Heating radiator water inlet and outlet hole milling and tapping integrated automation equipment

By designing integrated milling and attacking equipment for radiator water inlet and outlet holes, traditional equipment has been solved, and the problems of poor versatility, long processing time and difficult sewage treatment have been achieved, efficient and precise processing and cleaning have been achieved, and product quality has been improved.

CN120055821AActive Publication Date: 2025-05-30HEBEI SHENGLI FOUNDRY CO LTD
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
CN202510520324.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-05-30
Estimated Expiration
2045-04-24

AI Technical Summary

Technical Problem

During the processing of traditional radiator water inlet and outlet holes, the equipment is poor in versatility, long processing time, large positioning errors, and sewage and debris are difficult to deal with, affecting product quality.

Method used

A integrated milling and attack equipment for radiator water inlet and outlet holes is designed, using clamping components, center distance adjustment components, milling and attack integrated components and flushing components to achieve rapid clamping, flexible adjustment, integrated processing and effective flushing.

Benefits of technology

It improves the versatility and processing accuracy of the equipment, shortens processing time, reduces positioning errors, maintains the cleanliness of the processing area, and improves product quality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120055821A_ABST
    Figure CN120055821A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of heating radiator production, in particular to heating radiator water inlet and outlet hole milling and tapping integrated automation equipment which comprises a workbench, a clamping assembly is arranged in the middle of the workbench, and a pair of fixed mounting bases are symmetrically arranged on the two sides of the clamping assembly; two fixed mounting seats are arranged on the workbench, center distance adjusting assemblies are arranged on one sides of the two fixed mounting seats, milling and tapping integrated assemblies are arranged on the fixed mounting seats, flushing assemblies are arranged in the milling and tapping integrated assemblies, protective shells are arranged on one sides of the milling and tapping integrated assemblies, and an air pump is arranged on one side of the workbench. By arranging the milling and tapping integrated assembly, integrated machining of grinding and drilling is achieved, a second motor drives a grinding shaft to rotate through a second belt wheel, a transmission belt and a first belt wheel to grind water inlet and outlet holes of a heating radiator, and a first motor drives a drilling shaft to rotate through a second chain wheel, a transmission chain and a first chain wheel to grind the water inlet and outlet holes of the heating radiator. And drilling the water inlet and outlet holes of the heating radiator.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of radiator production, and particularly relates to an automatic integrated milling and tapping equipment for the water inlet and outlet holes of radiators. Background Technique

[0002] A radiator is a common indoor heating device that heats up the room temperature by dissipating heat through the internal circulating hot water or steam. In order to ensure the sealing of pipeline connections and improve the fluid transportation efficiency, during the production process, it is often necessary to perform milling and tapping operations on the water inlet and outlet holes of the radiator, so as to ensure accurate hole position dimensions and smooth surfaces.

[0003] During the processing of traditional radiator water inlet and outlet holes, multiple clamping operations are required on the grinding equipment and drilling and threading equipment in sequence to complete the milling and tapping operations, which increases the processing time and the risk of positioning errors, reduces the production efficiency and processing accuracy. Secondly, the fixtures and processing components in traditional grinding devices and drilling and threading equipment are mostly fixedly installed, making it difficult to adapt to radiators of different sizes and specifications, and the versatility is poor. In addition, the sewage and debris generated during the processing stay on the workbench, which not only pollutes the working environment, increases the difficulty and cost of subsequent cleaning work, but also affects the product quality. Summary of the Invention

[0004] The purpose of the present invention is to provide an automatic integrated milling and tapping equipment for the water inlet and outlet holes of radiators to solve the problems raised in the above background technique.

[0005] To achieve the above purpose, the present invention provides the following technical solutions: It includes a workbench, a clamping component is arranged in the middle of the workbench, a pair of fixed mounting seats are symmetrically arranged on both sides of the clamping component, a center distance adjustment component is arranged on one side of each of the two fixed mounting seats, a milling and tapping integrated component is arranged on the fixed mounting seat, a flushing component is arranged in the milling and tapping integrated component, a protective shell is arranged on one side of several milling and tapping integrated components, and an air pump is arranged on one side of the workbench; The center distance adjustment component includes a support seat arranged on the workbench, a lead screw is inserted into the support seat, an adjustment knob is arranged at one end of the lead screw, a driving block is spirally sleeved on the outer side of the lead screw, a movable mounting seat is arranged on the driving block, a pair of guide rails I are symmetrically arranged on the workbench on both sides of the lead screw, and guide blocks are arranged at the corresponding positions of the bottom of the movable mounting seat with respect to the guide rails I; The milling and tapping integrated component includes a drilling wire shaft. A pair of bearing seats II are symmetrically arranged on both sides of the fixed mounting seat and the movable mounting seat. The drilling wire shafts on the same side are located within the bearing seats II. A sprocket I is sleeved on one end of several of the drilling wire shafts. Mounting frames I are arranged on both the fixed mounting seat and the movable mounting seat. Motors I are arranged on several of the mounting frames I. Sprockets II are arranged at the driving ends of several of the motors I. A transmission chain is arranged between the sprocket I and the sprocket II on the same side.

[0006] Preferably, as the present invention, the clamping component includes two pairs of guide sleeves symmetrically arranged on the front and rear sides of the workbench. Guide posts are slidably arranged within several of the guide sleeves. A mounting plate I is arranged at the top of several of the guide posts. A telescopic cylinder I is arranged on one side of the mounting plate I. The telescopic rod of the telescopic cylinder I penetrates through the mounting plate I.

[0007] Preferably, as the present invention, a telescopic cylinder II is arranged on one side of the telescopic cylinder I. A guide groove corresponding to the telescopic rod of the telescopic cylinder II is formed on the mounting plate I. A pair of adjusting bolts are symmetrically arranged on both sides of the bottom of the telescopic cylinder II. Adjusting grooves corresponding to the adjusting bolts are formed at corresponding positions on the mounting plate I. Upper clamps are arranged at the bottoms of the telescopic rods of the telescopic cylinder I and the telescopic cylinder II.

[0008] Preferably, as the present invention, a mounting plate II is arranged on several of the guide posts. The mounting plate II is located directly below the mounting plate I. Lower clamps are arranged at corresponding positions of the mounting plate II corresponding to the upper clamps.

[0009] Preferably, as the present invention, a mounting plate III is arranged at the bottoms of several of the guide posts. A pair of telescopic cylinders III are arranged on the inner top surface of the workbench. The bottoms of the telescopic rods of the two telescopic cylinders III are connected to the mounting plate III. A pair of bearing seats I are symmetrically arranged on both sides of the mounting plate III. A rotating shaft I is arranged between the two bearing seats I. A pair of gears are sleeved on the rotating shaft I. Rack gears are meshed at corresponding positions on the inner walls of both sides of the workbench corresponding to the gears. The telescopic cylinder I, the telescopic cylinder II, and the telescopic cylinder III are all connected to an air pump.

[0010] Preferably, as the present invention, a pair of bearing seats III are symmetrically arranged on both sides of the fixed mounting seat and the movable mounting seat. A grinding shaft is inserted within each pair of the bearing seats III. The grinding shaft is located directly below the drilling wire shaft. A pulley I is sleeved on one end of several of the grinding shafts. Mounting frames II are arranged on several of the mounting frames I. Motors II are arranged on several of the mounting frames II. Pulleys II are arranged at the driving ends of several of the motors II. A transmission belt is arranged between the pulley I and the pulley II on the same side. A speed reducer is arranged on one side of both the fixed mounting seat and the movable mounting seat. The motors I and the motors II on the same side are connected to the speed reducer.

[0011] Preferably, in the present invention, the flushing assembly includes a flushing nozzle disposed on one side of the fixed mounting base and the movable mounting base. A pair of falling grooves are symmetrically formed in the middle of the workbench. On the workbench at the bottom of the two falling grooves, dirt guiding plates are inclined. Both of the two dirt guiding plates penetrate the workbench. At the bottom of the tails of the two dirt guiding plates, dirt collection boxes are provided. Filter meshes are provided in both of the two dirt collection boxes.

[0012] Compared with the prior art, the above technical solution of the present invention has the following beneficial technical effects: 1. By providing the clamping assembly in the present invention, the telescopic movement of the telescopic rods of the first telescopic cylinder and the second telescopic cylinder drives the upper clamp to lift and cooperate with the lower clamp on the second mounting plate to achieve rapid clamping and release of the radiator. Secondly, the cooperation of the adjusting bolt, the adjusting groove, the second telescopic cylinder and the guiding groove can flexibly adjust the position of the upper clamp to adapt to the sizes and specifications of different radiators, enhancing the versatility of the equipment. In addition, the third telescopic cylinder drives the overall clamping assembly to lift along the guiding sleeve on the workbench through the telescopic movement of the telescopic rod, enabling a processing flow of first grinding and then drilling. Together with the synchronous lifting mechanism of the first rotating shaft, the gear and the rack, it ensures the accuracy of the position of the radiator during the processing, improving the processing precision and product quality.

[0013] 2. By providing the center distance adjusting assembly in the present invention, the adjusting knob enables the operator to manually rotate the lead screw, converting the rotational movement of the lead screw into the linear movement of the driving block, thereby driving the movable mounting base to move smoothly along the first guide rail, achieving flexible adjustment of the center distance between the fixed mounting base and the movable mounting base on the same side to adapt to the processing requirements of radiators of different sizes and specifications, improving the adaptability and processing efficiency of the equipment.

[0014] 3. By providing the milling and tapping integrated assembly in the present invention, integrated processing of grinding and drilling is achieved. The second motor drives the grinding shaft to rotate through the second belt pulley, the transmission belt and the first belt pulley to perform grinding operations on the water inlet and outlet holes of the radiator. The first motor drives the drilling shaft to rotate through the second sprocket, the transmission chain and the first sprocket to perform drilling operations on the water inlet and outlet holes of the radiator. The integrated design enables the equipment to continuously complete two key processes of grinding and drilling in one clamping of the radiator, shortening the processing time, improving the production efficiency, and at the same time reducing the positioning error caused by multiple clamps, improving the processing precision and product quality.

[0015] 4. By providing a flushing assembly in the present invention, the flushing nozzle can continuously flush the radiator during the processing, playing a good cooling role, preventing the heat generated during the processing from damaging the radiator and the processing equipment. At the same time, the flushing can also timely wash away the debris generated during the processing, keeping the processing area clean. Secondly, the combined use of the falling trough, the sewage guiding plate and the sewage collection box enables the sewage and debris after flushing to be smoothly discharged and centrally collected. The filter screen in the sewage collection box can separate the debris from the sewage, facilitating subsequent treatment. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the overall bottom structure of the present invention; Figure 3 is Figure 2 an enlarged schematic diagram of part A in Figure 4 is a schematic diagram of the clamping assembly structure of the present invention; Figure 5 is a schematic diagram of the center distance adjusting assembly structure of the present invention; Figure 6 is a schematic diagram of the milling and tapping integrated assembly structure of the present invention; Figure 7 is a schematic diagram of the flushing assembly structure of the present invention.

[0017] Reference numerals: workbench 1, clamping assembly 2, guide sleeve 21, guide post 22, first mounting plate 23, first telescopic cylinder 24, second telescopic cylinder 25, guide groove 26, adjusting bolt 27, adjusting groove 28, upper fixture 29, second mounting plate 210, lower fixture 211, third mounting plate 212, first bearing seat 213, first rotating shaft 214, gear 215, rack 216, third telescopic cylinder 217, fixed mounting seat 3, center distance adjusting assembly 4, support seat 41, lead screw 42, adjusting knob 43, driving block 44, movable mounting seat 45, first guide rail 46, guide block 47, milling and tapping integrated assembly 5, second bearing seat 51, drilling and wire feeding shaft 52, first sprocket 53, first mounting frame 54, first motor 55, second sprocket 56, transmission chain 57, third bearing seat 58, grinding shaft 59, first belt pulley 510, second mounting frame 511, second motor 512, second belt pulley 513, transmission belt 514, speed reducer 515, flushing assembly 6, flushing nozzle 61, falling trough 62, sewage guiding plate 63, sewage collection box 64, filter screen 65, protective shell 7, air pump 8. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0018] To make the objectives, technical solutions, and advantages of the present invention more clear and understandable, the present invention will be further described in detail below in conjunction with specific embodiments and with reference to the accompanying drawings. It should be understood that these descriptions are merely exemplary and are not intended to limit the scope of the present invention. In addition, in the following description, descriptions of well-known structures and technologies are omitted to avoid unnecessarily confusing the concepts of the present invention.

[0019] As Figures 1-7 shown, an automated device for milling and tapping the water inlet and outlet holes of a radiator proposed by the present invention includes a workbench 1. A clamping assembly 2 is provided in the middle of the workbench 1. A pair of fixed mounting seats 3 are symmetrically arranged on both sides of the clamping assembly 2. A center distance adjusting assembly 4 is provided on one side of each of the two fixed mounting seats 3. A milling and tapping integrated assembly 5 is provided on the fixed mounting seat 3. A flushing assembly 6 is provided inside the milling and tapping integrated assembly 5. A protective shell 7 is provided on one side of several milling and tapping integrated assemblies 5. An air pump 8 is provided on one side of the workbench 1. The air pump 8 provides a power source for the first telescopic cylinder 24, the second telescopic cylinder 25, and the 217th telescopic cylinder, enabling them to perform telescopic movements. The center distance adjusting assembly 4 includes a support seat 41 provided on the workbench 1. A lead screw 42 is inserted into the support seat 41. The support seat 41 provides support for the lead screw 42 to ensure the stability of the lead screw 42 during rotation. One end of the lead screw 42 is provided with an adjusting knob 43. The adjusting knob 43 facilitates the operator to manually rotate the lead screw 42, thereby adjusting the center distance. A driving block 44 is spirally sleeved outside the lead screw 42. A movable mounting seat 45 is provided on the driving block 44. When the lead screw 42 rotates, the rotational motion is converted into the linear motion of the driving block 44, thereby driving the movable mounting seat 45 to move. A pair of first guide rails 46 are symmetrically arranged on the workbench 1 on both sides of the lead screw 42. Guide blocks 47 are provided at the corresponding positions of the bottom of the movable mounting seat 45 corresponding to the first guide rails 46. The guide blocks 47 cooperate with the first guide rails 46 to provide guidance for the movement of the movable mounting seat 45 to ensure the accuracy during movement. The milling and tapping integrated assembly 5 includes a drill wire shaft 52. A pair of second bearing seats 51 are symmetrically arranged on both sides of the fixed mounting seat 3 and the movable mounting seat 45. The drill wire shaft 52 on the same side is located inside the second bearing seat 51. The second bearing seat 51 provides support for the drill wire shaft 52 to ensure the stability of the drill wire shaft 52 during rotation. The drill wire shaft 52 performs drilling and threading operations on the radiator, thereby realizing the threading processing of the water inlet and outlet holes of the radiator. A first sprocket 53 is sleeved on one end of several drill wire shafts 52. Mounting frames 54 are provided on both the fixed mounting seat 3 and the movable mounting seat 45. The mounting frames 54 provide a mounting base for the first motor 55. The first motor 55 is provided on several mounting frames 54. A second sprocket 56 is provided at the transmission end of several first motors 55. A transmission chain 57 is provided between the first sprocket 53 and the second sprocket 56 on the same side. The first motor 55 provides the power for the rotation of the second sprocket 56. The second sprocket 56 then transmits the power to the first sprocket 53 through the transmission chain 57, thereby driving the drill wire shaft 52 to rotate.

[0020] The clamping assembly 2 includes two pairs of guide sleeves 21 symmetrically arranged on the front and rear sides of the workbench 1. A guide post 22 is slidably arranged in each of the several guide sleeves 21. The guide sleeves 21 provide guidance for the guide posts 22 to ensure the stability of the guide posts 22 during lifting and lowering. At the tops of the several guide posts 22, there is a first mounting plate 23, and the first mounting plate 23 provides a mounting basis for the first telescopic cylinder 24 and the second telescopic cylinder 25. On one side of the first mounting plate 23, there is a first telescopic cylinder 24, and the telescopic rod of the first telescopic cylinder 24 penetrates through the first mounting plate 23.

[0021] On one side of the first telescopic cylinder 24, there is a second telescopic cylinder 25. A guide groove 26 corresponding to the telescopic rod of the second telescopic cylinder 25 is provided on the first mounting plate 23. On both sides of the bottom of the second telescopic cylinder 25, a pair of adjusting bolts 27 are symmetrically arranged. The adjusting bolts 27 can adjust the position of the second telescopic cylinder 25 on the first mounting plate 23, thereby adjusting the position of the upper clamp 29 to meet the clamping requirements of radiators of different sizes. Adjusting grooves 28 are provided on the first mounting plate 23 at the positions corresponding to the adjusting bolts 27. The guide groove 26 and the adjusting grooves 28 respectively provide guidance for the second telescopic cylinder 25 and the adjusting bolts 27 to ensure the stability of the second telescopic cylinder 25 and the adjusting bolts 27 during movement. At the bottoms of the telescopic rods of the first telescopic cylinder 24 and the second telescopic cylinder 25, there is an upper clamp 29.

[0022] On the several guide posts 22, there is a second mounting plate 210. The second mounting plate 210 is located directly below the first mounting plate 23, and the second mounting plate 210 provides a mounting basis for the lower clamp 211. Lower clamps 211 are provided on the second mounting plate 210 at the positions corresponding to the upper clamps 29. The first telescopic cylinder 24 and the second telescopic cylinder 25 drive the upper clamp 29 to lift and lower through the telescopic movement of the telescopic rods, and cooperate with the lower clamp 211 to clamp and release the radiator.

[0023] At the bottoms of the several guide posts 22, there is a third mounting plate 212. On the inner top surface of the workbench 1, a pair of third telescopic cylinders 217 are provided. The bottoms of the telescopic rods of the two third telescopic cylinders 217 are connected to the third mounting plate 212. The telescopic movement of the telescopic rods of the third telescopic cylinders 217 drives the entire clamping assembly 2 to lift and lower along the guide sleeves 21, so as to realize the processing sequence of first grinding and then drilling. On both sides of the third mounting plate 212, a pair of bearing seats 213 are symmetrically arranged. The bearing seats 213 provide a mounting basis for the first rotating shaft 214 to ensure the stability of the first rotating shaft 214 during rotation. A first rotating shaft 214 is arranged between the two bearing seats 213. A pair of gears 215 are sleeved on the first rotating shaft 214. On the inner walls of both sides of the workbench 1, racks 216 are meshed at the positions corresponding to the gears 215. The combination of the first rotating shaft 214, the gears 215 and the racks 216 can ensure that when the entire clamping assembly 2 lifts and lowers along the guide sleeves 21, the front and rear sides lift and lower synchronously, avoiding the position deviation of the radiator caused by non-synchronization. The first telescopic cylinder 24, the second telescopic cylinder 25 and the third telescopic cylinders 217 are all connected to the air pump 8.

[0024] On both sides of the fixed mounting seat 3 and the movable mounting seat 45, a pair of bearing seats III 58 are symmetrically arranged. A grinding shaft 59 is inserted into each pair of bearing seats III 58. The grinding shaft 59 is located directly below the wire drilling shaft 52. The bearing seats III 58 provide an installation foundation for the grinding shaft 59 to ensure the stability of the grinding shaft 59 during rotation. A pulley I 510 is sleeved on one end of several grinding shafts 59. Mounting frames II 511 are arranged on several mounting frames I 54. The mounting frames II 511 provide an installation foundation for the motors II 512. Motors II 512 are arranged on several mounting frames II 511. A pulley II 513 is arranged on the driving end of several motors II 512. A transmission belt 514 is arranged between the pulley I 510 and the pulley II 513 on the same side. The motor II 512 provides the power for the rotation of the pulley II 513. The pulley II 513 transmits the power to the pulley I 510 through the transmission belt 514, thereby driving the grinding shaft 59 to rotate. A speed reducer 515 is arranged on one side of the fixed mounting seat 3 and the movable mounting seat 45. The motor I 55 and the motor II 512 on the same side are connected to the speed reducer 515. The speed reducer 515 reduces the rotation speeds of the motor I 55 and the motor II 512 and increases the torque, enabling the wire drilling shaft 52 and the grinding shaft 59 to perform processing at appropriate rotation speeds.

[0025] The flushing assembly 6 includes a flushing nozzle 61 arranged on one side of the fixed mounting seat 3 and the movable mounting seat 45. After being connected to an external water source, the flushing nozzle 61 can flush the radiator during the processing, playing a role in cooling and cleaning, and preventing the heat and debris generated during the processing from damaging the radiator and the processing equipment. A pair of falling grooves 62 are symmetrically opened in the middle of the upper part of the workbench 1. The falling grooves 62 enable the sewage and debris after flushing to fall smoothly, avoiding accumulation on the workbench 1. Guide plates 63 are inclinedly arranged on the workbench 1 at the bottoms of the two falling grooves 62. The two guide plates 63 penetrate through the workbench 1. The guide plates 63 guide the sewage and debris to the dirt collection box 64, preventing the sewage from flowing everywhere. Dirt collection boxes 64 are arranged at the bottoms of the tails of the two guide plates 63. Filter meshes 65 are arranged in the two dirt collection boxes 64. The dirt collection boxes 64 collect the sewage and debris after flushing, and the filter meshes 65 can separate the sewage and debris for subsequent treatment.

[0026] During use, first, the operator loosens the adjusting bolt 27, and then adjusts the position of the second telescopic cylinder 25 according to the size of the radiator, so that the second telescopic cylinder 25 moves along the guiding groove 26, and the adjusting bolt 27 moves along the adjusting groove 28. After moving to the preset position, the second telescopic cylinder 25 can be fixed on the first mounting plate 23 by tightening the adjusting bolt 27. Then, the operator can place the radiator vertically on the lower fixture 211, and then the telescopic rods of the first telescopic cylinder 24 and the second telescopic cylinder 25 extend, driving the upper fixture 29 to move downward to cooperate with the lower fixture 211 to clamp the radiator. Next, the operator can rotate the adjusting knob 43 according to the size of the radiator. The adjusting knob 43 drives the lead screw 42 to rotate, converts the rotational motion of the lead screw 42 into the linear motion of the driving block 44, and the driving block 44 drives the movable mounting seat 45 to move along the first guide rail 46, so as to adjust the center distance between the fixed mounting seat 3 and the movable mounting seat 45 on the same side, and align the milling and tapping integrated component 5 on the movable mounting seat 45 with the processing hole of the radiator.

[0027] Then, the telescopic rod of the third telescopic cylinder 217 extends, driving the overall clamping assembly 2 to descend along the guide sleeve 21, so that the processing hole of the radiator is aligned with the grinding shaft 59. The second motor 512 is started, and drives the grinding shaft 59 to rotate through the second belt pulley 513, the transmission belt 514 and the first belt pulley 510 to perform grinding operation on the processing hole of the radiator. After grinding flat, the telescopic rod of the third telescopic cylinder 217 contracts, driving the overall clamping assembly 2 to rise along the guide sleeve 21, so that the processing hole of the radiator is aligned with the wire drilling shaft 52. The first motor 55 is started, and drives the wire drilling shaft 52 to rotate through the second sprocket 56, the transmission chain 57 and the first sprocket 53 to perform wire drilling operation on the processing hole of the radiator. Among them, the combined use of the first rotating shaft 214, the gear 215 and the rack 216 can ensure the synchronization of both sides of the clamping assembly 2 during the lifting process, thereby improving the processing accuracy. The flushing nozzle 61 can continuously spray water on the radiator during the grinding and wire drilling operations to achieve the effects of cooling and dust removal. The dirt generated during the water spraying and flushing process can fall into the dirt guiding plate 63 from the falling groove 62, and then be introduced into the dirt collection box 64 by the dirt guiding plate 63. The filter screen 65 can separate the debris from the sewage, facilitating the subsequent cleaning by the operator.

[0028] After both the grinding and wire drilling operations are completed, the telescopic rod of the third telescopic cylinder 217 can continue to contract, driving the overall clamping assembly 2 to rise along the guide sleeve 21, so that the radiator leaves the processing range of the grinding shaft 59 and the wire drilling shaft 52. Then, the telescopic rods of the first telescopic cylinder 24 and the second telescopic cylinder 25 contract, driving the upper fixture 29 to move upward to loosen the radiator, and the operator can take out the processed radiator, and the whole equipment enters the next working cycle.

[0029] It should be understood that the above specific embodiments of the present invention are only used for exemplary illustration or explanation of the principles of the present invention, and do not constitute a limitation to the present invention. Therefore, any modifications, equivalent replacements, improvements, etc. made without departing from the spirit and scope of the present invention shall be included within the protection scope of the present invention. In addition, the appended claims of the present invention are intended to cover all variations and modifications that fall within the scope and boundaries of the appended claims, or equivalent forms of such scope and boundaries.

Claims

1. An integrated milling and tapping automated equipment for water inlet and outlet holes of a radiator, comprising: A workbench (1), characterized in that: a clamping assembly (2) is arranged in the middle of the workbench (1), a pair of fixed mounting seats (3) are symmetrically arranged on both sides of the clamping assembly (2), a center distance adjustment assembly (4) is arranged on one side of the two fixed mounting seats (3), a milling and tapping integrated assembly (5) is arranged on the fixed mounting seats (3), a flushing assembly (6) is arranged in the milling and tapping integrated assembly (5), a protective shell (7) is arranged on one side of several milling and tapping integrated assemblies (5), and an air pump (8) is arranged on one side of the workbench (1); The center distance adjustment component (4) comprises a support seat (41) arranged on the workbench (1), a screw rod (42) is inserted into the support seat (41), an adjustment knob (43) is arranged at one end of the screw rod (42), a drive block (44) is arranged on the outer spiral sleeve of the screw rod (42), a movable mounting seat (45) is arranged on the drive block (44), a pair of guide rails (46) are symmetrically arranged on the workbench (1) on both sides of the screw rod (42), and a guide block (47) is arranged at a position corresponding to the guide rail (46) at the bottom of the movable mounting seat (45); The milling and tapping integrated assembly (5) comprises a drilling shaft (52), a pair of bearing seats (51) are symmetrically arranged on both sides of the fixed mounting seat (3) and the movable mounting seat (45), the drilling shaft (52) on the same side is located in the bearing seat (51), a sprocket (53) is sleeved on one end of several drilling shafts (52), a mounting frame (54) is arranged on the fixed mounting seat (3) and the movable mounting seat (45), a motor (55) is arranged on several mounting frames (54), a sprocket (56) is arranged on the transmission end of several motors (55), and a transmission chain (57) is arranged between the sprocket (53) and the sprocket (56) on the same side.

2. The radiator water inlet and outlet hole milling and tapping integrated automated equipment according to claim 1, characterized in that: The clamping assembly (2) comprises two pairs of guide sleeves (21) symmetrically arranged on the front and rear sides of the workbench (1), a plurality of guide sleeves (21) are slidably provided with guide posts (22), a mounting plate (23) is provided on the top of a plurality of guide posts (22), a telescopic cylinder (24) is provided on one side of the mounting plate (23), and a telescopic rod of the telescopic cylinder (24) passes through the mounting plate (23).

3. The radiator water inlet and outlet hole milling and tapping integrated automated equipment according to claim 2, characterized in that: A telescopic cylinder 2 (25) is arranged on one side of the telescopic cylinder 1 (24); a guide groove (26) corresponding to the telescopic rod of the telescopic cylinder 2 (25) is provided on the mounting plate 1 (23); a pair of adjustment bolts (27) are symmetrically arranged on both sides of the bottom of the telescopic cylinder 2 (25); adjustment grooves (28) are arranged at positions corresponding to the adjustment bolts (27) on the mounting plate 1 (23); and upper clamps (29) are arranged at the bottoms of the telescopic rods of the telescopic cylinder 1 (24) and the telescopic cylinder 2 (25).

4. The radiator water inlet and outlet hole milling and tapping integrated automated equipment according to claim 3, characterized in that: A second mounting plate (210) is provided on a plurality of the guide pillars (22), the second mounting plate (210) being located directly below the first mounting plate (23), and a lower clamp (211) is provided on the second mounting plate (210) at a position corresponding to the upper clamp (29).

5. The radiator water inlet and outlet hole milling and tapping integrated automated equipment according to claim 4, characterized in that: A mounting plate three (212) is provided at the bottom of the guide pillars (22), a pair of telescopic cylinders three (217) is provided on the inner top surface of the workbench (1), the bottoms of the telescopic rods of the two telescopic cylinders three (217) are connected to the mounting plate three (212), a pair of bearing seats one (213) are symmetrically provided on both sides of the mounting plate three (212), a rotating shaft one (214) is provided between the two bearing seats one (213), a pair of gears (215) are sleeved on the rotating shaft one (214), and racks (216) are meshedly provided at positions corresponding to the gears (215) on the inner walls on both sides of the workbench (1), and the telescopic cylinder one (24), the telescopic cylinder two (25) and the telescopic cylinder three (217) are all connected to the air pump (8).

6. The radiator water inlet and outlet hole milling and tapping integrated automated equipment according to claim 5, characterized in that: A pair of bearing seats (58) are symmetrically arranged on both sides of the fixed mounting seat (3) and the movable mounting seat (45), a grinding shaft (59) is inserted into each pair of the bearing seats (58), the grinding shaft (59) is located directly below the drilling shaft (52), a plurality of the grinding shafts (59) are sleeved with a pulley (510) at one end, a plurality of the mounting frames (54) are provided with mounting frames (511), and a plurality of the mounting frames (512) are provided with a plurality of the mounting frames (513). 511) are each provided with a second motor (512), a plurality of the second motors (512) are each provided with a second pulley (513) at their transmission ends, a transmission belt (514) is provided between the first pulley (510) and the second pulley (513) on the same side, a reducer (515) is provided on one side of the fixed mounting seat (3) and the movable mounting seat (45), and the first motor (55) and the second motor (512) on the same side are connected to the reducer (515).

7. The radiator water inlet and outlet hole milling and tapping integrated automated equipment according to claim 6, characterized in that: The flushing assembly (6) comprises a flushing nozzle (61) arranged on one side of the fixed mounting seat (3) and the movable mounting seat (45); a pair of drop grooves (62) are symmetrically provided on the middle part of the workbench (1); a dirt guide plate (63) is obliquely provided on the workbench (1) at the bottom of the two drop grooves (62); the two dirt guide plates (63) penetrate the workbench (1); a dirt collection box (64) is provided at the bottom of the tail of the two dirt guide plates (63); and a filter screen (65) is provided in the two dirt collection boxes (64).

Citation Information

Patent Citations

  • Horizontal type numerical control five axis drilling, milling and tapping special machine

    CN102699771A

  • Multifunctional drilling and milling integrated machine convenient for clamping

    CN110449620A

  • Drilling and grinding integrated machine for valve machining

    CN112643345A

  • Multifunctional machining table for hardware machining

    CN112775771A

  • Air compressor machine pump cover processing equipment

    CN205342438U