A multi-filter water purifier
The deformation process of the filter element is optimized through the power mechanism and the spacing mechanism, and the problem of filter element is solved and the efficient water purification effect is achieved.
Patent Information
- Application Number
- CN202510175046.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-18
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2045-02-18
AI Technical Summary
The filter element in the existing water purifier is easily blocked by impurities after long-term use, affecting the water purification efficiency.
A multi-filter water purifier is designed, and the first rotating plate is rotated and moved through the power mechanism, so as to deform the first filter element, thereby removing accumulated impurities, and optimizing the deformation process of the filter element by using the spacer mechanism and the limiting groove structure to extend the water purification efficiency of the filter element.
Effectively remove impurities on the filter element, avoid blockage, improve water purification efficiency, and reduce the work intensity of staff.
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Figure CN119822432B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water purification, and in particular to a multi-filter water purifier. Background Art
[0002] A water purifier is a device used to remove impurities and harmful substances from water. It aims to provide safer, pollution-free water and protect subsequent water-using appliances. Water purifiers usually purify water through multiple physical filtration, chemical reactions or biological treatments. In order to be suitable for various working environments such as homes, commercial places and industrial environments, the number of filter elements is usually increased and the type of filter elements is changed. Especially for industrial wastewater, the role of water purifiers is particularly important.
[0003] The filter element in the existing water purifier is usually stationary on the outer shell, and the filter element will continuously filter impurities in the water during the water purification process. Long-term use of the filter element will cause impurities to accumulate on it. Due to the high cost of the filter element, the filter element is usually treated by cleaning. After too many impurities accumulate on the filter element, if the filter element is not cleaned in time, the filter element will be blocked by impurities, thereby affecting the normal water purification work. Summary of the Invention
[0004] In order to overcome the shortcomings of existing water purifiers in which impurities accumulate on the filter element during operation, thereby reducing the filtration efficiency, the present invention provides a multi-filter element water purifier.
[0005] The technical solution of the present invention is: a multi-filter water purifier, comprising:
[0006] A shell, the shell being fixedly connected to and in communication with a pipe fitting, a water outlet pipe and an intermediate pipe, the intermediate pipe being in communication with the pipe fitting;
[0007] The first ring and the rotating shaft are both rotatably connected to the housing;
[0008] a first rotating plate, slidably and rotatably connected to the rotating shaft, a first filter element fixedly connected between the first ring and the first rotating plate, a second filter element fixedly connected within the housing, the second filter element rotatably connected to the rotating shaft, and the second filter element located within the first filter element;
[0009] an isolation member rotatably connected to the housing, the isolation member being fixedly connected to the first filter element;
[0010] a power mechanism, disposed between the housing and the pipe, for causing the first rotating plate to move relative to the rotating shaft, thereby causing the first filter element to deform;
[0011] The spacing mechanism is provided between the first ring and the first rotating plate, and is used to enable the first ring and the first rotating plate to perform spacing motion.
[0012] As a further optimization solution of the present invention, the power mechanism includes:
[0013] a rotating shaft rotatably connected to the pipe, the rotating shaft being fixedly connected to a first turbine and a worm, the rotating shaft being fixedly connected to a second turbine and a worm wheel, the second turbine being located on a side of the rotating shaft close to the water outlet pipe, the worm wheel being meshed with the worm;
[0014] The first telescopic rod is installed on the worm gear, and the first rotating plate limits the first telescopic rod. The first rotating plate is fixed with circumferentially distributed first limiting parts. The first telescopic rod and the adjacent first limiting parts limit each other. The shell is provided with a limiting groove, and the first rotating plate is provided with a limiting protrusion. The limiting groove is used to limit the limiting protrusion of the first rotating plate.
[0015] As a further optimization solution of the present invention, the limiting groove is composed of a first groove, a second groove and a third groove connected end to end, the first groove is a horizontal groove, the second groove is a vertical groove, and the third groove is a spatial arc groove.
[0016] As a further optimization solution of the present invention, the limiting grooves are distributed throughout the entire circumference of the housing, thereby changing the local area of the first filter element at the connection between the housing and the intermediate pipe.
[0017] As a further optimization solution of the present invention, the spacing mechanism includes:
[0018] a first elastic element, fixedly connected between the first ring and the first rotating plate, the first elastic element partially penetrating the isolation member;
[0019] The second ring is rotatably connected to the first rotating plate. The second ring is fixed with a moving rod. The moving rod is slidably connected with a first extrusion rod. The first extrusion rod is slidably connected to the first ring. A second elastic element is fixed between the first extrusion rod and the moving rod.
[0020] As a further optimization solution of the present invention, it also includes:
[0021] a second rotating plate, rotatably connected to the rotating shaft, a second telescopic rod being mounted on the second rotating plate, the worm gear being provided with a through slot, the second telescopic rod being located within the through slot of the worm gear, second limiting members being fixedly connected to the first rotating plate and spaced circumferentially therebetween, the second telescopic rod and adjacent second limiting members being mutually limited, and a third elastic element being fixedly connected between the rotating shaft and the second rotating plate;
[0022] The locking assembly is arranged on a side of the housing close to the second rotating plate and is used to change the relative motion state between the second rotating plate and the housing.
[0023] As a further optimization solution of the present invention, the locking assembly includes:
[0024] a second extrusion rod, slidably connected to a side of the housing close to the second rotating plate, the second extrusion rod limiting the second rotating plate;
[0025] A sliding shell is slidably connected to one end of the rotating shaft near the second extrusion rod, the sliding shell is spline-connected to the pipe fitting, the sliding shell is fixedly connected to the second extrusion rod, the sliding shell is filled with a transmission medium, the rotating shaft is fixedly connected to a third turbine, the third turbine is located in the sliding shell, and a fourth elastic element is fixedly connected between the sliding shell and the pipe fitting.
[0026] As a further optimization solution of the present invention, it also includes:
[0027] a rotating ring fixedly connected to the second rotating plate, the housing being provided with a channel filled with a damping medium, the rotating ring sliding in the channel;
[0028] The baffles are multiple and distributed at intervals in the circumferential direction and are all fixed to the rotating ring. The baffles are located in the channel.
[0029] As a further optimization solution of the present invention, it also includes:
[0030] There are a plurality of annular members distributed at intervals in the circumferential direction and all of them are fixed in the channel.
[0031] As a further optimization solution of the present invention, the baffle is always out of contact with the annular member, so as to stabilize the damping medium in the channel.
[0032] Compared with the prior art, the beneficial effects of the present invention are as follows: the present invention rotates and moves the first rotating plate through a power mechanism, thereby causing the first filter element to deform, thereby applying external force to the impurities accumulated on the bent area of the first filter element, and promoting the impurities to fall off, thereby avoiding the first filter element from being blocked by the accumulated impurities during long-term operation, thereby affecting the normal operation of the water purification work; the first ring is used to drive the first filter element to rotate together, thereby changing the area of the first filter element facing the connection between the pipe fitting and the intermediate pipe, thereby reducing the local area of the first filter element from being subjected to the impact of water (untreated water) for a long time, causing impurities in the water to gather in the local area of the first filter element, thereby affecting the normal operation of the water purification work; the third groove is used to press the first rotating plate The limiting protrusion is used to limit the position, so that the first rotating plate and the pipe fitting undergo axial relative movement, thereby increasing the deformation forms on the first filter element and further improving the water purification efficiency of the first filter element; the second telescopic rod is used to drive the first rotating plate to rotate counterclockwise through the second limiting member, so that the first filter element is continuously and repeatedly deformed, and the amount of impurities accumulated on the first filter element due to the first filter element being in water for a long time when external water does not enter the pipe fitting (that is, the present invention is in an inoperative state) is reduced; the baffle is hindered by the damping medium in the channel, so that the counterclockwise rotation speed of the second rotating plate is relatively slowed down, thereby extending the rotation time of the second rotating plate, and then extending the time that the first filter element is in a deformed state, thereby improving the effect of shedding impurities thereon. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Figure 1 It is a schematic diagram of the overall three-dimensional structure of the present invention;
[0034] Figure 2 is a three-dimensional structural cross-sectional view of the housing of the present invention;
[0035] Figure 3 It is a three-dimensional structural cross-sectional view of the first ring and the first filter element of the present invention;
[0036] Figure 4 It is a three-dimensional structural cross-sectional view of the housing, pipe fitting and first filter element of the present invention;
[0037] Figure 5 A sectional view of the three-dimensional structure of the worm gear and the second rotating plate of the present invention when rotating relative to each other;
[0038] Figure 6 This is an exploded view of the three-dimensional structure of the housing and its internal parts of the present invention;
[0039] Figure 7 A sectional view of the three-dimensional structure of the first rotating plate and the worm gear of the present invention when rotating;
[0040] Figure 8 For the present invention Figure 7 A magnified view of the three-dimensional structure at point A in the middle;
[0041] Figure 9 It is a three-dimensional structural cross-sectional view of the housing, the first filter element and the second filter element of the present invention;
[0042] Figure 10 It is a three-dimensional structural cross-sectional view of the pipe fitting and the sliding shell of the present invention when they slide relative to each other.
[0043] Explanation of the accompanying symbols: 1. Shell, 2. Pipe, 3. Water outlet pipe, 4. Intermediate pipe, 5. First ring, 601. Rotating shaft, 602. First rotating plate, 7. First filter element, 8. Second filter element, 9. Isolating member, 1001. Rotating shaft, 1002. First turbine, 1003. Worm, 1004. Second turbine, 1005. Worm gear, 1006. First telescopic rod, 1007. First limiting member, 1008. Limiting groove, 10081. First groove, 10082. Second groove, 10083. Third Groove, 1101, first elastic element, 1102, second ring, 1103, moving rod, 1104, first extrusion rod, 1105, second elastic element, 1201, second rotating plate, 1202, second telescopic rod, 1203, second limiter, 1204, third elastic element, 1301, second extrusion rod, 1302, sliding shell, 1303, third turbine, 1304, fourth elastic element, 1401, rotating ring, 1402, channel, 1403, baffle, 1404, annular member. DETAILED DESCRIPTION
[0044] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0045] like Figures 1-4As shown in FIG. 1 , an embodiment of the present invention is provided, which proposes a multi-filter water purifier to solve the problem that the filter element in the existing water purifier is relatively fixed, resulting in impurities adhering to it being unable to automatically detach, affecting the normal operation of the water purification, comprising: a housing 1, the housing 1 is fixedly connected and communicated with a pipe 2, a water outlet pipe 3 and an intermediate pipe 4, the intermediate pipe 4 is communicated with the pipe 2; a first ring 5 and a rotating shaft 601, both rotatably connected to the housing 1; a first rotating plate 602, which is slidably and rotatably connected to the rotating shaft 601, and a first fixed ring 5 and a first rotating plate 602 are fixed between the first ring 5 and the first rotating plate 602. The filter element 7 is fixedly connected to the housing 1 with a second filter element 8, which is rotatably connected to the rotating shaft 601 and is located inside the first filter element 7; the insulating member 9 is rotatably connected to the housing 1 and is fixed to the first filter element 7; the power mechanism is arranged between the housing 1 and the pipe 2, and is used to make the first rotating plate 602 and the rotating shaft 601 move relative to each other, thereby deforming the first filter element 7; the spacing mechanism is arranged between the first ring 5 and the first rotating plate 602, and is used to make the first ring 5 and the first rotating plate 602 move at intervals.
[0046] In the above scheme, a mark is provided on the shell 1 to indicate the direction of water flow, which is convenient for correct installation. The pipe fitting 2 and the outlet pipe 3 are respectively located on the lower side and the upper side of the shell 1. The pipe fitting 2 and the outlet pipe 3 are both installed with joints to facilitate connection with the external waterway. The first filter element 7 is a membrane filter element for filtering out fine suspended matter and heavy metal ions. The second filter element 8 is a post-filter element made of activated carbon for further filtering some fine substances to ensure that the outlet water quality meets the standards. The first filter element 7 "wraps" the second filter element 8. The outer side of the isolation member 9 is a hard material, and the inner side is a "membrane" material for isolating the upper and lower sides thereof. When using this device, the pipe fitting 2 and the outlet pipe 3 are first connected to the external waterway through the joints on each of them, and then the water in the external waterway enters from the pipe fitting 2 The water enters the middle pipe 4, and then enters the shell 1. The water passes through the first filter element 7 and the second filter element 8 and then enters the water outlet pipe 3. During the process, the water moves from bottom to top in the shell 1, and finally the water (clean water) enters the external waterway again. During the process, the power mechanism is used to rotate and move the first rotating plate 602 upward, so that the first filter element 7 is deformed, thereby applying external force to the impurities accumulated on the bending area of the first filter element 7, and promoting the fall of the impurities, thereby realizing the self-cleaning of the first filter element 7, avoiding the first filter element 7 from being blocked by accumulated impurities during long-term operation, thereby affecting the normal progress of the water purification work, and reducing the work intensity of the staff. Then the spacing mechanism is used to reset the first filter element 7. As the work continues, the first filter element 7 is repeatedly deformed and reset.
[0047] like Figure 3-Figure 7As shown, the power mechanism includes: a rotating shaft 1001, which is rotatably connected to the pipe 2, the rotating shaft 1001 is fixedly connected to a first turbine 1002 and a worm 1003, the rotating shaft 601 is fixedly connected to a second turbine 1004 and a worm wheel 1005, the second turbine 1004 is located on the side of the rotating shaft 601 close to the water outlet pipe 3, and the worm wheel 1005 is engaged with the worm 1003; a first telescopic rod 1006, which is installed on the worm wheel 1005, the first rotating plate 602 limits the first telescopic rod 1006, and there is a certain relative sliding margin between the two, the first rotating plate 602 is fixedly connected to a circumferentially distributed first limiting member 1007, the first The telescopic rod 1006 and the adjacent first limiting member 1007 limit each other, the shell 1 is provided with a limiting groove 1008, and the first rotating plate 602 is provided with a limiting protrusion. The limiting groove 1008 is used to limit the limiting protrusion of the first rotating plate 602. The limiting groove 1008 is composed of a first groove 10081, a second groove 10082 and a third groove 10083 connected end to end. The first groove 10081 is a horizontal groove, the second groove 10082 is a vertical groove, and the third groove 10083 is a spatial arc groove. The limiting grooves 1008 are distributed throughout the shell 1, thereby changing the local area of the first filter element 7 at the connection between the shell 1 and the intermediate tube 4.
[0048] In the above solution, the first turbine 1002 and the worm 1003 are located at the left and middle of the rotating shaft 1001 respectively, and the first turbine 1002 is located at the left side of the connection between the pipe 2 and the intermediate pipe 4 (as shown in FIG. Figure 4 6, and the like. The second turbine 1004 is used to provide some power to the rotating shaft 601. The cross section of the telescopic end of the first telescopic rod 1006 is a "right-angled trapezoid". The first rotating plate 602 limits the telescopic end of the first telescopic rod 1006. The first limiting member 1007 is provided with an inclined surface (the cross section is a "right-angled trapezoid"). The inclined surface on the first limiting member 1007 squeezes the inclined surface on the telescopic end of the first telescopic rod 1006. The first limiting member 1007 is made of elastic material. There are two limiting protrusions on the first rotating plate 602 distributed circumferentially. There are two first grooves 10081, two second grooves 10082 and two third grooves 10083 on the limiting groove 1008, and the two adjacent ones are connected (together forming a "ring-shaped" closed groove), which is used to balance the force on the first rotating plate 602.
[0049] After the water enters the pipe 2, the flowing water impacts the first turbine 1002, and then the first turbine 1002 starts to rotate clockwise (as shown in FIG. Figure 4 As an example, the first turbine 1002 drives the shaft 1001 to rotate clockwise, the shaft 1001 drives the worm 1003 to rotate clockwise, and the worm 1003 drives the worm wheel 1005 to rotate counterclockwise (as shown in FIG. Figure 4(Taking the top view as an example), the worm gear 1005 drives the rotating shaft 601 and the first telescopic rod 1006 to rotate counterclockwise together. When the first telescopic rod 1006 rotates counterclockwise until the vertical surface corresponding to the vertical waist on its upper telescopic end contacts the adjacent first limit piece 1007, the first telescopic rod 1006 drives the first rotating plate 602 to rotate counterclockwise together through the first limit piece 1007. At that time, the limiting protrusion on the first rotating plate 602 slides in the first groove 10081 (the initial state is now described as the limiting protrusion on the first rotating plate 602 is located in the first groove 10081). During the process, the first rotating plate 602 drives the first filter element 7 to rotate counterclockwise together through the spacing mechanism, thereby changing the area of the first filter element 7 facing the connection between the shell 1 and the intermediate tube 4, thereby reducing the local area of the first filter element 7 from being subjected to the impact of water (untreated water) for a long time, causing impurities in the water to accumulate in the local area of the first filter element 7, thereby affecting the normal water purification work.
[0050] During the counterclockwise rotation of the first rotating plate 602, when the limiting protrusion on the first rotating plate 602 enters the third groove 10083, the third groove 10083 limits the limiting protrusion on the first rotating plate 602, and the first rotating plate 602 begins to move upward under the action of the limiting third groove 10083 (the first rotating plate 602 stretches the first telescopic rod 1006), and the first rotating plate 602 drives the first filter element 7 to undergo axial deformation (wrinkles appear), thereby promoting the fall-off of impurities adhering to the first filter element 7, thereby improving the water purification efficiency of the first filter element 7 and reducing the work intensity of the staff. When the limiting protrusion of the first rotating plate 602 rotates counterclockwise to enter the adjacent second groove 10082, the first rotating plate 602 moves downward along the second groove 10082 under the action of the spacing mechanism, and finally the limiting protrusion on the first rotating plate 602 enters the adjacent first groove 10081.
[0051] like Figure 3-Figure 8 As shown, the spacing mechanism includes: a first elastic element 1101, fixed between the first ring 5 and the first rotating plate 602, the first elastic element 1101 partially penetrates the isolation member 9; a second ring 1102, rotatably connected to the first rotating plate 602, the second ring 1102 is fixed with a moving rod 1103, the moving rod 1103 is slidably connected to the first extrusion rod 1104, the first extrusion rod 1104 is slidably connected to the first ring 5, and a second elastic element 1105 is fixed between the first extrusion rod 1104 and the moving rod 1103.
[0052] In the above scheme, the first elastic element 1101 is a spring, which has the ability of compression and torsion energy storage. A ball is provided on the first extrusion rod 1104 to reduce the friction between it and the first ring 5. The second elastic element 1105 is a spring, which is used to apply pressure to the first extrusion rod 1104. There is friction between the first ring 5 and the shell 1. During the sliding of the first rotating plate 602 in the third groove 10083 (the first rotating plate 602 moves upward, and the first elastic element 1101 undergoes axial and circumferential deformation), the first rotating plate 602 drives the moving rod 1103 to move upward through the second ring 1102. The moving rod 1103 compresses the second elastic element 1105. The second elastic element 1105 applies the elastic force generated by the second extrusion rod 1104, thereby causing the first extrusion rod 1104 to squeeze the first ring 5 and increase the friction between the first ring 5 and the pipe 2, thereby overcoming the first During the rotation of the rotating plate 602, the torsion generated by the twisting of the first elastic element 1101 causes the first filter element 7 to deform axially and circumferentially. As the first rotating plate 602 continues to rotate counterclockwise, when the limiting protrusion on the first rotating plate 602 enters the second groove 10082, the first rotating plate 602 begins to move downward along the second groove 10082 under the action of the elastic force of the second elastic element 1105. During the process, the moving rod 1103 gradually loses the squeezing of the second elastic element 1105, that is, the squeezing force of the first squeezing rod 1104 on the first ring 5 is reduced. When the friction between the first ring 5 and the pipe 2 is less than the torsion generated by the twisting of the first elastic element 1101, the first ring 5 begins to rotate counterclockwise under the action of the torsion of the first elastic element 1101 (gradually moving in the rotation direction of the first rotating plate 602 until the two return to their initial relative state), thereby completing the deformation and resetting of the first filter element 7.
[0053] like Figure 4-Figure 7 and Figure 9 As shown, it also includes: a second rotating plate 1201, which is rotatably connected to the rotating shaft 601, the second rotating plate 1201 is equipped with a second telescopic rod 1202, the worm gear 1005 is provided with a through groove, the second telescopic rod 1202 is located in the through groove of the worm gear 1005, the first rotating plate 602 is fixed with second limiting members 1203 distributed circumferentially, the second telescopic rod 1202 and the adjacent second limiting members 1203 limit each other, and a third elastic element 1204 is fixed between the rotating shaft 601 and the second rotating plate 1201; a locking assembly is arranged on the side of the shell 1 close to the second rotating plate 1201, and is used to change the relative motion state of the second rotating plate 1201 and the shell 1.
[0054] In the above scheme, the cross section of the telescopic end of the second telescopic rod 1202 is a "right-angled trapezoid", the first rotating plate 602 limits the telescopic end of the second telescopic rod 1202, the second limiting member 1203 is provided with an inclined surface (the cross section is a "right-angled trapezoid"), the first limiting member 1007 and the second limiting member 1203 are both made of elastic material, and the inclined surface on the second limiting member 1203 (first limiting member 1007) squeezes the inclined surface on the telescopic end of the second telescopic rod 1202 (first telescopic rod 1006), so that the second limiting member 1203 (first limiting member 1007) can pass through the adjacent second telescopic rod 12 02 (first telescopic rod 1006), the third elastic element 1204 is a coil spring, which is used to apply torsion to the second rotating plate 1201. During the counterclockwise rotation of the rotating shaft 601 (first rotating plate 602), the second rotating plate 1201 is kept stationary by the locking assembly, and the third elastic element 1204 is deformed. The first rotating plate 602 drives the second limiting member 1203 to rotate counterclockwise together. When the inclined surface on the second limiting member 1203 contacts the inclined surface on the second telescopic rod 1202, the second limiting member 1203 is compressed and deformed until it passes through the second telescopic rod 1202.
[0055] When the external water channel no longer flows into the pipe 2, the locking assembly loses the lock on the second rotating plate 1201, and then the second rotating plate 1201 starts to rotate counterclockwise under the action of the torsional force of the third elastic element 1204, and the second rotating plate 1201 drives the second telescopic rod 1202 to rotate counterclockwise together. When the second telescopic rod 1202 contacts the second limiting member 1203 (the right-angled side of the second telescopic rod 1202 contacts the right-angled side of the second limiting member 1203, the tilting member 1007 on the first limiting member 1007 is in contact with the second limiting member 1203). The inclined surface contacts the inclined surface on the telescopic end of the first telescopic rod 1006, and the first limit member 1007 is squeezed and deformed. Thus, the second telescopic rod 1202 drives the first rotating plate 602 to rotate counterclockwise through the second limit member 1203 through the first telescopic rod 1006. In this way, the first filter element 7 continues to deform repeatedly and reduces the amount of impurities accumulated on the first filter element 7 due to the first filter element 7 being in the water for a long time when external water does not enter the pipe 2 (that is, the present invention is in a non-working state).
[0056] like Figure 4 、 Figure 6 、 Figure 9 and Figure 10As shown, the locking assembly includes: a second extrusion rod 1301, which is slidably connected to one side of the shell 1 close to the second rotating plate 1201, and the second extrusion rod 1301 limits the second rotating plate 1201; a sliding shell 1302, which is slidably connected to one end of the rotating shaft 1001 close to the second extrusion rod 1301, the sliding shell 1302 is spline-connected to the pipe fitting 2, the sliding shell 1302 is fixed to the second extrusion rod 1301, the sliding shell 1302 is filled with a transmission medium, the rotating shaft 1001 is fixed with a third turbine 1303, the third turbine 1303 is located in the sliding shell 1302, and a fourth elastic element 1304 is fixed between the sliding shell 1302 and the pipe fitting 2.
[0057] In the above scheme, the transmission medium in the sliding shell 1302 is hydraulic oil, and the fourth elastic element 1304 is a spring, which is used to reset the sliding shell 1302. During the counterclockwise rotation of the rotating shaft 1001, the rotating shaft 1001 drives the third turbine 1303 to rotate counterclockwise together. The third turbine 1303 squeezes the hydraulic oil in the sliding shell 1302 to the right, and then the sliding shell 1302 begins to slide to the right along the pipe 2. The fourth elastic element 1304 is compressed, and the sliding shell 1302 drives the second extrusion rod 1301 to move to the right together. The second extrusion rod 1301 gradually moves with the second rotating shaft 1001. The right part of the plate 1201 is in contact with the sliding shell 1302, and the friction force between the two overcomes the torque applied to the second rotating plate 1201 by the third elastic element 1204 (that is, it realizes constant energy storage for subsequent work). When the rotating shaft 1001 stops rotating counterclockwise, the sliding shell 1302 begins to reset under the action of the elastic force of the fourth elastic element 1304, and the sliding shell 1302 drives the second extrusion rod 1301 to reset together. The second extrusion rod 1301 gradually loses its extrusion on the second rotating plate 1201, and then the second rotating plate 1201 begins to rotate under the action of the torsional force of the third elastic element 1204.
[0058] like Figure 6 and Figure 9 As shown, it also includes: a rotating ring 1401, which is fixed to the second rotating plate 1201, the shell 1 is provided with a channel 1402, the channel 1402 is filled with a damping medium, and the rotating ring 1401 slides in the channel 1402; a baffle 1403, which is a plurality of circumferentially spaced apart distributions, and is used to squeeze the damping medium in the channel 1402, so as to reduce the rotation speed of the second rotating plate 1201 when it is acted upon by the third elastic element 1204, and is all fixed to the rotating ring 1401, and the baffle 1403 is located in the channel 1402, and also includes: an annular member 1404, which is a plurality of circumferentially spaced apart distributions, and is all fixed to the channel 1402, and the baffle 1403 and the annular member 1404 are always not in contact, and is used to make the damping medium in the channel 1402 tend to be stable.
[0059] In the above scheme, the damping medium in the channel 1402 is hydraulic oil. During the counterclockwise rotation of the second rotating plate 1201, the second rotating plate 1201 drives the rotating ring 1401 to rotate counterclockwise together. The rotating ring 1401 drives the baffle 1403 to start moving in the channel 1402. During the process, the baffle 1403 is hindered by the hydraulic oil in the channel 1402, so that the counterclockwise rotation speed of the second rotating plate 1201 is relatively slowed down, thereby extending the rotation time of the second rotating plate 1201, and then extending the time that the first filter element 7 is in a deformed state, thereby improving the effect of shedding impurities thereon.
[0060] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A multi-filter water purifier, Its characteristics include: A shell (1), the shell (1) being fixedly connected to and in communication with a pipe (2), a water outlet pipe (3) and an intermediate pipe (4), the intermediate pipe (4) being in communication with the pipe (2); The first ring (5) and the rotating shaft (601) are both rotatably connected to the housing (1); A first rotating plate (602) is slidably and rotationally connected to the rotating shaft (601); a first filter element (7) is fixedly connected between the first ring (5) and the first rotating plate (602); a second filter element (8) is fixedly connected within the housing (1); the second filter element (8) is rotationally connected to the rotating shaft (601); and the second filter element (8) is located within the first filter element (7); An isolation member (9) is rotatably connected to the housing (1), and the isolation member (9) is fixedly connected to the first filter element (7); a power mechanism, disposed between the housing (1) and the pipe (2), for causing the first rotating plate (602) and the rotating shaft (601) to move relative to each other, thereby causing the first filter element (7) to deform; a spacing mechanism, disposed between the first ring (5) and the first rotating plate (602), and used to enable the first ring (5) and the first rotating plate (602) to perform spacing motion; The power mechanism includes: A rotating shaft (1001) is rotatably connected to the pipe (2), the rotating shaft (1001) being fixedly connected to a first turbine (1002) and a worm (1003), the rotating shaft (601) being fixedly connected to a second turbine (1004) and a worm wheel (1005), the second turbine (1004) being located on a side of the rotating shaft (601) close to the water outlet pipe (3), and the worm wheel (1005) being meshed with the worm (1003); A first telescopic rod (1006) is mounted on the worm gear (1005); the first rotating plate (602) limits the first telescopic rod (1006); the first rotating plate (602) is fixed with circumferentially distributed first limiting members (1007); the first telescopic rod (1006) and adjacent first limiting members (1007) are mutually limited; the housing (1) is provided with a limiting groove (1008); the first rotating plate (602) is provided with a limiting protrusion; the limiting groove (1008) is used to limit the limiting protrusion of the first rotating plate (602); The spacing mechanism includes: a first elastic element (1101) fixedly connected between the first ring (5) and the first rotating plate (602), wherein the first elastic element (1101) partially penetrates the isolation member (9); a second ring (1102) rotatably connected to the first rotating plate (602); the second ring (1102) is fixedly connected to a moving rod (1103); the moving rod (1103) is slidably connected to a first extrusion rod (1104); the first extrusion rod (1104) is slidably connected to the first ring (5); a second elastic element (1105) is fixedly connected between the first extrusion rod (1104) and the moving rod (1103); Also included are: a second rotating plate (1201) rotatably connected to the rotating shaft (601); a second telescopic rod (1202) is installed on the second rotating plate (1201); the worm wheel (1005) is provided with a through slot; the second telescopic rod (1202) is located in the through slot of the worm wheel (1005); the first rotating plate (602) is fixedly connected to second limiting members (1203) spaced apart in a circumferential direction; the second telescopic rod (1202) and adjacent second limiting members (1203) are mutually limited; and a third elastic element (1204) is fixedly connected between the rotating shaft (601) and the second rotating plate (1201); a locking assembly, arranged on a side of the housing (1) close to the second rotating plate (1201), and used for changing the relative motion state between the second rotating plate (1201) and the housing (1); Also included are: A rotating ring (1401) is fixedly connected to the second rotating plate (1201); the housing (1) is provided with a channel (1402); the channel (1402) is filled with a damping medium; and the rotating ring (1401) slides in the channel (1402); A plurality of baffles (1403) are circumferentially spaced and fixed to the rotating ring (1401), and the baffles (1403) are located in the channel (1402); Also included are: The annular members (1404) are multiple and distributed at intervals in the circumferential direction, and are all fixed in the channel (1402).
2. A multi-filter water purifier according to claim 1, characterized in that: The limiting groove (1008) is composed of a first groove (10081), a second groove (10082) and a third groove (10083) connected end to end, the first groove (10081) is a horizontal groove, the second groove (10082) is a vertical groove, and the third groove (10083) is a spatial arc groove.
3. A multi-filter water purifier according to claim 2, characterized in that: The limiting grooves (1008) are distributed throughout the entire circumference of the housing (1), thereby changing the local area of the first filter element (7) at the connection between the housing (1) and the intermediate tube (4).
4. A multi-filter water purifier according to claim 1, characterized in that: The locking assembly includes: A second extrusion rod (1301) is slidably connected to a side of the housing (1) close to the second rotating plate (1201), and the second extrusion rod (1301) limits the second rotating plate (1201); A sliding shell (1302) is slidably connected to one end of the rotating shaft (1001) close to the second extrusion rod (1301), the sliding shell (1302) is spline-connected to the pipe (2), the sliding shell (1302) is fixedly connected to the second extrusion rod (1301), the sliding shell (1302) is filled with a transmission medium, the rotating shaft (1001) is fixedly connected to a third turbine (1303), the third turbine (1303) is located in the sliding shell (1302), and a fourth elastic element (1304) is fixedly connected between the sliding shell (1302) and the pipe (2).
5. The multi-filter water purifier according to claim 1, characterized in that: The baffle (1403) is always out of contact with the annular member (1404), and is used to stabilize the damping medium in the channel (1402).
Citation Information
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