Intelligent pipe network pressure-superposed water supply integrated machine

By designing isolation support plates and rotating components, the problem of prolonged water outages during the disassembly and assembly of adsorption components is solved, enabling waterless disassembly and assembly and convenient replacement, thereby improving equipment operating efficiency and user experience.

WO2026021089A1PCT designated stage Publication Date: 2026-01-29SHANGHAI CHENFEI WATER TECHNOLOGY CO LTD
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Patent Information

Application Number
PCT/CN2025/102774
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-07-24
Filing Date
2025-06-23
Publication Date
2026-01-29

AI Technical Summary

Technical Problem

In existing intelligent integrated water supply systems with superimposed pressure systems, the disassembly and assembly of the adsorption components is cumbersome, leading to prolonged water outages and affecting residents' lives.

Method used

The design employs an isolation support plate and a rotating component. By rotating the isolation support plate, the connection between the inlet pipe and different outlet pipes can be switched, enabling the adsorption component to be disassembled and assembled without interrupting water supply. Limiting strips and switching blocks further enhance the ease of disassembly and assembly.

Benefits of technology

It enables the disassembly and assembly of the adsorption components without water interruption, reduces the possibility of prolonged water outages, and improves the convenience of adsorption layer replacement and equipment operation.

✦ Generated by Eureka AI based on patent content.

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    Figure CN2025102774_29012026_PF_FP_ABST
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Abstract

The present application relates to the technical field of water supply devices, and provides an intelligent pipe network pressure-superposed water supply integrated machine, comprising a device body and a filter cylinder, wherein the filter cylinder is connected to a water inlet pipe, a first water outlet pipe, and a second water outlet pipe, the filter cylinder is provided with adsorption assemblies, an outlet end of the first water outlet pipe and an outlet end of the second water outlet pipe are both connected to an inlet end of the device body; an isolation support plate is rotatably mounted in the filter cylinder, the isolation support plate divides the interior of the filter cylinder into a first chamber, a second chamber, and a third chamber, and the first chamber is in communication with the second chamber; and the filter cylinder is provided with a rotating assembly, when the first chamber rotates to be in communication with the first water outlet pipe, the water inlet pipe is in communication with the second chamber, and when the first chamber rotates to be in communication with the water inlet pipe, the first water outlet pipe is in communication with the third chamber. The intelligent pipe network pressure-superposed water supply integrated machine of the present application can reduce the possibility of long-time water supply stoppage caused by the removal and mounting of an adsorption assembly.
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Description

Intelligent pipe network pressure superimposed water supply integrated machine TECHNICAL FIELD

[0001] The present application relates to the technical field of water supply equipment, in particular to an intelligent pipe network pressure superimposed water supply integrated machine. BACKGROUND

[0002] The intelligent pipe network pressure superimposed water supply integrated machine is an advanced system that integrates modern technology and traditional water supply equipment. This equipment uses a smart control system to monitor and adjust water supply pressure in real time to meet different water demand at different times, achieving an efficient and energy-saving water supply method. This equipment is widely used in urban water supply, industrial water supply and other fields, improving the efficiency and reliability of the water supply system and reducing energy consumption and water waste.

[0003] In the prior art, in order to ensure that the water entering the intelligent pipe network pressure superimposed water supply integrated machine (hereinafter referred to as the equipment main body) reaches a certain standard, an adsorption assembly is usually provided at the inlet end of the equipment main body; the adsorption assembly includes a hole plate and an adsorption layer, the hole plate is provided with two and is installed in the water inlet pipeline of the equipment main body, the adsorption layer is usually activated carbon particles, which are filled between the two hole plates to adsorb impurities in the water and prevent impurities or particles from damaging the equipment main body. However, in such an equipment main body, the adsorption layer is a consumable, and when the adsorption assembly needs to be disassembled to replace the adsorption layer, the disassembly process of the adsorption assembly is relatively cumbersome and needs to be water-stopped for a long time, which causes inconvenience to the daily life of residents, so further improvement is needed. SUMMARY

[0004] In order to reduce the possibility of long-term water stop during the disassembly process of the adsorption assembly, the present application provides an intelligent pipe network pressure superimposed water supply integrated machine.

[0005] The intelligent pipe network pressure superimposed water supply integrated machine provided by the present application adopts the following technical scheme:

[0006] The utility model provides a kind of intelligent pipe network superimposed water supply integrated machine, including equipment main body and filter cartridge, the filter cartridge is connected with water inlet pipe, first water outlet pipe and second water outlet pipe respectively, the filter cartridge is located the import end of first water outlet pipe, the import end of second water outlet pipe is equipped with adsorption component, the export end of first water outlet pipe, the export end of second water outlet pipe is connected to the import end of equipment main body;Rotatably installed with isolation branch in the filter cartridge, the isolation branch separates the filter cartridge and forms first chamber, second chamber and third chamber, the first chamber is communicated with second chamber;The filter cartridge is equipped with rotation component for driving the rotation of isolation branch, when the first chamber is rotated to be communicated with the import end of first water outlet pipe, the export end of water inlet pipe is communicated with second chamber and the import end of second water outlet pipe is communicated with third chamber, when the first chamber is rotated to be communicated with the export end of water inlet pipe, the import end of first water outlet pipe is communicated with third chamber and the import end of second water outlet pipe is communicated with second chamber.

[0007] By adopting the above technical scheme, by the setting of isolation branch, in initial state, by rotation component driving the rotation of isolation branch, force first chamber to be communicated with first water outlet pipe, at this time, the export end of water inlet pipe is communicated with second chamber, first chamber and second chamber are communicated with each other, water introduced by water inlet pipe flows to equipment main body in turn through second chamber, first chamber and first water outlet pipe, when water enters first water outlet pipe, the adsorption component corresponding to first water outlet pipe can be adsorbed, to ensure that the water quality entering equipment main body reaches certain standard;When it is necessary to disassemble the adsorption component corresponding to first water outlet pipe, drive the rotation of isolation branch, force first chamber to be communicated with water inlet pipe, at this time, second chamber is communicated with second water outlet pipe, water introduced by water inlet pipe flows to equipment main body in turn through first chamber, second chamber and second water outlet pipe, when water enters second water outlet pipe, the adsorption component corresponding to second water outlet pipe can be adsorbed, to ensure that the water quality entering equipment main body reaches certain standard, at this time, the adsorption component corresponding to first water outlet pipe can be disassembled, without water stop disposal, reduce the possibility of long-time water stop in the process of disassembling adsorption component.

[0008] Optionally, two installation grooves are opened in the inner wall of the filter cartridge, and the two installation grooves are respectively arranged corresponding to the two adsorption components;The adsorption component includes adsorption seat and adsorption layer, the adsorption seat is installed in the corresponding installation groove, the adsorption seat has adsorption cavity in it, and the adsorption layer is arranged in the adsorption cavity;A plurality of adsorption holes are opened in the outer wall of the adsorption seat and communicated with the adsorption cavity.

[0009] By adopting the technical scheme, in the process that the water introduced by the water inlet pipe flows from the first chamber to the first water outlet pipe or from the second chamber to the second water outlet pipe, the water flows into the adsorption cavity through the adsorption holes, and the adsorption layer in the adsorption cavity can adsorb impurities in the water, thereby reducing the possibility of damage to the equipment body caused by impurities or particulate matter.

[0010] Optionally, the inner wall of the first chamber and the inner wall of the second chamber are both provided with a first limiting strip, when the first chamber is rotated to be in communication with the first water outlet pipe, the first limiting strip of the first chamber abuts against the corresponding adsorption seat of the first water outlet pipe, and when the second chamber is rotated to be in communication with the second water outlet pipe, the first limiting strip of the second chamber abuts against the corresponding adsorption seat of the second water outlet pipe.

[0011] By adopting the technical scheme, when the water flows from the first chamber to the first water outlet pipe, the first limiting strip of the first chamber blocks the corresponding adsorption seat of the first water outlet pipe, thereby limiting the adsorption seat in the corresponding mounting groove; when the first chamber is in communication with the first water outlet pipe, the second water outlet pipe is in communication with the third chamber, and the third chamber is not provided with a first limiting strip, thereby allowing the first chamber to be in communication with the first water outlet pipe to facilitate disassembly of the other adsorption assembly (i.e., the adsorption assembly corresponding to the second water outlet pipe). When the water flows from the second chamber to the second water outlet pipe, the first limiting strip of the second chamber blocks the corresponding adsorption seat of the second water outlet pipe, thereby limiting the adsorption seat in the corresponding mounting groove; when the second chamber is in communication with the second water outlet pipe, the first water outlet pipe is in communication with the third chamber, thereby allowing the first water outlet pipe to be in communication with the third chamber to facilitate disassembly of the adsorption assembly corresponding to the first water outlet pipe, and avoiding the need to stop water supply during disassembly of the adsorption assembly.

[0012] Optionally, the end face of the filter cartridge away from the equipment body is provided with a disassembly opening in communication with the inside of the filter cartridge, the disassembly opening is provided with two and is arranged corresponding to the two mounting grooves; the disassembly opening is provided with a cover plate, a butt joint rod is connected between the cover plate and the corresponding adsorption seat in the mounting groove, and the cover plate and the corresponding adsorption seat are integrated through the butt joint rod.

[0013] By adopting the technical scheme, when the adsorption seat corresponding to the first water outlet pipe is disassembled, the isolation plate is rotated to force the second chamber to be in communication with the second water outlet pipe, and then the cover plate is pulled outwards, so that the adsorption seat corresponding to the first water outlet pipe and the cover plate are pulled out together; when the adsorption seat corresponding to the second water outlet pipe is disassembled, the first chamber is forced to be in communication with the first water outlet pipe, and then the cover plate is pulled outwards, so that the adsorption seat corresponding to the second water outlet pipe and the cover plate are pulled out together, thereby greatly improving the convenience of disassembly of the adsorption seat and the convenience of replacement of the adsorption layer.

[0014] Optionally, the rotating assembly comprises a rotating shaft and a motor, the rotating shaft is rotatably installed in the filter cartridge, the isolation support plate is arranged on the peripheral wall of the rotating shaft, and the isolation support plate is rotatably installed in the filter cartridge through the rotating shaft; the motor is arranged on the rotating shaft to drive the rotating shaft to rotate.

[0015] By adopting the above technical scheme, the output shaft of the motor is driven to rotate through the arrangement of the rotating shaft and the motor, the rotating shaft is driven to rotate, and the isolation support plate is driven to rotate, so as to switch the positions of the first chamber, the second chamber and the third chamber, and then switch the water flow direction introduced by the water inlet pipe.

[0016] Optionally, one end of the rotating shaft penetrates out of the filter cartridge and is close to the end face of the cover plate and is connected with a second limiting strip, when the first chamber is rotated to be communicated with the first water outlet pipe, the second limiting strip abuts against the cover plate corresponding to the first water outlet pipe, and when the second chamber is rotated to be communicated with the second water outlet pipe, the second limiting strip abuts against the cover plate corresponding to the second water outlet pipe.

[0017] By adopting the above technical scheme, when the first chamber is communicated with the first water outlet pipe, the second limiting strip abuts against the cover plate corresponding to the first water outlet pipe at this time, so as to force the cover plate to abut against the side wall of the filter cartridge located at the dismounting opening, and the sealing effect of the first chamber is improved; when the second chamber is communicated with the second water outlet pipe, the second limiting strip abuts against the cover plate corresponding to the second water outlet pipe at this time, so as to force the cover plate to abut against the side wall of the filter cartridge located at the dismounting opening, and the sealing effect of the second chamber is improved.

[0018] Optionally, the inlet end of the equipment main body is connected with a connecting pipe, the inlet end of the connecting pipe is provided with a switching seat, the switching seat has a switching cavity therein, the outlet end of the first water outlet pipe and the outlet end of the second water outlet pipe are both communicated with the switching cavity; the switching seat is provided with a switching assembly, when the first chamber is rotated to be communicated with the first water outlet pipe, the switching assembly opens the outlet end of the first water outlet pipe and closes the outlet end of the second water outlet pipe, and when the second chamber is rotated to be communicated with the second water outlet pipe, the switching assembly closes the outlet end of the first water outlet pipe and opens the inlet end of the second water outlet pipe.

[0019] By adopting the above technical scheme, the switching assembly is used to open and close the outlet end of the first water outlet pipe and the outlet end of the second water outlet pipe, so that the water flow can enter the equipment main body, and the possibility that the water flowing out of the first water outlet pipe enters the second water outlet pipe when the first chamber is communicated with the first water outlet pipe is reduced, or the possibility that the water flowing out of the second water outlet pipe enters the first water outlet pipe when the second chamber is communicated with the second water outlet pipe is reduced.

[0020] Optionally, the switching assembly comprises a switching block and a driving member, the switching block is slidingly installed in the switching cavity, the switching block is provided with a connecting groove communicated with the connecting pipe at the side wall close to the connecting pipe, the switching block is provided with a first flow channel and a second flow channel communicated with the connecting groove at the side wall away from the connecting pipe, the inlet end of the first flow channel is used for communicating with the first water outlet pipe, the inlet end of the second flow channel is used for communicating with the second water outlet pipe; when the inlet end of the first flow channel communicates with the outlet end of the first water outlet pipe, the inlet end of the second flow channel is arranged in a staggered manner with the outlet end of the second water outlet pipe, when the inlet end of the second flow channel communicates with the outlet end of the second water outlet pipe, the inlet end of the first flow channel is arranged in a staggered manner with the outlet end of the first water outlet pipe; the driving member is arranged between the switching block and the rotating shaft to drive the switching block to slide.

[0021] By adopting the above technical scheme, through the arrangement of the switching block and the driving member, the first flow channel and the second flow channel are arranged in the switching block to correspond to the first water outlet pipe and the second water outlet pipe respectively, when the rotating shaft drives the isolation branch plate to rotate to switch the flow direction of the water inlet pipe, the driving member drives the switching block to slide, forcing the first flow channel to communicate with the outlet end of the first water outlet pipe or the second flow channel to communicate with the outlet end of the second water outlet pipe, improving the convenience of opening and closing the first water outlet pipe and the second water outlet pipe, and reducing the manufacturing cost of the overall structure.

[0022] Optionally, the driving member comprises a first gear, a second gear and a rack, the first gear is rotationally arranged on the top of the switching seat, the output shaft of the motor is coaxially connected to the first gear, one end of the rotating shaft penetrates the filter cartridge and is coaxially connected to the second gear; the rack is slidingly installed on the top of the switching seat, the switching block is connected with a connecting rod, one end of the connecting rod penetrates the switching seat and is connected to the rack, the rack and the switching block are connected into one through the connecting rod, the first gear and the second gear are in mesh transmission, and the first gear and the rack are in mesh transmission.

[0023] By adopting the technical scheme, when water flow needs to be forced to flow from the first water outlet pipe to the equipment body, the motor is driven to rotate the first gear to drive the rotating shaft to rotate, so as to force the first chamber to be communicated with the first water outlet pipe, at this time, the rack slides under the meshing of the first gear, thereby driving the first flow channel to be communicated with the outlet end of the first water outlet pipe and closed to the second flow channel, water flow can enter the first flow channel from the first water outlet pipe and flow to the equipment body through the connecting pipe; when water flow needs to be forced to flow from the second water outlet pipe to the equipment body, the motor is driven to reverse, thereby driving the rotating shaft to reverse to force the second chamber to be communicated with the second water outlet pipe, at this time, the rack reverses to slide, thereby driving the second flow channel to be communicated with the outlet end of the second water outlet pipe and closed to the first flow channel, water flow can flow into the second flow channel from the second water outlet pipe and flow to the equipment body through the connecting pipe, which greatly improves the opening and closing convenience of the first water outlet pipe and the second water outlet pipe and reduces the manufacturing cost of the overall structure.

[0024] Optionally, the inlet end height of the first water outlet pipe and the inlet end height of the second water outlet pipe are both higher than the lowest position of the inner wall of the filter cartridge.

[0025] By adopting the technical scheme, when the first chamber is communicated with the first water outlet pipe or the second chamber is communicated with the second water outlet pipe, the water flow introduced by the water inlet pipe accumulates in the first chamber or the second chamber, the large-particle impurities in the water sink under their own gravity, and the inlet end height of the first water outlet pipe and the inlet end height of the second water outlet pipe are both higher than the lowest position of the inner wall of the filter cartridge, thereby avoiding the possibility that the large-particle impurities cannot pass through the adsorption holes and cause the adsorption holes to be blocked.

[0026] In summary, the present application has at least one of the following beneficial technical effects:

[0027] 1. By arranging the isolation support plate, in the initial state, the isolation support plate is driven to rotate by the rotating assembly, so as to force the first chamber to be communicated with the first water outlet pipe, at this time, the outlet end of the water inlet pipe is communicated with the second chamber, the first chamber and the second chamber are communicated with each other, and the water introduced by the water inlet pipe flows to the equipment body through the second chamber, the first chamber and the first water outlet pipe in sequence, when the water enters the first water outlet pipe, the adsorption assembly corresponding to the first water outlet pipe can adsorb it, thereby ensuring that the water quality entering the equipment body reaches a certain standard; when it is necessary to disassemble the adsorption assembly corresponding to the first water outlet pipe, the isolation support plate is driven to rotate, so as to force the first chamber to be communicated with the water inlet pipe, at this time, the second chamber is communicated with the second water outlet pipe, the water introduced by the water inlet pipe flows to the equipment body through the first chamber, the second chamber and the second water outlet pipe in sequence, when the water enters the second water outlet pipe, the adsorption assembly corresponding to the second water outlet pipe can adsorb it, thereby ensuring that the water quality entering the equipment body reaches a certain standard, at this time, the adsorption assembly corresponding to the first water outlet pipe can be disassembled without water stop treatment, thereby reducing the possibility of long-time water stop during the disassembly process of the adsorption assembly.

[0028] 2. By the setting of the first limiting strip, when the water flow is from the first chamber to the first water outlet pipe, at this time the first limiting strip of the first chamber blocks the adsorption seat corresponding to the first water outlet pipe, so as to limit the adsorption seat in the corresponding installation groove; when the first chamber is connected to the first water outlet pipe, at this time the second water outlet pipe is connected to the third chamber, and the third chamber is not provided with the first limiting strip, so that when the first chamber is connected to the first water outlet pipe, the other adsorption assembly (i.e. the adsorption assembly corresponding to the second water outlet pipe) can be disassembled. When the water flow is from the second chamber to the second water outlet pipe, at this time the first limiting strip of the second chamber blocks the adsorption seat corresponding to the second water outlet pipe, so as to limit the adsorption seat in the corresponding installation groove; when the second chamber is connected to the second water outlet pipe, at this time the first water outlet pipe is connected to the third chamber, so that the adsorption assembly corresponding to the first water outlet pipe can be disassembled, avoiding the situation that water needs to be stopped for disassembly of the adsorption assembly;

[0029] 3. By the setting of the switching block and the driving piece, the first flow channel and the second flow channel are opened in the switching block to correspond to the first water outlet pipe and the second water outlet pipe respectively, when the isolation support plate is driven to rotate by the rotating shaft to switch the flow direction of the water inlet pipe, the driving piece drives the switching block to slide, forcing the first flow channel to be connected to the outlet end of the first water outlet pipe or the second flow channel to be connected to the outlet end of the second water outlet pipe, improving the opening and closing convenience of the first water outlet pipe and the second water outlet pipe, and reducing the manufacturing cost of the overall structure. BRIEF DESCRIPTION OF DRAWINGS

[0030] FIG. 1 is a schematic diagram of the overall structure of embodiment 1;

[0031] FIG. 2 is a partial cross-sectional view of embodiment 1 embodying the isolation support plate;

[0032] FIG. 3 is an exploded schematic diagram of embodiment 1 embodying the adsorption assembly;

[0033] FIG. 4 is a partial cross-sectional view of embodiment 1 embodying the adsorption assembly;

[0034] FIG. 5 is a partial cross-sectional view of embodiment 1 embodying the first chamber connected to the first water outlet pipe;

[0035] FIG. 6 is a partial cross-sectional view of embodiment 1 embodying the second chamber connected to the second water outlet pipe;

[0036] FIG. 7 is a schematic diagram of the structure of the second limiting strip of embodiment 2;

[0037] FIG. 8 is a partial cross-sectional view of the internal structure of the switching seat of embodiment 2;

[0038] FIG. 9 is a partial cross-sectional view of the switching assembly of embodiment 2.

[0039] Explanation of reference signs: 1, filter cartridge; 11, water inlet pipe; 12, first water outlet pipe; 13, second water outlet pipe; 14, mounting groove; 15, dismounting opening; 16, valve; 17, avoiding groove; 18, rotating rod; 2, adsorption assembly; 21, adsorption seat; 211, adsorption cavity; 212, adsorption hole; 213, sealing plate; 22, adsorption layer; 3, isolation support plate; 31, first chamber; 32, second chamber; 33, third chamber; 34, first limiting strip; 35, partition plate; 351, communication groove; 4, rotating assembly; 41, rotating shaft; 411, second limiting strip; 42, motor; 5, cover plate; 51, butt joint rod; 6, connecting pipe; 7, switching seat; 71, switching cavity; 8, switching assembly; 81, switching block; 811, connecting groove; 812, first flow channel; 813, second flow channel; 82, first gear; 83, second gear; 84, rack; 85, connecting rod. DETAILED DESCRIPTION

[0040] The application will be further described in detail below in combination with Figs. 1-9.

[0041] Example 1

[0042] The embodiment of the application discloses a smart pipe network stacked pressure water supply integrated machine.

[0043] Referring to Figs. 1 and 2, a smart pipe network stacked pressure water supply integrated machine comprises a device main body (not shown in the figure) and a filter cartridge 1, the filter cartridge 1 is used to be installed at the inlet end of the device main body to adsorb impurities of water flow entering the device main body, so that the water quality entering the device main body reaches a certain standard and the possibility of damage to the device main body caused by impurities is reduced; in the embodiment, the filter cartridge 1 is a hollow cylindrical structure arranged horizontally, a support is installed at the bottom of the filter cartridge 1, and the filter cartridge 1 is erected on the ground through the support.

[0044] Referring to Figs. 1 and 3, the filter cartridge 1 is respectively provided with a water inlet pipe 11, a first water outlet pipe 12 and a second water outlet pipe 13, the water inlet pipe 11 is vertically arranged and located at the top of the filter cartridge 1, the outlet end of the water inlet pipe 11 penetrates through the filter cartridge 1 and is communicated with the inside of the filter cartridge 1, and the inlet end of the water inlet pipe 11 is used to be connected with a municipal water pipe network; the inlet end of the device main body is connected with a connecting pipe 6, the outlet end of the connecting pipe 6 is communicated with the inlet end of the device main body, and the first water outlet pipe 12 and the second water outlet pipe 13 are arranged between the filter cartridge 1 and the device main body.

[0045] The inlet end of the first water outlet pipe 12 and the inlet end of the second water outlet pipe 13 both penetrate through the end face of the filter cartridge 1 close to the equipment body and are communicated with the inside of the filter cartridge 1, the outlet end of the first water outlet pipe 12 and the outlet end of the second water outlet pipe 13 are both communicated with the inlet end of the connecting pipe 6, so that the outlet end of the first water outlet pipe 12 and the outlet end of the second water outlet pipe 13 are both communicated with the inlet end of the equipment body; in this embodiment, the first water outlet pipe 12 and the second water outlet pipe 13 are both provided with a valve 16, which is used to open and close the first water outlet pipe 12 or the second water outlet pipe 13, the height of the inlet end of the first water outlet pipe 12 and the height of the inlet end of the second water outlet pipe 13 are both higher than the lowest position of the inner wall of the filter cartridge 1.

[0046] Referring to FIG. 3 and FIG. 4, two installation grooves 14 are arranged on the inner wall of the filter cartridge 1 close to the equipment body, the inlet end of the first water outlet pipe 12 is communicated with one of the installation grooves 14, and the inlet end of the second water outlet pipe 13 is communicated with the other installation groove 14, and an adsorption assembly 2 is arranged in each installation groove 14 (that is, the filter cartridge 1 is provided with the adsorption assembly 2 at the inlet end of the first water outlet pipe 12 and the inlet end of the second water outlet pipe 13); in this embodiment, the adsorption assembly 2 comprises an adsorption seat 21 and an adsorption layer 22, the shape of the adsorption seat 21 is matched with the shape of the installation groove 14, the adsorption seat 21 is embedded in the installation groove 14, an adsorption cavity 211 is arranged in the adsorption seat 21, an opening communicated with the adsorption cavity 211 is arranged on the side wall of the adsorption seat 21, and a sealing plate 213 for opening and closing the opening is arranged on the side wall of the adsorption seat 21, and the sealing plate 213 is detachably connected to the adsorption seat 21 by means of bolt connection.

[0047] Referring to FIG. 3 and FIG. 4, a plurality of adsorption holes 212 are arranged on the two opposite side walls of the adsorption seat 21, and all the adsorption holes 212 are communicated with the adsorption cavity 211; in this embodiment, the adsorption layer 22 is made of activated carbon particles, and the activated carbon particles are filled in the adsorption cavity 211 to adsorb impurities in the water flow passing through the adsorption cavity 211.

[0048] Referring to FIG. 1 and FIG. 3, a dismounting opening 15 is arranged on the end face of the filter cartridge 1 away from the equipment body, the dismounting opening 15 is provided with two and is correspondingly arranged with the two installation grooves 14, and each dismounting opening 15 is communicated with the inside of the filter cartridge 1; a cover plate 5 is arranged on each dismounting opening 15, the cover plate 5 is used to open and close the corresponding dismounting opening 15, a plurality of butt joints 51 are arranged between the cover plate 5 and the adsorption seat 21 in the corresponding installation groove 14, one end of the butt joint 51 is fixedly connected to the adsorption seat 21, and the other end of the butt joint 51 is fixedly connected to the cover plate 5, the cover plate 5 and the corresponding adsorption seat 21 are connected into one by means of the butt joint 51, and an avoiding groove 17 is arranged on the inner wall of the filter cartridge 1 for avoiding the butt joint 51; it should be noted that in this embodiment, the cover plate 5 is detachably connected to the side wall of the filter cartridge 1 at the dismounting opening 15 by means of bolt connection (the bolt connection is not shown in the figure).

[0049] Referring to FIG. 2, FIG. 3, the isolation support plate 3 is rotatably installed in the filter cartridge 1, the filter cartridge 1 is provided with a rotating assembly 4 for driving the isolation support plate 3 to rotate, the rotating assembly 4 comprises a rotating shaft 41 and a motor 42, the rotating shaft 41 is horizontally arranged, both ends of the rotating shaft 41 are rotatably installed on two opposite inner walls of the filter cartridge 1, and the central axis of the rotating shaft 41 is coaxially arranged with the central axis of the filter cartridge 1; in this embodiment, the motor 42 is fixedly installed on the side wall of the filter cartridge 1 close to the main body of the equipment, and the output shaft of the motor 42 is coaxially fixed on the rotating shaft 41, so as to drive the rotating shaft 41 to rotate around the central axis thereof.

[0050] Referring to FIG. 2, FIG. 5, FIG. 6, the isolation support plate 3 comprises a plurality of partition plates 35, the plurality of partition plates 35 are fixedly installed on the peripheral wall of the rotating shaft 41, the plurality of partition plates 35 are arranged at intervals around the central axis of the rotating shaft 41, one side of each partition plate 35 away from the rotating shaft 41 abuts against the inner peripheral wall of the filter cartridge 1, and the plurality of partition plates 35 divide the filter cartridge 1 into the first chamber 31, the second chamber 32 and the third chamber 33, the surface of the partition plate 35 between the first chamber 31 and the second chamber 32 is provided with a plurality of communication grooves 351, and the first chamber 31 and the second chamber 32 are communicated with each other through the plurality of communication grooves 351.

[0051] When the first chamber 31 is rotated to be communicated with the inlet end of the first water outlet pipe 12, the outlet end of the water inlet pipe 11 is communicated with the second chamber 32 and the inlet end of the second water outlet pipe 13 is communicated with the third chamber 33, and when the first chamber 31 is rotated to be communicated with the outlet end of the water inlet pipe 11, the inlet end of the first water outlet pipe 12 is communicated with the third chamber 33 and the inlet end of the second water outlet pipe 13 is communicated with the second chamber 32.

[0052] Referring to FIG. 5, FIG. 6, in this embodiment, the inner wall of the first chamber 31 and the inner wall of the second chamber 32 are both provided with a first limiting strip 34, the first limiting strip 34 is arranged in an arc shape, and the virtual central axis of the first limiting strip 34 is coaxial with the central axis of the rotating shaft 41; when the first chamber 31 is rotated to be communicated with the first water outlet pipe 12, the first limiting strip 34 of the first chamber 31 abuts against the surface of the corresponding adsorption seat 21 of the first water outlet pipe 12, and when the second chamber 32 is rotated to be communicated with the second water outlet pipe 13, the first limiting strip 34 of the second chamber 32 abuts against the surface of the corresponding adsorption seat 21 of the second water outlet pipe 13.

[0053] The implementation principle of the embodiment 1 of the present application is that the isolation support plate 3 is rotatably installed in the filter cartridge 1 to divide the filter cartridge 1 into the first chamber 31, the second chamber 32 and the third chamber 33, and by driving the rotating shaft 41 to rotate, the water flow direction of the water inlet pipe 11 can be switched, so that the water flow can be discharged to the main body of the equipment through the first water outlet pipe 12 or the second water outlet pipe 13.

[0054] When the water flow is discharged from the first water outlet pipe 12 to the equipment main body, at this time, the first limiting strip 34 of the first chamber 31 blocks the corresponding adsorption seat 21 of the first water outlet pipe 12, so that the adsorption seat 21 cannot be disassembled, and the water flow can flow to the equipment main body after being adsorbed by the adsorption seat 21; when the corresponding adsorption seat 21 of the first water outlet pipe 12 needs to be disassembled, the rotating shaft 41 is driven to rotate, so that the second chamber 32 is communicated with the inlet end of the second water outlet pipe 13, at this time, the inlet end of the first water outlet pipe 12 is closed, and the water flow can flow to the equipment main body through the second water outlet pipe 13, at this time, the corresponding adsorption seat 21 of the first water outlet pipe 12 can be disassembled, greatly improving the disassembly convenience of the adsorption seat 21, and reducing the possibility of causing long-time water stop during the replacement process of the adsorption layer 22.

[0055] Embodiment 2:

[0056] The embodiment of the application discloses a smart pipe network pressure water supply integrated machine.

[0057] Referring to FIG. 7, the smart pipe network pressure water supply integrated machine disclosed by the embodiment of the application is different from the embodiment 1 in that:

[0058] In the embodiment, the end of the rotating shaft 41 away from the equipment main body penetrates through the filter cylinder 1 and is fixedly connected with a second limiting strip 411, the second limiting strip 411 is in an arc shape, and the virtual central axis of the second limiting strip 411 coincides with the central axis of the rotating shaft 41; when the first chamber 31 rotates to be communicated with the first water outlet pipe 12, the second limiting strip 411 abuts against the corresponding cover plate 5 of the first water outlet pipe 12; when the second chamber 32 rotates to be communicated with the second water outlet pipe 13, the second limiting strip 411 abuts against the corresponding cover plate 5 of the second water outlet pipe 13.

[0059] Referring to FIG. 8 and FIG. 9, a switching seat 7 is installed between the equipment main body and the filter cylinder 1, the switching seat 7 is in a strip shape, a switching cavity 71 is formed in the switching seat 7, the two ends of the switching cavity 71 extend along the length direction of the switching seat 7, and the inlet end of the connecting pipe 6 is installed on the side wall of the switching seat 7 close to the equipment main body and communicated with the switching cavity 71; the outlet end of the first water outlet pipe 12 and the outlet end of the second water outlet pipe 13 are both installed on the side wall of the switching seat 7 close to the filter cylinder 1, and the outlet end of the first water outlet pipe 12 and the outlet end of the second water outlet pipe 13 are both communicated with the switching cavity 71.

[0060] Referring to FIG. 8 and FIG. 9, the switching seat 7 is provided with a switching assembly 8, when the first chamber 31 rotates to be communicated with the inlet end of the first water outlet pipe 12, the switching assembly 8 opens the outlet end of the first water outlet pipe 12 and closes the outlet end of the second water outlet pipe 13, when the second chamber 32 rotates to be communicated with the inlet end of the second water outlet pipe 13, the switching assembly 8 closes the outlet end of the first water outlet pipe 12 and opens the inlet end of the second water outlet pipe 13.

[0061] Referring to FIG. 8 and FIG. 9, the switching assembly 8 comprises a switching block 81 and a driving member, the switching block 81 is slidingly installed in the switching cavity 71 and can slide along the length direction of the switching cavity 71, the switching block 81 is provided with a connecting groove 811 on the side wall close to the connecting pipe 6, the connecting groove 811 extends along the length direction of the switching cavity 71, and the connecting groove 811 is communicated with the inlet end of the connecting pipe 6; the switching block 81 is provided with a first flow channel 812 and a second flow channel 813 on the side wall away from the connecting pipe 6, respectively, the first flow channel 812 and the second flow channel 813 are both communicated with the connecting groove 811, the inlet end of the first flow channel 812 is used for communicating with the outlet end of the first water outlet pipe 12, and the inlet end of the second flow channel 813 is used for communicating with the outlet end of the second water outlet pipe 13; when the inlet end of the first flow channel 812 communicates with the outlet end of the first water outlet pipe 12, the inlet end of the second flow channel 813 is arranged in a staggered manner with the outlet end of the second water outlet pipe 13 to close the outlet end of the second water outlet pipe 13, and when the inlet end of the second flow channel 813 communicates with the outlet end of the second water outlet pipe 13, the inlet end of the first flow channel 812 is arranged in a staggered manner with the outlet end of the first water outlet pipe 12 to close the outlet end of the first water outlet pipe 12.

[0062] Referring to FIG. 8 and FIG. 9, the driving member is arranged between the switching block 81 and the rotating shaft 41 to drive the switching block 81 to slide, the driving member comprises a first gear 82, a second gear 83 and a rack 84, the filter cartridge 1 is rotatably installed on the side wall close to the equipment main body, the first gear 82 is coaxially fixed on the peripheral wall of the rotating rod 18, and the first gear 82 is located on the top of the switching seat 7, in this embodiment, the output shaft of the motor 42 is coaxially connected to the rotating rod 18 to drive the rotating rod 18 to rotate; one end of the rotating shaft 41 close to the equipment main body penetrates through the filter cartridge 1 and is coaxially connected to the second gear 83, and the first gear 82 and the second gear 83 are in meshing transmission.

[0063] Referring to FIG. 8 and FIG. 9, the rack 84 is located on the top of the switching seat 7, the two ends of the rack 84 extend along the length direction of the switching seat 7 (i.e. the length direction of the rack 84 is consistent with the moving direction of the switching block 81), the two ends of the switching block 81 are both provided with a connecting rod 85, one end of the connecting rod 85 away from the switching block 81 penetrates through the switching seat 7 and is fixedly connected to the rack 84, the rack 84 and the switching block 81 are connected into an integrated whole through the connecting rod 85, the rack 84 is slidingly installed on the top of the switching seat 7 through the connecting rod 85, and the rack 84 is in meshing transmission with the first gear 82.

[0064] The implementation principle of the embodiment 2 of the present application is as follows: when it is needed to force the water flow to flow from the first water outlet pipe 12 to the device body, the first gear 82 is driven to rotate by the motor 42, so as to drive the rotating shaft 41 to rotate, and force the first chamber 31 to be communicated with the first water outlet pipe 12. At this time, the rack 84 slides under the meshing of the first gear 82, so as to drive the first flow channel 812 to be communicated with the outlet end of the first water outlet pipe 12 and closed to the second flow channel 813. The water flow can enter the first flow channel 812 from the first water outlet pipe 12, and flow to the device body through the connecting pipe 6.

[0065] When it is needed to force the water flow to flow from the second water outlet pipe 13 to the device body, the motor 42 is driven to reverse, so as to drive the rotating shaft 41 to reverse, and force the second chamber 32 to be communicated with the second water outlet pipe 13. At this time, the rack 84 reverses to slide, so as to drive the second flow channel 813 to be communicated with the outlet end of the second water outlet pipe 13 and closed to the first flow channel 812. The water flow can flow into the second flow channel 813 from the second water outlet pipe 13, and flow to the device body through the connecting pipe 6. The opening and closing convenience of the first water outlet pipe 12 and the second water outlet pipe 13 is greatly improved, so that the valve 16 does not need to be installed on the first water outlet pipe 12 and the second water outlet pipe 13. The manufacturing cost of the overall structure is reduced. The opening and closing of the first water outlet pipe 12, the opening and closing of the second water outlet pipe 13, and the rotation of the rotating shaft 41 are synchronously performed, the operation steps are reduced, and the operation convenience of the overall structure is improved.

[0066] The above is the preferred embodiment of the present application, which does not limit the protection scope of the present application. Therefore, equivalent changes made on the basis of the structure, shape, principle of the present application should be covered in the protection scope of the present application.

Claims

1. A smart integrated water supply system with pipeline booster, characterized in that: The utility model provides a filter device, including equipment body and filter cylinder (1), first water pipe (12) and second water pipe (13) are connected with the water inlet pipe (11) respectively, the import end of first water pipe (12), the import end of second water pipe (13) are equipped with adsorption subassembly (2) in filter cylinder (1), the export end of first water pipe (12), the export end of second water pipe (13) are connected to the import end of equipment body, rotatingly installed with the isolation branch board (3) in filter cylinder (1), the isolation branch board (3) divides and forms first chamber (31), second chamber (32) and third chamber (33) in filter cylinder (1) inside, first chamber (31) is communicated with second chamber (32), filter cylinder (1) is equipped with rotating assembly (4) for driving the rotation of isolation branch board (3), when first chamber (31) rotates to with the import end of first water pipe (12) is communicated, the export end of water inlet pipe (11) is communicated with second chamber (32) and the import end of second water pipe (13) is communicated with third chamber (33), when first chamber (31) rotates to with the export end of water inlet pipe (11) is communicated, the import end of first water pipe (12) is communicated with third chamber (33) and the import end of second water pipe (13) is communicated with second chamber (32).

2. The integrated machine for intelligent pipe network pressure-supplementing water supply according to claim 1, characterized in that: The inner wall of the filter cylinder (1) is provided with two installation grooves (14), and the two installation grooves (14) are correspondingly arranged with the two adsorption assemblies (2); the adsorption assembly (2) comprises an adsorption seat (21) and an adsorption layer (22), the adsorption seat (21) is installed in the corresponding installation groove (14), the adsorption seat (21) has an adsorption cavity (211) therein, and the adsorption layer (22) is arranged in the adsorption cavity (211); a plurality of adsorption holes (212) are formed in the outer wall of the adsorption seat (21) and communicated with the adsorption cavity (211).

3. The integrated machine for intelligent pipe network pressure superimposed water supply according to claim 2, characterized in that: First limiting strips (34) are arranged on the inner walls of the first chamber (31) and the second chamber (32); when the first chamber (31) is communicated with the first water pipe (12), the first limiting strip (34) of the first chamber (31) abuts against the corresponding adsorption seat (21) of the first water pipe (12); when the second chamber (32) is communicated with the second water pipe (13), the first limiting strip (34) of the second chamber (32) abuts against the corresponding adsorption seat (21) of the second water pipe (13).

4. The integrated machine for intelligent pipe network pressure superimposed water supply according to claim 2, characterized in that: A dismounting opening (15) is formed in the end face of the filter cylinder (1) away from the equipment body and communicated with the inside of the filter cylinder (1); the dismounting opening (15) is provided with two installation grooves (14) and correspondingly arranged with the two installation grooves (14); a cover plate (5) is arranged on the dismounting opening (15); a connecting rod (51) is arranged between the cover plate (5) and the corresponding adsorption seat (21) in the installation groove (14); and the cover plate (5) and the corresponding adsorption seat (21) are connected into an integrated whole through the connecting rod (51).

5. The integrated machine for intelligent pipe network pressure-boosted water supply according to claim 4, characterized in that: The rotating assembly (4) comprises a rotating shaft (41) and a motor (42), the rotating shaft (41) is rotatably installed in the filter cartridge (1), the isolation support plate (3) is arranged on the peripheral wall of the rotating shaft (41), and the isolation support plate (3) is rotatably installed in the filter cartridge (1) through the rotating shaft (41); the motor (42) is arranged on the rotating shaft (41) and is used for driving the rotating shaft (41) to rotate.

6. The integrated intelligent water supply system of claim 5, wherein: One end of the rotating shaft (41) penetrates out of the filter cartridge (1) and is close to the end face of the cover plate (5) and is connected with a second limiting strip (411), when the first chamber (31) rotates to be communicated with the first water outlet pipe (12), the second limiting strip (411) abuts against the corresponding cover plate (5) of the first water outlet pipe (12), when the second chamber (32) rotates to be communicated with the second water outlet pipe (13), the second limiting strip (411) abuts against the corresponding cover plate (5) of the second water outlet pipe (13).

7. The intelligent integrated water supply system with superimposed booster pump as described in claim 5, characterized in that: The inlet end of the equipment body is connected with a connecting pipe (6), the inlet end of the connecting pipe (6) is provided with a switching seat (7), the switching seat (7) has a switching cavity (71) therein, the outlet end of the first water outlet pipe (12) and the outlet end of the second water outlet pipe (13) are communicated with the switching cavity (71); the switching seat (7) is provided with a switching assembly (8), when the first chamber (31) rotates to be communicated with the first water outlet pipe (12), the switching assembly (8) opens the outlet end of the first water outlet pipe (12) and closes the outlet end of the second water outlet pipe (13), when the second chamber (32) rotates to be communicated with the second water outlet pipe (13), the switching assembly (8) closes the outlet end of the first water outlet pipe (12) and opens the inlet end of the second water outlet pipe (13).

8. The intelligent integrated water supply system with superimposed booster pump as described in claim 7, characterized in that: The switching assembly (8) comprises a switching block (81) and a driving piece, the switching block (81) is slidably installed in the switching cavity (71), the switching block (81) is close to the side wall of the connecting pipe (6) and is provided with a connecting groove (811) communicated with the connecting pipe (6), the side wall of the switching block (81) away from the connecting pipe (6) is respectively provided with a first flow channel (812) and a second flow channel (813) communicated with the connecting groove (811), the inlet end of the first flow channel (812) is used for communicating with the first water outlet pipe (12), and the inlet end of the second flow channel (813) is used for communicating with the second water outlet pipe (13); when the inlet end of the first flow channel (812) communicates with the outlet end of the first water outlet pipe (12), the inlet end of the second flow channel (813) is arranged in a staggered manner with the outlet end of the second water outlet pipe (13), when the inlet end of the second flow channel (813) communicates with the outlet end of the second water outlet pipe (13), the inlet end of the first flow channel (812) is arranged in a staggered manner with the outlet end of the first water outlet pipe (12); the driving piece is arranged between the switching block (81) and the rotating shaft (41) and is used for driving the switching block (81) to slide.

9. The integrated water supply apparatus of claim 8, wherein the apparatus further comprises a water tank. The driving member comprises a first gear (82), a second gear (83) and a rack (84), the first gear (82) is rotationally arranged on the top of the switching seat (7), the output shaft of the motor (42) is coaxially connected to the first gear (82), one end of the rotating shaft (41) penetrates through the filter cartridge (1) and is coaxially connected to the second gear (83); the rack (84) is slidingly installed on the top of the switching seat (7), the switching block (81) is connected with a connecting rod (85), one end of the connecting rod (85) penetrates through the switching seat (7) and is connected to the rack (84), the rack (84) and the switching block (81) are connected into one through the connecting rod (85), the first gear (82) and the second gear (83) are in mesh transmission, and the first gear (82) and the rack (84) are in mesh transmission.

10. The integrated intelligent water supply system of claim 1, wherein: The inlet end height of the first water outlet pipe (12) and the inlet end height of the second water outlet pipe (13) are higher than the lowest position of the inner wall of the filter cartridge (1).

Citation Information

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