A water treatment system for preventing mud calcification

By introducing a spraying and crushing section into the papermaking wastewater treatment system, the problems of insufficient spraying range and soil calcification were solved, the spraying range was expanded and the soil was crushed, and the anti-calcification effect was improved.

CN117185595BActive Publication Date: 2025-12-05ZHEJIANG JINLI ENVIRONMENTAL PROTECTION PAPER CO LTD
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Patent Information

Application Number
CN202310941319.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-28
Publication Date
2025-12-05
Estimated Expiration
2043-07-28

AI Technical Summary

Technical Problem

In the process of treating wastewater from papermaking, insufficient spray coverage leads to calcification in some areas of the soil. When the soil clumps together, it is difficult to absorb water, thus reducing the effectiveness of preventing calcification.

Method used

A water treatment system for preventing mud calcification was designed, comprising a spraying section and a crushing section. The spraying section expands the spraying range through a track, sliding block, gear transmission, and electric telescopic rod, while the crushing section crushes the soil through the cooperation of a sliding rod, a top plate, and a spring rod, thereby enhancing water absorption.

Benefits of technology

It effectively reduces the chance of soil calcification, increases the spraying range and soil breaking effect, ensures that the soil can fully absorb water, and prevents caking.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a sludge calcification prevention water treatment system and relates to the technical field of sludge calcification prevention, which comprises a sewage treatment tower and a spraying part, four supporting legs are welded at the bottom of the sewage treatment tower, the four supporting legs are in contact with the ground, and the spraying part is installed in the sewage treatment tower. Because one spring rod is installed on each connecting plate, the upper ends of the two spring rods are in contact with the bottom end surfaces of the two top plates, respectively, when the spring rod is elastically stretched, the distance between the broken rod and the bottom end surface of the inner wall of the sewage treatment tower is 5 cm, the upward reset of the broken rod can be realized through the spring rod during use, the problem that the calcification prevention effect is reduced due to the fact that part of the soil is calcified due to the fact that the spraying range is not comprehensive enough during spraying, the soil is close to calcification when the soil is caked, and the soil is not easy to absorb water when the soil is caked is solved.
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Description

Technical Field

[0001] This invention relates to the field of sludge anti-calcification technology, and in particular to a water treatment system for preventing sludge calcification. Background Technology

[0002] In the process of papermaking wastewater treatment, spraying is required to prevent sludge from calcifying. If the spraying area is not comprehensive enough, it can easily lead to partial calcification of the soil. When the soil clumps together, it is close to calcification. Moreover, when the soil clumps together, it does not absorb water easily, which reduces the anti-calcification effect. Summary of the Invention

[0003] In view of this, the present invention provides a water treatment system for preventing soil calcification, which has a spray section and a crushing section. By setting up the spray section and the crushing section, the soil can be crushed at the same time as spraying, thereby reducing the probability of soil calcification.

[0004] The purpose and effectiveness of the water treatment system for preventing mud calcification of this invention are achieved by the following specific technical means:

[0005] This invention provides a water treatment system for preventing soil calcification, specifically comprising: a sewage treatment tower and a spray section; the sewage treatment tower has four support legs welded to its bottom, all four support legs being in contact with the ground; the sewage treatment tower is equipped with a spray section; the spray section consists of tracks, sliding blocks, water supply pipes, a first gear, a second gear, a gear rack, spray pipes, spray holes, and an electric telescopic rod. Two tracks are provided, symmetrically fixed inside the sewage treatment tower. A sliding block is slidably connected to each track, and a water supply pipe is rotatably connected to the sliding block. One end of the water supply pipe is connected to the spray pipe. During use, when the sliding block slides left and right, the spray pipe also moves left and right, thus expanding the spray range and reducing the probability of soil calcification; the spray pipe is a cylindrical tubular structure, and the bottom surface of the outer wall of the spray pipe has spray holes arranged in a ring array, which increases the spray range and further reduces the probability of soil calcification.

[0006] Furthermore, a first gear is installed on the water delivery pipe;

[0007] A second gear is rotatably connected to the sliding block, and the second gear meshes with the first gear. A toothed rack is installed on the right end face of the inner wall of the sewage treatment tower, and the toothed rack meshes with the first gear.

[0008] An electric telescopic rod is installed on a track on the right. One end of the electric telescopic rod is fixed to a sliding block. When the electric telescopic rod extends or retracts, the sliding block moves back and forth. At this time, the water delivery pipe rotates under the transmission of the second gear, the first gear, and the gear rack. This can further expand the spraying range and reduce the chance of soil calcification.

[0009] Furthermore, a cover plate is fastened to the top surface of the sewage treatment tower, and an inlet pipe is installed on the cover plate. The cover plate has a stepped structure, and the lower half of the cover plate and the steps are in contact with the inner wall and the top surface of the sewage treatment tower, respectively. This can improve the sealing performance between the sewage treatment tower and the cover plate.

[0010] Furthermore, the left and right end faces of the cover plate are located to the left of the left end face and to the right of the right end face of the sewage treatment tower, respectively.

[0011] The bottom surface of the cover plate has eight support rods welded in a rectangular array. When the support rods are in contact with the placement position, the bottom surface of the cover plate is not in contact with the placement position. This can prevent the cover plate from being bumped or knocked during placement, which would reduce the sealing effect during subsequent installation.

[0012] Furthermore, a crushing component is installed on the wastewater treatment tower;

[0013] The crushing section consists of connecting plates, sliding rods, a top plate, a second mounting base, crushing rods, spring rods, grooves, protrusions, and extrusion rods. Two connecting plates are provided, welded to the left and right ends of the inner wall of the wastewater treatment tower, respectively. Each connecting plate has two sliding rods welded to it. The upper ends of the two sliding rods on the left are welded to a top plate, and the upper ends of the two sliding rods on the right are welded to another top plate. The lower ends of the four sliding rods are welded to the second mounting base. The bottom end of the second mounting base has crushing rods welded in a rectangular array. The distance between the crushing rods and the bottom end of the inner wall of the wastewater treatment tower is 5cm. The lower end of the crushing rods has a pointed structure. When the second mounting base moves downwards, the crushing rods can crush the soil, facilitating water absorption and reducing the likelihood of soil calcification.

[0014] Furthermore, each of the connecting plates is equipped with a spring rod, with the upper end of the two spring rods contacting the bottom end face of the two top plates respectively. When the spring rods are elastically extended, the distance between the crushing rod and the bottom end face of the inner wall of the sewage treatment tower is 5cm. During use, the crushing rod can be reset upward by the spring rods.

[0015] Furthermore, each of the top plates has grooves arranged in a linear array on its top surface, and the grooves are semi-cylindrical groove structures.

[0016] Two extrusion rods are symmetrically welded to the bottom end of the sliding block. Both extrusion rods are cylindrical rod-shaped structures, and the lower end of each extrusion rod is ground to form an arc shape. The two extrusion rods are respectively engaged with grooves on the two top plates. When the sliding block moves back and forth, the top plate moves up and down under the extrusion of the extrusion rods. At this time, the crushing rod also moves up and down, which completes the initial crushing of the soil.

[0017] Furthermore, each of the top plates is welded with protrusions in a linear array. The protrusions are semi-cylindrical structures, and the protrusions and grooves are arranged in an alternating pattern. When the sliding block moves back and forth, the extrusion rod is in continuous elastic contact with the protrusions. At this time, the vertical movement distance of the crushing rod is expanded, thus completing the soil crushing effect.

[0018] Furthermore, a control box is installed on the cover plate, and a microprocessor and a timer are installed inside the control box. The microprocessor and the timer are electrically connected, and the microprocessor is electrically connected to the electric telescopic rod.

[0019] The timer is set with timing parameters, which are 20 seconds. During overshoot, the timer sends a signal to the microprocessor every 20 seconds. At this time, the microprocessor controls the electric telescopic rod to complete one extension and retraction, thus completing the automated sprinkler system.

[0020] Furthermore, the wastewater treatment tower is connected to a drain pipe, which is connected to a connecting pipe, which is connected to a discharge pipe. A first mounting base is welded onto the discharge pipe, which is connected to the drain pipe by two connecting rods. The connecting pipe is made of rubber. When it is necessary to clear the blockage of the drain pipe, simply squeezing the drain pipe will complete the backflow clearing.

[0021] Beneficial effects

[0022] The design of the fragmentation section in the spray system serves two purposes. Firstly, two tracks are symmetrically fixed inside the wastewater treatment tower, each with a sliding block slidably connected to it. A water supply pipe is rotatably connected to the sliding block, with a spray pipe connected to one end of the water supply pipe. During operation, the spray pipe moves left and right as the sliding block moves, thus expanding the spraying range and reducing the likelihood of soil calcification. Secondly, the spray pipe is a cylindrical tubular structure with spray holes arranged in a ring array on its outer bottom surface, further increasing the spraying range and reducing the soil feel. The probability of soil calcification is reduced because a first gear is installed on the water supply pipe; a second gear is rotatably connected to the sliding block, and the second gear meshes with the first gear; a toothed rack is installed on the right end face of the inner wall of the sewage treatment tower, and the toothed rack meshes with the first gear; an electric telescopic rod is installed on a track on the right side, and one end of the electric telescopic rod is fixed to the sliding block. When the electric telescopic rod extends or retracts, the sliding block moves back and forth. At this time, the water supply pipe rotates under the transmission of the second gear, the first gear, and the toothed rack, which can further expand the spraying range and reduce the probability of soil calcification.

[0023] On the other hand, since there are two connecting plates, which are welded to the left and right end faces of the inner wall of the sewage treatment tower respectively, each connecting plate has two sliding rods welded on it. The upper ends of the two sliding rods on the left are welded to a top plate, and the upper ends of the two sliding rods on the right are welded to another top plate. The lower ends of the four sliding rods are welded to the second mounting base. The bottom face of the second mounting base has crushing rods welded in a rectangular array. The distance between the crushing rods and the bottom face of the inner wall of the sewage treatment tower is 5cm. The lower end of the crushing rod is a pointed structure. When the second mounting base moves downward, the crushing rods can crush the soil, which facilitates the soil's absorption of water and reduces the probability of soil calcification. Furthermore, since each connecting plate is equipped with a spring rod, the upper ends of the two spring rods are in contact with the bottom faces of the two top plates respectively. When the spring rods are elastically extended, the distance between the crushing rods and the bottom face of the inner wall of the sewage treatment tower is... The distance is 5cm. During use, the crushing rod can be reset upwards by a spring rod. Each top plate has grooves arranged in a linear array on its top surface; these grooves are semi-cylindrical. Two extrusion rods are symmetrically welded to the bottom surface of the sliding block. Both extrusion rods are cylindrical rods with a polished lower end, resulting in an arc-shaped structure. The two extrusion rods engage with the grooves on the two top plates. When the sliding block moves back and forth, the top plate reciprocates under the pressure of the extrusion rods, and the crushing rod also reciprocates, thus completing the initial crushing of the soil. Furthermore, each top plate has protrusions arranged in a linear array; these protrusions are semi-cylindrical and are staggered with the grooves. When the sliding block moves back and forth, the extrusion rods and protrusions are in continuous elastic contact, extending the vertical movement distance of the crushing rod and achieving the desired soil crushing effect.

[0024] By using a cover plate and support rods, the top surface of the wastewater treatment tower is fitted with a cover plate, on which an inlet pipe is installed. The cover plate has a stepped structure, with the lower half of the cover plate and the stepped section contacting the inner wall and top surface of the wastewater treatment tower, respectively. This improves the sealing performance between the wastewater treatment tower and the cover plate. Furthermore, the left and right ends of the cover plate are located to the left of the left end and to the right of the right end of the wastewater treatment tower, respectively. The bottom surface of the cover plate has eight support rods welded in a rectangular array. When the support rods are in contact with the placement position, the bottom surface of the cover plate is not in contact with the placement position. This prevents the cover plate from being bumped during placement, which could reduce the sealing effect during subsequent installation.

[0025] With the installation of inlet pipe, outlet pipe, connecting pipe and discharge pipe, the sewage treatment tower is connected to an outlet pipe, the outlet pipe is connected to a connecting pipe, the connecting pipe is connected to a discharge pipe, and the discharge pipe is welded to a first mounting seat. The first mounting seat is welded to the outlet pipe through two connecting rods. The connecting pipe is made of rubber. When it is necessary to clear the blockage of the outlet pipe, it is only necessary to squeeze the outlet pipe to complete the backflow clearing. Attached Figure Description

[0026] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.

[0027] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.

[0028] In the attached diagram:

[0029] Figure 1 This is an axial view structural schematic diagram of the water treatment device for preventing mud calcification according to the present invention.

[0030] Figure 2 This is a schematic diagram of the left-side structure of the water treatment device for preventing mud calcification according to the present invention.

[0031] Figure 3 This is a partial cross-sectional axial view of the water treatment device for preventing mud calcification according to the present invention.

[0032] Figure 4 This is the present invention. Figure 3 A schematic diagram of the main structure.

[0033] Figure 5 This is the present invention. Figure 3 A schematic diagram of the left-side view structure.

[0034] Figure 6 This is an axial view of the spray section of the present invention.

[0035] Figure 7 This is a schematic diagram of the axial view of the broken part of the present invention.

[0036] Figure 8 This is the present invention. Figure 7 A schematic diagram of the left-side view structure.

[0037] Figure 9 This is a schematic diagram of the system configuration of the present invention.

[0038] List of image tags

[0039] 1. Wastewater treatment tower; 101. Support leg; 102. Cover plate; 103. Support rod; 104. Inlet pipe; 105. Drain pipe; 106. Connecting pipe; 107. Discharge pipe; 108. First mounting base; 109. Connecting rod; 2. Spraying section; 201. Track; 202. Sliding block; 203. Water supply pipe; 204. First gear; 205. Second gear; 206. Gear rack; 207. Spray pipe; 208. Spray hole; 209. Electric telescopic rod; 3. Crushing section; 301. Connecting plate; 302. Sliding rod; 303. Top plate; 304. Second mounting base; 305. Crushing rod; 306. Spring rod; 307. Groove; 308. Protrusion; 309. Extrusion rod; 4. Control box; 401. Microprocessor; 402. Timer. Detailed Implementation

[0040] The embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples.

[0041] Example: Please refer to Figures 1 to 9 :

[0042] This invention proposes a water treatment system for preventing mud calcification, comprising: a wastewater treatment tower 1 and a spray section 2;

[0043] The bottom of the sewage treatment tower 1 is welded with four support legs 101, all of which are in contact with the ground.

[0044] The sewage treatment tower 1 is equipped with a spray section 2.

[0045] The spray section 2 consists of a track 201, a sliding block 202, a water supply pipe 203, a first gear 204, a second gear 205, a gear rack 206, a spray pipe 207, a spray hole 208, and an electric telescopic rod 209. There are two tracks 201, which are symmetrically fixed inside the sewage treatment tower 1. A sliding block 202 is slidably connected to each of the two tracks 201. A water supply pipe 203 is rotatably connected to the sliding block 202. The lower end of the water supply pipe 203 is connected to the spray pipe 207. When in use, when the sliding block 202 slides left and right, the spray pipe 207 also moves left and right. At this time, the spray range can be expanded, reducing the probability of soil calcification.

[0046] Among them, the spray pipe 207 is a cylindrical tubular structure, and the bottom surface of the outer wall of the spray pipe 207 is provided with spray holes 208 in an annular array, which can increase the spray range and reduce the chance of soil erosion.

[0047] Among them, a first gear 204 is installed on the water delivery pipe 203;

[0048] A second gear 205 is rotatably connected to the sliding block 202. The second gear 205 meshes with the first gear 204. A toothed row 206 is installed on the right end face of the inner wall of the sewage treatment tower 1. The toothed row 206 meshes with the first gear 204.

[0049] An electric telescopic rod 209 is installed on a track 201 on the right side. One end of the electric telescopic rod 209 is fixed to a sliding block 202. When the electric telescopic rod 209 extends or retracts, the sliding block 202 moves back and forth. At this time, the water pipe 203 rotates under the transmission of the second gear 205, the first gear 204 and the gear rack 206. This can further expand the spraying range and reduce the probability of soil calcification.

[0050] The top surface of the sewage treatment tower 1 is fastened with a cover plate 102, and an inlet pipe 104 is installed on the cover plate 102. The cover plate 102 has a stepped structure, and the lower half of the cover plate 102 and the stepped part are in contact with the inner wall and the top surface of the sewage treatment tower 1, respectively. This can improve the sealing performance between the sewage treatment tower 1 and the cover plate 102.

[0051] The left and right ends of the cover plate 102 are located to the left of the left end and to the right of the right end of the sewage treatment tower 1, respectively.

[0052] The bottom surface of the cover plate 102 is welded with eight support rods 103 in a rectangular array. When the support rods 103 are in contact with the placement position, the bottom surface of the cover plate 102 is not in contact with the placement position. This can prevent the cover plate 102 from being bumped during placement, which would reduce the sealing effect during subsequent installation.

[0053] Among them, the sewage treatment tower 1 is equipped with a crushing section 3;

[0054] The crushing section 3 consists of a connecting plate 301, sliding rods 302, a top plate 303, a second mounting base 304, a crushing rod 305, a spring rod 306, a groove 307, a protrusion 308, and a pressing rod 309. Two connecting plates 301 are provided, welded to the left and right ends of the inner wall of the wastewater treatment tower 1, respectively. Each connecting plate 301 has two sliding rods 302 welded to it. The upper ends of the two sliding rods 302 on the left side are welded to a top plate 303, and the upper ends of the two sliding rods 302 on the right side are welded to the top plate 303. The upper end of 2 is welded to another top plate 303. The lower ends of the four sliding rods 302 are all welded to the second mounting base 304. The bottom surface of the second mounting base 304 is welded with a rectangular array of breaking rods 305. The distance between the breaking rods 305 and the bottom surface of the inner wall of the sewage treatment tower 1 is 5cm. The lower end of the breaking rods 305 is a pointed structure. When the second mounting base 304 moves downward, the soil can be broken through the breaking rods 305. At this time, the soil can easily absorb water, which reduces the probability of soil calcification.

[0055] Each connecting plate 301 is equipped with a spring rod 306. The upper end of the two spring rods 306 is in contact with the bottom end face of the two top plates 303 respectively. When the spring rod 306 is elastically extended, the distance between the breaking rod 305 and the bottom end face of the inner wall of the sewage treatment tower 1 is 5cm. During use, the breaking rod 305 can be reset upward by the spring rod 306.

[0056] Each top plate 303 has grooves 307 arranged in a linear array on its top surface, and the grooves 307 are semi-cylindrical groove structures.

[0057] Two extrusion rods 309 are symmetrically welded to the bottom surface of the sliding block 202. Both extrusion rods 309 are cylindrical rod-shaped structures. The lower end of both extrusion rods 309 is ground, and the lower end of the extrusion rods 309 is arc-shaped after grinding. The two extrusion rods 309 are respectively engaged with the grooves 307 on the two top plates 303. When the sliding block 202 moves back and forth, the top plate 303 moves up and down reciprocating under the extrusion of the extrusion rods 309. At this time, the crushing rod 305 also moves up and down reciprocating, which can complete the initial crushing of the soil.

[0058] Each top plate 303 has protrusions 308 welded in a linear array. The protrusions 308 are semi-cylindrical structures. The protrusions 308 and the grooves 307 are arranged in an alternating pattern. When the sliding block 202 moves back and forth, the extrusion rod 309 and the protrusions 308 are in continuous elastic contact. At this time, the vertical movement distance of the crushing rod 305 is expanded, thus completing the soil crushing effect.

[0059] Among them, a control box 4 is installed on the cover plate 102, and a microprocessor 401 and a timer 402 are installed inside the control box 4. The microprocessor 401 and the timer 402 are electrically connected, and the microprocessor 401 is electrically connected to the electric telescopic rod 209.

[0060] The timer 402 is set with timing parameters, which are 20 seconds. During overshoot, the timer 402 sends a signal to the microprocessor 401 every 20 seconds. At this time, the microprocessor 401 controls the electric telescopic rod 209 to complete one extension and retraction, thus completing the automated spraying.

[0061] The wastewater treatment tower 1 is connected to a drain pipe 105, a connecting pipe 106 is connected to the drain pipe 105, a discharge pipe 107 is connected to the connecting pipe 106, and a first mounting base 108 is welded to the discharge pipe 107. The first mounting base 108 is welded to the drain pipe 105 through two connecting rods 109. The connecting pipe 106 is made of rubber. When it is necessary to clear the blockage of the drain pipe 105, it is only necessary to squeeze the drain pipe 105 to complete the backflow clearing.

[0062] The specific usage and function of this embodiment are as follows:

[0063] When in use, the timing parameter in the timer 402 is 20 seconds. During overshoot, the timer 402 sends a signal to the microprocessor 401 every 20 seconds. At this time, the microprocessor 401 controls the electric telescopic rod 209 to complete one extension and retraction, thus completing the automated spraying.

[0064] When the electric telescopic pole 209 extends or retracts, there are two tracks 201, which are symmetrically fixed inside the sewage treatment tower 1. A sliding block 202 is slidably connected to each track 201, and a water supply pipe 203 is rotatably connected to each sliding block 202. A spray pipe 207 is connected to one end of the water supply pipe 203. During use, when the sliding block 202 slides left and right, the spray pipe 207 also moves left and right, thus expanding the spraying range and reducing the chance of soil calcification. Furthermore, because the spray pipe 207 is a cylindrical tubular structure, and the bottom surface of the outer wall of the spray pipe 207 has a ring-shaped array of spray holes 208, this increases the spraying range, further reducing the chance of soil erosion. Also, because the water supply pipe 203... A first gear 204 is installed on the 3rd floor; a second gear 205 is rotatably connected to the sliding block 202, and the second gear 205 meshes with the first gear 204. A toothed row 206 is installed on the right end face of the inner wall of the sewage treatment tower 1, and the toothed row 206 meshes with the first gear 204; an electric telescopic rod 209 is installed on a track 201 on the right side, and one end of the electric telescopic rod 209 is fixed to the sliding block 202. When the electric telescopic rod 209 extends or retracts, the sliding block 202 moves back and forth. At this time, the water delivery pipe 203 rotates under the transmission of the second gear 205, the first gear 204 and the toothed row 206, which can further expand the spraying range and reduce the probability of soil calcification.

[0065] Meanwhile, since there are two connecting plates 301, the two connecting plates 301 are welded to the left end face and the right end face of the inner wall of the sewage treatment tower 1, respectively. Each connecting plate 301 has two sliding rods 302 welded on it. The upper ends of the two sliding rods 302 on the left are welded to a top plate 303, and the upper ends of the two sliding rods 302 on the right are welded to another top plate 303. The lower ends of the four sliding rods 302 are welded to the second mounting base 304. The bottom surface of the second mounting base 304 is welded with breaking rods 305 in a rectangular array. The distance between the crushing rod 305 and the bottom surface of the inner wall of the sewage treatment tower 1 is 5cm. One end of the crushing rod 305 has a pointed structure. When the second mounting base 304 moves downwards, the crushing rod 305 can break up the soil, facilitating water absorption and reducing the likelihood of soil calcification. Furthermore, each connecting plate 301 is equipped with a spring rod 306, the upper ends of which contact the bottom surfaces of the two top plates 303. When the spring rods 306 extend elastically, the distance between the crushing rod 305 and the bottom surface of the inner wall of the sewage treatment tower 1 is 5cm. cm, during use, the spring rod 306 can realize the upward reset of the breaking rod 305; and because the top surface of each top plate 303 has grooves 307 in a linear array, the grooves 307 are semi-cylindrical groove structures; two extrusion rods 309 are symmetrically welded to the bottom end face of the sliding block 202. Both extrusion rods 309 are cylindrical rod structures, and the lower end of both extrusion rods 309 is ground. After grinding, the lower end of the extrusion rod 309 is an arc structure. The two extrusion rods 309 are respectively engaged with the grooves 307 on the two top plates 303. When the sliding block When the sliding block 202 moves back and forth, the top plate 303 reciprocates up and down under the pressure of the squeezing rod 309. At the same time, the crushing rod 305 also reciprocates up and down, which completes the initial crushing of the soil. Since each top plate 303 is welded with protrusions 308 in a linear array, and the protrusions 308 are semi-cylindrical structures, the protrusions 308 and the grooves 307 are arranged in an alternating manner. When the sliding block 202 moves back and forth, the squeezing rod 309 and the protrusions 308 are in continuous elastic contact. At this time, the vertical movement distance of the crushing rod 305 is expanded, thus completing the soil crushing effect.

[0066] When unblocking is required, the sewage treatment tower 1 is connected to a drain pipe 105, a connecting pipe 106 is connected to the drain pipe 105, a discharge pipe 107 is connected to the connecting pipe 106, and a first mounting base 108 is welded to the discharge pipe 107. The first mounting base 108 is welded to the drain pipe 105 through two connecting rods 109. The connecting pipe 106 is made of rubber. When unblocking is required, the drain pipe 105 can be squeezed to complete the backflow unblocking.

[0067] During use, a cover plate 102 is fastened to the top surface of the sewage treatment tower 1, and an inlet pipe 104 is installed on the cover plate 102. The cover plate 102 has a stepped structure, and the lower half of the cover plate 102 and the stepped part are in contact with the inner wall and the top surface of the sewage treatment tower 1, respectively. This can improve the sealing performance between the sewage treatment tower 1 and the cover plate 102. Furthermore, the left and right ends of the cover plate 102 are located to the left of the left end and to the right of the right end of the sewage treatment tower 1, respectively. The bottom end of the cover plate 102 is welded with eight support rods 103 in a rectangular array. When the support rods 103 are in contact with the placement position, the bottom end of the cover plate 102 is not in contact with the placement position. This can prevent the cover plate 102 from being bumped during placement, which would reduce the sealing effect during subsequent installation.

Claims

1. A water treatment system for preventing mud calcification, characterized by, The utility model relates to sewage treatment tower (1) and spray part (2);Sewage treatment tower (1) bottom welding has four support legs (101), four support legs (101) all with ground contact;Sewage treatment tower (1) inside is installed with spray part (2);Spray part (2) by track (201), sliding block (202), water supply pipe (203), first gear (204), second gear (205), gear row (206), spray pipe (207), spray hole (208) and electric telescopic handle (209) are composed, track (201) is equipped with two, two tracks (201) symmetry fixed in sewage treatment tower (1) inside, two tracks (201) are slidably connected with a sliding block (202) on, sliding block (202) is rotatably connected with a water supply pipe (203) on, water supply pipe (203) lower one end is connected with spray pipe (207); Sewage treatment tower (1) is installed with broken part (3); Broken part (3) by connecting plate (301), sliding rod (302), top plate (303), second mounting seat (304), broken rod (305), spring rod (306), recess (307), protruding (308) and extrusion rod (309) are composed, connecting plate (301) is equipped with two, two connecting plates (301) are respectively welded in the left end surface of sewage treatment tower (1) inner wall and right end surface, and each connecting plate (301) is welded with two sliding rods (302), the upper end of left two sliding rods (302) is welded with a top plate (303) and is connected, the upper end of right two sliding rods (302) is welded with another top plate (303) and is connected, and the lower end of four sliding rods (302) is welded with second mounting seat (304) and is connected, and the bottom end surface of second mounting seat (304) is welded with broken rod (305) and is rectangular array, the distance between broken rod (305) and sewage treatment tower (1) inner wall bottom end surface is 5cm, and the lower end of broken rod (305) is pointed structure; Each connecting plate (301) is installed with a spring rod (306), and the upper end of two spring rods (306) is respectively in contact with the bottom end surface of two top plates (303), when spring rod (306) is elastically stretched, the distance between broken rod (305) and sewage treatment tower (1) inner wall bottom end surface is 5cm at this time; The top end surface of each top plate (303) is provided with recess (307) and is linear array, and recess (307) is semicylindrical groove structure; ​ The bottom end of the sliding block (202) is symmetrically welded with two extruded rods (309), both of which are cylindrical rod structures, and the lower end of each extruded rod (309) is polished to be arc-shaped, and the two extruded rods (309) are respectively clamped with the grooves (307) on the two top plates (303), so that the top plates (303) are in a reciprocating state when the sliding block (202) moves forward and backward, and the broken rods (305) are also in a reciprocating state at the same time. Each of the top plates (303) is linearly arrayed with a protrusion (308), which is a semi-cylindrical structure, and the protrusion (308) is arranged in an interlaced manner with the groove (307), so that the extruded rod (309) is in a continuous elastic contact state with the protrusion (308) when the sliding block (202) moves forward and backward.

2. The water treatment system of claim 1, wherein: A first gear (204) is installed on the water delivery pipe (203); A second gear (205) is rotatably connected to the sliding block (202), and the second gear (205) is engaged with the first gear (204), and a toothed row (206) is installed on the right end surface of the inner wall of the sewage treatment tower (1), and the toothed row (206) is engaged with the first gear (204); An electric telescopic rod (209) is installed on the right side of the track (201), and the electric telescopic rod (209) is fixed to the sliding block (202) at the rear end, so that the sliding block (202) moves forward and backward when the electric telescopic rod (209) is extended and retracted, and the water delivery pipe (203) rotates under the transmission of the second gear (205), the first gear (204) and the toothed row (206).

3. The scale preventing calcification water treatment system of claim 1, wherein: A cover plate (102) is buckled to the top end surface of the sewage treatment tower (1), and a liquid inlet pipe (104) is installed on the cover plate (102), and the cover plate (102) is a stepped structure, and the lower half and the step of the cover plate (102) are respectively in contact with the inner wall and the top end surface of the sewage treatment tower (1).

4. The scale-preventing calcification water treatment system according to claim 3, wherein: The left end surface and the right end surface of the cover plate (102) are respectively located on the left side and the right side of the left end surface and the right end surface of the sewage treatment tower (1). Eight support rods (103) are welded to the bottom end surface of the cover plate (102) in a rectangular array, and the bottom end surface of the cover plate (102) is not in contact with the placement position when the support rods (103) are in contact with the placement position.

5. The system for preventing lime scale formation in water of claim 4, wherein: A control box (4) is installed on the cover plate (102), and a microprocessor (401) and a timer (402) are installed in the control box (4), and the microprocessor (401) and the timer (402) are electrically connected, and the microprocessor (401) is electrically connected with the electric telescopic rod (209). The timer (402) has a timing parameter, and the timing parameter in the timer (402) is 20 seconds.

6. The scale-preventing calcification water treatment system of claim 1, wherein: The sewage treatment tower (1) is connected with a liquid discharge pipe (105), the liquid discharge pipe (105) is connected with a connecting pipe (106), the connecting pipe (106) is connected with a discharge pipe (107), the discharge pipe (107) is welded with a first mounting seat (108), the first mounting seat (108) is connected with the liquid discharge pipe (105) by two connecting rods (109), and the connecting pipe (106) is made of rubber.

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