Automatic slotting and assembling equipment for plate pipeline

By designing an automated grooving and assembly equipment for sheet metal pipelines, stable positioning and efficient grooving of sheet metal are achieved, reducing dust and noise pollution and solving the problems of low grooving efficiency, poor precision and high cost in existing technologies.

CN120038365BActive Publication Date: 2025-11-11ZHONGQI JIAOJIAN GRP
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Patent Information

Application Number
CN202510439024.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-09
Publication Date
2025-11-11
Estimated Expiration
2045-04-09

AI Technical Summary

Technical Problem

The existing grooving process for sheet metal suffers from serious dust pollution, high noise levels, low efficiency, poor precision, high labor costs, and the potential to cut into the reinforcing steel bars inside the sheet metal.

Method used

An automatic grooving and assembly equipment for sheet metal pipelines was designed, comprising a conveyor table, an angle adjustment unit, a positioning mechanism, a noise reduction unit, and a dust collection unit. The angle adjustment plate positions and clamps the sheet metal, the noise reduction unit and the dust collection unit reduce noise and dust, and the positioning mechanism prevents the milling cutter from cutting too deeply.

Benefits of technology

It improves grooving efficiency and precision, reduces dust diffusion and noise transmission, lowers labor costs, avoids the risks of cutting steel bars, and speeds up construction progress.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN120038365B_ABST
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Abstract

The present application relates to plate grooving assembly equipment technical field, disclose a kind of plate pipeline automatic grooving assembly equipment, including conveying table, the conveying table both sides near center place are equipped with a group of support side table, the bottom of the support side table and the conveying table is equipped with several support feet, the top of the support side table is equipped with support column, the top of transverse group of support column is equipped with first shaft moving seat, the second shaft moving seat is arranged on the first shaft moving seat, the second shaft moving seat is equipped with milling cutter drive body, the milling cutter drive body is equipped with milling cutter spindle, the milling cutter spindle is equipped with milling cutter;The bottom of the first shaft moving seat is equipped with angle adjusting part at the bottom of the conveying table, the angle adjusting part includes inner frame body, the inner frame body is fixed on the bottom of the conveying table, effectively avoid the problem that field labor cost is high, improve work efficiency, reduce the diffusion of dust, weaken the propagation of noise.
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Description

Technical Field

[0001] This invention relates to the field of plate grooving and assembly equipment, and more specifically, to an automatic grooving and assembly equipment for plate pipelines. Background Technology

[0002] Currently, grooving of sheet metal is generally done manually on-site, which has the following drawbacks: First, on-site grooving generates a lot of dust, noise, and waste; second, on-site grooving is inefficient and has low processing precision, and the grout applied manually requires a long drying time, affecting the on-site construction progress; third, on-site grooving may cut into the internal reinforcing steel bars of the sheet metal, making manual grooving difficult and potentially affecting the sheet metal's performance; fourth, on-site grooving has high labor costs. Therefore, there is an urgent need for an improved technology to solve the above-mentioned problems existing in the current technology. Summary of the Invention

[0003] The technical objective of this invention is to address the above-mentioned shortcomings by providing an automatic grooving and assembly equipment for sheet metal pipelines, thereby resolving the aforementioned problems.

[0004] The technical solution of this invention is implemented as follows:

[0005] An automatic grooving and assembly equipment for sheet metal pipelines includes a conveyor table. A set of support side platforms is provided on both sides of the conveyor table near the center. Several support feet are provided at the bottom of both the support side platforms and the conveyor table. Support columns are provided on the top of the support side platforms. A first axis moving seat is transversely arranged between the tops of the transverse set of support columns. A second axis moving seat is mounted on the first axis moving seat. A milling cutter drive body is mounted on the second axis moving seat. A milling cutter spindle is mounted on the milling cutter spindle. A milling cutter is mounted on the milling cutter spindle. An angle adjustment part is provided below the first axis moving seat at the bottom of the conveyor table. The angle adjustment part includes an inner frame fixed to the bottom of the conveyor table. A second track is provided at the center of the bottom of the inner frame. A set of cooperating sliders is provided on the second track. Symmetrical L-shaped frame plates are provided at the bottom of each slider. A drive arm is provided at the center of the bottom of each L-shaped frame plate. An L-shaped connecting plate is provided at the other end of the drive arm. Several pneumatic rods are provided on one side of the L-shaped connecting plate. A matching cylinder 2 is provided on one side of the L-shaped connecting plate. A U-shaped frame is provided on the top of the cylinder 2. A second L-shaped plate is provided on both sides of the top of the U-shaped frame. The sides of the second L-shaped plate are fixed at corresponding positions on one side of the conveyor table. A set of first L-shaped plates is provided on the other side of the conveyor table at the position corresponding to the second L-shaped plates. Fixed support sleeves are provided on the outer top of the first L-shaped plates and the second L-shaped plates. Guide rods are inserted inside the fixed support sleeves. An angle adjustment plate is transversely inserted between the side ends of the transverse set of guide rods. The angle adjustment plate is connected to the L-shaped frame plate through a driving part. Several openings are provided on the inner side of the angle adjustment plate. A partition is provided inside the angle adjustment plate. The partition divides the interior into a noise reduction part and a dust collection part. A return channel is provided on one side of the partition, which connects the noise reduction part and the dust collection part. A through hole is provided on the conveyor table below the milling cutter drive body. A positioning mechanism is provided below the through hole at the bottom of the conveyor table. The positioning mechanism cooperates with the milling cutter drive body.

[0006] Preferably, the drive unit includes a base plate, which is fixed to the bottom of the angle adjustment plate. Connecting plates three are provided on both sides of the top of the base plate away from the angle adjustment plate. Connecting plates two are provided on the top of the connecting plates three away from the base plate. Connecting plates one are provided on the bottom of the connecting plates two away from the connecting plates three. A support column is provided on the side of the connecting plates one away from the connecting plates two. The bottom of the support column is fixed to the inner center of the second L-shaped plate and the first L-shaped plate. A frame is transversely arranged between the bottom centers of the connecting plates two. A shaft is inserted through the center of the frame, and the bottom of the shaft is fixed to the top center of one side of the L-shaped frame plate.

[0007] Preferably, the positioning mechanism includes a base, a vertical plate on one side of the top of the base, a fixing plate on the top of the vertical plate, the top of the fixing plate being fixed to the bottom of the conveyor table near the through hole, a cylinder at the center of the lower left side of the vertical plate, a matching air rod inside the cylinder, the air rod passing through the cylinder, a triangular moving block on the side of the air rod away from the cylinder, a slider at the center of the bottom of the triangular moving block, a matching track below the slider, a side U-shaped frame at the bottom of the track, and the bottom of the side U-shaped frame being fixed to the top of the base away from the vertical plate.

[0008] Preferably, the air rod passes through the side U-shaped frame, and a matching limiting wheel is provided above the triangular moving block. Support plates are engaged on both sides of the limiting wheel, a limiting plate is provided at the top of the support plate, a top shaft is provided at the top of the limiting plate, the top shaft passes through the side U-shaped frame, a top plate is provided at the top of the top shaft, a side groove is provided at the center of the left side of the top plate, and the top plate passes through the through hole.

[0009] Preferably, the inner wall of the noise reduction part is provided with a number of concave and convex surfaces, and a spiral compression ring is provided inside the noise reduction part. Spring rings are provided on both sides of the spiral compression ring, and the other end of the spring rings is fixed to the inner wall of the noise reduction part.

[0010] Preferably, the inner wall of the dust-absorbing section has several T-shaped solid protrusions on the side away from the opening. The surface of the T-shaped solid protrusions is provided with an activated carbon adsorption layer. The inner wall of the dust-absorbing section has a set of T-shaped hollow protrusions on the side wall of the partition and the side wall corresponding to the partition. The T-shaped hollow protrusions are connected by a connecting pipe. A water outlet is provided between the T-shaped hollow protrusions and the connecting pipe. Several foam blocks are provided on the connecting pipe. Several foam supports are provided on the inner wall of the foam blocks. A foam spherical chamber is provided on the side of the foam support away from the foam blocks. Ice blocks are provided in the foam spherical chamber.

[0011] Preferably, the connecting pipe passes through the outer wall of the foam block and the foam spherical chamber, and the connecting pipe is provided with a number of water inlet holes located between the inner wall of the foam block and the outer wall of the foam spherical chamber.

[0012] Preferably, the T-shaped cavity protrusion is connected to a diversion pipe on the side away from the connecting pipe, the diversion pipes are connected to each other through a return pipe, and a water inlet is connected to the top side of the return pipe, which is connected to an external water inlet pipe.

[0013] Compared with the prior art, the advantages and positive effects of the present invention are as follows:

[0014] 1. An angle adjustment section is set at the milling cutter drive body. The angle adjustment section adjusts the angle of the conveyed plate and clamps and positions it. When the plate is adjusted by the angle adjustment section, the plate always forms a right angle, avoiding the phenomenon of grooving distortion during cutting and grooving, thereby improving the grooving effect and efficiency, and avoiding the phenomenon of not being able to install the junction box later.

[0015] 2. The angle adjustment unit clamps and positions the sheet metal, maintaining its stability and facilitating grooving while preventing displacement during processing.

[0016] 3. The angle adjustment plate is equipped with a noise reduction section and a dust collection section. A large amount of dust and noise generated during cutting and grooving will be transmitted to the angle adjustment section and weakened by the noise reduction section and dust collection section.

[0017] 4. A positioning mechanism is set at the lower rear of the milling cutter drive body. The positioning mechanism supports the milling cutter spindle. When the milling cutter spindle is subjected to an upward force, it controls and positions the depth of the milling cutter's downward extension during cutting, so as to avoid the milling cutter cutting the groove too deeply and cutting the steel bars inside the plate.

[0018] 5. It effectively avoids the problem of high on-site labor costs, improves work efficiency, reduces dust diffusion, and weakens noise transmission. Attached Figure Description

[0019] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0020] Figure 1 This is a schematic diagram of the overall structure according to an embodiment of the present invention;

[0021] Figure 2 This is a schematic diagram of the conveyor structure according to an embodiment of the present invention;

[0022] Figure 3 This is a schematic diagram of the angle adjustment part according to an embodiment of the present invention;

[0023] Figure 4 This is a schematic diagram of an L-shaped connecting plate structure according to an embodiment of the present invention;

[0024] Figure 5 This is a schematic diagram of the drive unit structure according to an embodiment of the present invention;

[0025] Figure 6This is a schematic diagram of the positioning mechanism structure according to an embodiment of the present invention;

[0026] Figure 7 This is a schematic diagram of the internal structure of the angle adjustment plate according to an embodiment of the present invention;

[0027] Figure 8 This is a schematic diagram of a foam block structure according to an embodiment of the present invention.

[0028] In the picture:

[0029] 1. Conveyor table; 2. Support side platform; 3. Support foot; 4. Support column; 5. First axis moving seat; 6. Second axis moving seat; 7. Milling cutter drive body; 8. Milling cutter spindle; 9. Angle adjustment section; 10. Inner frame; 11. Track two; 12. Slider two; 13. L-shaped frame plate; 14. Drive arm; 15. L-shaped connecting plate; 16. Air rod two; 17. Cylinder two; 18. U-shaped frame; 19. Second L-shaped plate; 20. First L-shaped plate; 21. Fixed support sleeve; 22. Guide rod; 23. Angle adjustment plate; 24. Opening; 25. Partition; 26. Noise reduction section; 27. Dust collection section; 28. Return channel; 29. ​​Through hole; 30. Base plate; 31. Connecting plate three; 32. Connecting plate two; 3 3. Connecting plate 1; 34. Support column; 35. Frame; 36. Base; 37. Upright plate; 38. Fixing plate; 39. Cylinder 1; 40. Air rod 1; 41. Triangular moving block; 42. Slider 1; 43. Track 1; 44. Side U-shaped frame; 45. Limiting wheel; 46. Support plate; 47. Limiting disc; 48. Top shaft; 49. Top plate; 50. Side groove; 51. Concave and convex surface; 52. Spiral compression ring; 53. Spring ring; 54. T-shaped solid protrusion; 55. T-shaped hollow protrusion; 56. Connecting pipe; 57. Foam block; 58. Foam support; 59. Foam spherical chamber; 60. Ice block; 61. Water inlet; 62. Diverter pipe; 63. Return pipe; 64. Water inlet; 65. Water outlet. Detailed Implementation

[0030] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described below in conjunction with the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0031] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0032] According to embodiments of the present invention, such as Figures 1-8 As shown in the document:

[0033] This invention provides an automatic grooving and assembly equipment for sheet metal pipelines, including a conveyor table 1. A set of supporting side platforms 2 are provided on both sides of the conveyor table 1 near the center. Several supporting feet 3 are provided at the bottom of both the supporting side platforms 2 and the conveyor table 1. Support columns 4 are provided at the top of the supporting side platforms 2. A first axis moving seat 5 is transversely arranged between the tops of the transversely arranged support columns 4. A second axis moving seat 6 is mounted on the first axis moving seat 5. A milling cutter drive body 7 is mounted on the second axis moving seat 6. A milling cutter spindle 8 is mounted on the milling cutter drive body 7, and a milling cutter is mounted on the milling cutter spindle. Below the first axis moving seat 5... An angle adjustment part 9 is provided at the bottom of the conveyor table 1. The angle adjustment part 9 includes an inner frame 10, which is fixed to the bottom of the conveyor table 1. A second track 11 is provided at the center of the bottom of the inner frame 10. A set of cooperating sliders 12 are provided on the second track 11. Symmetrical L-shaped frame plates 13 are provided at the bottom of each slider 12. A drive arm 14 is provided at the center of the bottom of each L-shaped frame plate 13. An L-shaped connecting plate 15 is provided at the other end of the drive arm 14. Several air rods 16 are provided on one side of the L-shaped connecting plate 15, and the air rods 16 are away from the L-shaped connecting plate. A matching cylinder 17 is provided on one side of the conveyor table 1. A U-shaped frame 18 is provided on the top of the cylinder 17. A second L-shaped plate 19 is provided on both sides of the top of the U-shaped frame 18. The sides of the second L-shaped plate 19 are fixed to corresponding positions on one side of the conveyor table 1. A set of first L-shaped plates 20 is provided on the other side of the conveyor table 1 at the position corresponding to the second L-shaped plate 19. A fixed support sleeve 21 is provided on the outer top of both the first L-shaped plate 20 and the second L-shaped plate 19. A guide rod 22 is inserted into the fixed support sleeve 21. An angle adjustment plate 23 is transversely inserted between the side ends of the transverse set of guide rods 22. The angle adjustment... Plate 23 is connected to L-shaped frame plate 13 via a drive unit; the inner side of the angle adjustment plate 23 is provided with several openings 24, and the angle adjustment plate 23 is provided with a partition 25, which divides the interior into a noise reduction part 26 and a dust collection part 27. A return channel 28 is provided on one side of the partition 25, which connects the noise reduction part 26 and the dust collection part 27; a through hole 29 is provided on the conveyor table 1 below the milling cutter drive body 7, and a positioning mechanism is provided below the through hole 29 at the bottom of the conveyor table 1, which cooperates with the milling cutter drive body 7.

[0034] The driving unit includes a base plate 30, which is fixed to the bottom of the angle adjustment plate 23. Connecting plates 31 are provided on both sides of the top of the base plate 30 away from the angle adjustment plate 23. Connecting plates 2 and 32 are provided on the top side of the connecting plates 31 away from the base plate 30. Connecting plates 33 are provided on the bottom side of the connecting plates 2 and 32 away from the connecting plates 31. A support column 34 is provided on the side of the connecting plates 33 away from the connecting plates 2 and 32. The bottom of the support column 34 is fixed. A frame 35 is transversely arranged between the center of the bottom of the connecting plate 32 and the inner center of the second L-shaped plate 19 and the first L-shaped plate 20. A shaft is inserted at the center of the frame 35, and the bottom of the shaft is fixed to the top center of one side of the L-shaped frame plate 13. The positioning mechanism includes a base 36, a vertical plate 37 on one side of the top of the base 36, and a fixing plate 38 on the top of the vertical plate 37. The top of the fixing plate 38 is fixed to the bottom of the conveyor table 1 near the through hole 29. A cylinder 39 is located at the center of the lower left side of the upright plate 37. A matching air rod 40 is installed inside the cylinder 39, passing through it. A triangular moving block 41 is located on the side of the air rod 40 away from the cylinder 39. A slider 42 is located at the center of the bottom of the triangular moving block 41. A matching track 43 is located below the slider 42. A side U-shaped frame 44 is located at the bottom of the track 43, and the bottom of the side U-shaped frame 44 is fixed to the top of the base 36. On the side away from the upright plate 37, the gas spring 40 passes through the side U-shaped frame 44. A matching limiting wheel 45 is provided above the triangular moving block 41. Support plates 46 are engaged on both sides of the limiting wheel 45. A limiting plate 47 is provided at the top of the support plate 46. A top shaft 48 is provided at the top of the limiting plate 47. The top shaft 48 passes through the side U-shaped frame 44. A top plate 49 is provided at the top of the top shaft 48. A side groove 50 is provided at the center of the left side of the top plate 49. The top plate 49 passes through the through hole 29.

[0035] In addition, the inner wall of the noise reduction part 26 is provided with several concave and convex surfaces 51. A spiral compression ring 52 is provided inside the noise reduction part 26, and spring coils 53 are provided on both sides of the spiral compression ring 52. The other end of each spring coil 53 is fixed to the inner wall of the noise reduction part 26. The inner wall of the dust absorption part 27, away from the opening 24, is provided with several T-shaped solid protrusions 54. An activated carbon adsorption layer is provided on the surface of each T-shaped solid protrusion 54. A set of T-shaped hollow protrusions 55 is provided on the inner wall of the dust absorption part 27 on the side wall corresponding to the partition 25. The T-shaped hollow protrusions 55 are connected by a connecting pipe 56. A water outlet 65 is provided between the T-shaped hollow protrusions 55 and the connecting pipe 56. The device has several foam blocks 57 on its upper surface. Several foam supports 58 are provided on the inner wall of each foam block 57. A foam spherical chamber 59 is located on the side of each foam support 58 away from the foam block 57. Ice blocks 60 are placed inside the foam spherical chamber 59. A connecting pipe 56 passes through the foam blocks 57 and connects to the outer wall of the foam spherical chamber 59. Several water inlet holes 61 are provided on the connecting pipe 56 between the inner wall of the foam blocks 57 and the outer wall of the foam spherical chamber 59. A diversion pipe 62 is connected to the side of the T-shaped cavity protrusion 55 away from the connecting pipe 56. The diversion pipes 62 are connected to each other via a return pipe 63. A water inlet 64 is connected to the top side of the return pipe 63 and is connected to an external water supply pipe.

[0036] The conveyor table 1 is an existing structure, therefore it is not described in detail in this application; its main purpose is to convey the sheet metal placed on it. Similarly, the milling cutter drive body 7 is an existing structure, which facilitates grooving the sheet metal clamped below.

[0037] In addition, the through hole 29 is located behind the milling cutter drive body 7. After the plate passes through the angle adjustment plates 23 on both sides, the positioning mechanism will pass through the through hole and cause the top plate 49 to push upward against the limiting plate at the bottom of the milling cutter spindle 8. The limiting plate is located between the milling cutter spindle 8 and the milling cutter. The limiting plate will be subjected to an upward force from below, which provides a certain positioning function for the milling cutter spindle 8, thereby effectively preventing the cutting of the steel bars inside the plate during cutting.

[0038] Detailed usage and function of this embodiment:

[0039] The sheet material is placed on the conveyor table 1, which then transports it forward. When the sheet material reaches the angle adjustment section 9, the drive cylinder 17 and the air rod 16 extend and retract. The air rod 16 moves the L-shaped connecting plate 15, which in turn drives the L-shaped frame plate 13 via the drive arm 14. At this time, the slider 12 on the top of the L-shaped frame plate 13 moves simultaneously in the corresponding direction on the track 11. As the L-shaped frame plate 13 moves in the corresponding direction, it moves the frame 35. The two ends of the frame 35 pull down the base plate 30 along with the connecting plate. The base plate 30 moves the angle adjustment plate 23 on the inner side of the top. When both angle adjustment plates 23 move towards the center simultaneously, they clamp and limit the transported sheet material. Then, the first shaft is driven. The movable seat 5 and the second axis movable seat 6 adjust the milling cutter drive body 7 to a suitable position. The milling cutter drive body 7 drives the milling cutter connected below to perform grooving on the plate below. During grooving, the drive cylinder 39 and the air rod 40 produce telescopic movement. The air rod 40 pushes against the triangular movable block 41. The slider 42 at the bottom of the triangular movable block 41 moves on the track 43. The top inclined surface of the triangular movable block 41 pushes against the upper limit wheel 45. The limit wheel 45 pushes the top shaft 48 upward. The top shaft 48 pushes against the top plate 49 through the through hole 29. The top plate 49 supports the milling cutter spindle 8. The depth of the downward drive of the milling cutter spindle 8 is positioned, so that the milling cutter always maintains a certain depth during processing, avoiding excessive cutting depth and cutting into the steel bars inside the plate.

[0040] During the grooving process, a large amount of dust and noise is generated, which impacts the angle adjustment plates 23 clamped on both sides. The dust enters the plate 23 through several openings 24 on its inner side, and then into the noise reduction section 26 and the dust collection section 27. The dust and noise pass through the spiral compression ring 52 within the noise reduction section 26. The noise is transmitted along the spiral compression ring 52, increasing the transmission path and thus reducing the rebound noise. The dust enters the dust collection section 27 through the return channel 28. The foam blocks 57 inside the dust collection section 27 have absorbent material on their surface, which draws the dust in. The system absorbs water while simultaneously introducing external water into the return pipe 63 through the inlet 64. The water then flows through the return pipe 63 and into the T-shaped cavity protrusion 55 via the branch pipe 62. The liquid inside the T-shaped cavity protrusion 55 enters the connecting pipe 56 through the outlet 65. The liquid inside the connecting pipe 56 enters the foam block 57 through the inlet 61. The inside of the foam block 57 remains moist, maintaining the cooling effect of the internal ice block 60. At the same time, the surface of the foam block 57 remains moist, which suppresses any dust that enters, reducing the diffusion of dust and effectively weakening the dust's dispersion.

[0041] Through the specific embodiments described above, those skilled in the art can easily implement the present invention. However, it should be understood that the present invention is not limited to the specific embodiments described above. Based on the disclosed embodiments, those skilled in the art can arbitrarily combine different technical features to achieve different technical solutions.

Claims

1. An automatic grooving and assembly equipment for sheet metal pipelines, characterized in that, Includes a conveyor platform (1), with a set of support side platforms (2) on both sides near the center of the conveyor platform (1), and several support feet (3) at the bottom of the support side platforms (2) and the conveyor platform (1). The top of the support side platforms (2) is provided with support columns (4), and a first axis moving seat (5) is provided across the top of a set of support columns (4). A second axis moving seat (6) is mounted on the first axis moving seat (5), and a milling cutter drive body (7) is provided on the second axis moving seat (6). A milling cutter spindle (8) is provided on the milling cutter drive body (7), and a milling cutter is provided on the milling cutter spindle. An angle adjustment part (9) is provided below the first axis moving seat (5) at the bottom of the conveyor table (1). The angle adjustment part (9) includes an inner frame (10), which is fixed on the bottom of the conveyor table (1). A second track (11) is provided at the bottom center of the inner frame (10). A set of matching sliders (12) is provided on the second track (11). A symmetrical L-shaped frame plate (13) is provided at the bottom of each slider (12). A drive arm (14) is provided at the bottom center of the L-shaped frame plate (13). An L-shaped connecting plate (15) is provided at the other end of the drive arm (14). A number of air rods (16) are provided on one side of the L-shaped connecting plate (15). The side of the air rods (16) away from the L-shaped connecting plate (15) A matching cylinder two (17) is provided. A U-shaped frame (18) is provided on the top of the cylinder two (17). A second L-shaped plate (19) is provided on both sides of the top of the U-shaped frame (18). The side of the second L-shaped plate (19) is fixed at the corresponding position on one side of the conveyor table (1). A set of first L-shaped plates (20) is provided on the other side of the conveyor table (1) at the position corresponding to the second L-shaped plate (19). A fixed support sleeve (21) is provided on the outer side of the top of the first L-shaped plate (20) and the second L-shaped plate (19). A guide rod (22) is inserted inside the fixed support sleeve (21). An angle adjustment plate (23) is transversely inserted between the side ends of a set of guide rods (22). The angle adjustment plate (23) is connected to the L-shaped frame plate (13) through the drive unit. The angle adjustment plate (23) has several openings (24) on its inner side. The angle adjustment plate (23) has a partition (25) inside. The partition (25) divides the interior into a noise reduction section (26) and a dust collection section (27). A return channel (28) is provided on one side of the partition (25). The return channel (28) connects the noise reduction section (26) and the dust collection section (27). A through hole (29) is provided on the conveyor table (1) below the milling cutter drive body (7). A positioning mechanism is provided below the through hole (29) at the bottom of the conveyor table (1). The positioning mechanism cooperates with the milling cutter drive body (7). The inner wall of the noise reduction section (26) is provided with several concave and convex surfaces (51). The interior of the noise reduction section (26) is provided with a spiral compression ring (52). Both sides of the spiral compression ring (52) are provided with spring rings (53). The other end of the spring rings (53) is fixed to the inner wall of the noise reduction section (26). The inner wall of the dust absorption section (27) is provided with several T-shaped solid protrusions (54) on the side away from the opening (24). The surface of the T-shaped solid protrusions (54) is provided with an activated carbon adsorption layer. The inner wall of the dust absorption section (27) is located between the partition (25) and the corresponding partition (25). Each side wall is provided with a set of T-shaped cavity protrusions (55), and the T-shaped cavity protrusions (55) are connected by a connecting pipe (56). A water outlet (65) is provided between the T-shaped cavity protrusions (55) and the connecting pipe (56). Several foam blocks (57) are provided on the connecting pipe (56). Several foam supports (58) are provided on the inner wall of the foam blocks (57). A foam spherical chamber (59) is provided on the side of the foam support (58) away from the foam blocks (57). An ice block (60) is provided in the foam spherical chamber (59).

2. The automatic grooving and assembly equipment for sheet metal pipelines according to claim 1, characterized in that, The drive unit includes a base plate (30), which is fixed to the bottom of the angle adjustment plate (23). The top of the base plate (30) is provided with connecting plate three (31) on both sides away from the angle adjustment plate (23). The top of the connecting plate three (31) is provided with connecting plate two (32) on the side away from the base plate (30). The bottom of the connecting plate two (32) is provided with connecting plate one (33) on the side away from the connecting plate three (31). The side of the connecting plate one (33) is provided with a support column (34) on the side away from the connecting plate two (32). The bottom of the support column (34) is fixed at the inner center of the second L-shaped plate (19) and the first L-shaped plate (20). A frame (35) is provided horizontally between the bottom center of the connecting plate two (32). A shaft is inserted at the center of the frame (35). The bottom of the shaft is fixed at the top center of one side of the L-shaped frame plate (13).

3. The automatic grooving and assembly equipment for sheet metal pipelines according to claim 1, characterized in that, The positioning mechanism includes a base (36), a vertical plate (37) on one side of the top of the base (36), a fixed plate (38) on the top of the vertical plate (37), the top of the fixed plate (38) is fixed to the bottom of the conveyor table (1) near the side below the through hole (29), a cylinder (39) is provided at the center of the lower left side of the vertical plate (37), a matching air rod (40) is provided inside the cylinder (39), the air rod (40) passes through the cylinder (39), a triangular moving block (41) is provided on the side of the air rod (40) away from the cylinder (39), a slider (42) is provided at the center of the bottom of the triangular moving block (41), a matching track (43) is provided below the slider (42), a side U-shaped frame (44) is provided at the bottom of the track (43), and the bottom of the side U-shaped frame (44) is fixed to the top of the base (36) on the side away from the vertical plate (37).

4. An automatic grooving and assembly equipment for sheet metal pipelines according to claim 3, characterized in that, A pneumatic rod (40) passes through the side U-shaped frame (44). A matching limiting wheel (45) is provided above the triangular moving block (41). A support plate (46) is attached to both sides of the limiting wheel (45). A limiting plate (47) is provided at the top of the support plate (46). A top shaft (48) is provided at the top of the limiting plate (47). The top shaft (48) passes through the side U-shaped frame (44). A top plate (49) is provided at the top of the top shaft (48). A side groove (50) is provided at the center of the left side of the top plate (49). The top plate (49) passes through the through hole (29).

5. An automatic grooving and assembly equipment for sheet metal pipelines according to claim 1, characterized in that, A connecting pipe (56) runs through the foam block (57) and connects to the outer wall of the foam spherical chamber (59). Several water inlet holes (61) are provided on the connecting pipe (56) between the inner wall of the foam block (57) and the outer wall of the foam spherical chamber (59).

6. An automatic grooving and assembly equipment for sheet metal pipelines according to claim 1, characterized in that, The T-shaped cavity protrusion (55) is connected to a diversion pipe (62) on the side away from the connecting pipe (56). The diversion pipes (62) are connected to each other through a return pipe (63). The top side of the return pipe (63) is connected to an inlet (64), which is connected to an external water supply pipe.

Citation Information

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