Excavator bucket welding equipment

By designing excavator bucket welding equipment that supports clamping structures, side welding structures and spacing correction structures, the problem of relying on manual measurement and correction in the welding process in the prior art is solved, and automatic spacing adjustment and welding is realized, and efficiency and quality are improved.

CN120055665AActive Publication Date: 2025-05-30YANTAI BINGHUI EXCAVATOR CO LTD

Patent Information

Application Number
CN202510533546.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2025-05-30
Estimated Expiration
2045-04-27

AI Technical Summary

Technical Problem

In the prior art, the welding process of excavator buckets relies on manual measurement and correction, which makes it time-consuming and labor-intensive and difficult to ensure the consistency of side plate spacing.

Method used

An excavator bucket welding equipment including a support clamping structure, a side weld structure and a spacing correction structure is designed. The side plate is clamped by supporting the clamping structure, the contact pressure distance measuring mechanism on the second robotic arm measures the side plate spacing, the telescopic bonding part automatically adjusts the side plate shape, and the welding gun of the first robotic arm is welded.

Benefits of technology

The automatic spacing adjustment and welding process of the side plate of the bucket is realized, which reduces manual intervention, improves welding efficiency and quality, and saves manpower and time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of excavator bucket welding production, in particular to excavator bucket welding equipment which comprises a base fixedly connected with a control table and further comprises a supporting and clamping structure connected with the base. The two groups of side welding structures are connected with the base; and the distance correction structure is connected with the base and comprises a second mechanical arm, a connecting base is installed on the second mechanical arm, the connecting base is connected with a touch pressure distance measuring mechanism and a distance adjusting mechanism, the distance adjusting mechanism comprises a telescopic bonding part connected with the connecting base, and the connecting base is connected with a cutting-off part. According to the excavator bucket, the bottom plate and the side plates forming the excavator bucket are fixed and welded, the distance correction structure is used for pulling and adjusting the positions, where the distance between the side plates does not meet the standard, of the side plates, so that the side plates are subjected to shape adjustment under pushing and pulling of the distance correction structure, the shape adjustment operation on the side plates can be conveniently conducted in a labor-saving mode before welding, and the welding efficiency is improved. Therefore, welding operation of the excavator bucket can be carried out faster and more labor-saving.
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Description

Technical Field

[0001] The present invention relates to the technical field of bucket welding production, and specifically to an excavator bucket welding device. Background Art

[0002] The bucket of an excavator is an important component of the excavator. The quality of the bucket directly affects the service life of the excavator. Due to the large size and weight of the excavator bucket, assembly and welding are difficult during the production process. The existing bucket production process generally adopts manual assembly and manual welding methods.

[0003] Generally, when welding the bucket, it is necessary to assemble the arc-shaped bottom plate of the bucket with two groups of side plates, and then manually perform welding operations. During this period, due to the influence of the assembly quality of the side plates and the processing quality of the side plates, the distances between the corresponding points of the two groups of side plates often cannot be guaranteed to be equal, resulting in some positions of the side plates being far from or excessively entering the bottom plate. At this time, it is often the case that personnel manually knock the side plates, and after correcting the side plates, a group of rod bodies are temporarily welded to ensure that when welding the side plates and the bottom plate, the shape of the side plates maintains the state after being knocked and repaired. However, this method completely relies on manual measurement and correction, which is time-consuming and laborious. Summary of the Invention

[0004] The purpose of the present invention is to provide an excavator bucket welding device to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions: An excavator bucket welding device includes a base, the base is fixedly connected with a console, and further includes: A support and clamping structure connected to the base; Two groups of side welding structures connected to the base. The two groups of side welding structures include first robotic arms arranged on both sides of the support and clamping structure. The first robotic arms are connected to the base, and a welding torch is fixedly connected to the mobile end of the first robotic arm; A spacing correction structure connected to the base. The spacing correction structure includes a second robotic arm connected to the base. A connecting seat is installed on the second robotic arm. The connecting seat is connected with a touch and distance measuring mechanism. The connecting seat is connected with a distance adjusting mechanism. The distance adjusting mechanism includes a telescopic bonding part connected to the connecting seat. The telescopic bonding part adjusts the relative distance between the bonded parts on the two groups of bucket side plates by bonding and adjusting the length of the bucket side plates. The connecting seat is connected with a cutting part, and the cutting part is used for cutting off the telescopic bonding part adhered to the bucket side plates.

[0006] As a further improvement of the present invention: The support and clamping structure includes a support platform fixedly connected to the base. A first electromagnet is fixedly installed inside the support platform. The base is fixedly connected to a transverse movement rail. Two groups of first motors are fixedly installed on the transverse movement rail. The output end of the first motor is fixedly connected to a lead screw. The lead screw is threadedly connected to a sliding arm that is slidably connected to the transverse movement rail. The sliding arm is fixedly connected to a pneumatic gripper.

[0007] As a further improvement of the present invention: The touch and distance measurement mechanism includes a double-output shaft motor fixedly connected to the connection seat. The output end of the double-output shaft motor is fixedly connected to a rotating arm. The rotating arm is fixedly connected to two symmetrically arranged rectangular sleeves. A fixed grating is fixedly installed inside the rectangular sleeve. A sliding strip is slidably connected to the rectangular sleeve. The sliding strip is fixedly connected to a moving grating adapted to the fixed grating. The sliding strip is fixedly connected to a pressure sensor. The pressure sensor is fixedly connected to a threaded sleeve. The threaded sleeve is threadedly connected to a ball head abutting block. The rectangular sleeve is fixedly connected to a rod seat. The rod seat is fixedly connected to a first active telescopic rod. The mobile end of the first active telescopic rod is fixedly connected to the sliding strip.

[0008] As a further improvement of the present invention: The telescopic bonding part includes a power supply and communication socket fixedly connected to the connection seat. The power supply and communication socket is movably connected to a power supply and communication plug. The power supply and communication socket is connected to an electromagnetic pin connection component, and the electromagnetic pin connection component is connected to the power supply and communication plug. The power supply and communication plug is fixedly connected to an intermediate frame. The intermediate frame is fixedly connected to two groups of first electric telescopic rods. The mobile end of each group of first electric telescopic rods is fixedly connected to an outer cylinder shell. The outer cylinder shell is fixedly connected to heat dissipation fins. A glue storage shell is fixedly installed inside the outer cylinder shell. A plurality of second electric telescopic rods are fixedly installed inside the glue storage shell. The mobile ends of the plurality of second electric telescopic rods are commonly fixedly connected to a push plate slidably installed inside the glue storage shell. A hot melt adhesive layer is arranged on the side of the push plate away from the second electric telescopic rods. The hot melt adhesive layer is arranged inside the glue storage shell. The hot melt adhesive layer wraps a heating rod. The heating rod is slidably connected to the push plate. The heating rod is fixedly connected to the glue storage shell. An elastic gasket is bonded to the open end of the outer cylinder shell. A cavity is arranged between the outer cylinder shell and the glue storage shell.

[0009] As a further improvement of the present invention: The outer cylinder shell is fixedly connected to an exhaust pipe.

[0010] As a further improvement of the present invention: The electromagnetic pin connection component includes a guide sleeve fixedly connected to the power supply and communication socket. A second electromagnet is fixedly installed inside the guide sleeve. The second electromagnet is fixedly connected to a spring. The spring is fixedly connected to a pin slidably installed inside the guide sleeve. The pin is movably connected to the power supply and communication plug.

[0011] As a further improvement of the present invention: The cutting part includes two groups of second active telescopic rods fixedly connected to the connecting seat. The moving end of the second active telescopic rod is fixedly connected with a seat body. The seat body is fixedly connected with a dovetail bar slidably connected to the connecting seat. The seat body is hinged with a transmission box. Two pulleys are rotatably installed in the transmission box. One of the pulleys is coaxially fixedly connected with a saw blade. The transmission box is fixedly connected with a second motor. The output shaft of the second motor is coaxially fixedly connected with the other pulley. The two pulleys are jointly connected with a transmission belt. The seat body is hinged with a third active telescopic rod, and the third active telescopic rod is hinged with the transmission box.

[0012] Compared with the prior art, the beneficial effects of the present invention are: Place the bottom plate of the bucket on the support and clamping structure, and use the support and clamping structure to clamp the two side plates to be welded, so that the side plates are spliced with the bottom plate. Then, the second robotic arm moves the connecting seat, so that the touch and distance measuring mechanism measures the distances at various positions of the two side plates. When the distance between the two side plates exceeds the preset value, the telescopic bonding part bonds the measured part of the side plate. Then, the telescopic bonding part automatically expands and contracts to pull or push the side plate to adjust the shape of the side plate. Then, the first robotic arm moves the welding torch, and the welding torch welds the adjusted side plate and the bent bottom plate together to complete the welding of the basic structure of the bucket. Through the mutual cooperation of the support and clamping structure, the side welding structure, and the distance correction structure, the present invention fixes and welds the bottom plate and side plates that make up the bucket, and uses the distance correction structure to perform a pulling and adjusting operation on the positions where the side plate distances do not meet the standards, so that the side plate is adjusted in shape under the push and pull of the distance correction structure, which is convenient for labor-saving shape adjustment of the side plate before welding, so as to perform the welding operation of the bucket faster and more labor-saving. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 is a three-dimensional structural diagram of the present invention; Figure 2 is a three-dimensional structural diagram of another perspective of the present invention; Figure 3 is a partial three-dimensional structural diagram of the distance correction structure of the present invention; Figure 4 is a three-dimensional structural diagram of the mutual cooperation of the connecting seat, the touch and distance measuring mechanism, the distance adjusting mechanism, the telescopic bonding part, and the cutting part of the present invention; Figure 5 is a three-dimensional internal structural diagram of the outer cylinder shell of the present invention; Figure 6 is a three-dimensional structural diagram of the touch and distance measuring mechanism of the present invention; Figure 7 is an internal structural diagram of the mutual cooperation of the rectangular sleeve, the fixed grating, the sliding strip, the moving grating, the pressure sensor, and the rod seat of the present invention; Figure 8 Schematic structural diagram of the power supply and communication socket, power supply and communication plug, and electromagnetic pin connection assembly of the present invention; Figure 9 Internal structural diagram of the transmission box of the present invention.

[0014] In the figure: 1. Base; 2. Support clamping structure; 3. Side welding structure; 4. First robotic arm; 5. Welding torch; 6. Spacing correction structure; 7. Second robotic arm; 8. Connection seat; 9. Touch pressure ranging mechanism; 10. Distance adjustment mechanism; 11. Telescopic bonding part; 12. Cutting part; 13. Support platform; 14. First electromagnet; 15. Transverse moving rail; 16. First motor; 17. Lead screw; 18. Sliding arm; 19. Pneumatic gripper; 20. Double-output shaft motor; 21. Rotating arm; 22. Rectangular sleeve; 23. Fixed grating; 24. Sliding strip; 25. Moving grating; 26. Pressure sensor; 27. Threaded sleeve; 28. Ball head abutting block; 29. Rod seat; 30. First active telescopic rod; 31. Power supply and communication socket; 32. Power supply and communication plug; 33. Electromagnetic pin connection assembly; 34. Intermediate frame; 35. First electric telescopic rod; 36. Outer cylinder shell; 37. Heat dissipation fin; 38. Glue storage shell; 39. Second electric telescopic rod; 40. Push plate; 41. Hot melt adhesive layer; 42. Elastic gasket; 43. Exhaust pipe; 44. Heating rod; 45. Guide sleeve; 46. Second electromagnet; 47. Plug pin; 48. Second active telescopic rod; 49. Dovetail bar; 50. Seat body; 51. Transmission box; 52. Belt pulley; 53. Saw blade; 54. Second motor; 55. Transmission belt; 56. Third active telescopic rod. Specific embodiments

[0015] The technical solutions of the present invention will be further described in detail below in conjunction with specific embodiments.

[0016] Example 1, referring to Figures 1 to 9 As shown, an excavator bucket welding device includes a base 1, and the base 1 is fixedly connected with a console. It further includes: A support clamping structure 2 connected to the base 1; Two groups of side welding structures 3 connected to the base 1. The two groups of side welding structures 3 include first robotic arms 4 arranged on both sides of the support clamping structure 2. The first robotic arms 4 are connected to the base 1, and the mobile ends of the first robotic arms 4 are fixedly connected with welding torches 5; The spacing correction structure 6 connected to the base 1, the spacing correction structure 6 includes a second robotic arm 7 connected to the base 1, a connecting seat 8 is installed on the second robotic arm 7, the connecting seat 8 is connected with a touch pressure ranging mechanism 9, the connecting seat 8 is connected with a distance adjustment mechanism 10, the distance adjustment mechanism 10 includes a telescopic bonding part 11 connected to the connecting seat 8, and the telescopic bonding part 11 adjusts the relative distance of the bonded parts on the two bucket side plates by bonding the bucket side plates and adjusting the length. The connecting seat 8 is connected with a cutting part 12, and the cutting part 12 is used to cut off the telescopic bonding part 11 adhesively connected to the bucket side plate.

[0017] Place the bottom plate of the bucket on the support clamping structure 2, and use the support clamping structure 2 to clamp the two side plates to be welded, so that the side plates are spliced with the bottom plate. Then, the second robotic arm 7 moves the connecting seat 8, so that the touch pressure ranging mechanism 9 measures the spacing at each position of the two side plates. When the distance between the two side plates exceeds the preset value, the telescopic bonding part 11 bonds the measured part of the side plate, and then the telescopic bonding part 11 automatically expands and contracts to pull or push the side plate to adjust the shape of the side plate. Then, the first robotic arm 4 moves the welding torch 5, and the welding torch 5 welds the adjusted side plate and the bent bottom plate together to complete the welding of the basic structure of the bucket. Through the mutual cooperation of the support clamping structure 2, the side welding structure 3, and the spacing correction structure 6, the present invention fixes and welds the bottom plate and side plates constituting the bucket, and uses the spacing correction structure 6 to perform a pulling and adjusting operation on the position where the side plate spacing does not meet the standard, so that the side plate is adjusted in shape under the push and pull of the spacing correction structure 6, which is convenient for performing a labor-saving shape adjustment operation on the side plate before welding, so as to perform the welding operation of the bucket faster and more labor-saving.

[0018] In one case of this embodiment, the support clamping structure 2 includes a support table 13 fixedly connected to the base 1, a first electromagnet 14 is fixedly installed in the support table 13, the base 1 is fixedly connected with a transverse movement rail 15, two first motors 16 are fixedly installed on the transverse movement rail 15, the output end of the first motor 16 is fixedly connected with a lead screw 17, the lead screw 17 is threadedly connected with a sliding arm 18 slidably connected to the transverse movement rail 15, and the sliding arm 18 is fixedly connected with a pneumatic gripper 19. The pneumatic gripper 19 is used to actively clamp the side plate of the bucket, and the first electromagnet 14 is used to magnetically attract the bottom plate of the bucket placed on the support table 13. After the pneumatic gripper 19 clamps the side plate of the bucket, the first motor 16 drives the lead screw 17 to rotate, and the rotating lead screw 17 drives the sliding arm 18 to move along the transverse movement rail 15, and the moving sliding arm 18 moves the pneumatic gripper 19 to move the side plate and adjust the position of the side plate.

[0019] In a case of this embodiment, the touch pressure ranging mechanism 9 includes a double-output shaft motor 20 fixedly connected to the connecting seat 8. The output end of the double-output shaft motor 20 is fixedly connected with a rotating arm 21. The rotating arm 21 is fixedly connected with two groups of symmetrically arranged rectangular sleeves 22. A fixed grating 23 is fixedly installed in the rectangular sleeve 22. A sliding strip 24 is slidably connected to the rectangular sleeve 22. The sliding strip 24 is fixedly connected with a moving grating 25 adapted to the fixed grating 23. The sliding strip 24 is fixedly connected with a pressure sensor 26. The pressure sensor 26 is fixedly connected with a threaded sleeve 27. The threaded sleeve 27 is threadedly connected with a ball head abutting block 28. The rectangular sleeve 22 is fixedly connected with a rod seat 29. The rod seat 29 is fixedly connected with a first active telescopic rod 30. The moving end of the first active telescopic rod 30 is fixedly connected with the sliding strip 24. During use, the first active telescopic rod 30 drives the sliding strip 24 to move. As the ball head abutting block 28 abuts against the side plate of the bucket, the threaded sleeve 27 presses the pressure sensor 26. At this time, the first active telescopic rod 30 stops telescoping. The moving sliding strip 24 drives the moving grating 25 to move relative to the fixed grating 23. As the moving grating 25 and the fixed grating 23 move relative to each other, the controller obtains the capacitance change value between the moving grating 25 and the fixed grating 23 to measure the moving distance of the moving grating 25 and the sliding strip 24, and further measures the distance between the measured points on the side plate of the bucket.

[0020] In a case of this embodiment, the telescopic bonding part 11 includes a power supply and communication socket 31 fixedly connected to the connection base 8. The power supply and communication socket 31 is movably connected with a power supply and communication plug 32. The power supply and communication socket 31 is connected with an electromagnetic pin connection component 33, and the electromagnetic pin connection component 33 is connected with the power supply and communication plug 32. The power supply and communication plug 32 is fixedly connected with an intermediate frame 34. The intermediate frame 34 is fixedly connected with two groups of first electric telescopic rods 35. The moving end of each group of first electric telescopic rods 35 is fixedly connected with an outer cylinder shell 36. The intermediate frame 34 is fixedly connected with two groups of driven telescopic frames. The moving end of the driven telescopic frame is fixedly connected with the outer cylinder shell 36. The outer cylinder shell 36 is fixedly connected with heat dissipation fins 37. A glue storage shell 38 is fixedly installed in the outer cylinder shell 36. A plurality of groups of second electric telescopic rods 39 are fixedly installed in the glue storage shell 38. The moving ends of the plurality of groups of second electric telescopic rods 39 are commonly fixedly connected with a push plate 40 slidably installed in the glue storage shell 38. On one side of the push plate 40 away from the second electric telescopic rod 39, there is a hot melt adhesive layer 41. The hot melt adhesive layer 41 is arranged in the glue storage shell 38. The hot melt adhesive layer 41 wraps a heating rod 44. The heating rod 44 is slidably connected with the push plate 40. The heating rod 44 is fixedly connected with the glue storage shell 38. An elastic gasket 42 is bonded to the open end of the outer cylinder shell 36. A cavity is arranged between the outer cylinder shell 36 and the glue storage shell 38. The heating rod 44, the second electric telescopic rod 39, and the first electric telescopic rod 35 are all electrically connected to the power supply and communication plug 32. After the power supply and communication plug 32 and the power supply and communication socket 31 are mutually butted, the electromagnetic pin connection component 33 is inserted into the power supply and communication plug 32 to limit the movement of the power supply and communication plug 32, and further limit the movement of the intermediate frame 34. The power supply and communication socket 31 and the power supply and communication plug 32 perform information interaction operations and electrical connections. The first electric telescopic rod 35 drives the outer cylinder shell 36 to move, and the moving outer cylinder shell 36 drives the glue storage shell 38 to move, so that the elastic gasket 42 abuts against the side plate. Then the heating rod 44 heats up, and the hot melt adhesive layer 41 is heated and melted and flows towards the side plate and the outer cylinder shell 36. And the second electric telescopic rod 39 pushes the push plate 40 to push the liquid hot melt adhesive away from the glue storage shell 38. As the heating rod 44 stops heating up and the heat dissipation fins 37 dissipate heat, the hot melt adhesive cools and solidifies. At this time, the first electric telescopic rod 35 pulls the outer cylinder shell 36, and the outer cylinder shell 36 pulls the side plate through the re-cooled hot melt adhesive. If the first electric telescopic rod 35 extends, the outer cylinder shell 36 pushes the elastic gasket 42, and the elastic gasket 42 presses the side plate to adjust the shape of the side plate, and further adjust the distance between the two side plates. After the electromagnetic pin connection component 33 and the power supply and communication plug 32 are mutually separated, by pulling the intermediate frame 34, the power supply and communication plug 32 and the power supply and communication socket 31 are mutually separated.

[0021] In a case of this embodiment, the outer cylinder shell 36 is fixedly connected with an exhaust pipe 43. By providing the exhaust pipe 43, it is convenient to discharge the air in the outer cylinder shell 36, and thus it is convenient to push the liquid hot melt adhesive.

[0022] In a case of this embodiment, the electromagnetic pin-connection assembly 33 includes a guide sleeve 45 fixedly connected with the power supply and communication socket 31. A second electromagnet 46 is fixedly installed in the guide sleeve 45. The second electromagnet 46 is fixedly connected with a spring. The spring is fixedly connected with a plug pin 47 slidably installed in the guide sleeve 45. The plug pin 47 has ferromagnetism, and the plug pin 47 is movably connected with the power supply and communication plug 32. Under the magnetic attraction of the second electromagnet 46 on the plug pin 47, the plug pin 47 is magnetically drawn into the guide sleeve 45, so that the plug pin 47 is separated from the power supply and communication plug 32, to release the limit of the electromagnetic pin-connection assembly 33 on the power supply and communication plug 32.

[0023] Embodiment 2, on the basis of Embodiment 1, refer to Figures 1 to 4 , the cutting part 12 includes two groups of second active telescopic rods 48 fixedly connected with the connecting seat 8. The moving end of the second active telescopic rod 48 is fixedly connected with a seat body 50. The seat body 50 is fixedly connected with a dovetail bar 49 slidably connected with the connecting seat 8. The seat body 50 is hinged with a transmission box 51. Two groups of belt pulleys 52 are rotatably installed in the transmission box 51. One group of belt pulleys 52 is coaxially fixedly connected with a saw blade 53. The transmission box 51 is fixedly connected with a second motor 54. The output shaft of the second motor 54 is coaxially fixedly connected with the other group of belt pulleys 52. The two groups of belt pulleys 52 are jointly connected with a transmission belt 55. The seat body 50 is hinged with a third active telescopic rod 56. The third active telescopic rod 56 is hinged with the transmission box 51. The second motor 54 drives one group of belt pulleys 52 to rotate, so that the belt pulleys 52 drive the transmission belt 55 to move. The transmission belt 55 drives the other group of belt pulleys 52 to rotate, so that the other group of belt pulleys 52 drives the saw blade 53 to rotate. At this time, the second active telescopic rod 48 drives the seat body 50 to move, and the seat body 50 drives the transmission box 51 to move. As the third active telescopic rod 56 pushes the transmission box 51 to rotate, the saw blade 53 cuts the elastic gasket 42 and the re-cooled hot melt adhesive, so as to facilitate the separation of the side plate from the telescopic bonding part 11.

[0024] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirits of the present invention.

Claims

1. An excavator bucket welding device, comprising a base (1), the base (1) being fixedly connected to a control console, characterized in that: Also includes: A supporting clamping structure (2) connected to the base (1); Two sets of side welding structures (3) connected to the base (1), the two sets of side welding structures (3) comprising first mechanical arms (4) arranged on both sides of the supporting clamping structure (2), the first mechanical arms (4) being connected to the base (1), and the moving end of the first mechanical arms (4) being fixedly connected to a welding gun (5); A spacing correction structure (6) connected to a base (1), the spacing correction structure (6) comprising a second mechanical arm (7) connected to the base (1), a connecting seat (8) mounted on the second mechanical arm (7), the connecting seat (8) being connected to a contact pressure distance measuring mechanism (9), the connecting seat (8) being connected to a distance adjustment mechanism (10), the distance adjustment mechanism (10) comprising a telescopic bonding portion (11) connected to the connecting seat (8), the telescopic bonding portion (11) being bonded to the bucket side plates and adjusting the length so as to adjust the relative distance between the bonded portions of the two groups of bucket side plates, the connecting seat (8) being connected to a cutting portion (12), the cutting portion (12) being used to cut off the telescopic bonding portion (11) bonded to the bucket side plates.

2. The excavator bucket welding equipment according to claim 1, characterized in that: The support clamping structure (2) comprises a support platform (13) fixedly connected to the base (1), a first electromagnet (14) fixedly installed in the support platform (13), the base (1) fixedly connected to a transverse rail (15), two groups of first motors (16) fixedly installed on the transverse rail (15), an output end of the first motor (16) fixedly connected to a lead screw (17), the lead screw (17) threadedly connected to a slide arm (18) slidably connected to the transverse rail (15), and the slide arm (18) fixedly connected to a pneumatic clamp (19).

3. The excavator bucket welding equipment according to claim 1, characterized in that: The touch-pressure distance measuring mechanism (9) comprises a double-output shaft motor (20) fixedly connected to a connecting seat (8); an output end of the double-output shaft motor (20) is fixedly connected to a rotating arm (21); the rotating arm (21) is fixedly connected to two groups of rectangular sleeves (22) arranged symmetrically; a fixed grid (23) is fixedly installed in the rectangular sleeve (22); a slide bar (24) is slidably connected to the rectangular sleeve (22); the slide bar (24) is fixedly connected to a moving grid (25) matched with the fixed grid (23); the slide bar (24) is fixedly connected to a pressure sensor (26); the pressure sensor (26) is fixedly connected to a threaded sleeve (27); the threaded sleeve (27) is threadedly connected to a ball head abutment block (28); the rectangular sleeve (22) is fixedly connected to a rod seat (29); the rod seat (29) is fixedly connected to a first active telescopic rod (30); the moving end of the first active telescopic rod (30) is fixedly connected to the slide bar (24).

4. The excavator bucket welding equipment according to claim 1, characterized in that: The telescopic bonding portion (11) comprises a power supply communication socket (31) fixedly connected to the connection seat (8), the power supply communication socket (31) being movably connected to a power supply communication plug (32), the power supply communication socket (31) being connected to an electromagnetic pin connection assembly (33), the electromagnetic pin connection assembly (33) being connected to the power supply communication plug (32), the power supply communication plug (32) being fixedly connected to an intermediate frame (34), the intermediate frame (34) being fixedly connected to two groups of first electric telescopic rods (35), the movable end of each group of first electric telescopic rods (35) being fixedly connected to an outer cylinder shell (36), the outer cylinder shell (36) being fixedly connected to a heat dissipation fin plate (37), a glue storage shell (38) being fixedly installed inside the outer cylinder shell (36), A plurality of groups of second electric telescopic rods (39) are fixedly installed in the glue storage shell (38); the movable ends of the plurality of groups of second electric telescopic rods (39) are fixedly connected to a push plate (40) slidably installed in the glue storage shell (38); a hot melt adhesive layer (41) is provided on a side of the push plate (40) away from the second electric telescopic rod (39); the hot melt adhesive layer (41) is provided in the glue storage shell (38); the hot melt adhesive layer (41) wraps a heating rod (44); the heating rod (44) is slidably connected to the push plate (40); the heating rod (44) is fixedly connected to the glue storage shell (38); an elastic gasket (42) is bonded to the open end of the outer cylinder shell (36); and a cavity is provided between the outer cylinder shell (36) and the glue storage shell (38).

5. The excavator bucket welding equipment according to claim 4, characterized in that: The outer cylinder shell (36) is fixedly connected to an exhaust pipe (43).

6. The excavator bucket welding equipment according to claim 4, characterized in that: The electromagnetic pin connection assembly (33) comprises a guide sleeve (45) fixedly connected to the power supply communication socket (31), a second electromagnet (46) fixedly installed in the guide sleeve (45), the second electromagnet (46) fixedly connected to a spring, the spring fixedly connected to a pin (47) slidably installed in the guide sleeve (45), and the pin (47) is movably connected to the power supply communication plug (32).

7. The excavator bucket welding equipment according to claim 1, characterized in that: The cutting portion (12) comprises two groups of second active telescopic rods (48) fixedly connected to the connecting seat (8); the movable end of the second active telescopic rod (48) is fixedly connected to a seat body (50); the seat body (50) is fixedly connected to a dovetail bar (49) slidably connected to the connecting seat (8); the seat body (50) is hinged to a transmission box (51); two groups of pulleys (52) are rotatably mounted in the transmission box (51); one group of pulleys (52) is coaxially fixedly connected to a saw blade (53); the transmission box (51) is fixedly connected to a second motor (54); the output shaft of the second motor (54) is coaxially fixedly connected to the other group of pulleys (52); the two groups of pulleys (52) are commonly connected to a transmission belt (55); the seat body (50) is hinged to a third active telescopic rod (56); the third active telescopic rod (56) is hinged to the transmission box (51).

Citation Information

Patent Citations

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