Drinking water treatment device with flowing water blockage prevention function

By designing a drinking water treatment device with a top block, a cover plate and a cleaning mechanism, the frequent replacement of existing devices due to blockage is solved, extending the service life of activated carbon plates and reducing the cost of use.

CN119977061AInactive Publication Date: 2025-05-13JINAN JINSHUIQUAN WATER IND CO LTD
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Patent Information

Application Number
CN202510385502.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-29
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing drinking water treatment devices are prone to clogging after long-term use, resulting in users needing to frequently replace filter plates or activated carbon plates, which increases the cost of use and maintenance difficulties.

Method used

A drinking water treatment device including a top block, a cover plate, a motor, a switch, an elastic assembly and an activated carbon plate is designed, and the activated carbon plate is switched to an unblocked activated carbon plate by an increased water pressure, and a cleaning mechanism and a vibration mechanism are provided to extend the service life of the activated carbon plate.

Benefits of technology

It effectively prevents the drinking water treatment device from interrupting the water flow due to blockage, extends the service life of activated carbon plates, reduces the replacement frequency and usage cost, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a drinking water treatment device with a flowing water blockage prevention function, and relates to the technical field of drinking water treatment equipment. The drinking water treatment device comprises a machine body and the like, the machine body is fixedly connected and communicated with a protective shell which is axially distributed, the protective shell is rotatably connected with a mounting frame, the mounting frame is slidably connected with activated carbon plates which are circumferentially and equidistantly distributed, the protective shell is slidably connected with paired top blocks, and the top blocks are fixedly connected with the machine body. The protective shell is fixedly connected with paired switches, and the protective shell is fixedly connected with paired cover plates which are circumferentially distributed at equal intervals. Through the top block, the cover plate and other parts, when a part of the activated carbon plates are blocked by accumulated impurities, the activated carbon plates are switched to other unblocked activated carbon plates, drinking water is continuously treated, the drinking water treatment device can be prevented from being blocked by the impurities, frequent replacement of the activated carbon plates by a user can be avoided, and the service life of the drinking water treatment device is prolonged. The service life of the device is prolonged, and the user experience is improved.
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Description

Technical Field

[0001] The invention relates to the technical field of drinking water treatment equipment, and in particular to a drinking water treatment device with a water flow anti-blocking function. Background Art

[0002] Drinking water refers to water that has been treated to meet national or international health standards and can be directly consumed by people. The quality of drinking water directly affects people's health and quality of life, so its safety and suitability must be ensured. Through scientific and reasonable drinking water treatment methods and equipment, harmful substances in water can be removed and water quality can be improved, which can not only prevent the spread of diseases, but also improve the quality of life and meet the specific needs of different groups of people and industries.

[0003] Existing drinking water treatment devices usually use filter plates or activated carbon plates to filter or adsorb drinking water, but the service life of the filter plates and activated carbon plates are relatively short. After long-term use, they will gradually become clogged due to accumulation of impurities. At this time, users are required to frequently replace the filter plates or activated carbon plates to ensure the treatment effect, which is not only time-consuming and labor-intensive but also makes the use cost of the drinking water treatment device relatively high, seriously affecting the user experience.

[0004] Based on the above situation, the present invention proposes a drinking water treatment device with a long service life and a water flow anti-clogging function. Summary of the invention

[0005] In order to overcome the disadvantages that existing drinking water treatment devices may become clogged after long-term use, and the service life of the internal filter plates or activated carbon plates is short, which requires users to frequently replace the filter plates or activated carbon plates, which is not only time-consuming and laborious but also increases the cost of using the device. The present invention provides a drinking water treatment device with a long service life and a water flow anti-clogging function.

[0006] A drinking water treatment device with a water flow anti-blocking function comprises a body, a protective shell, a mounting frame, an activated carbon plate, an elastic component, a top block, a motor, a switch, a cover plate, a spring piece and a card block. The body is fixedly connected by bolts and is connected to an axially distributed protective shell. The protective shell is rotatably connected to the mounting frame, and the mounting frame is slidably connected to activated carbon plates equidistantly distributed around the circumference. The protective shell is slidably connected to pairs of top blocks, and an elastic component is fixedly connected between the top blocks and the protective shell. The protective shell is fixedly connected to pairs of switches, and the top blocks are extruded and matched with the switches. The protective shell is fixedly connected to the motor, and the output end of the motor is fixedly connected to the mounting frame, and the motor is electrically connected to the switch. The protective shell is fixedly connected to pairs of circumferentially equidistantly distributed cover plates, and the cover plate is rotatably connected to the mounting frame. The top block is slidably connected to pairs of card blocks, and pairs of spring pieces are fixedly connected between the card blocks and the top blocks, and the protective shell is extruded and matched with the card blocks.

[0007] Optionally, two adjacent protective shells are centrally symmetrically distributed, and a side of the protective shell close to the top block is provided with a pair of axially distributed square slots.

[0008] Optionally, the mounting frame is provided with pairs of circular slots which are equidistantly distributed around the circumference.

[0009] Optionally, a cleaning mechanism is also included, which is arranged in the protective shell. The cleaning mechanism includes a liquid storage tank, a liquid collecting tank, a liquid pump and a connecting pipe. The paired liquid storage tanks are fixedly connected to the protective shell, the protective shell is fixedly connected to a pair of liquid collecting tanks, the protective shell is fixedly connected to a pair of liquid pumps, the paired liquid storage tanks are fixedly connected and connected to the cover plates evenly distributed around the circumference with connecting pipes, the paired liquid collecting tanks are also fixedly connected and connected to the cover plates evenly distributed around the circumference with connecting pipes, and the liquid pump is fixedly connected and connected to the connecting pipe on one side.

[0010] Optionally, a vibration mechanism is also included, which is arranged on the cover plate. The vibration mechanism includes an impeller, a vibration-guiding plate, a rotating shaft, a protrusion and a top frame. The rotating shaft is rotatably connected to the cover plate, the impeller is fixedly connected to the rotating shaft, a pair of protrusions equidistantly distributed around the circumference are fixedly connected to the rotating shaft, the vibration-guiding plate is fixedly connected to the cover plate, the vibration-guiding plate is in contact with the activated carbon plate, the vibration-guiding plate is extruded and fitted with the mounting frame, the vibration-guiding plate is fixedly connected to a pair of top frames through elastic plates, and the protrusions are extruded and fitted with the top frames.

[0011] Optionally, the top frame is provided with an inclined surface.

[0012] Optionally, a warning mechanism is also included, which is arranged in the protective shell, the warning mechanism includes a perforated plate, a movable plate, a guide rod, a corrugated rod, a rod sleeve, a storage box, an infusion tube, an air guide tube and an air cylinder, the perforated plate is fixed to the protective shell, the interior of the perforated plate is hollow and has spray holes equidistantly distributed around the circumference, the perforated plate is fixed to the guide rods equidistantly distributed around the circumference, the movable plate is slidably connected between the guide rods equidistantly distributed around the circumference, the movable plate is fixed to the rod sleeve, the mounting frame is fixed to the corrugated rod, the corrugated rod and the rod sleeve are extruded and fitted, the protective shell is fixed to the storage box, the storage box is fixed to a one-way valve, the orifice plate is fixed to the air cylinder, the piston rod of the air cylinder is fixed to the movable plate, the air guide tube is fixedly connected and connected to the air cylinder and the storage box, and the infusion tube is fixedly connected and connected to the storage box and the orifice plate.

[0013] Optionally, the orifice plate and the movable plate are both provided with leakage holes which are equidistantly distributed around the circumference, and the leakage holes of the orifice plate and the movable plate are staggeredly distributed.

[0014] Optionally, a locking mechanism is also included, which is arranged in the protective shell. The locking mechanism includes a mounting plate, a push rod and a compression spring. The paired mounting plates are fixed to the protective shell. The mounting plates are slidably connected to the push rods. A compression spring is fixed between the push rods and the mounting plates, and the mounting frame is squeezed together with the push rods.

[0015] The beneficial effects are as follows: 1. The present invention uses components such as the top block and the cover plate to switch to other unblocked activated carbon plates and continue to treat drinking water by increasing the water pressure when some activated carbon plates are blocked by accumulated impurities. This can prevent the drinking water treatment device from being blocked by impurities and avoid the need for users to frequently replace activated carbon plates, thereby extending the service life of the drinking water treatment device and improving the user experience.

[0016] 2. The present invention can backwash the activated carbon plate blocked by impurities through components such as a liquid storage tank and a liquid pump, thereby cleaning and collecting the impurities adsorbed by the activated carbon plate, so that the activated carbon plate can be unblocked and put into use again, thereby extending the service life of the activated carbon plate, reducing the use cost of the drinking water treatment device, and improving the user experience.

[0017] 3. The present invention uses components such as vibration guide plates and bumps to vibrate the activated carbon plate blocked by impurities when backwashing, thereby loosening the impurities adsorbed on the activated carbon plate and making it easier for the backwashing water to flush the impurities off the activated carbon plate, thereby improving the cleaning effect of the drinking water treatment device.

[0018] 4. The present invention uses components such as orifice plates and movable plates to block the water flow when switching activated carbon plates, thereby making the switching process smoother, and can also add edible pigments to drinking water to test whether the activated carbon plates are saturated with adsorption, thereby reminding users to replace the saturated activated carbon plates in time, thereby ensuring the water purification effect of the drinking water treatment device and improving the user experience.

[0019] 5. The present invention can position the rotating mounting frame through components such as a push rod and a compression spring to avoid deviation in the rotation angle of the mounting frame due to motor control errors, thereby affecting the stable switching of the activated carbon plate, thereby improving the practicality and stability of the drinking water treatment device. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.

[0021] Figure 2 It is a three-dimensional structural schematic diagram of the components such as the body, protective shell and mounting frame of the present invention.

[0022] Figure 3 It is a schematic diagram of the three-dimensional structure of the protective shell, mounting frame, activated carbon plate and other components of the present invention.

[0023] Figure 4 It is a schematic diagram of the exploded three-dimensional structure of the mounting frame and the activated carbon plate of the present invention.

[0024] Figure 5It is a three-dimensional structural schematic diagram of the elastic component, top block, motor and other components of the present invention.

[0025] Figure 6 It is a three-dimensional structural schematic diagram of the top block, spring piece, clamp block and other components of the present invention.

[0026] Figure 7 It is a three-dimensional structural schematic diagram of the protective shell, liquid storage tank, liquid pump and other components of the present invention.

[0027] Figure 8 It is a three-dimensional structural schematic diagram of components such as a liquid storage tank, a liquid pump and a connecting pipe of the present invention.

[0028] Fig. 9 It is a three-dimensional structural schematic diagram of the impeller, vibration guide plate, rotating shaft and other components of the present invention.

[0029] Fig.10 It is a three-dimensional structural schematic diagram of the components such as the rotating shaft, the protrusion and the top frame of the present invention.

[0030] Fig.11 It is a schematic diagram of the three-dimensional structure of the movable plate, guide rod, corrugated rod and other components of the present invention.

[0031] Fig.12 It is a three-dimensional structural schematic diagram of the orifice plate, movable plate, guide rod and other components of the present invention.

[0032] Fig.13 It is a schematic diagram of the exploded three-dimensional structure of the corrugated rod, rod sleeve, movable plate and other components of the present invention.

[0033] Fig.14 It is a three-dimensional structural schematic diagram of the mounting plate, push rod, compression spring and other components of the present invention.

[0034] Markings in the accompanying drawings: 1: body, 11: protective shell, 12: mounting frame, 13: activated carbon plate, 14: elastic component, 15: top block, 16: motor, 17: switch, 18: cover plate, 19: spring, 110: block, 2: liquid storage tank, 201: liquid collecting tank, 21: liquid pump, 22: connecting pipe, 3: impeller, 31: vibration guide plate, 32: rotating shaft, 33: bump, 34: top frame, 4: orifice plate, 41: movable plate, 42: guide rod, 43: corrugated rod, 44: rod sleeve, 45: storage box, 4501: infusion tube, 46: air guide tube, 47: air cylinder, 5: mounting plate, 51: top rod, 52: compression spring. DETAILED DESCRIPTION

[0035] Hereinafter, embodiments of the present invention will be described with reference to the drawings.

[0036] Example 1

[0037] A drinking water treatment device with a water flow anti-clogging function, such as Figure 1-Figure 6 As shown, it includes an organism 1, a protective shell 11, a mounting frame 12, an activated carbon plate 13, an elastic component 14, a top block 15, a motor 16, a switch 17, a cover plate 18, a spring 19 and a block 110. The middle part of the organism 1 is fixedly connected and connected to the axially distributed protective shell 11 by bolts, the protective shell 11 is rotatably connected with the mounting frame 12, the mounting frame 12 is slidably connected with the activated carbon plates 13 equidistantly distributed around the circumference, the protective shell 11 is slidably connected with the top blocks 15 symmetrically distributed on the left and right, the elastic component 14 is fixedly connected between the top block 15 and the protective shell 11, and the protective shell 11 A switch 17 symmetrically distributed on the left and right is fixed inside, the top block 15 is squeezed and fitted with the adjacent switch 17, a motor 16 is fixed inside the protective shell 11, the output end of the motor 16 is fixed to the mounting frame 12, the motor 16 is electrically connected to the adjacent switch 17, the upper and lower sides of the protective shell 11 are fixed with cover plates 18 equidistantly distributed on the circumference, the cover plate 18 is rotatably connected to the mounting frame 12, the upper and lower sides of the top block 15 are slidably connected with a card block 110 symmetrically distributed front and back, two upper and lower spring pieces 19 are fixed between the card block 110 and the top block 15, and the protective shell 11 and the card block 110 are squeezed and fitted.

[0038] like Figure 1-Figure 6 As shown, two adjacent protective shells 11 are centrally symmetrically distributed, and both upper and lower parts of one side of the protective shell 11 close to the top block 15 are provided with axially distributed square slots.

[0039] like Figure 4 and Figure 5 As shown, circular slots equidistantly distributed around the circumference are provided on both upper and lower sides of the exterior of the mounting frame 12 .

[0040] When workers need to treat drinking water, they can first connect the drinking water inlet pipe to the water inlet on the upper right side of the body 1, and connect the drinking water outlet pipe to the water outlet on the lower left side of the body 1, and then let the drinking water in the water inlet pipe pass through the three protective shells 11 and the mounting frame 12 on the body 1 in sequence. During this period, the four activated carbon plates 13 in the mounting frame 12 will adsorb particulate impurities, organic matter, odor, color and some heavy metal ions in the drinking water, thereby improving the quality of the drinking water. Taking the leftmost protective shell 11 and other components as an example, the impurities adsorbed on the activated carbon plate 13 will continue to increase over time and gradually cause the activated carbon plate 13 to be blocked. During this period, due to the activated carbon plate 13 is gradually blocked, so the water flow that can pass through the protective shell 11 and the mounting frame 12 will gradually decrease, and the water pressure will gradually increase. When the water pressure increases to a certain extent, the left and right top blocks 15 will move backwards, and the elastic component 14 will be compressed immediately. The backward movement of the left and right top blocks 15 will also drive the card blocks 110 on the left and right sides to move backwards. The card blocks 110 on the left and right sides will first contact and be squeezed with the protective shell 11 when moving backwards, so that the two front and rear paired card blocks 110 move toward each other, and the spring piece 19 will be compressed immediately. When the left and right top blocks 15 move backwards until they are in contact with the adjacent switch 17, the switch 17 will be turned on, and the motor 16 will start and drive the mounting frame 12 to move backwards. The mounting frame 12 and the activated carbon plate 13 and other components rotate 45 degrees, and the card block 110 also moves with the top block 15 to correspond to the square card slot on the protective shell 11, and the two card blocks 110 in pairs in the front and rear are then moved back to reset and inserted into the square card slot under the action of the spring 19. As the mounting frame 12 and the activated carbon plate 13 rotate, the cover plates 18 equidistantly distributed on the circumference will block the used activated carbon plates 13, so that the subsequent drinking water flows to the other four activated carbon plates 13, so that when some activated carbon plates 13 are blocked by accumulated impurities, the increased water pressure can be used to switch to other unblocked activated carbon plates 13 and continue to treat the drinking water, which can prevent the drinking water from being treated. When the device is clogged with impurities, it can also avoid the need for users to frequently replace the activated carbon plates 13. At this time, since the drinking water can smoothly pass through the other four activated carbon plates 13 and continue to flow, the water pressure will be reduced immediately, and the top blocks 15 and other components on the left and right sides will move toward each other and reset under the action of the elastic component 14 and separate from the switch 17. The main function of the spring 19 and the card block 110 is to provide a certain obstacle to the movement of the top block 15 to prevent the top block 15 from moving due to normal water pressure fluctuations and triggering the switch 17. When the eight activated carbon plates 13 in the mounting frame 12 are all saturated with adsorption, the worker only needs to remove the protective shell 11 and other components from the body 1 and replace the activated carbon plates 13.

[0041] Example 2

[0042] On the basis of Example 1, Figure 7 and Figure 8As shown, a cleaning mechanism is also included, which is arranged in the protective shell 11. The cleaning mechanism includes a liquid storage tank 2, a liquid collecting tank 201, a liquid pump 21 and a connecting pipe 22. The two liquid storage tanks 2 are respectively fixedly connected to the front and rear sides of the protective shell 11. The protective shell 11 is fixedly connected to the liquid collecting tanks 201 that are symmetrically distributed front and back. The protective shell 11 is fixedly connected to the liquid pump 21 that is symmetrically distributed front and back. The front and rear liquid storage tanks 2 are fixedly connected and connected to the adjacent circumferentially equidistant cover plates 18 with connecting pipes 22. The front and rear liquid collecting tanks 201 are also fixedly connected and connected to the adjacent circumferentially equidistant cover plates 18 with connecting pipes 22. The liquid pump 21 is fixedly connected and connected to the connecting pipe 22 close to the liquid storage tank 2.

[0043] When the circumferentially evenly distributed cover plates 18 cover the used activated carbon plate 13, the liquid pump 21 will start and allow the water in the liquid storage tank 2 to enter the lower part of the mounting frame 12 through the lower connecting pipe 22 and the cover plate 18, and then the water will flow through the used activated carbon plate 13 from bottom to top, so that the used activated carbon plate 13 can be reversely flushed and unblocked, thereby flushing the impurities adsorbed on the activated carbon plate 13, and allowing the flushed impurities to continue to flow through the upper connecting pipe 22 with the water flow. The pipe 22 and the cover plate 18 enter the liquid collecting tank 201. At this time, the activated carbon plate 13 that has been backwashed and unblocked can be put into use again, thereby extending the service life of the activated carbon plate 13 and reducing the use cost of this drinking water treatment device. When the water in the liquid storage tank 2 flows to the liquid collecting tank 201, the workers can remove the liquid storage tank 2 and the liquid collecting tank 201 from the protective shell 11, and treat the impurities and sewage in the liquid collecting tank 201 and replenish the water in the liquid storage tank 2.

[0044] like Fig. 9 and Fig.10 As shown, a vibration mechanism is also included, which is arranged on the cover plate 18. The vibration mechanism includes an impeller 3, a vibration-guiding plate 31, a rotating shaft 32, a protrusion 33 and a top frame 34. The rotating shaft 32 is rotatably connected to the bottom of the cover plate 18, the impeller 3 is fixedly connected to the middle of the rotating shaft 32, and protrusions 33 equidistantly distributed around the circumference are fixedly connected to both ends of the rotating shaft 32. A vibration-guiding plate 31 is fixedly connected to the bottom of the cover plate 18, the vibration-guiding plate 31 is in contact with and fits with the adjacent activated carbon plate 13, the vibration-guiding plate 31 is extruded and fits with the mounting frame 12, and the top frames 34 are fixedly connected to both sides of the vibration-guiding plate 31 through elastic plates, and the protrusions 33 are extruded and fit with the adjacent top frames 34.

[0045] like Fig. 9 and Fig.10 As shown, a slope is provided on the side of the top frame 34 away from the vibration-guiding plate 31 .

[0046] When the water flows through the mounting frame 12 and the used activated carbon plate 13 from bottom to top, the water flow will also drive the rotating shaft 32, the impeller 3 and the protrusion 33 to rotate, and the rotation of the protrusion 33 will first contact and squeeze the adjacent top frame 34, so that the top frame 34 moves in the direction close to the vibration-guiding plate 31, and the elastic sheet between the top frame 34 and the vibration-guiding plate 31 is compressed immediately. When the protrusion 33 rotates to separate from the top frame 34, the top frame 34 will move in the opposite direction and reset under the action of the elastic sheet, so that the top frame 34 can move back and forth and vibrate, and the generated vibration will be transmitted to the activated carbon plate 13 through the vibration-guiding plate 31, so that the activated carbon plate 13 also vibrates and the activated carbon plate The impurities adsorbed on 13 become loose, so that the reverse flushing water flow can more easily flush the impurities off the activated carbon plate 13, thereby improving the dredging effect of the water flow on the activated carbon plate 13, and when the mounting frame 12 rotates under the action of the motor 16, the mounting frame 12 will first contact and squeeze the vibration-guiding plate 31, and the vibration-guiding plate 31 will then deform. When the mounting frame 12 rotates to separate from the vibration-guiding plate 31, the vibration-guiding plate 31 will return to its original state under the action of its own elasticity and rest against the activated carbon plate 13 below, thereby ensuring that the vibration-guiding plate 31 is in close contact with the activated carbon plate 13, thereby ensuring that the vibration generated by the top frame 34 can be smoothly transmitted to the activated carbon plate 13.

[0047] like Figure 11-13 As shown, a warning mechanism is also included, which is arranged in the protective shell 11. The warning mechanism includes a perforated plate 4, a movable plate 41, a guide rod 42, a corrugated rod 43, a rod sleeve 44, a storage box 45, an infusion tube 4501, an air guide tube 46 and an air cylinder 47. The perforated plate 4 is fixed to the inside of the protective shell 11. The inside of the perforated plate 4 is hollow and has spray holes distributed equidistantly around the circumference. The outside of the perforated plate 4 is fixed to the guide rods 42 distributed equidistantly around the circumference. The movable plate 41 is slidably connected between the guide rods 42 distributed equidistantly around the circumference. The movable plate A rod sleeve 44 is fixedly connected to one side of 41 close to the mounting frame 12, a corrugated rod 43 is fixedly connected to one side of the mounting frame 12 close to the movable plate 41, the corrugated rod 43 is squeezed and fitted with the rod sleeve 44, a storage box 45 is fixedly connected to the right side of the outside of the protective shell 11, a one-way valve is fixedly connected to the top of the storage box 45, an air cylinder 47 is fixedly connected to the middle of the orifice plate 4, the piston rod of the air cylinder 47 is fixedly connected to the movable plate 41, an air guide pipe 46 is fixedly connected and communicated between the air cylinder 47 and the storage box 45, and an infusion tube 4501 is fixedly connected and communicated between the storage box 45 and the orifice plate 4.

[0048] like Figure 11-13 As shown, the middle parts of the orifice plate 4 and the movable plate 41 are provided with leakage holes which are equidistantly distributed around the circumference, and the leakage holes of the orifice plate 4 and the movable plate 41 are staggeredly distributed.

[0049] When the motor 16 drives the mounting frame 12, the activated carbon plate 13 and other components to rotate 45°, the corrugated rod 43 will also rotate 45° with the mounting frame 12. The rotation of the corrugated rod 43 by 45° will first drive the rod sleeve 44, the movable plate 41 and the piston rod of the air cylinder 47 to move upward through the corrugations on its upper part. The upward movement of the movable plate 41 will be in close contact with the orifice plate 4. Since the leakage holes on the movable plate 41 and the orifice plate 4 are staggered, the movable plate 41 and the orifice plate 4 are in close contact and can temporarily block the water flow from passing through the protective shell 11 and the mounting frame 12 and other components, making the switching process of the activated carbon plate 13 smoother. The upward movement of the piston rod of the air cylinder 47 will inject the gas in the air cylinder 47 into the storage box 45 through the air guide pipe 46. The gas entering the storage box 45 will squeeze the edible coloring in the storage box 45, so that the edible coloring enters the orifice plate 4 along the infusion pipe 4501 and is finally sprayed out from the spray hole on the upper part of the orifice plate 4. The sprayed edible coloring will mix with the drinking water. When the rod sleeve 44, the movable plate 41 and the piston rod of the air cylinder 47 move downward and reset under the action of the corrugated rod 43 and its own gravity, the air cylinder 47 will inhale external air through the one-way valve on the air guide pipe 46 and the storage box 45 for replenishment, and as the movable plate 41 moves downward and separates from the orifice plate 4, the drinking water mixed with the edible pigment will pass through the leaking holes on the movable plate 41 and the orifice plate 4 and continue to flow downward. At this time, if the activated carbon plate 13 after switching is not saturated with adsorption, the activated carbon plate 13 will adsorb and treat the edible pigment in the drinking water. If the activated carbon plate 13 after switching is already saturated with adsorption, the drinking water passing through the activated carbon plate 13 will still contain edible pigment and will show the corresponding color, so that the user can be reminded through the colored drinking water that the activated carbon plate 13 is saturated with adsorption and needs to be replaced, thereby always maintaining the activated carbon plate 13 in the mounting frame 12 with a good water purification effect.

[0050] like Figure 1 and Fig.14 As shown, a locking mechanism is also included, which is arranged on the protective shell 11. The locking mechanism includes a mounting plate 5, a push rod 51 and a compression spring 52. The four mounting plates 5 are respectively fixed to the upper and lower parts on the left and right sides of the protective shell 11. The middle part of the mounting plate 5 is slidably connected with the push rod 51, and a compression spring 52 is fixed between the push rod 51 and the mounting plate 5. The mounting frame 12 is squeezed and fitted with the push rod 51.

[0051] When the motor 16 drives the mounting frame 12, the activated carbon plate 13 and other components to rotate, the mounting frame 12 will first contact and squeeze the push rod 51, so that the push rod 51 moves away from the mounting frame 12 and disengages from the circular slot on the mounting frame 12, and the compression spring 52 is immediately compressed. When the mounting frame 12 rotates 45° under the action of the motor 16, another circular slot on the mounting frame 12 will correspond to the push rod 51, and the push rod 51 will then move in the opposite direction under the action of the compression spring 52 and be inserted into the circular slot, so that the rotating mounting frame 12 can be positioned to avoid deviation in the rotation angle of the mounting frame 12 due to the control error of the motor 16, thereby affecting the stable switching of the activated carbon plate 13.

[0052] The above is a detailed introduction to the present application. Specific examples are used in this article to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea. At the same time, for general technical personnel in this field, according to the idea of ​​the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.

Claims

1. A drinking water treatment device with a water flow anti-clogging function, comprising a body (1), the body (1) being fixedly connected to and connected to an axially distributed protective shell (11) by bolts, the protective shell (11) being rotatably connected to a mounting frame (12), the mounting frame (12) being slidably connected to activated carbon plates (13) equidistantly distributed around the circumference, wherein: The invention also comprises a top block (15), a protective shell (11) being slidably connected to a pair of top blocks (15), an elastic component (14) being fixedly connected between the top block (15) and the protective shell (11), a pair of switches (17) being fixedly connected to the protective shell (11), the top block (15) and the switch (17) being pressed together, a motor (16) being fixedly connected to the protective shell (11), an output end of the motor (16) being fixedly connected to the mounting frame (12), the motor (16) and the switch (17) being electrically connected, a pair of cover plates (18) being fixedly connected to the protective shell (11) and being equidistantly distributed around the circumference, the cover plates (18) being rotatably connected to the mounting frame (12), a pair of clamping blocks (110) being slidably connected to the top block (15), a pair of spring sheets (19) being fixedly connected between the clamping blocks (110) and the top block (15), and the protective shell (11) and the clamping blocks (110) being pressed together.

2. A drinking water treatment device with water flow anti-blocking function according to claim 1, characterized in that: The two adjacent protective shells (11) are centrally symmetrically distributed, and a pair of axially distributed square slots are provided on one side of the protective shell (11) close to the top block (15).

3. A drinking water treatment device with a water flow anti-blocking function according to claim 2, characterized in that: The mounting frame (12) is provided with pairs of circular slots which are equidistantly distributed around the circumference.

4. A drinking water treatment device with water flow anti-blocking function according to claim 3, characterized in that: The invention also comprises a cleaning mechanism, which is arranged on the protective shell (11). The cleaning mechanism comprises a liquid storage tank (2), a liquid collecting tank (201), a liquid pump (21) and a connecting pipe (22). The paired liquid storage tanks (2) are both fixedly connected to the protective shell (11). The paired liquid collecting tanks (201) are fixedly connected to the protective shell (11). The paired liquid pumps (21) are fixedly connected to the protective shell (11). The paired liquid storage tanks (2) are fixedly connected and communicated with the cover plates (18) which are equidistantly distributed around the circumference. The paired liquid collecting tanks (201) are also fixedly connected and communicated with the cover plates (18) which are equidistantly distributed around the circumference. The liquid pump (21) is fixedly connected and communicated with the connecting pipe (22) on one side.

5. A drinking water treatment device with water flow anti-blocking function according to claim 4, characterized in that: The invention also comprises a vibration mechanism, which is arranged on the cover plate (18), and comprises an impeller (3), a vibration-guiding sheet (31), a rotating shaft (32), a protrusion (33) and a top frame (34). The rotating shaft (32) is rotatably connected to the cover plate (18), the impeller (3) is fixedly connected to the rotating shaft (32), a pair of protrusions (33) equidistantly distributed around the circumference are fixedly connected to the rotating shaft (32), the vibration-guiding sheet (31) is fixedly connected to the cover plate (18), the vibration-guiding sheet (31) is in contact with the activated carbon plate (13), the vibration-guiding sheet (31) is pressed and fitted with the mounting frame (12), the vibration-guiding sheet (31) is fixedly connected to a pair of top frames (34) via an elastic sheet, and the protrusions (33) are pressed and fitted with the top frames (34).

6. A drinking water treatment device with a water flow anti-blocking function according to claim 5, characterized in that: The top frame (34) is provided with an inclined surface.

7. A drinking water treatment device with a water flow anti-blocking function according to claim 6, characterized in that: The device also includes a warning mechanism, which is arranged on the protective housing (11). The warning mechanism includes a perforated plate (4), a movable plate (41), a guide rod (42), a corrugated rod (43), a rod sleeve (44), a storage box (45), an infusion tube (4501), an air guide tube (46) and an air cylinder (47). The perforated plate (4) is fixedly connected to the protective housing (11). The perforated plate (4) is hollow inside and has spray holes distributed equidistantly around the circumference. The perforated plate (4) is fixedly connected to the guide rods (42) distributed equidistantly around the circumference. The movable plate is slidably connected between the guide rods (42) distributed equidistantly around the circumference. (41), the movable plate (41) is fixedly connected to a rod sleeve (44), the mounting frame (12) is fixedly connected to a corrugated rod (43), the corrugated rod (43) and the rod sleeve (44) are pressed together, the protective housing (11) is fixedly connected to a storage box (45), the storage box (45) is fixedly connected to a one-way valve, the orifice plate (4) is fixedly connected to an air cylinder (47), the piston rod of the air cylinder (47) is fixedly connected to the movable plate (41), an air guide tube (46) is fixedly connected and communicated between the air cylinder (47) and the storage box (45), and a liquid infusion tube (4501) is fixedly connected and communicated between the storage box (45) and the orifice plate (4).

8. A drinking water treatment device with water flow anti-blocking function according to claim 7, characterized in that: The orifice plate (4) and the movable plate (41) are both provided with water leakage holes which are equidistantly distributed around the circumference, and the water leakage holes of the orifice plate (4) and the movable plate (41) are distributed in a staggered manner.

9. A drinking water treatment device with a water flow anti-blocking function according to claim 8, characterized in that: The invention also comprises a locking mechanism, which is arranged on the protective shell (11), and comprises a mounting plate (5), a push rod (51) and a compression spring (52). The paired mounting plates (5) are fixedly connected to the protective shell (11), the mounting plates (5) are slidably connected to the push rod (51), a compression spring (52) is fixedly connected between the push rod (51) and the mounting plate (5), and the mounting frame (12) and the push rod (51) are pressed together.