Industrial energy-saving anti-scaling device

By designing built-in cleaning components in industrial energy-saving and anti-scaling devices, the cleaning plate is driven to move and rotate on the outside of the electrode by using water flow, the problem of electrode cleaning needs to be disassembled, and the effect of cleaning the electrode surface without disassembly is achieved.

CN120191997AInactive Publication Date: 2025-06-24ZHEJIANG XINCHENGYUE NEW MATERIAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510609804.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2025-06-24
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing industrial energy-saving and anti-scaling devices need to be disassembled when the electrode is cleaned, resulting in interruption of the production process and complex cleaning process, affecting the stability of the system.

Method used

An industrial energy-saving and anti-scaling device is designed with built-in cleaning components, including support sleeves, cleaning boards, driving parts, etc. The cleaning board is driven to move and rotate axially on the outside of the electrode through water flow to achieve electrode surface cleaning and avoid disassembly operations.

Benefits of technology

The electrode surface can be cleaned without disassembly, avoiding interruptions in production processes, simplifying the cleaning process, and ensuring the normal operation of the electrodes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of water treatment, and discloses an industrial energy-saving anti-scaling device which comprises a pipeline, an electrode and a cleaning assembly are arranged in the pipeline, the cleaning assembly is arranged in the pipeline and comprises a cleaning part, the cleaning part comprises a supporting sleeve located in the pipeline, a cleaning plate is arranged on the inner side of the supporting sleeve, and the cleaning plate is arranged on the inner side of the supporting sleeve. A clamping block is fixed to the outer side of the supporting sleeve, and a connecting sleeve is connected to the outer side of the clamping block in a clamped mode. The anti-scaling device has the beneficial effects that when the anti-scaling device starts to work every time, the surface of the electrode can be cleaned through the cleaning assembly, so that it is avoided that the anti-scaling device needs to be disassembled, the related production process cannot be affected, after cleaning is conducted for a certain time, cleaning is stopped, the electrode is separated from the electrode, and the anti-scaling device is convenient to use. Therefore, the condition that the electrode is damaged due to long-time cleaning is avoided.
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Description

Technical Field

[0001] The present invention relates to the technical field of water treatment, and particularly to an industrial energy-saving anti-scaling device. Background Art

[0002] An anti-scaling device is a device used to prevent the formation of water scale. During operation, it utilizes the action of an electrostatic field to polarize the scale-forming ions in water, preventing them from combining with each other to form water scale. At the same time, it can also gradually loosen and shed the already formed water scale. During the long-term use of the electrodes of the anti-scaling device, the electrodes need to be cleaned regularly. When cleaning the electrodes, the anti-scaling device needs to be disassembled. During the disassembly and cleaning process, the system where the anti-scaling device is located usually stops operating, which will cause the interruption of relevant production processes or water supply. After disassembly and reinstallation and debugging of the anti-scaling device, it takes a certain amount of time, and after resuming operation, it may also take some time for the system to reach a stable state, which will further extend the duration of the system being unable to work properly. Summary of the Invention

[0003] In view of the above problems existing in the existing industrial energy-saving anti-scaling device, the present invention is proposed.

[0004] Therefore, the problem to be solved by the present invention lies in the inconvenient cleaning of the electrodes of the anti-scaling device.

[0005] To solve the above technical problems, the present invention provides the following technical solution: An industrial energy-saving anti-scaling device, which includes a pipeline, and electrodes are arranged inside the pipeline.

[0006] A cleaning assembly is arranged inside the pipeline and includes a cleaning member. The cleaning member includes a support sleeve located inside the pipeline. A cleaning plate is arranged inside the support sleeve. A clamping block is fixed on the outer side of the support sleeve, and a connecting sleeve is clamped on the outer side of the clamping block.

[0007] The cleaning assembly further includes a driving member. The driving member includes a fixing rod fixed on the top of the connecting sleeve. A fixing sleeve is sleeved on the outer side of the fixing rod. A rotating column is inserted into the fixing sleeve. A first fixed shaft is fixed inside the fixing sleeve, and a first spiral groove is formed on the rotating column.

[0008] As a preferred solution of the industrial energy-saving anti-scaling device of the present invention, wherein: blades are fixed on the outer side of the rotating column. A positioning sleeve is fixed on the inner top wall of the pipeline. A water inlet pipe is fixed on one side of the positioning sleeve, and a water outlet pipe is fixed on the other side of the pipeline.

[0009] As a preferred embodiment of the industrial energy-saving and scale-preventing device of the present invention, the cleaning assembly further includes a rotating member, the rotating member includes a rack fixed to the outside of the support sleeve, a gear is arranged on one side of the support sleeve, a rotating column is inserted into the gear, a second spiral groove and a sliding groove are formed on the rotating column, a second fixed shaft is fixed in the gear, a telescopic rod is fixed to the outside of the rotating column, and the top end of the telescopic rod is fixed to the inner wall of the pipeline.

[0010] As a preferred embodiment of the industrial energy-saving and scale-preventing device of the present invention, a guiding rod is fixed to the bottom of the positioning sleeve, a guiding groove is formed on the fixed rod, and the guiding rod is slidably connected to the guiding groove.

[0011] As a preferred embodiment of the industrial energy-saving and scale-preventing device of the present invention, the cleaning assembly further includes a blocking member, the blocking member includes a fixed ring fixed to the inner wall of the water inlet pipe, and a baffle is arranged on one side of the fixed ring.

[0012] As a preferred embodiment of the industrial energy-saving and scale-preventing device of the present invention, a pulling rope is fixed to one side of the baffle, a stabilizing column is fixed to one side of the fixed sleeve, a winding wheel is rotatably connected to the outside of the stabilizing column, the pulling rope is wound around the outside of the winding wheel and fixed to the winding wheel.

[0013] As a preferred embodiment of the industrial energy-saving and scale-preventing device of the present invention, a support plate is fixed to the inner wall of the pipeline, the rotating column is rotatably connected to the support plate, a first spring is sleeved on the outside of the rotating column, and both ends of the first spring are fixed to the support plate and the fixed sleeve respectively.

[0014] As a preferred embodiment of the industrial energy-saving and scale-preventing device of the present invention, a second spring is fixed to the inner wall of the fixed sleeve, and the bottom end of the second spring is fixed to the fixed rod.

[0015] As a preferred embodiment of the industrial energy-saving and scale-preventing device of the present invention, a positioning column is fixed to the top of the cleaning plate, and a third spring is fixed to the top of the positioning column.

[0016] As a preferred embodiment of the industrial energy-saving and scale-preventing device of the present invention, a controller is fixed to the top of the pipeline.

[0017] The beneficial effects of the present invention are as follows: Each time the scale-preventing device starts to work, the cleaning assembly can clean the surface of the electrode, thereby avoiding the need to disassemble the scale-preventing device, which will not affect the relevant production process. And after cleaning for a certain period of time, the cleaning will stop and the cleaning assembly will separate from the electrode, thereby avoiding the situation that long-term cleaning will damage the electrode. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings. Among them:

[0019] Figure 1 It is an overall view of an industrial energy-saving scale inhibitor.

[0020] Figure 2 It is a pipeline sectional structure diagram of an industrial energy-saving scale inhibitor.

[0021] Figure 3 It is a structure diagram of the cleaning component of an industrial energy-saving scale inhibitor.

[0022] Figure 4 It is a structure diagram of the cleaning part and the rotating part of an industrial energy-saving scale inhibitor.

[0023] Figure 5 It is a sectional structure diagram of the cleaning part of an industrial energy-saving scale inhibitor.

[0024] Figure 6 It is a structure diagram of the driving part of an industrial energy-saving scale inhibitor.

[0025] Figure 7 It is for the industrial energy-saving scale inhibitor Figure 6 The partial enlarged structure diagram at position A.

[0026] Figure 8 It is a sectional structure diagram of the positioning sleeve of an industrial energy-saving scale inhibitor.

[0027] Figure 9 It is a sectional structure diagram of the gear of an industrial energy-saving scale inhibitor.

[0028] In the figure: 101, pipeline; 102, electrode; 103, controller; 200, cleaning component; 201, cleaning part; 201a, support sleeve; 201b, cleaning plate; 201c, clamping block; 201d, connecting sleeve; 202, driving part; 202a, fixing rod; 202b, fixing sleeve; 202c, rotating column; 202d, first fixing shaft; 202c-1, first spiral groove; 202e, blade; 202f, positioning sleeve; 202g, water inlet pipe; 202h, water outlet pipe; 203, rotating part; 203a, rack; 203b, gear; 203c, rotating column; 203c-1, second spiral groove; 203c-2, chute; 203d, second fixing shaft; 203e, telescopic rod; 202i, guide rod; 202a-1, guide groove; 202l, second spring; 204, blocking part; 204a, fixing ring; 204b, baffle; 204c, pull rope; 204d, stabilizing column; 204e, winding wheel; 202j, support plate; 202k, first spring; 201e, positioning column; 201f, third spring. Detailed implementation mode

[0029] To make the above objects, features, and advantages of the present invention more obvious and understandable, the following will provide a detailed description of the specific implementation mode of the present invention with reference to the accompanying drawings of the specification.

[0030] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention can also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.

[0031] Secondly, the so-called "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that can be included in at least one implementation manner of the present invention. The phrase "in one embodiment" that appears in different places in this specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment that mutually excludes other embodiments.

[0032] Example 1, refer to Figures 1 - 5 , which is the first embodiment of the present invention. This embodiment provides an industrial energy-saving anti-scaling device. The industrial energy-saving anti-scaling device includes a pipeline 101. Flange plates are fixed on both sides of the pipeline 101 for connecting with the pipeline for conveying water flow. An electrode 102 is arranged inside the pipeline 101. The electrode 102 is fixed inside the pipeline 101 through a support column. A controller 103 is fixed on the top of the pipeline 101. The controller 103 is used to control the electrode 102. By means of the electrode 102, the generation of water scale can be prevented. This is the prior art and will not be elaborated in detail in this solution. And those skilled in the art can clearly understand the working principle.

[0033] The cleaning component 200 is disposed inside the pipeline 101 and includes a cleaning member 201. The cleaning member 201 includes a support sleeve 201a located inside the pipeline 101. The support sleeve 201a is C-shaped and has a diameter larger than that of the electrode 102. A cleaning plate 201b is provided inside the support sleeve 201a. The cleaning plate 201b is semi-circular, and the inner side of the cleaning plate 201b is in a high-fineness frosted shape for cleaning the surface of the electrode 102.

[0034] In the initial state, the cleaning plate 201b is located above the electrode 102 and does not contact the electrode 102. When water flows into the pipeline 101, the support sleeve 201a drives the cleaning plate 201b to move downward and makes the cleaning plate 201b sleeved outside the electrode 102. At this time, the support sleeve 201a drives the cleaning plate 201b to axially move outside the electrode 102, and during the movement, it also drives the cleaning plate 201b to rotate outside the electrode 102. At this time, the surface of the electrode 102 can be cleaned by the cleaning plate 201b. And after cleaning back and forth once, the support sleeve 201a drives the cleaning plate 201b to separate from the electrode 102, so it will not contact the electrode 102 for a long time, thus not affecting the normal operation of the electrode 102.

[0035] A clamping block 201c is fixed on the outer side of the support sleeve 201a. The overall shape of the clamping block 201c corresponds to that of the support sleeve 201a and is T-shaped. Through this, a connecting sleeve 201d is clamped outside the clamping block 201c. The connecting sleeve 201d is connected to the support sleeve 201a through the clamping block 201c, enabling the connecting sleeve 201d to drive the support sleeve 201a to move, and the support sleeve 201a can also rotate inside the connecting sleeve 201d. Due to the C-shaped setting of the support sleeve 201a, the support sleeve 201a will not separate from the connecting sleeve 201d after rotating 180 degrees.

[0036] The cleaning component 200 further includes a driving member 202. The driving member 202 includes a fixing rod 202a fixed to the top of the connecting sleeve 201d. A fixing sleeve 202b is sleeved outside the fixing rod 202a. The fixing rod 202a is movably connected inside the fixing sleeve 202b. Through their cooperation, it is used to drive the connecting sleeve 201d axially and enable the connecting sleeve 201d to move up and down.

[0037] A rotating column 202c is inserted into the fixing sleeve 202b. A first fixing shaft 202d is fixed inside the fixing sleeve 202b. A first spiral groove 202c-1 is formed on the rotating column 202c, and the first fixing shaft 202d slides inside the first spiral groove 202c-1.

[0038] When the rotating column 202c rotates, it will cause the first fixed shaft 202d to slide within the first spiral groove 202c-1. Through the cooperation of the two, the fixed sleeve 202b and the fixed rod 202a can be driven to move, thereby enabling the fixed rod 202a to drive the connecting sleeve 201d and the support sleeve 201a to move.

[0039] Example 2, refer to Figures 3 - 9 , which is the second embodiment of the present invention. This embodiment is based on the previous embodiment.

[0040] Specifically, blades 202e are fixed on the outer side of the rotating column 202c. The number of blades 202e is multiple, and they are annularly fixed on the outer side of the rotating column 202c. A positioning sleeve 202f is fixed on the inner top wall of the pipeline 101. The positioning sleeve 202f is sleeved on the outer side of the blade 202e for wrapping the blade 202e inside. A water inlet pipe 202g is fixed on one side of the positioning sleeve 202f, and a water outlet pipe 202h is fixed on the other side of the pipeline 101. The water inlet pipe 202g and the water outlet pipe 202h are respectively arranged on both sides of the positioning sleeve 202f, and the opening directions are opposite. One side of the water inlet pipe 202g is in a conical shape that expands outward.

[0041] When water flows into the interior of the pipeline 101, part of the water will enter the positioning sleeve 202f through the water inlet pipe 202g. At this time, the thrust generated by the water flow will push the blade 202e to rotate, thereby driving the rotating column 202c to rotate through the blade 202e. Furthermore, each time the electrode 102 starts to work, its surface can be cleaned.

[0042] Specifically, the cleaning assembly 200 further includes a rotating member 203. The rotating member 203 includes a rack 203a fixed on the outer side of the support sleeve 201a. The shape of the rack 203a corresponds to that of the support sleeve 201a. A gear 203b is arranged on one side of the support sleeve 201a. The number of gears 203b is two, and they are respectively located on both sides of the top of the support sleeve 201a. A support seat is fixed on one side of the connecting sleeve 201d. The gear 203b is rotatably connected to the support seat through a bearing. A pulley is fixed on one side of each of the two gears 203b, and the two pulleys are connected by a belt. Therefore, when one gear 203b rotates, it can drive the other gear 203b to rotate. A stabilizing wheel is fixed on the top of the connecting sleeve 201d for supporting and positioning the belt. The belt is made of a waterproof and corrosion-resistant material.

[0043] A rotating column 203c is inserted into the gear 203b. A second spiral groove 203c-1 and a sliding groove 203c-2 are formed on the rotating column 203c. The sliding groove 203c-2 is communicated with the second spiral groove 203c-1. A second fixed shaft 203d is fixed in the gear 203b. The second fixed shaft 203d slides within the sliding groove 203c-2.

[0044] When the connecting sleeve 201d moves, it drives the gear 203b to axially move outside the rotating column 203c and makes the second fixed shaft 203d move in the chute 203c-2. At this time, the gear 203b does not rotate, and the connecting sleeve 201d drives the support sleeve 201a and the cleaning plate 201b to move downward. When the cleaning plate 201b is sleeved outside the electrode 102, the second fixed shaft 203d will enter the second spiral groove 203c-1. As the connecting sleeve 201d moves, the two can cooperate to drive the gear 203b to rotate, so that the gear 203b drives the rack 203a and the support sleeve 201a to rotate.

[0045] Through the arrangement of the two gears 203b, when one gear 203b is separated from the rack 203a, the other gear 203b can still drive the rack 203a to rotate.

[0046] A telescopic rod 203e is fixed outside the rotating column 203c. The telescopic rod 203e can be telescoped as the rotating column 203c moves up and down. The top end of the telescopic rod 203e is fixed to the inner wall of the pipeline 101. The number of the telescopic rods 203e is two, which are respectively fixed at both ends of the rotating column 203c. The rotating column 203c is supported and positioned by the telescopic rod 203e, and can adapt to different heights of the rotating column 203c.

[0047] Specifically, a guide rod 202i is fixed to the bottom of the positioning sleeve 202f. The guide rod 202i is inclined. A guide groove 202a-1 is formed on the fixed rod 202a. The guide rod 202i is slidably connected to the guide groove 202a-1.

[0048] A second spring 202l is fixed to the inner wall of the fixed sleeve 202b. The bottom end of the second spring 202l is fixed to the fixed rod 202a.

[0049] When the fixed rod 202a moves initially, it moves downward along the inclined surface of the guide rod 202i, thereby driving the connecting sleeve 201d to move downward and making the cleaning plate 201b sleeved outside the electrode 102. When the guide rod 202i is separated from the guide groove 202a-1, a positioning elastic force can be applied to the fixed rod 202a through the second spring 202l, so that the connecting sleeve 201d can be kept in the current position and will not move upward or downward.

[0050] When the fixed rod 202a moves reversely to the initial position, the guide rod 202i will insert into the guide groove 202a-1. At this time, the fixed rod 202a will move upward along the guide rod 202i and drive the cleaning plate 201b to separate from the electrode 102 through the connecting sleeve 201d.

[0051] Specifically, the cleaning component 200 further includes a blocking member 204. The blocking member 204 includes a fixing ring 204a fixed to the inner wall of the water inlet pipe 202g. One side of the fixing ring 204a is provided with a baffle 204b. The baffle 204b is hinged to one side of the fixing ring 204a through a hinge seat, and a torsion spring is fixed on the rotating shaft of the hinge seat. The torsion spring can always apply an upward turning force to the baffle 204b.

[0052] Specifically, a pull rope 204c is fixed to one side of the baffle 204b. A stabilizing column 204d is fixed to one side of the fixing sleeve 202b. A winding wheel 204e is rotatably connected to the outside of the stabilizing column 204d. A coil spring is provided between the inner side of the winding wheel 204e and the outside of the stabilizing column 204d. The elastic force of the coil spring is less than the elastic force of the torsion spring. The pull rope 204c is wound around the outside of the winding wheel 204e and is fixed to the winding wheel 204e.

[0053] When the fixing sleeve 202b moves, the winding wheel 204e will exert a pulling force on the pull rope 204c. Since the pull rope 204c cannot move under the elastic force of the torsion spring, the pull rope 204c will generate a reverse pulling force on the winding wheel 204e, causing the winding wheel 204e to rotate and unwind the pull rope 204c. At the same time, the winding wheel 204e will tighten the coil spring.

[0054] When the fixing sleeve 202b moves to the other end point of the rotating column 202c, the winding wheel 204e unwinds all the pull rope 204c on the outside. When the fixing sleeve 202b moves, it will drive the baffle 204b to rotate downward through the pull rope 204c and fit with the fixing ring 204a. At this time, the water inlet pipe 202g can be blocked by the baffle 204b, preventing water flow from entering the positioning sleeve 202f to push the blade 202e to rotate. Moreover, the water flow will exert a pushing force on the baffle 204b, so that the baffle 204b will not open even without the pulling force provided by the pull rope 204c.

[0055] When the fixing sleeve 202b moves in the reverse direction along the rotating column 202c, the coil spring can drive the winding wheel 204e to wind up the pull rope 204c.

[0056] Example 3, refer to Figures 1 - 9 , which is the third embodiment of the present invention. This embodiment is based on the first two embodiments.

[0057] Specifically, a support plate 202j is fixed to the inner wall of the pipeline 101. The number of the support plates 202j is two, which are respectively located at both ends of the rotating column 202c and are used for supporting and positioning the rotating column 202c. The rotating column 202c is rotatably connected inside the support plate 202j. A first spring 202k is sleeved on the outside of the rotating column 202c. Both ends of the first spring 202k are fixed to the support plate 202j and the fixing sleeve 202b respectively.

[0058] After the blade 202e loses the thrust of the water flow and stops rotating, at this time, the first spring 202k can apply a thrust to the fixed sleeve 202b, so that the fixed sleeve 202b can move reversely to the initial position.

[0059] Specifically, a positioning column 201e is fixed to the top of the cleaning plate 201b. There are multiple positioning columns 201e, which are linearly fixed to the top of the cleaning plate 201b. A jack is provided inside the support sleeve 201a. The top end of the positioning column 201e is inserted into the jack. A third spring 201f is fixed to the top of the positioning column 201e, and the top end of the third spring 201f is fixed to the inner wall of the jack. Through the cooperation of the third spring 201f and the positioning column 201e, the support sleeve 201a and the cleaning plate 201b are connected. And when the cleaning plate 201b contacts the electrode 102 and rotates to clean the outside of the electrode 102, a thrust can be applied to it through the third spring 201f, so that it can fit more tightly with the electrode 102. At the same time, it can avoid the cleaning plate 201b applying a large thrust to the electrode 102, resulting in the deformation of the electrode 102.

[0060] During use, when water flow enters the inside of the pipeline 101, part of the water flow will enter the positioning sleeve 202f through the water inlet pipe 202g. At this time, the thrust generated by the water flow will push the blade 202e to rotate. In this way, the rotating column 202c can be driven to rotate by the blade 202e. When the rotating column 202c rotates, the first fixed shaft 202d will slide in the first spiral groove 202c-1. Through the cooperation of the two, the fixed sleeve 202b and the fixed rod 202a can be driven to move, so that the fixed rod 202a can drive the connecting sleeve 201d and the support sleeve 201a to move.

[0061] When the fixed rod 202a moves, it will move downward along the inclined surface of the guide rod 202i and drive the connecting sleeve 201d to move downward, so that the cleaning plate 201b is sleeved outside the electrode 102. At the same time, the second fixed shaft 203d will enter the second spiral groove 203c-1. As the connecting sleeve 201d moves, the gear 203b can be driven to rotate through the cooperation of the two, so that the gear 203b drives the rack 203a and the support sleeve 201a to rotate.

[0062] At this time, the support sleeve 201a will drive the cleaning plate 201b to axially move outside the electrode 102, and during the movement, it will also drive the cleaning plate 201b to rotate outside the electrode 102. At this time, the surface of the electrode 102 can be cleaned by the cleaning plate 201b, thus avoiding the need to disassemble the pipeline 101 every time the electrode 102 is cleaned, which will increase the difficulty of the cleaning operation and affect the relevant production process.

[0063] When the fixed sleeve 202b moves to the other end point of the rotating column 202c, the winding wheel 204e completely unwinds the outer pull rope 204c. When the fixed sleeve 202b moves, it will drive the baffle 204b to rotate downward through the pull rope 204c and fit with the fixed ring 204a. At this time, the water inlet pipe 202g can be blocked by the baffle 204b, so that water cannot enter the positioning sleeve 202f to push the blade 202e to rotate. And the water flow will exert a thrust on the baffle 204b, so that the baffle 204b will not open even without the pulling force provided by the pull rope 204c. At the same time, the first spring 202k exerts a thrust on the fixed sleeve 202b, so that the fixed sleeve 202b can move reversely to the initial position.

[0064] When the fixed sleeve 202b moves reversely, the cleaning plate 201b can clean the electrode 102 again, so as to ensure that the electrode 102 is cleaned thoroughly. And when the fixed rod 202a moves reversely to the initial position, the guide rod 202i will insert into the guide groove 202a-1. At this time, the fixed rod 202a will move upward along the guide rod 202i and drive the cleaning plate 201b to separate from the electrode 102 through the connecting sleeve 201d. In this way, after the cleaning plate 201b finishes cleaning the electrode 102, it will separate from the electrode 102, and thus will not affect the normal use of the electrode 102.

[0065] And when the water flow stops entering the interior of the pipe 101 and the electrode 102 stops working, at this time the baffle 204b will open upward. Therefore, when the water flow enters the interior of the pipe 101 again, the electrode 102 can be cleaned again. Therefore, every time the electrode 102 starts to work, it can be cleaned by the cleaning plate 201b.

[0066] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.

Claims

1. An industrial energy-saving anti-scaling device, characterized in that: include, A pipeline (101), wherein an electrode (102) is arranged inside the pipeline (101); A cleaning assembly (200) is arranged in the pipeline (101), comprising a cleaning piece (201), wherein the cleaning piece (201) comprises a support sleeve (201a) located inside the pipeline (101), a cleaning plate (201b) is arranged inside the support sleeve (201a), a clamping block (201c) is fixed outside the support sleeve (201a), and a connecting sleeve (201d) is clamped outside the clamping block (201c); The cleaning assembly (200) further comprises a driving member (202), wherein the driving member (202) comprises a fixed rod (202a) fixed to the top of the connecting sleeve (201d), a fixed sleeve (202b) is sleeved on the outer side of the fixed rod (202a), a rotating column (202c) is inserted into the fixed sleeve (202b), a first fixed shaft (202d) is fixed in the fixed sleeve (202b), and a first spiral groove (202c-1) is provided on the rotating column (202c).

2. The industrial energy-saving anti-scaling device according to claim 1, characterized in that: A blade (202e) is fixed on the outside of the rotating column (202c), a positioning sleeve (202f) is fixed on the inner top wall of the pipeline (101), a water inlet pipe (202g) is fixed on one side of the positioning sleeve (202f), and a water outlet pipe (202h) is fixed on the other side of the pipeline (101).

3. The industrial energy-saving anti-scaling device according to claim 2, characterized in that: The cleaning assembly (200) further comprises a rotating member (203), wherein the rotating member (203) comprises a rack (203a) fixed to the outside of the support sleeve (201a), a gear (203b) is provided on one side of the support sleeve (201a), a rotating column (203c) is inserted into the gear (203b), a second spiral groove (203c-1) and a sliding groove (203c-2) are provided on the rotating column (203c), a second fixed shaft (203d) is fixed in the gear (203b), a telescopic rod (203e) is fixed to the outside of the rotating column (203c), and the top end of the telescopic rod (203e) is fixed to the inner wall of the pipe (101).

4. The industrial energy-saving anti-scaling device according to claim 2 or 3, characterized in that: A guide rod (202i) is fixed to the bottom of the positioning sleeve (202f), a guide groove (202a-1) is provided on the fixing rod (202a), and the guide rod (202i) is slidably connected to the guide groove (202a-1).

5. The industrial energy-saving anti-scaling device according to claim 4, characterized in that: The cleaning assembly (200) further comprises a blocking member (204), wherein the blocking member (204) comprises a fixing ring (204a) fixed to the inner wall of the water inlet pipe (202g), and a baffle (204b) is provided on one side of the fixing ring (204a).

6. The industrial energy-saving anti-scaling device according to claim 5, characterized in that: A pull rope (204c) is fixed to one side of the baffle (204b), a stabilizing column (204d) is fixed to one side of the fixing sleeve (202b), a winding wheel (204e) is rotatably connected to the outer side of the stabilizing column (204d), and the pull rope (204c) is wound around the outer side of the winding wheel (204e) and is fixed to the winding wheel (204e).

7. The industrial energy-saving anti-scaling device according to claim 5 or 6, characterized in that: A support plate (202j) is fixed to the inner wall of the pipe (101), the rotating column (202c) is rotatably connected to the inner side of the support plate (202j), a first spring (202k) is sleeved on the outer side of the rotating column (202c), and two ends of the first spring (202k) are respectively fixed to the support plate (202j) and the fixed sleeve (202b).

8. The industrial energy-saving anti-scaling device according to claim 7, characterized in that: A second spring (2021) is fixed on the inner wall of the fixing sleeve (202b), and the bottom end of the second spring (2021) is fixed to the fixing rod (202a).

9. The industrial energy-saving anti-scaling device according to claim 8, characterized in that: A positioning column (201e) is fixed on the top of the cleaning plate (201b), and a third spring (201f) is fixed on the top of the positioning column (201e).

10. The industrial energy-saving anti-scaling device according to claim 8 or 9, characterized in that: A controller (103) is fixed on the top of the pipeline (101).