A surface treatment device for cement pole production

CN122829685APending Publication Date: 2026-09-29CHAOHU XINGYU ELECTRIC POWER EQUIP CO LTD
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Patent Information

Application Number
CN202611323431.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-08-28
Publication Date
2026-09-29

AI Technical Summary

Technical Problem

合模线若不做处理,不仅造成电杆外表面凹凸不平,在后期运输架设过程中,合模线凸起部位还容易应力开裂,也会干扰后续喷涂防腐层的附着效果,直接缩短水泥电杆户外服役寿命

Benefits of technology

[0014]滤网可拆卸设置于凹槽内,方槽内转动设置有转动轴,转动轴上设置有若干吸附叶片,转动轴和旋转杆上均设置有传动轮,传动轮周侧设置有传动带,通过吸附叶片对循环水进行二次除杂,有效清除水中细微杂质,大幅提高循环水洁净度,可有效防止细微杂质堵塞输水管和喷水喇叭,保障喷水组件长期稳定工作。

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Abstract

This invention provides a surface treatment device for cement pole production, relating to the field of grinding equipment technology. It includes a worktable with a drive unit on it. Two moving components are connected to the output end of the drive unit. A cement pole is also mounted on the worktable, with the moving components located on both sides of the pole. A grinding component and a variable-angle water spray component are mounted on the moving components. A groove is also formed on the worktable below the cement pole, containing a filter screen. A square groove is connected through the lower side of the groove, and a water pipe is connected to the square groove, which is connected to the variable-angle water spray component. The grinding component and the variable-angle water spray component are mounted together on the same set of moving components. During grinding operations, the water spray mechanism can move synchronously with the grinding point, instantly spraying the grinding area to remove dust and concrete debris generated during grinding, reducing dust in the workshop and improving the working environment.
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Description

Technical Field

[0001] This invention relates to the field of grinding equipment technology, specifically to a surface treatment device for cement pole production. Background Technology

[0002] Most cement poles are formed using centrifugal casting molds. Two sets of half-molds are joined and locked together before centrifugal production. The joint where the molds meet creates a continuous raised parting line on the outer wall of the pole. If this parting line is not treated, it will not only cause unevenness on the outer surface of the pole, but also make the raised parts prone to stress cracking during transportation and erection. It will also interfere with the adhesion of the subsequent anti-corrosion coating, directly shortening the outdoor service life of the cement pole.

[0003] In most equipment, the grinding mechanism and water spraying mechanism are independent, making it impossible to achieve synchronous spraying with the grinding points. The grinding operation generates a large amount of dust and concrete debris, which cannot be washed away in time. This results in dusty workshops, a poor working environment, and the detached waste residue easily re-adheres to the pole grinding area, causing incomplete cleaning of the mold line and unstable product quality. At the same time, there is no complete collection and recycling channel for wastewater and waste residue after grinding and washing. Wastewater mixed with waste residue is directly discharged, resulting in significant water resource waste and greatly increasing production costs. In addition, the waste residue is scattered and piled up on the workbench and the ground, requiring frequent manual cleaning and increasing the labor burden. Summary of the Invention

[0004] The present invention provides a surface treatment apparatus for the production of cement poles to solve at least one of the problems mentioned in the background art.

[0005] To address the aforementioned technical problems, this invention discloses a surface treatment device for cement pole production, comprising a worktable with a driving component. Two moving components are connected to the output end of the driving component. A cement pole is also placed on the worktable, with the moving components located on both sides of the pole. A grinding component and a variable-angle water spraying component are mounted on the moving components. A groove is also formed on the worktable below the cement pole, containing a filter screen. A square groove is connected through the lower side of the groove, and a water supply pipe is connected to the square groove. The water supply pipe is connected to the variable-angle water spraying component. Grinding and water spraying are performed synchronously, simultaneously grinding and rinsing, effectively improving the workshop working environment. Wastewater can be recycled and reused, reducing water waste. Waste residue is centrally intercepted at the filter screen, making cleaning simple and convenient. The overall structure is simple and reliable, effectively grinding the parting line of the cement pole, greatly improving product processing quality.

[0006] The workbench is equipped with a large-end support and a small-end support, and the cement pole is installed on the large-end support and the small-end support; The moving assembly includes symmetrical rotating rods. The output end of the drive unit is connected to a rotating rod. Both the rotating rod and the rotating rod are equipped with pulleys, and belts are wound around the pulleys. One end of the rotating rod is rotatably connected to a fixed plate, which is fixedly connected to the worktable. The other end of the rotating rod is connected to a universal joint, and a threaded rod is connected to the universal joint. The other end of the threaded rod is rotatably connected to a fixed block, and a sliding block is threadedly connected to the threaded rod. The sliding block is slidably connected to the worktable, and a grinding assembly and a variable angle water spray assembly are installed on the sliding block.

[0007] The grinding assembly includes a vertical plate, which is fixedly mounted on a sliding block. A grinding motor is fixedly mounted on the vertical plate, and a grinding rod is connected to the output end of the grinding motor. The grinding rod rotates through the vertical plate, and a grinding block is fixedly connected to the other end of the grinding rod. The two sliding blocks on the left and right can be moved synchronously at the same time through the driving component, without the need for separate driving. This reduces the number of parts. The universal joint can eliminate interference caused by the transmission angle, making the threaded rod transmission smoother. The grinding block rotates at high speed with the grinding motor, which can effectively grind away the protrusions of the mold line of the cement pole.

[0008] The workbench is also symmetrically equipped with inclined plates, and the sliding block is slidably connected to the inclined plates. The variable angle water spray assembly includes a fixed box, which is fixedly mounted on the sliding block. A vertical rod is fixedly connected to one end of the upper side of the fixed box, and a rotating plate is rotatably connected to the vertical rod. Mounting rods are symmetrically fixedly mounted on the rotating plate. Adjusting rods are rotatably mounted on the side of the mounting rods that are close to each other. The other end of the adjusting rods is fixedly connected to the same water pipe, and a water spray horn is connected through the water pipe.

[0009] A circular groove is formed on the upper inner wall of the fixed box, and a rotating disk is rotatably mounted in the groove. A drive rod is fixedly mounted at an eccentric position on the upper surface of the rotating disk. A drive groove is formed on the lower surface of the rotating plate, and the drive rod cooperates with the drive groove. A rotating shaft is fixedly mounted at the lower end of the rotating disk, and a traveling wheel is fixedly mounted at the lower end of the rotating shaft. The traveling wheel contacts the inclined plate, and mechanical linkage is achieved through the rolling cooperation between the inclined plate and the traveling wheel. Without the need for additional drive equipment, it can automatically drive the water spray structure to spray at different angles, and the structure has strong linkage. By coordinating the rotating plate, the eccentric rod and the drive groove, the angle of the water pipe can be finely adjusted, so that the spray range of the water spray horn is wider.

[0010] A limit block is also fixedly installed on the rotating plate. A reciprocating screw is rotatably connected to the limit block. A gear is fixedly connected to the other end of the reciprocating screw. An arc-shaped rack is fixedly installed on the upper side wall of the fixed box. The gear meshes with the arc-shaped rack. A U-shaped sliding block is threadedly connected to the reciprocating screw. A push plate is rotatably connected to the U-shaped sliding block. A U-shaped push block is rotatably connected to the other end of the push plate. The U-shaped push block is fixedly installed on the lower surface of the water pipe. Through the linkage structure of the gear and arc-shaped rack meshing with the reciprocating screw and push plate, a vertical fine-tuning swing is added on the basis of the original horizontal spray, which effectively expands the water spray coverage and improves the spray uniformity.

[0011] The variable angle water spray assembly also includes a transfer tank, through which a rotating shaft rotates. A water suction tank is fixedly installed on the transfer tank, and the transfer tank is connected to a water supply pipe. The water suction tank extends into the fixed box through the lower side wall of the fixed box. The rotating shaft rotates through the water suction tank, and a cavity is provided inside the rotating shaft. Several water supply holes are provided in the cavity. A circular box is rotatably installed on the rotating shaft, and the circular box is connected to several water supply holes. A pipe is fixedly connected through the circular box, and the pipe extends out of the fixed box. The other end of the pipe is connected to a water pipe.

[0012] A circular through groove is provided at the contact position between the transfer tank and the suction tank. A rotating disk is rotatably connected to the circular through groove. A rotating shaft is fixedly installed through the rotating disk. Several suction pipes are fixedly installed through the rotating disk. A suction cylinder is fixedly installed through the upper end of the suction pipe. The suction cylinder is set inside the suction tank. A piston plate is slidably installed inside the suction cylinder. A piston rod is fixedly installed on the piston plate. The piston rod slides out of the suction cylinder. A push wheel is rotatably connected to the other end of the piston rod. Several sloping protrusions are provided on the inner wall of the suction tank. The push wheel contacts the sloping protrusions.

[0013] A connecting pipe is fixedly installed through the water suction cylinder, and the other end of the connecting pipe is connected to the cavity. A reset component is sleeved on the piston rod, and the two ends of the reset component are fixedly connected to the piston plate and the inner wall of the water suction cylinder, respectively. The mechanical water pumping structure is formed by the sloping protrusion, the push wheel, the reset component and the piston plate. The automatic water suction and water delivery operation is achieved by the operation of the equipment itself.

[0014] The filter screen is detachably installed in the groove. A rotating shaft is rotatably installed in the square groove. Several adsorption blades are installed on the rotating shaft. Both the rotating shaft and the rotating rod are equipped with drive wheels. A drive belt is installed around the drive wheels. The adsorption blades perform secondary impurity removal on the circulating water, effectively removing fine impurities in the water, greatly improving the cleanliness of the circulating water, and effectively preventing fine impurities from clogging the water supply pipe and the water spray horn, ensuring the long-term stable operation of the water spray assembly.

[0015] In summary, compared with the prior art, this invention provides a surface treatment device for cement pole production, which has the following beneficial effects: the grinding component and the variable-angle water spray component are installed together on the same set of moving components. During the grinding operation, the water spray mechanism can move synchronously with the grinding point, enabling immediate spraying of the grinding area to promptly remove dust and concrete debris generated during grinding, reducing dust in the workshop and improving the on-site working environment; at the same time, it prevents waste residue from re-adhering to the grinding surface of the pole, ensuring thorough grinding and cleaning of the mold line, and improving the surface treatment quality of the cement pole; the wastewater and waste residue generated from grinding and rinsing can fall directly into the groove, where the filter screen can intercept solid waste residue. After filtration, the wastewater is returned to the variable-angle water spray component for recycling through the square channel and water pipe, reducing water consumption and lowering production costs. The waste residue is concentrated at the filter screen position, facilitating subsequent unified cleaning, reducing the scattering of waste residue, and reducing the workload of manual cleaning. Attached Figure Description

[0016] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings: Figure 1 This is a schematic diagram of the appearance of the present invention; Figure 2 This is a schematic diagram of the installation of the universal joint of the present invention; Figure 3 This is a schematic diagram of the grinding assembly of the present invention; Figure 4 This is a schematic diagram of the structure of the variable angle water spray assembly of the present invention; Figure 5 This is an exploded view of the variable angle water spray assembly of the present invention; Figure 6 This is a schematic diagram of the internal structure of the water-absorbing tank of the present invention; Figure 7 This is a schematic diagram of the internal structure of the water suction cylinder of the present invention; Figure 8 This is a schematic diagram of the internal structure of the square groove of the present invention.

[0017] In the diagram: 1. Drive unit; 2. Small end support; 3. Cement pole; 4. Water pipe; 5. Workbench; 6. Threaded rod; 7. Large end support; 8. Fixing block; 9. Rotating rod; 10. Fixing plate; 11. Rotating rod; 12. Belt; 13. Universal joint; 14. Inclined plate; 15. Fixing box; 16. Pulley; 17. Traveling wheel; 18. Sliding block; 19. Vertical plate; 20. Grinding block; 21. Grinding rod; 22. Grinding motor; 23. Transmission wheel; 24. Water spray horn; 25. Water pipe; 26. Mounting rod; 27. Push plate; 28. Rotating plate; 29. ​​Pipeline; 30. Limiting block 31. Reciprocating lead screw; 32. Transfer tank; 33. U-shaped sliding block; 34. Arc-shaped rack; 35. Gear; 36. Adjusting rod; 37. Rotating shaft; 38. Suction pipe; 39. Suction tank; 40. Water inlet; 41. Drive rod; 42. Drive groove; 43. Rotating disk; 44. Circular box; 45. Sloping protrusion; 46. Rotating disk; 47. Suction cylinder; 48. Vertical rod; 49. Piston rod; 50. Push wheel; 51. Reset component; 52. Piston plate; 53. Connecting pipe; 54. Transmission belt; 55. Groove; 56. Filter screen; 57. Square groove; 58. Adsorption blades; 59. Rotating shaft. Detailed Implementation

[0018] 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.

[0019] In the description of this invention, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," and "the other end," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0020] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed," "equipped with," "connected," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0021] Example 1: Embodiments of the present invention provide a surface treatment apparatus for the production of cement poles, such as... Figures 1-8 As shown, the device includes a workbench 5, on which a drive unit 1 is installed. The output end of the drive unit 1 is connected to two moving components. A cement pole 3 is also installed on the workbench 5. The moving components are located on both sides of the cement pole 3. A grinding component and a variable angle water spraying component are installed on the moving components. A groove 55 is also opened on the workbench 5. The groove 55 is located below the cement pole 3. A filter screen 56 is installed in the groove 55. A square groove 57 is connected through the lower side of the groove 55. A water supply pipe 4 is connected to the square groove 57. The water supply pipe 4 is connected through the variable angle water spraying component.

[0022] The working principle and beneficial effects of the above technical solution are as follows: The cement pole 3 to be processed is placed on the workbench 5. The drive component 1 is started, and the drive component 1 drives the moving components on both sides to move on both sides of the cement pole 3. The grinding component on the moving component contacts the outer wall of the cement pole and grinds and removes the mold line of the cement pole. While the grinding component is grinding, the variable angle water spray component moves synchronously with the moving component and continuously sprays water on the grinding position. The dust and concrete debris generated by grinding are directly washed off by the water flow, avoiding dust flying everywhere and preventing waste residue from sticking back to the surface of the pole after grinding, thus ensuring the effect of grinding and cleaning the mold line. After rinsing, the wastewater mixed with waste residue falls downward into the groove 55 of the workbench 5. The filter screen 56 inside the groove 55 will intercept the concrete solid waste residue. The wastewater flows through the filter screen 56 into the square groove 57 below. The water in the square groove 57 is then transported to the variable angle water spray component through the water supply pipe 4 to realize the water recycling. The waste residue is left on the filter screen 56. Later, the filter screen 56 can be directly removed to clean the waste residue, without the need for manual cleaning around the workbench.

[0023] Grinding and water spraying are carried out simultaneously, with grinding and rinsing done at the same time, effectively improving the workshop working environment; wastewater can be recycled and supplied to reduce water waste; waste residue is centrally intercepted at 56 filter screens, making cleaning simple and convenient. The overall structure is simple and reliable, effectively grinding the mold line of cement poles and greatly improving product processing quality.

[0024] Example 2: Based on the above embodiment 1, as follows Figures 1-3 As shown, a large-end support 7 and a small-end support 2 are installed on the workbench 5, and a cement pole 3 is installed on the large-end support 7 and the small-end support 2. The moving assembly includes symmetrical rotating rods 11. The output end of the drive unit 1 is connected to a rotating rod 9. Both the rotating rod 9 and the rotating rod 11 are equipped with pulleys 16. A belt 12 is wound around the pulleys 16. One end of the rotating rod 11 is rotatably connected to a fixed plate 10, which is fixedly connected to the worktable 5. The other end of the rotating rod 11 is connected to a universal joint 13. A threaded rod 6 is connected to the universal joint 13. The other end of the threaded rod 6 is rotatably connected to a fixed block 8. A sliding block 18 is threadedly connected to the threaded rod 6 and is slidably connected to the worktable 5. A grinding assembly and a variable angle water spray assembly are provided on the sliding block 18.

[0025] Preferably, the polishing assembly includes a vertical plate 19, which is fixedly mounted on a sliding block 18. A polishing motor 22 is fixedly mounted on the vertical plate 19. The output end of the polishing motor 22 is connected to a polishing rod 21, which rotates through the vertical plate 19. The other end of the polishing rod 21 is fixedly connected to a polishing block 20.

[0026] The working principle and beneficial effects of the above technical solution are as follows: The conical cement pole 3 is placed between the large end support 7 and the small end support 2, and the cement pole 3 is stably supported by the two supports; the drive component 1 is started, and the drive component 1 drives the rotating rod 9 to rotate. The rotating rod 9 drives the rotating rods 11 on both sides to rotate together through the pulley 16 and the belt 12. The rotating rod 11 drives the threaded rod 6 to rotate through the universal joint 13. The universal joint 13 can compensate for the angle deviation in the transmission process, making the transmission smoother. The rotation of the threaded rod 6 causes the sliding block 18 to slide along the worktable 5. The sliding blocks 18 on both sides, along with the grinding component and the variable angle water spray component, move as a whole on both sides of the cement pole 3.

[0027] The grinding motor 22 starts, driving the grinding rod 21 and grinding block 20 to rotate at high speed. The grinding block 20 directly adheres to the outer wall of the cement pole 3, grinding and cutting the mold line on the pole. At the same time, the variable angle water spraying component moves synchronously with the sliding block 18, continuously spraying water to the grinding position to reduce dust and remove slag.

[0028] The drive unit 1 can simultaneously drive the left and right sliding blocks 18 to move synchronously without separate drives, resulting in fewer parts. The universal joint 13 can eliminate interference caused by the transmission angle, making the transmission of the threaded rod 6 more stable. The grinding block 20 rotates at high speed with the grinding motor 22, which can effectively grind away the protrusion of the cement pole's mold line. The cement pole is positioned and placed by the large end support 7 and the small end support 2, making clamping simple. The grinding and water spraying are linked as a whole, resulting in good processing stability and higher practicality.

[0029] Example 3: Based on the above embodiments 1-2, such as Figures 3-5 As shown, inclined plates 14 are symmetrically arranged on the workbench 5. Sliding blocks 18 are slidably connected to inclined plates 14. The variable angle water spray assembly includes a fixed box 15, which is fixedly set on the sliding block 18. A vertical rod 48 is fixedly connected to one end of the upper side of the fixed box 15. A rotating plate 28 is rotatably connected to the vertical rod 48. Mounting rods 26 are symmetrically fixed on the rotating plate 28. Adjusting rods 36 are rotatably set on the side of the mounting rods 26 that are close to each other. The other end of the adjusting rods 36 is fixedly connected to the same water pipe 25. A water spray horn 24 is connected through the water pipe 25.

[0030] Preferably, a circular groove is provided on the upper inner wall of the fixed box 15, and a rotating disk 43 is rotatably arranged in the circular groove. A drive rod 41 is fixedly arranged at an eccentric position on the upper surface of the rotating disk 43. A drive groove 42 is provided on the lower surface of the rotating plate 28. The drive rod 41 cooperates with the drive groove 42. A rotating shaft 37 is fixedly arranged at the lower end of the rotating disk 43. A traveling wheel 17 is fixedly arranged at the lower end of the rotating shaft 37. The traveling wheel 17 is in contact with the inclined plate 14.

[0031] The working principle and beneficial effects of the above technical solution are as follows: During the sliding process, the sliding block 18 will roll along the surface of the inclined plate 14 of the worktable 5 with the bottom traveling wheel 17. The inclined plate 14 will cause the traveling wheel 17 to rotate during the movement, thereby driving the rotating shaft 37 and the rotating disk 43 to rotate synchronously. The drive rod 41 eccentrically installed on the rotating disk 43 will slide and cooperate inside the drive groove 42, thereby driving the rotating plate 28 to swing back and forth with the vertical rod 48 as the fulcrum. As the rotating plate 28 swings, it drives the overall water pipe 25 and the water spray horn 24 to swing synchronously and adjust their angles through the mounting rod 26 and adjusting rod 36, greatly expanding the water spray range. With the overall movement of the sliding block 18, the water spray position is always aligned with the cement pole's mold line grinding area, and there will be no water spray deviation or incomplete coverage.

[0032] Mechanical linkage is achieved through the rolling cooperation of inclined plate 14 and traveling wheel 17. Without the need for additional drive equipment, it can automatically drive the water spray structure to spray at different angles, resulting in strong structural linkage. By cooperating with rotating plate 28, eccentric rod 41 and drive groove 42 to finely adjust the angle of water pipe 25, the spray range of water spray horn 24 is made wider and more targeted, which can accurately wash away the dust and waste generated by grinding, effectively improving the grinding and cleaning effect of the pole mold line.

[0033] Example 4: Based on the above embodiment 3, such as Figures 3-4As shown, a limit block 30 is also fixedly installed on the rotating plate 28. A reciprocating screw 31 is rotatably connected to the limit block 30. A gear 35 is fixedly connected to the other end of the reciprocating screw 31. An arc-shaped rack 34 is fixedly installed on the upper side wall of the fixed box 15. The gear 35 and the arc-shaped rack 34 are meshed and connected. A U-shaped sliding block 33 is threadedly connected to the reciprocating screw 31. A push plate 27 is rotatably connected to the U-shaped sliding block 33. A U-shaped push block is rotatably connected to the other end of the push plate 27. The U-shaped push block is fixedly installed on the lower surface of the water pipe 25.

[0034] The working principle and beneficial effects of the above technical solution are as follows: During the process of the rotating plate 28 driving the water spray structure to perform horizontal swing adjustment, the gear 35 swings synchronously with the rotating plate 28 and meshes with the arc-shaped rack 34 fixed on the fixed box 15, thereby driving the reciprocating screw 31 to reciprocate forward and reverse. The reciprocating screw 31 drives the U-shaped sliding block 33 to perform reciprocating linear sliding. Then, through the push plate 27, the U-shaped push block at the bottom of the water pipe 25 is continuously pushed and pulled, so that the water pipe 25 takes the adjusting rod 36 as the rotation fulcrum and adds vertical reciprocating swing on the basis of the original horizontal swing, realizing the bidirectional angle adjustment of the water spray horn 24. The entire structure requires no additional power source and can operate through the mechanical linkage of the equipment itself. This makes the water spraying action no longer a simple horizontal swing, but a combination of horizontal and vertical swings, which greatly increases the spraying range, eliminates blind spots in rinsing, and conforms to the grinding trajectory of the cement pole formwork line, effectively washing away dust and concrete debris generated during grinding.

[0035] Through the linkage structure of gear 35 and arc rack 34 meshing with reciprocating screw 31 and push plate 27, a vertical fine-tuning swing is added on the basis of the original horizontal spraying, which effectively expands the water spraying coverage and improves the spraying uniformity; the mechanical transmission structure has strong stability and effectively improves the grinding and cleaning accuracy of cement pole mold line and the overall treatment quality.

[0036] Example 5: Based on the above embodiment 4, such as Figures 5-7 As shown, the variable angle water spray assembly also includes a transfer tank 32, a rotating shaft 37 rotatably passes through the transfer tank 32, a water suction tank 39 is fixedly installed on the transfer tank 32, the transfer tank 32 is connected to the water supply pipe 4, the water suction tank 39 passes through the lower side wall of the fixed box 15 and extends into the fixed box 15, the rotating shaft 37 rotatably passes through the water suction tank 39, a cavity is provided inside the rotating shaft 37, a number of water supply holes 40 are provided in the cavity, a circular box 44 is rotatably installed on the rotating shaft 37, the circular box 44 is connected to the number of water supply holes 40, a pipe 29 is fixedly connected through the circular box 44, the pipe 29 extends out of the fixed box 15, and the other end of the pipe 29 is connected to the water pipe 25.

[0037] Preferably, a circular through groove is provided at the contact position between the transfer tank 32 and the water suction tank 39. A rotating disk 46 is rotatably connected to the circular through groove. A rotating shaft 37 is fixedly connected through the rotating disk 46. Several water suction pipes 38 are fixedly installed through the rotating disk 46. A water suction cylinder 47 is fixedly installed through the upper end of the water suction pipes 38. The water suction cylinder 47 is located inside the water suction tank 39. A piston plate 52 is slidably installed inside the water suction cylinder 47. A piston rod 49 is fixedly installed on the piston plate 52. The piston rod 49 slidably extends out of the water suction cylinder 47. A push wheel 50 is rotatably connected to the other end of the piston rod 49. Several sloping protrusions 45 are provided on the inner wall of the water suction tank 39. The push wheel 50 contacts the sloping protrusions 45.

[0038] Preferably, a connecting pipe 53 is fixedly installed through the water suction cylinder 47, and the other end of the connecting pipe 53 is connected through the cavity; a reset member 51 is sleeved on the piston rod 49, and the two ends of the reset member 51 are fixedly connected to the piston plate 52 and the inner wall of the water suction cylinder 47, respectively.

[0039] Both the suction pipe 38 and the connecting pipe 53 are equipped with one-way valves. A water pump is connected in series on the water delivery pipe 4 to draw the filtered circulating return water.

[0040] The working principle and beneficial effects of the above technical solution are as follows: The rotating shaft 37 rotates continuously, which drives the rotating disk 46, the suction pipe 38 and the suction cylinder 47 to rotate synchronously. The push wheel 50 at the bottom of the suction cylinder 47 rolls continuously along the sloping protrusion 45 on the inner wall of the suction tank 39. The sloping protrusion 45 continuously pushes up the piston rod 49, causing the piston plate 52 to slide inward inside the suction cylinder 47, while squeezing and compressing the reset piece 51. When the push wheel 50 rolls past the protrusion, the reset piece 51 rebounds and drives the piston plate 52 to reset, thereby realizing the reciprocating suction action of the piston plate 52. The suction cylinder 47 draws circulating water from the suction tank 39 through the suction pipe 38, and then sends the water into the cavity of the rotating shaft 37 through the connecting pipe 53. The water flows into the circular box 44 through the water inlet 40, and finally is transported to the water pipe 25 and the water spray horn 24 through the pipe 29 to continuously supply water to the spray structure. At the same time, the transfer tank 32 is connected to the water inlet 4 to continuously replenish the circulating wastewater, ensuring that the water circulation is uninterrupted. The entire water supply structure works synchronously with the mechanical movement of the equipment, without the need for an additional water pump. The continuous water supply can be completed by mechanical suction.

[0041] The mechanical pumping structure is formed by the sloping protrusion 45, the push wheel 50, the reset piece 51 and the piston plate 52, which rely on the operation of the equipment itself to realize automatic water suction and water delivery. It forms a complete closed-loop water circuit with the transfer tank 32, the cavity of the rotating shaft 37, the circular box 44 and the pipeline 29, which can stably deliver circulating water and provide a continuous and uniform water supply. While achieving the effects of grinding, dust removal and rinsing, and slag removal, it makes use of circulating water resources, resulting in significant water saving and consumption reduction.

[0042] Example 6: Based on the above embodiment 5, such as Figure 1 , Figure 8 As shown, the filter screen 56 is detachably installed in the groove 55. A rotating shaft 59 is rotatably installed in the square groove 57. Several adsorption blades 58 are installed on the rotating shaft 59. Both the rotating shaft 59 and the rotating rod 9 are equipped with transmission wheels 23. A transmission belt 54 is installed around the transmission wheel 23.

[0043] The working principle and beneficial effects of the above technical solution are as follows: The rotating rod 9 drives the rotating shaft 59 to rotate through the transmission wheel 23 and the transmission belt 54, which drives the multiple sets of adsorption blades 58 inside the square tank 57 to rotate synchronously. After the circulating water filtered by the filter screen 56 flows into the square tank 57, the rotating adsorption blades 58 can fully agitate the water and adsorb the fine suspended impurities and micro-slags remaining in the water, thus performing secondary purification treatment on the circulating water and preventing fine impurities from accumulating for a long time and entering the spray assembly with the water circulation, causing pipeline blockage.

[0044] Meanwhile, the filter screen 56 is detachable, and the large particles of waste that are intercepted can be removed directly after the machine is stopped for cleaning. The operation is simple and convenient. The entire purification structure operates synchronously with the main unit, without the need for separate drive, and works in full mechanical linkage.

[0045] The adsorption blades 58 perform secondary impurity removal on the circulating water, effectively removing fine impurities and significantly improving the cleanliness of the circulating water. This effectively prevents fine impurities from clogging the water supply pipe 4 and the spray nozzle 24, ensuring the long-term stable operation of the spray components. The detachable filter screen 56 is easy to clean. Combined with the water purification structure of the adsorption blades 58, it improves the overall cleanliness and operational stability of the equipment's water circulation system, extends the service life of the equipment, and continuously ensures consistent and stable pole grinding and rinsing effects.

[0046] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention.

Claims

1. A surface treatment device for a cement pole production, characterized by, The device includes a workbench (5), on which a drive unit (1) is provided. The output end of the drive unit (1) is connected to two moving components. A cement pole (3) is also provided on the workbench (5). The moving components are located on both sides of the cement pole (3). A grinding component and a variable angle water spraying component are provided on the moving components. A groove (55) is also provided on the workbench (5). The groove (55) is located below the cement pole (3). A filter screen (56) is provided in the groove (55). A square groove (57) is connected through the lower side of the groove (55). A water supply pipe (4) is connected through the square groove (57). The water supply pipe (4) is connected through the variable angle water spraying component.

2. The surface treatment device for cement pole production according to claim 1, characterized in that, The workbench (5) is equipped with a large end support (7) and a small end support (2), and the cement pole (3) is installed on the large end support (7) and the small end support (2); The moving component includes a rotating rod (11) symmetrically arranged in front and back. The output end of the drive component (1) is connected to a rotating rod (9). Both the rotating rod (9) and the rotating rod (11) are provided with pulleys (16). A belt (12) is wound around the pulleys (16). One end of the rotating rod (11) is rotatably connected to a fixed plate (10). The fixed plate (10) is fixedly connected to the worktable (5). The other end of the rotating rod (11) is connected to a universal joint (13). A threaded rod (6) is connected to the universal joint (13). The other end of the threaded rod (6) is rotatably connected to a fixed block (8). A sliding block (18) is threadedly connected to the threaded rod (6). The sliding block (18) is slidably connected to the worktable (5). A grinding component and a variable angle water spray component are provided on the sliding block (18).

3. The surface treatment device for cement pole production according to claim 2, characterized in that, The polishing assembly includes a vertical plate (19), which is fixedly mounted on a sliding block (18). A polishing motor (22) is fixedly mounted on the vertical plate (19). The output end of the polishing motor (22) is connected to a polishing rod (21). The polishing rod (21) rotates through the vertical plate (19). The other end of the polishing rod (21) is fixedly connected to a polishing block (20).

4. The surface treatment device for cement pole production according to claim 3, characterized in that, The workbench (5) is also symmetrically provided with inclined plates (14), and the sliding block (18) is slidably connected to the inclined plate (14). The variable angle water spray assembly includes a fixed box (15), which is fixedly provided on the sliding block (18). A vertical rod (48) is fixedly connected to one end of the upper side of the fixed box (15). A rotating plate (28) is rotatably connected to the vertical rod (48). Mounting rods (26) are symmetrically fixedly provided on the rotating plate (28). Adjusting rods (36) are rotatably provided on the side of the mounting rods (26) that are close to each other. The other end of the adjusting rods (36) is fixedly connected to the same water pipe (25). A water spray horn (24) is connected through the water pipe (25).

5. The surface treatment device for cement pole production according to claim 4, characterized in that, A circular groove is provided on the upper inner wall of the fixed box (15), and a rotating disk (43) is rotatably arranged in the circular groove. A drive rod (41) is fixedly arranged at the eccentric position on the upper surface of the rotating disk (43). A drive groove (42) is provided on the lower surface of the rotating plate (28). The drive rod (41) cooperates with the drive groove (42). A rotating shaft (37) is fixedly arranged at the lower end of the rotating disk (43). A traveling wheel (17) is fixedly arranged at the lower end of the rotating shaft (37). The traveling wheel (17) is in contact with the inclined plate (14).

6. The surface treatment device for cement pole production according to claim 5, characterized in that, A limit block (30) is fixedly installed on the rotating plate (28). A reciprocating screw (31) is rotatably connected to the limit block (30). A gear (35) is fixedly connected to the other end of the reciprocating screw (31). An arc-shaped rack (34) is fixedly installed on the upper side wall of the fixed box (15). The gear (35) meshes with the arc-shaped rack (34). A U-shaped sliding block (33) is threadedly connected to the reciprocating screw (31). A push plate (27) is rotatably connected to the U-shaped sliding block (33). A U-shaped push block is rotatably connected to the other end of the push plate (27). The U-shaped push block is fixedly installed on the lower surface of the water pipe (25).

7. The surface treatment device for cement pole production according to claim 6, characterized in that, The variable angle water spray assembly also includes a transfer tank (32), a rotating shaft (37) rotatably passes through the transfer tank (32), a water suction tank (39) is fixedly installed on the transfer tank (32), the transfer tank (32) is connected to the water supply pipe (4), the water suction tank (39) passes through the lower side wall of the fixed box (15) and extends into the fixed box (15), the rotating shaft (37) rotatably passes through the water suction tank (39), a cavity is provided inside the rotating shaft (37), a number of water supply holes (40) are provided on the cavity, a circular box (44) is rotatably installed on the rotating shaft (37), the circular box (44) is connected to the number of water supply holes (40), a pipe (29) is fixedly connected through the circular box (44), the pipe (29) extends out of the fixed box (15), and the other end of the pipe (29) is connected to the water pipe (25).

8. The surface treatment device for cement pole production according to claim 7, characterized in that, A circular through groove is provided at the contact position between the transfer tank (32) and the water suction tank (39). A rotating disk (46) is rotatably connected to the circular through groove. A rotating shaft (37) is fixedly connected through the rotating disk (46). Several water suction pipes (38) are fixedly installed through the rotating disk (46). A water suction cylinder (47) is fixedly installed through the upper end of the water suction pipe (38). The water suction cylinder (47) is installed inside the water suction tank (39). A piston plate (52) is slidably installed inside the water suction cylinder (47). A piston rod (49) is fixedly installed on the piston plate (52). The piston rod (49) extends slidably out of the water suction cylinder (47). A push wheel (50) is rotatably connected to the other end of the piston rod (49). Several sloping protrusions (45) are provided on the inner wall of the water suction tank (39). The push wheel (50) contacts the sloping protrusions (45).

9. A surface treatment device for cement pole production according to claim 8, characterized in that, A connecting pipe (53) is fixedly installed through the water suction cylinder (47), and the other end of the connecting pipe (53) is connected through the cavity; a reset piece (51) is sleeved on the piston rod (49), and the two ends of the reset piece (51) are fixedly connected to the piston plate (52) and the inner wall of the water suction cylinder (47) respectively.

10. A surface treatment device for cement pole production according to claim 9, characterized in that, The filter screen (56) is detachably installed in the groove (55). A rotating shaft (59) is rotatably installed in the square groove (57). Several adsorption blades (58) are installed on the rotating shaft (59). A transmission wheel (23) is installed on both the rotating shaft (59) and the rotating rod (9). A transmission belt (54) is installed around the transmission wheel (23).