Pipeline type quantum magnetization water purification device
Patent Information
- Application Number
- CN202611142869.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-07-30
- Publication Date
- 2026-09-25
AI Technical Summary
[0004]但该结构在长期运维过程中存在明显缺陷:装置使用一段时间后内部会积聚水垢、泥沙杂质,必须停机拆解壳体进行冲洗维护;拆装时工作人员需借助扳手依次松开、取出全部法兰螺栓,清理法兰面水垢后才能分离主机与管路,冲洗完成后又要重新对齐法兰螺栓孔、逐个穿入螺栓对角锁紧,整套拆装流程工序繁琐、人工操作量大,单次拆解冲洗耗时久,管路系统停机时长大幅增加,降低供水系统连续运行效率,频繁拆装也易造成螺栓锈蚀、密封垫片破损渗漏,提升装置后期维护成本
1、该发明,通过采用一体式卡箍替代传统多组法兰螺栓连接结构,拆装时无需逐个拆装紧固螺栓,简化维护操作流程,缩短设备停机清理时长,提升供水系统连续运行能力,同时开合卡箍的动作可同步驱动虹膜式密封机构完成管路通断,拆卸磁化主机前自动截流,无需单独操作前端管路阀门,减少操作步骤,降低人工操作强度。
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Figure CN122809597A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of water treatment, specifically to a pipeline-type quantum magnetization water purification device. Background Technology
[0002] In the fields of civil water supply and circulating water treatment, pipeline-type quantum magnetization water purification devices rely on the vertical cutting of permanent magnet lines of force by water flow to convert the kinetic energy of water into the internal energy of water molecules, increase the vibration frequency and electronic energy level of water molecules, change the physical and chemical properties of water, and achieve the effects of water magnetization purification, scale inhibition and removal. They are widely installed in tap water transmission pipelines and circulating water pipeline systems. After long-term water flow, the permanent magnet components inside the device are prone to the accumulation of scale and sediment impurities. It is necessary to periodically disassemble and flush the internal cavity and magnet structure to ensure the continuous and stable magnetization water purification effect.
[0003] The existing pipeline-type quantum magnetization water purification device mainly consists of an inlet pipe, an outlet pipe, a magnetization main unit housing, an internal permanent magnetization component, a sealing gasket, a flange, and multiple sets of fastening bolts. The magnetization main unit housing has flanges welded to both ends. During on-site assembly, the pipeline flanges are aligned with the main unit flanges, a sealing gasket is laid in the middle of the flanges, and then multiple sets of bolts are passed through the two sets of flanges and tightened diagonally. The water circuit is sealed and connected by relying on the preload of the bolts to compress the sealing gasket. The water flows through the magnetization area inside the housing to complete the magnetization treatment. This flange bolt connection structure has stable pressure bearing performance and is the mainstream assembly form of the current pipeline magnetization water purification device.
[0004] However, this structure has obvious defects in long-term operation and maintenance: after a period of use, scale and sediment will accumulate inside the device, requiring it to be shut down and disassembled for flushing and maintenance; during disassembly and assembly, workers need to use wrenches to loosen and remove all flange bolts one by one, clean the scale on the flange surface before the main unit can be separated from the pipeline, and after flushing, the flange bolt holes must be realigned and the bolts inserted one by one and tightened diagonally. The whole disassembly and assembly process is cumbersome and requires a lot of manual labor. Each disassembly and flushing takes a long time, which greatly increases the downtime of the pipeline system, reduces the continuous operation efficiency of the water supply system, and frequent disassembly and assembly can also cause bolt corrosion, gasket damage and leakage, and increase the later maintenance cost of the device. Summary of the Invention
[0005] The purpose of this invention is to provide a pipeline-type quantum magnetization water purification device to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a pipeline-type quantum magnetization water purification device, comprising a connecting pipe and a magnetization main unit pipe, wherein a fixed plate and a movable plate are respectively provided at the ends of the connecting pipe and the magnetization main unit pipe, and a sealing gasket is provided on the adjacent surfaces of the fixed plate and the movable plate. The fixed plate and the movable plate are connected by a clamp, the clamp comprising a fixed clamp seat and a movable clamp seat installed on the outer wall of the fixed plate and slidingly engaging with the movable plate, and a bolt locking device installed at the end of the movable clamp seat. The fixed clamp seat and the movable clamp seat are provided with slots corresponding to the fixed plate and the movable plate, and a sealing plate that is in contact with the fixed plate and the movable plate is installed in the middle of the slot. The fixed plate is equipped with an iris-type sealing mechanism and a lever adapted to the iris-type sealing mechanism. The fixed plate is provided with a reciprocating mechanism, which includes a slide seat that is slidably installed in the fixed plate and slides with the lever, a screw that is rotatably installed in the fixed plate and threadedly connected to the slide seat, and a synchronizer provided in the fixed plate and the clamp. The fixed hoop and the movable hoop are equipped with an outward pushing mechanism. When the movable hoop is opened, the outward pushing mechanism will drive the movable plate to push the movable plate to the outside of the fixed hoop.
[0007] Preferably, the fixed plate and the movable plate are rectangular at the end near the fixed hoop seat, and the outer edges of the fixed plate and the movable plate are chamfered. The outer wall of the fixed plate and the movable plate on one side is in contact with the sealing plate, and the outer wall of the other side is in contact with the inner wall of the slot.
[0008] Preferably, the fixed hoop and the fixed plate are detachably connected by multiple sets of bolts, and the bottom end of the fixed hoop is rotatably connected to the movable hoop, while the top end is locked to the movable hoop by a bolt locking device.
[0009] Preferably, the sealing plate has an isosceles trapezoidal cross-section, and the outer end of the sealing plate protrudes into the groove. The inner wall of the groove is designed with an outwardly opening slope to squeeze the movable plate and the fixed plate closer to each other.
[0010] Preferably, the outer wall of the slide block is fitted with a slide rod that slides with the lever, and the lever has a through groove that slides with the slide rod, the length of which is greater than the diameter of the slide rod.
[0011] Preferably, the synchronizer includes an arc-shaped rack mounted on the end of the movable clamp, and a transmission gear, a pulley set, and a bevel gear set rotatably mounted in the fixed plate; The transmission gear meshes with the arc-shaped rack and is connected to the pulley assembly. The bevel gear assembly is connected to the screw and the pulley assembly. The force generated during the switching process of the movable clamp seat drives the screw to rotate.
[0012] Preferably, the pulley assembly consists of a pulley one coaxially mounted with the transmission gear, a pulley two rotatably mounted on the outside of the screw end, and a belt. The pulley one and the pulley two are connected to each other by the belt, and the diameter of the pulley one is larger than the diameter of the pulley two. The bevel gear set consists of bevel gear one, which is coaxially mounted with pulley two, and bevel gear two, which is mounted on the end of the screw. Bevel gear one and bevel gear two are meshed together.
[0013] Preferably, the outer wall of the fixed hoop is provided with a mating groove, and the outer wall of the fixed plate is provided with an alignment groove. The mating groove and the alignment groove are adapted to the arc-shaped rack, and the outer end of the transmission gear is located in the alignment groove and is used in conjunction with the arc-shaped rack.
[0014] Preferably, the push mechanism includes an oil delivery groove opened in the fixed clamp seat, and a push piston located in the fixed clamp seat is slidably installed at one end of the oil delivery groove, and an oil storage groove opened in the end of the fixed clamp seat is connected to the other end, and a push block with its end in contact with the movable plate is installed on the outer wall of the push piston. The push block is slidably connected to the fixed hoop, and multiple push blocks are evenly installed on the outer wall of the outer push piston.
[0015] Preferably, an oil-pressing piston is slidably installed in the oil storage tank, and a pressure rod that slides in contact with the fixed hoop is installed on the outer wall of the oil-pressing piston, and a pressure wheel is rotatably installed on the outer end of the pressure rod; The movable clamp has a guide groove at its end that is compatible with the pressure roller. When the movable clamp and the fixed clamp are locked together, the pressure roller is located in the guide groove but not in contact with the inner wall of the guide groove. During the opening of the movable clamp, the guide groove will gradually come into contact with the pressure roller and push the pressure roller into the fixed clamp, so that the oil piston can push the hydraulic oil in the oil storage tank to the oil delivery tank.
[0016] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention replaces the traditional multi-flange bolt connection structure with an integrated clamp, eliminating the need to individually remove and tighten the bolts during assembly and disassembly. This simplifies maintenance procedures, shortens equipment downtime for cleaning, and enhances the continuous operation capability of the water supply system. Simultaneously, the opening and closing of the clamp can drive the iris-type sealing mechanism to complete the pipeline connection and disconnection, automatically cutting off the flow before disassembling the magnetizing host. This eliminates the need to operate the front-end pipeline valves separately, reducing operation steps and lowering the intensity of manual operation.
[0017] 2. This invention, by equipping a hydraulic push mechanism, automatically pushes the magnetized main unit and the connecting pipe apart when the movable clamp is opened, reducing the adsorption resistance of the sealing surfaces of the two, ensuring smooth separation of the main unit, and preventing the sealing gasket from sticking or jamming. The overall transmission of the device is stable, with the clamp opening and closing, water circuit cutting off, and hydraulic push action synchronized and linked. The movement strokes of each component are matched with each other, making it less prone to interference and jamming during operation, and ensuring good reliability in long-term use.
[0018] 3. This invention uses a sloping extrusion structure for the clamp groove to compress the fixed plate and the movable plate in the locked state. Combined with the double-layer sealing gasket and sealing plate, it forms a multi-layer sealing structure, which improves the sealing effect at the pipe joint and reduces the probability of water leakage. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the structure when the present invention is in use; Figure 2 This is a schematic diagram of the structure of the connecting pipe, the magnetized main tube, the fixed plate, and the movable plate of the present invention; Figure 3 This is a schematic diagram of the structure of the fixing bracket and fixing plate of the present invention; Figure 4 This is a schematic diagram of the structure of the movable hoop seat after it is opened according to the present invention; Figure 5 This is a schematic diagram of the iris sealing mechanism, lever, and reciprocating mechanism of the present invention; Figure 6 This is a schematic diagram of the iris-type sealing mechanism during the removal of the magnetized main tube in this invention. Figure 7 This is a schematic diagram of the synchronizer, slide bar, and screw of the present invention; Figure 8 This is a structural schematic diagram of the fixed hoop seat of the present invention, showing the outward pushing mechanism. Figure 9 For the present invention Figure 8 A magnified structural diagram of point A in the middle; Figure 10 This is a partially enlarged planar structural diagram of the movable hoop of the present invention after it is opened.
[0020] In the diagram: 1. Connecting pipe; 2. Magnetized main tube; 3. Fixed plate; 31. Alignment groove; 4. Movable plate; 5. Clamp; 51. Fixed clamp seat; 52. Movable clamp seat; 53. Bolt locker; 54. Slot; 6. Iris sealing mechanism; 7. Lever; 8. Reciprocating mechanism; 80. Slide groove; 81. Slide seat; 82. Slide rod; 83. Screw; 84. Synchronizer; 840. Mating groove; 841. Arc rack; 842. Transmission gear; 843. Pulley assembly; 844. Bevel gear assembly; 9. Push mechanism; 91. Push piston; 92. Push block; 93. Oil delivery tank; 94. Oil storage tank; 95. Oil pressure piston; 96. Pressure rod; 97. Pressure roller; 98. Guide groove; 10. Sealing gasket; 11. Sealing plate. Detailed Implementation
[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0022] Please see Figures 1-10 The present invention provides the following technical solution: a pipeline-type quantum magnetization water purification device, comprising a connecting pipe 1 and a magnetization main unit pipe 2. A fixed plate 3 is integrally installed at the end of the connecting pipe 1, and a movable plate 4 is integrally installed at the end of the magnetization main unit pipe 2. Sealing gaskets 10 are fitted on the opposite end faces of the fixed plate 3 and the movable plate 4. The fixed plate 3 and the movable plate 4 are locked together by a clamp 5. The clamp 5 includes a fixed clamp seat 51, a movable clamp seat 52, and a bolt locking device 53. The fixed clamp seat 51 is fitted on the outer wall of the fixed plate 3. The bottom of the movable clamp seat 52 is hinged to the fixed clamp seat 51, and the top is locked by the bolt locking device 53. A slot 54 is opened on the inner side of the fixed clamp seat 51 and the movable clamp seat 52, and a sealing gasket is fixedly installed in the middle of the slot 54. Plate 11, sealing plate 11 has a fixed plate 3 and a movable plate 4 attached to its two sides respectively; the fixed plate 3 is equipped with an iris-type sealing mechanism 6 and a matching lever 7 inside; the fixed plate 3 is equipped with a reciprocating mechanism 8 inside, the reciprocating mechanism 8 includes a slide 81, a slide rod 82, a screw 83 and a synchronizer 84; the slide 81 is slidably assembled inside the fixed plate 3; the slide rod 82 is fixed on the outside of the slide 81 and slides in cooperation with the slide groove 80 on the lever 7; the screw 83 is threadedly connected to the slide 81; the synchronizer 84 links the movable clamp 52 and the screw 83; the fixed clamp 51 and the movable clamp 52 are equipped with an outward pushing mechanism 9 inside; during the opening process of the movable clamp 52, the outward pushing mechanism 9 can drive the movable plate 4 to push it outward and separate.
[0023] In one embodiment of the present invention, the ends of the fixed plate 3 and the movable plate 4 near the clamp 5 are rectangular structures, and all outer edges of the two are chamfered. The inner sidewalls of the fixed plate 3 and the movable plate 4 are attached to the sealing plate 11, and the outer sidewalls are attached to the inner wall of the groove 54. The sealing plate 11 has an isosceles trapezoidal cross section, and the outer end of the sealing plate 11 extends out of the groove 54. The inner wall of the groove 54 is an outwardly opening slope. When the clamp 5 is locked, the slope squeezes the fixed plate 3 and the movable plate 4 to bring them closer together, and the sealing gasket 10 and the sealing plate 11 are compressed in multiple ways to prevent pipeline leakage.
[0024] As one embodiment of the present invention, the fixed clamp 51 is detachably fixed to the fixed plate 3 by multiple sets of bolts. The bottom end of the fixed clamp 51 is rotatably hinged to the movable clamp 52, and the top end is locked or released by the bolt locking device 53. When disassembling and assembling the magnetizing host tube 2, it is not necessary to disassemble a large number of flange bolts, and the operation is simple.
[0025] In one embodiment of the present invention, the synchronizer 84 includes an arc-shaped rack 841, a transmission gear 842, a pulley set 843, and a bevel gear set 844; the arc-shaped rack 841 is fixed to the end of the movable clamp 52, the outer wall of the fixed plate 3 is provided with an alignment groove 31, the outer wall of the fixed clamp 51 is provided with a mating groove 840, and the arc-shaped rack 841 passes through the mating groove 840 and extends into the alignment groove 31 to mesh with the transmission gear 842; The pulley assembly 843 includes pulley one, pulley two, and a transmission belt. Both pulley one and pulley two are toothed pulleys, and the belt is also a toothed pulley. The transmission gear 842 is coaxially connected to pulley one of the pulley assembly 843. The diameter of pulley one is larger than that of pulley two, forming a speed-increasing transmission. Pulley two is coaxially fitted with bevel gear one of bevel gear assembly 844. Bevel gear one meshes with bevel gear two at the end of screw 83 for transmission. When the movable clamp 52 flips open and closes, the arc-shaped rack 841 drives the entire transmission structure to rotate, synchronously driving screw 83 to rotate in both directions.
[0026] In one embodiment of the present invention, the outward pushing mechanism 9 is located inside the fixed clamp 51 and includes an oil delivery groove 93, an outward pushing piston 91, a push block 92, an oil storage groove 94, a pressure piston 95, a pressure rod 96, a pressure roller 97, and a guide groove 98. The outward pushing piston 91 is slidably mounted at one end of the oil delivery groove 93, and multiple sets of push blocks 92 are evenly fixed to the outside of the outward pushing piston 91. The push blocks 92 slide through the fixed clamp 51 and press against the movable plate 4. The other end of the oil delivery groove 93 is connected to the oil storage groove 94, and the oil storage groove 94 slides inside. The hydraulic piston 95 is assembled, and the pressure rod 96 is connected to the outside of the hydraulic piston 95. The pressure roller 97 is rotatably installed at the outer end of the pressure rod 96. The end of the movable clamp 52 has a guide groove 98. When the clamp 5 is locked, the pressure roller 97 is placed inside the guide groove 98 without compression. When the movable clamp 52 is flipped outward, the inclined surface of the guide groove 98 compresses the pressure roller 97, pushing the hydraulic piston 95 to compress the hydraulic oil in the oil storage tank 94. The oil pressure pushes the push piston 91 and push block 92 out of the movable plate 4 through the oil delivery tank 93, reducing the pipeline separation resistance.
[0027] In one embodiment of the present invention, a groove 80 is formed through the lever 7. The length of the groove 80 is greater than the outer diameter of the lever 82. When the slide block 81 moves, the lever 82 can slide in the groove 80, continuously driving the lever 7 to swing back and forth, thereby controlling the iris-type sealing mechanism 6 to open and close synchronously, and realizing the automatic opening and closing of the pipeline.
[0028] Working principle: This pipeline quantum magnetization water purification device is used for pipeline water magnetization treatment. After long-term use, the permanent magnet component inside the magnetization main unit 2 is prone to scale and impurities, requiring regular disassembly and cleaning. The device relies on the linkage of clamp 5, synchronizer 84, push mechanism 9, and reciprocating mechanism 8, combined with iris-type sealing mechanism 6 to achieve automatic flow interruption before pipe disassembly. Disassembly and assembly do not require disassembling and assembling multiple sets of flange bolts one by one, greatly shortening the pipeline downtime for maintenance. Among them, the iris-type sealing mechanism 6 is a well-known and commonly used technology in the field of fluid sealing, which relies on the synchronous opening and closing of multiple fan blades to complete the pipeline opening and closing sealing. During normal water supply operation, the sealing gaskets 10 on the end faces of the fixed plate 3 at the end of the connecting pipe 1 and the movable plate 4 at the end of the magnetized main tube 2 are in contact with each other; the fixed clamp 51 and the movable clamp 52 form a groove 54, and the sealing plate 11 is fixedly installed in the middle of the groove 54. The two sides of the sealing plate 11 are in close contact with the adjacent surfaces of the fixed plate 3 and the movable plate 4 respectively; because the inner wall of the groove 54 is an outwardly sloping surface, the sloping surface squeezes the outer corners of the fixed plate 3 and the movable plate 4 in the locked state, forcing the fixed plate 3 and the movable plate 4 to come closer to each other, and simultaneously pressing the sealing gasket 10 and the sealing plate 11 in the middle. The multiple compressions improve the overall sealing performance and effectively prevent leakage at the pipe joint surface; At this time, the bolt locking device 53 locks the movable clamp 52 and the fixed clamp 51; there is no oil pressure inside the push mechanism 9, the push piston 91 and push block 92 are completely retracted, the outer end of the push block 92 will not extend into the slot 54, but always stays in contact with the outer wall of the movable plate 4; the arc-shaped rack 841 on the movable clamp 52 continues to mesh with the transmission gear 842 inside the fixed plate 3, reserving a transmission fit relationship for the subsequent cover opening linkage transmission; the screw 83 is stationary, the slide 81 and slide rod 82 maintain a fixed position, the iris sealing mechanism 6 is fully opened, and the water can flow smoothly into the magnetized main tube 2 through the connecting pipe 1. The water flow vertically cuts the permanent magnet magnetic lines of force, completing the quantum magnetization and scale inhibition purification treatment of the water; When the magnetizing host tube 2 is filled with dirt and needs to be disassembled for cleaning, first loosen the bolt lock 53, and then turn it outward to open the movable clamp 52. During the rotation of the movable clamp 52, the arc-shaped rack 841 will rotate, causing the arc-shaped rack 841 to drive the transmission gear 842 meshing with it to rotate. At this time, the transmission gear 842 drives the pulley group 843 to rotate. Since the outer diameter of the first pulley is larger than that of the second pulley, a speed-increasing transmission is formed. Then, the screw 83 is rotated by the bevel gear group 844. This causes the screw 83 to drive the slide 81 to move by the thread, so that the slide rod 82 on the slide 81 slides in the slide groove 80 of the lever 7. During the movement of the slide 81, it will push the lever 7, causing the lever 7 to drive the iris sealing mechanism 6 to close, blocking the water flow inside the connecting pipe 1 in advance, without having to close the front pipeline valve separately. When the movable clamp 52 is opened, the inner wall of the guide groove 98 is in contact with the pressure roller 97. If the movable clamp 52 is pushed further, it will swing to a larger angle, causing the guide groove 98 to gradually squeeze the pressure roller 97 inward. This forces the pressure roller 97 to drive the pressure rod 96 and the oil piston 95 to move into the oil storage tank 94, squeezing the hydraulic oil in the oil storage tank 94. The hydraulic oil pushes the outward piston 91 to move outward through the oil delivery groove 93. During the movement of the outward piston 91, multiple push blocks 92 will be pushed outward simultaneously, so that the push blocks 92 will continuously push the movable plate 4, separating the magnetized main tube 2 from the connecting tube 1 and reducing the resistance to disassembly and separation. After the movable clamp 52 is fully opened, the squeezing constraint of the slot 54 on the outer corner of the movable plate 4 is basically released. Under the continuous pushing action of the push block 92 of the push mechanism 9, the magnetized main tube 2, together with the movable plate 4, is completely separated from the fixed plate 3 and the fixed clamp 51. The staff can directly remove the magnetized main tube 2 and rinse and descale the cavity and permanent magnet components. After cleaning, perform assembly and reset operation. Align the movable plate 4 with the slot 54 on the fixed bracket 51 and push the movable plate 4 into the slot 54 to initially restrict the position of the movable plate 4. Then flip the movable bracket 52 inward and tighten the bolt locking device 53. During the resetting process of the movable clamp 52, the movable plate 4 will be pushed further into the slot 54 to achieve automatic positioning. During the closing process of the fixed clamp 51 and the movable clamp 52, the inclined surface of the slot 54 begins to squeeze the corner of the fixed plate 3, so that the fixed plate 3 and the movable plate 4 squeeze the sealing gasket 10 and the sealing plate 11, further improving the sealing effect. During the process of the movable plate 4 entering the slot 54, the outer wall of the movable plate 4 will squeeze the push block 92 that extends into the slot 54, forcing the push block 92 to reset synchronously; because the guide groove 98 will separate from the pressure roller 97 during the reset process of the movable clamp 52, the pressure roller 97 will be relieved of external pressure. When the push block 92 is squeezed by the movable plate 4 and pushes the external piston 91 to reset, the external piston 91 will push the hydraulic oil in the oil delivery tank 93 back into the oil storage tank 94. The hydraulic oil will push the pressure piston 95, the pressure rod 96 and the pressure roller 97 to reset synchronously. During the reset process of the movable clamp 52, the arc rack 841 will be driven to re-enter the alignment groove 31 through the mating groove 840. During this process, the arc rack 841 will drive the transmission gear 842 to rotate again. The difference is that the rotation direction of the transmission gear 842 during this process is opposite to the rotation direction when the movable clamp 52 is opened, which causes the transmission gear 842, the pulley group 843, and the bevel gear group 844 to rotate, thereby causing the screw 83 to drive the slide 81 to reset in the opposite direction. During the reset process of the slide 81, the lever 7 will be pulled back to its original position through the slide rod 82, causing the iris sealing mechanism 6 to reopen, the pipeline to resume water flow, and the device to resume the magnetization water purification operation. This device replaces the traditional split flange bolt structure with an integrated clamp 5. The opening of the cover realizes two linked actions: oil pressure push separation and iris-type sealing flow interruption. The disassembly and assembly are simple and effectively reduce pipeline downtime maintenance time.
[0029] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any way. Although the present invention has been disclosed above with reference to preferred embodiments, it is not intended to limit the present invention. Any person skilled in the art can make some modifications or alterations to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present invention. Any simple modifications, equivalent changes and alterations made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the scope of the present invention.
Claims
1. A pipeline-type quantum magnetization water purification device, comprising a connecting pipe (1) and a magnetization main unit pipe (2), characterized in that: The ends of the connecting tube (1) and the magnetizing main tube (2) are respectively provided with a fixed plate (3) and a movable plate (4), and a sealing gasket (10) is provided on the adjacent surfaces of the fixed plate (3) and the movable plate (4). The fixed plate (3) and the movable plate (4) are connected by a clamp (5). The clamp (5) includes a fixed clamp seat (51) and a movable clamp seat (52) installed on the outer wall of the fixed plate (3) and slidingly connected to the movable plate (4), and a bolt locker (53) installed at the end of the movable clamp seat (52). The fixed clamp seat (51) and the movable clamp seat (52) are provided with slots (54) corresponding to the fixed plate (3) and the movable plate (4). A sealing plate (11) that is in contact with the fixed plate (3) and the movable plate (4) is installed in the middle of the slot (54). The fixed plate (3) is equipped with an iris sealing mechanism (6) and a lever (7) adapted to the iris sealing mechanism (6). The fixed plate (3) is provided with a reciprocating mechanism (8), which includes a slide (81) slidably installed in the fixed plate (3) and slidably connected to the lever (7), a screw (83) rotatably installed in the fixed plate (3) and threadedly connected to the slide (81), and a synchronizer (84) provided in the fixed plate (3) and the clamp (5). The fixed hoop (51) and the movable hoop (52) are provided with an outward pushing mechanism (9). When the movable hoop (52) is opened, it will drive the outward pushing mechanism (9) to push the movable plate (4) to the outside of the fixed hoop (51).
2. The pipeline-type quantum magnetization water purification device according to claim 1, characterized in that: The fixed plate (3) and the movable plate (4) are rectangular at one end near the fixed hoop (51), and the outer edges of the fixed plate (3) and the movable plate (4) are chamfered. The outer wall of the fixed plate (3) and the movable plate (4) on one side is in contact with the sealing plate (11), and the outer wall of the other side is in contact with the inner wall of the slot (54).
3. The pipeline-type quantum magnetization water purification device according to claim 1, characterized in that: The fixed hoop (51) and the fixed plate (3) are detachably connected by multiple sets of bolts, and the bottom end of the fixed hoop (51) is rotatably connected to the movable hoop (52), and the top end is locked to the movable hoop (52) by a bolt locker (53).
4. The pipeline-type quantum magnetization water purification device according to claim 1, characterized in that: The sealing plate (11) has an isosceles trapezoidal cross section and a groove (54) protrudes from the outer end of the sealing plate (11). The inner wall of the groove (54) is designed with an outwardly opening slope to squeeze the movable plate (4) and the fixed plate (3) closer to each other.
5. The pipeline-type quantum magnetization water purification device according to claim 1, characterized in that: The outer wall of the slide block (81) is fitted with a slide rod (82) that slides with the lever (7), and a slide groove (80) that slides through the lever (7) and slides with the slide rod (82) is provided. The length of the slide groove (80) is greater than the diameter of the slide rod (82).
6. The pipeline-type quantum magnetization water purification device according to claim 1, characterized in that: The synchronizer (84) includes an arc-shaped rack (841) mounted on the end of the movable hoop (52), and a transmission gear (842), a pulley set (843), and a bevel gear set (844) rotatably mounted in the fixed plate (3). The transmission gear (842) meshes with the arc rack (841) and is connected to the pulley assembly (843). The bevel gear assembly (844) is connected to the screw (83) and the pulley assembly (843). The screw (83) is driven to rotate by the force generated during the opening and closing process of the movable clamp (52).
7. A pipeline-type quantum magnetization water purification device according to claim 6, characterized in that: The pulley assembly (843) consists of a pulley one coaxially mounted with the transmission gear (842), a pulley two rotatably mounted on the outside of the end of the screw (83), and a belt. The pulley one and the pulley two are connected to each other by the belt. The diameter of the pulley one is larger than the diameter of the pulley two. The bevel gear set (844) consists of a bevel gear one coaxially mounted with the pulley two and a bevel gear two mounted at the end of the screw (83), with the bevel gear one and bevel gear two meshing together.
8. A pipeline-type quantum magnetization water purification device according to claim 6, characterized in that: The outer wall of the fixed hoop (51) is provided with a mating groove (840), and the outer wall of the fixed plate (3) is provided with a positioning groove (31). The mating groove (840) and the positioning groove (31) are adapted to the arc-shaped rack (841). The outer end of the transmission gear (842) is located in the positioning groove (31) and is used in conjunction with the arc-shaped rack (841).
9. A pipeline-type quantum magnetization water purification device according to claim 1, characterized in that: The push mechanism (9) includes an oil delivery groove (93) opened in the fixed clamp (51), and a push piston (91) located in the fixed clamp (51) is slidably installed at one end of the oil delivery groove (93), and an oil storage groove (94) opened in the end of the fixed clamp (51) is connected at the other end. A push block (92) with its end in contact with the movable plate (4) is installed on the outer wall of the push piston (91). The push block (92) is slidably connected to the fixed hoop (51), and multiple push blocks (92) are evenly installed on the outer wall of the push piston (91).
10. A pipeline-type quantum magnetization water purification device according to claim 9, characterized in that: An oil pressure piston (95) is slidably installed in the oil storage tank (94), and a pressure rod (96) that slides with the fixed hoop (51) is installed on the outer wall of the oil pressure piston (95). A pressure wheel (97) is rotatably installed on the outer end of the pressure rod (96). The movable clamp (52) has a guide groove (98) at its end that is adapted to the pressure roller (97). When the movable clamp (52) and the fixed clamp (51) are locked together, the pressure roller (97) is located in the guide groove (98) but not in contact with the inner wall of the guide groove (98). During the opening of the movable clamp (52), the guide groove (98) will gradually come into contact with the pressure roller (97) and push the pressure roller (97) into the fixed clamp (51) so that the oil piston (95) can push the hydraulic oil in the oil storage tank (94) to the oil delivery tank (93).