Second spring, 801-Rotating shaft, 802-Rotating gear, 803-Storage cylinder, 804-First ear plate, 805-Arc plate, 806-Second ear plate, 807-Water inlet, 808-Breakthrough plate. Detailed Implementation
[0031] 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.
[0032] For a specific implementation example, please refer to Implementation Example 1. Figures 1-13This invention relates to an integrated disinfection and filtration device for mineral water production, comprising a housing assembly 1 and a disinfection adsorption filtration assembly 2. The housing assembly 1 includes a housing component 3, a floating component 4 slidingly disposed inside the housing component 3, and a filter screen 5 inserted and fitted inside the housing component 3. The disinfection adsorption filtration assembly 2 includes a processing component 6 installed inside the housing component 3, two sealing components 7 slidingly disposed inside the housing component 3, and a rotating component 8 rotating inside the processing component 6. The housing component 3 includes a housing 301, with mounting openings 302 on its two outer sides near the top, adapted to the disinfection adsorption filtration assembly 2. A vertical pipe 303 connects to the top of the housing 301, and the inner wall of the vertical pipe 303 is fixed above the housing 301. There is a connecting cover 304, and a guide tube 305 that slides with the floating component 4 is connected to the center of the connecting cover 304; the processing component 6 includes a processing frame 601 that is detachably installed inside the installation port 302. A U-shaped plate 602 is fixed to one outer side of the processing frame 601. Guide channels 603 are fixed to the two inner sides of the U-shaped plate 602. A displacement plate 604 is slidably arranged between the two guide channels 603. An L-shaped rack 605 that meshes with the rotating component 8 is fixed to one side of the displacement plate 604. A U-shaped lifting plate 606 that slides with the floating component 4 is fixed to the other side of the displacement plate 604; several guide rods 306 are fixed to the top of the outer side of the box 301; the floating component 4 includes a sliding rod 401 that slides inside the guide tube 305. A shaped top plate 402, which slides through several guide rods 306, is fixed to the top of the 401. Several first springs 403, each sleeved on one of the guide rods 306, are fixed to the bottom of the shaped top plate 402. The bottom of the first springs 403 is fixedly connected to the top of the outer side of the box 301. Several floating rods 404 are fixed in a circular array near the bottom of the sliding rod 401. A buoyancy ball 405 is fixed to the bottom of the floating rod 404. Two symmetrical inclined rods 406 are fixed to the sides of the sliding rod 401 near the bottom. A first sliding ball 407 is fixed to the end of the inclined rod 406. A first flow groove 607 is opened through both opposite sides of the processing rack 601. Several inclined rods 608 are fixed in a linear array at the top of the inner side of the processing rack 601. The sealing component 7 includes... A push plate 701 is slidably mounted on the inclined rod 608, and the bottom of the push plate 701 is slidably engaged with the first sliding ball 407. A sealing plate 702 is fixed at the bottom of the push plate 701 and fits against the inner wall of the processing frame 601. A second flow groove 703 is opened through the side of the sealing plate 702 and is offset from the first flow groove 607. Several second springs 704 are fixed in a linear array at the top of the push plate 701 and are respectively sleeved on the inclined rod 608. The ends of the second springs 704 are fixedly connected to the inner top of the processing frame 601. Two vertical rods 609 are fixed at the bottom of the U-shaped plate 602 and are slidably engaged with the displacement plate 604. A third spring 610 is fixed between the displacement plate 604 and the U-shaped plate 602 and sleeved on the vertical rods 609.An extension plate 408 is fixed to one side of the irregular top plate 402. Several L-shaped extension rods 409 are fixed to the side of the extension plate 408. A second sliding ball 410 that fits against the inner top of the U-shaped lifting plate 606 is fixed to the end of the L-shaped extension rod 409. Several support rods 611 are fixed to the bottom of the processing rack 601. A support cover 612 that matches the buoyancy ball 405 is fixed to the top of the support rods 611. Several turbulence plates 808 are equidistantly arranged on the inner wall of the storage cylinder 803. Rotation holes 613 are opened through the opposite sides of the processing rack 601. The rotating component 8 includes a seal. A rotating shaft 801 is mounted on the rotating hole 613. At the end of the rotating shaft 801, outside the housing 301, a rotating gear 802 is fixed, meshing with an L-shaped rack 605. A storage cylinder 803 is fixed to the circumferential side of the rotating shaft 801. The storage cylinder 803 is closed at both ends. An arc-shaped opening is formed on the outer circumferential side of the storage cylinder 803. Two first ear plates 804 are fixed to the inner wall of the arc-shaped opening. An arc-shaped plate 805 is snapped onto the arc-shaped opening. Two second ear plates 806 are fixed to both ends of the arc-shaped plate 805. A water inlet hole 807 is formed through the surfaces of the storage cylinder 803 and the arc-shaped plate 805.
[0033] The working principle of this embodiment is as follows: When the integrated device is in a waterless or low water level state, the floating component 4 is in a low position. In this state, the buoyancy ball 405 in the floating component 4 is in a low position under the action of gravity, and is supported by the support cover 612. At the same time, the first spring 403 is in the initial state, the irregular top plate 402 is in a low position, the sealing plate 702 is in a low position, the second flow channel 703 is misaligned with the first flow channel 607, and the flow channel is closed. Later, when disinfection and filtration are carried out, the mineral water raw material passes through the inside of the box 301, and as the water level gradually rises, the buoyancy ball 405 begins to float inside the box 301 due to buoyancy (the buoyancy ball 405 in the mineral water raw material is greater than the sum of the elastic forces of the first spring 403, the second spring 704, and the third spring 610. Specifically, the maximum buoyancy Fmax generated by the displaced water volume when the buoyancy ball 405 is completely submerged satisfies the relationship: Fmax>∑kiΔxi (where ki (where Δxi is the stiffness of each spring and Δxi is the maximum compression or tension deformation of each spring), and the upward limit stroke of the irregular top plate 402 is less than the vertical displacement required for the buoyancy ball 405 to be completely submerged, so that it can be stabilized during the rise of water level and rise with buoyancy to prevent the mechanism from jamming due to excessive spring resistance), and drive the floating rod 404 and the sliding rod 401 to slide upward along the guide tube 305. The irregular top plate 402 at the top of the sliding rod 401 rises between several guide rods 306, thereby stretching the first spring 403. When the sliding rod 401 rises, the first sliding ball 407 at the end of the inclined rod 406 slides at the bottom of the push plate 701, pushing the push plate 701 along the inclined rod 406. Slide rod 608 upwards to compress second spring 704. Push plate 701 rises, driving sealing plate 702 to rise, so that second flow channel 703 gradually overlaps with first flow channel 607. At this time, water flow channel opens, and disinfected water can flow downwards. Throughout the process, water flow channel is gradually opened by buoyancy, thereby increasing the effective contact time between disinfectant (disinfectant or adsorbent (such as chlorine tablets, ozone particles) or adsorbent (such as activated carbon particles)) inside storage cylinder 803 and mineral water raw material, increasing the disinfection or adsorption effect of the whole process, so as to carry out subsequent suspended solids and impurities filtration process; As the internal water level gradually rises, the aforementioned irregularly shaped top plate 402 synchronously drives the extension plate 408 and the L-shaped extension rod 409 to rise. At this time, the second sliding ball 410 at the end of the L-shaped extension rod 409 begins to push the U-shaped lifting plate 606 upward, causing the displacement plate 604 to rise along the guide channel 603 and stretching the third spring 610 (the first spring 403, the second spring 704, and the third spring 610 are all stainless steel springs), causing the L-shaped rack 605 to rise, thereby driving the rotating gear 802 to rotate. In turn, the rotation of the rotating gear 802 drives the rotating shaft 801 to rotate in a sealed manner inside the rotating hole 613 (the rotational sealing process between the rotating shaft 801 and the rotating hole 613 can be achieved by using a sealing ring or a mechanical seal). The structure is rotated and sealed, causing the disinfectant or adsorbent inside the storage cylinder 803 to agitate. This allows the mineral water entering the storage cylinder 803 through the water inlet 807 to come into full contact with the disinfectant or adsorbent (the storage cylinder 803 can hold disinfectants (such as chlorine tablets, ozone particles) or adsorbents (such as activated carbon particles). The diameters of the chlorine tablets, ozone particles, and activated carbon particles are all larger than the diameter of the water inlet 807, and the storage cylinder 803 is always not completely filled. During use, the disinfectant and adsorbent can be used individually or placed in layers inside the storage cylinder 803) to achieve disinfection or adsorption treatment and increase the disinfection or adsorption treatment effect. Similarly, when the treatment rack 601 (the treatment rack 601 is the bottom) is in full contact with the disinfectant or adsorbent, the disinfection or adsorption treatment effect is increased. As the water level inside the closed frame-shaped box gradually decreases, the buoyancy ball 405, under the influence of buoyancy, begins to float downwards inside the box 301, causing the floating rod 404 and the sliding rod 401 to slide downwards along the guide tube 305. (During this downward sliding process, the stretched first spring 403 begins to reset, and the auxiliary floating rod 404 and the sliding rod 401 slide downwards along the guide tube 305. At the same time, the compressed second spring 704 begins to reset, causing the push plate 701 to slide downwards along the inclined rod 608. The descent of the push plate 701 causes the sealing plate 702 to descend, gradually misaligning the second flow channel 703 with the first flow channel 607, thereby closing the water flow channel. This increases the interaction between the disinfectant or adsorbent inside the storage cylinder 803 and the mineral water raw material in the subsequent process.) (This process, which involves maximizing the effective contact time between particles, is repeated to improve the disinfection and adsorption effect throughout the process.) The irregularly shaped top plate 402 at the top of the slide bar 401 descends between several guide rods 306, simultaneously driving the extension plate 408 and the L-shaped extension rod 409 to descend. At this time, under the reset action of the stretched third spring 610, the L-shaped rack 605 descends, thereby driving the rotating gear 802 to rotate in the opposite direction. The reverse rotation of the rotating gear 802 then drives the rotating shaft 801 to rotate in the reverse direction within the rotating hole 613, causing the disinfectant or adsorbent inside the storage cylinder 803 to be disturbed in the opposite direction. This allows the mineral water raw material entering the storage cylinder 803 through the water inlet 807 to fully contact the disinfectant or adsorbent inside.By repeatedly agitating the rising and falling water level, the disinfectant or adsorbent inside the storage cylinder 803 is agitated (to enhance the agitation effect, a small turbulence plate 808 can be installed on the inner wall of the storage cylinder 803; when the storage cylinder 806 rotates forward and backward, the turbulence plate 808 causes the disinfectant or adsorbent particles to tumble, promoting full contact with the mineral water raw material), thus achieving disinfection and adsorption treatment and increasing the effectiveness of the disinfection and adsorption treatment.
[0034] Specific embodiment two, based on specific embodiment one, such as Figures 1-13 A rectangular opening 307 is provided through one outer side of the box 301 below the mounting port 302. An L-shaped mounting plate 308 is detachably snapped into the rectangular opening 307. Sloping panels 309 are fixed to both inner side walls of the box 301 below the processing rack 601. A sloping groove 310 is fixed to one side of each sloping panel 309, sliding along the filter screen 5. A guide plate 311 is fixed to the bottom of the two sloping panels 309 on the inner wall of the box 301 below the two sloping panels 309. A water outlet pipe 312 is connected to one outer side of the box 301 below the rectangular opening 307. A water inlet pipe 313 is connected to the top of the housing 301; a solenoid valve is provided on the outer periphery of both the water outlet pipe 312 and the water inlet pipe 313; a vertical plate 314 is fixed to the top of the housing 301, a brake motor 315 is fixed to the side of the vertical plate 314, a swing arm 316 is fixed to the output shaft of the brake motor 315, the end of the swing arm 316 is attached to the bottom of the irregular top plate 402 and is suitable for forcibly driving the irregular top plate 402 to rise to release the support state of the buoyancy ball 405, and a controller 317 electrically connected to the solenoid valve and the brake motor 315 is fixed to one outer side of the housing 301.
[0035] The working principle of this embodiment is as follows: First, the solenoid valve on the water inlet pipe 313 is opened by the controller 317 (the specific process of the controller 317 opening the solenoid valve is existing technology and will not be described in detail here). The mineral water raw material enters the tank 301 from the water inlet pipe 313. At this time, the water flow first enters the area where the treatment rack 601 is located for disinfection and adsorption reaction treatment. After the disinfection and adsorption reaction treatment, the water continues to flow downward. After being guided by the inclined panel 309, it enters the filter screen 5 for further filtration to remove suspended solids and impurities. The filtered water is collected by the guide plate 311 and finally discharged from the water outlet pipe 312 (during the discharge process, the solenoid valve on the water outlet pipe 312 is opened by the controller 317. The specific process of the controller 317 opening the solenoid valve is existing technology and will not be described in detail here) for subsequent filling. During use, when the filter screen 5 needs to be replaced, it can be removed from the rectangular opening 307 by disassembling the L-shaped mounting plate 308 for cleaning or replacement. The storage cylinder 803 inside the processing rack 601 can also be replenished with disinfectant by disassembling the arc-shaped plate 805. During replenishment, the controller 317 first activates the brake motor 315 to drive the swing arm 316 to rotate. The rotation of the swing arm 316 causes the irregularly shaped top plate 402 to gradually rise, thereby causing several buoyancy balls 405 to detach from the support cover 612, thus supporting the buoyancy balls 405. The process is terminated to avoid obstruction during the disassembly and installation of the disinfection adsorption filtration component 2 later. When disassembling and installing the disinfection adsorption filtration component 2, the external nut on the threaded connection to the threaded post is unscrewed, and a pushing force is simultaneously applied to the treatment frame 601, so that the entire disinfection adsorption filtration component 2 gradually detaches from the installation port 302, so that the disinfectant inside the storage cylinder 803 can be added and replaced in a timely manner later. The storage cylinder 803 inside the treatment frame 601 can be replenished with disinfectant by disassembling the arc plate 805. The arc plate 805 is connected to the storage cylinder 803 through the first ear plate 804 and the second ear plate 806, which is convenient for disassembly and assembly.
[0036] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0037] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
Claims
1. An integrated disinfection and filtration device for mineral water production, comprising a housing assembly (1) and a disinfection adsorption filtration assembly (2); characterized in that: The box assembly (1) includes a box body (3), a floating part (4) that slides inside the box body (3), and a filter screen (5) that is inserted and fitted inside the box body (3). The disinfection adsorption filtration assembly (2) includes a treatment part (6) installed inside the box body (3), two sealing parts (7) that slide inside the box body (3), and a rotating part (8) that rotates inside the treatment part (6). The box component (3) includes a box body (301). The box body (301) has an installation port (302) that is adapted to the disinfection adsorption and filtration water assembly (2) through the upper part of the two outer sides. The top of the box body (301) is connected to a vertical pipe (303). The inner wall of the vertical pipe (303) is fixed with a connecting cover (304) above the box body (301). The center of the connecting cover (304) is connected to a guide pipe (305) that slides with the floating component (4). The processing component (6) includes a processing frame (601) that can be detachably installed inside the installation port (302). A U-shaped plate (602) is fixed on one outer side of the processing frame (601). Guide channels (603) are fixed on both inner sides of the U-shaped plate (602). A displacement plate (604) is slidably disposed between the two guide channels (603). An L-shaped rack (605) that meshes with the rotating component (8) is fixed on one side of the displacement plate (604). A U-shaped lifting plate (606) that slides with the floating component (4) is fixed on the other side of the displacement plate (604).
2. The integrated disinfection and filtration equipment for mineral water production according to claim 1, characterized in that, Several guide rods (306) are fixed to the top of the outer side of the box (301). The floating component (4) includes a sliding rod (401) that slides inside the guide tube (305). The top of the sliding rod (401) is fixed with a special-shaped top plate (402) that slides through a number of guide rods (306). The bottom of the special-shaped top plate (402) is fixed with a number of first springs (403) that are respectively sleeved on a number of guide rods (306). The bottom of the first springs (403) is fixedly connected to the top of the outer side of the box (301).
3. The integrated disinfection and filtration equipment for mineral water production according to claim 2, characterized in that, The slide bar (401) has several floating rods (404) fixed in a circular array near the bottom on its periphery. A buoyancy ball (405) is fixed at the bottom of the floating rod (404). Two symmetrical inclined rods (406) are fixed on the periphery of the slide bar (401) near the bottom. A first sliding ball (407) is fixed at the end of the inclined rod (406). The processing rack (601) has a first flow groove (607) through both opposite sides, and several inclined rods (608) are fixed in a linear array at the top of the processing rack (601). The sealing component (7) includes a push plate (701) that slides through the inclined rod (608), and the bottom of the push plate (701) slides in cooperation with the first sliding ball (407). The bottom of the push plate (701) is fixed with a sealing plate (702) that fits against the inner wall of the processing rack (601). The side of the sealing plate (702) is provided with a second flow groove (703) that is misaligned with the first flow groove (607).
4. The integrated disinfection and filtration equipment for mineral water production according to claim 3, characterized in that, The push plate (701) has several second springs (704) fixed in a linear array on its top, which are respectively sleeved on the inclined rod (608). The ends of the second springs (704) are fixedly connected to the top of the processing frame (601). Two vertical rods (609) are fixed inside the bottom of the U-shaped plate (602) and are slidably fitted on the displacement plate (604). A third spring (610) is fixed between the displacement plate (604) and the U-shaped plate (602) and sleeved on the vertical rods (609). An extension plate (408) is fixed to one side of the irregular top plate (402), and several L-shaped extension rods (409) are fixed to the side of the extension plate (408). A second sliding ball (410) that fits against the top of the U-shaped lifting plate (606) is fixed to the end of the L-shaped extension rod (409). The bottom of the processing rack (601) is fixed with several support rods (611), and the top of the support rods (611) is fixed with a support cover (612) that is compatible with the buoyancy ball (405). The inner wall of the storage cylinder (803) is provided with several turbulence plates (808) at equal intervals around the circumference.
5. The integrated disinfection and filtration equipment for mineral water production according to claim 4, characterized in that, The processing rack (601) has rotating holes (613) through both opposite sides. The rotating component (8) includes a rotating shaft (801) sealed and mounted on a rotating hole (613). The end of the rotating shaft (801) is fixed outside the housing (301) with a rotating gear (802) that meshes with an L-shaped rack (605). A storage cylinder (803) is fixed on the circumferential side of the rotating shaft (801). The two ends of the storage cylinder (803) are closed. An arc-shaped opening is provided on the outer circumferential side of the storage cylinder (803). Two first ear plates (804) are fixed on the inner wall of the arc-shaped opening. An arc-shaped plate (805) is snapped onto the arc-shaped opening. Two second ear plates (806) are fixed at both ends of the arc-shaped plate (805). A water inlet hole (807) is provided through the surface of the storage cylinder (803) and the arc-shaped plate (805).
6. The integrated disinfection and filtration equipment for mineral water production according to claim 5, characterized in that, A rectangular opening (307) is provided on one outer side of the housing (301) below the mounting port (302). An L-shaped mounting plate (308) is detachably attached inside the rectangular opening (307). Sloping panels (309) are fixed on both inner side walls of the housing (301) below the processing rack (601). A sloping groove (310) that slides with the filter screen (5) is fixed on one side of the sloping panel (309).
7. The integrated disinfection and filtration equipment for mineral water production according to claim 6, characterized in that, The inner wall of the box (301) is fixed with a guide plate (311) below the two inclined panels (309) and fixed to the bottom of the two inclined panels (309). A water outlet pipe (312) is connected to one outer side of the box (301) below the rectangular opening (307). A water inlet pipe (313) is connected to the top of the outer side of the box (301).
8. The integrated disinfection and filtration equipment for mineral water production according to claim 7, characterized in that, Solenoid valves are provided on the outer periphery of the water outlet pipe (312) and the water inlet pipe (313); A vertical plate (314) is fixed to the top of the box (301), and a brake motor (315) is fixed to the side of the vertical plate (314). A swing arm (316) is fixed to the output shaft of the brake motor (315). The end of the swing arm (316) is attached to the bottom of the irregular top plate (402) and is suitable for forcibly driving the irregular top plate (402) to rise to release the support state of the buoyancy ball (405). A controller (317) that is electrically connected to the solenoid valve and the brake motor (315) is fixed to one outer side of the box (301).
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An automatic pressurization device for oil production equipment
CN122215696A