Precision laser welding of rotary positioning mechanisms
By designing a rotary positioning mechanism that drives the shrinking cylinder and push plate movement, the problem of inaccurate welding position of the workpiece is solved, automatic centering fixation and harmful gas recovery are achieved, and welding efficiency and environmental protection are improved.
Patent Information
- Application Number
- CN202411868777.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-18
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2044-12-18
AI Technical Summary
When the existing rotary positioning mechanism is welded and the workpiece welding position is not in the center, it is difficult to achieve automatic centering fixation, resulting in welding errors or inefficiency.
The rotary positioning mechanism design includes a base, a rotary seat and a mounting seat is designed. The shrinking cylinder and push plate are driven through the drive shaft to move, push the workpiece to the center of the rotary seat, and the limiting hole and air pipe are used to adsorb and fix the workpiece to absorb harmful gases.
The workpiece is automatically centered and fixed, which improves welding efficiency, and effectively recovers harmful gases generated during laser welding, reducing material waste and air pollution.
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Figure CN119794626B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of rotary positioning mechanisms, in particular to a rotary positioning mechanism for precision laser welding. Background Art
[0002] Laser welding is an efficient and precise welding method that uses a high-energy-density laser beam as a heat source. It is one of the important aspects of the application of laser material processing technology. In the 1970s, it was mainly used for welding thin-walled materials and low-speed welding. The welding process is a heat conduction type, that is, the laser radiation heats the workpiece surface, and the surface heat diffuses to the inside through heat conduction. By controlling the width, energy, peak power and repetition frequency of the laser pulse, the workpiece is melted to form a specific molten pool. Due to its unique advantages, it has been successfully applied to the precision welding of micro and small parts.
[0003] In precision laser welding work, the laser welding gun head is usually mounted on one end of the operating table, and a rotary positioning mechanism is installed on the upper end of the operating table. The operator first performs preliminary spot welding on the workpiece to be welded, and then places the workpiece that has completed the preliminary spot welding on the upper end of the rotary positioning mechanism. After the rotary positioning mechanism fixes the workpiece in the center from the lower end of the workpiece, the rotary positioning mechanism rotates, driving the workpiece to rotate, and at the same time the laser welding gun head welds the workpiece.
[0004] In the prior art, after the workpiece is placed on the upper end of the rotary positioning mechanism, the rotary positioning mechanism mostly fixes the workpiece in the center from the bottom end of the workpiece. However, this type of centering fixation method is only suitable for workpieces that are welded at the center. When the welding part is biased towards the center, the operator needs to manually place the welding part of the workpiece to the center of the rotary positioning mechanism. If the placement position deviates, it will cause welding errors and waste materials. Alternatively, manual welding can be used, but the work efficiency is low. Summary of the Invention
[0005] Based on this, the purpose of the present invention is to provide a rotation positioning mechanism for precision laser welding to solve the technical problems in the above-mentioned background technology.
[0006] To achieve the above object, the present invention provides the following technical solution: a precision laser welded rotary positioning mechanism, comprising a base, a rotating seat and a mounting seat, wherein the rotating seat is movably mounted on the upper end of the base, and the mounting seat is symmetrically mounted on the upper end of the base;
[0007] The two groups of mounting seats are symmetrically installed with retractable cylinders, and the inner walls of the multiple groups of retractable cylinders are movably installed with telescopic rods, and one end of the multiple groups of telescopic rods extends to the outer wall of the mounting seat. One end of the two groups of mounting seats is movably installed with a push plate, and the two groups of push plates are respectively connected to the corresponding telescopic rods;
[0008] A driving motor is installed inside the base, a driving shaft is installed at the output end of the driving motor, and one end of the driving shaft is connected to the rotating seat, and the driving shaft is movably connected to the multiple groups of shrinking cylinders.
[0009] By adopting the above technical solution, the problem of the workpiece welding position not being fixed in the center is solved. The push plate is raised by the mounting seat, and the operator places the workpiece to be welded on the upper end of the rotating seat. The drive shaft rotates counterclockwise, driving the transmission shaft to rotate, thereby driving the shrinking cylinder to rotate, causing the telescopic rod to move outward, thereby driving the push plate to move, and pushing the workpiece to move. After the two sets of push plates push the workpiece welding end from the upper end of the workpiece to the center of the rotating seat, the welding device performs laser welding on the workpiece. The two sets of push plates make the workpiece welding end in the center of the rotating seat, thereby improving work efficiency.
[0010] The present invention is further configured such that a one-way bearing is provided between the drive shaft and the rotating seat, multiple groups of limiting holes are provided at the upper end of the rotating seat, multiple groups of connecting grooves are provided inside the rotating seat, and the multiple groups of connecting grooves are respectively connected to the multiple groups of limiting holes.
[0011] By adopting the above technical solution and setting the one-way bearing, when the drive shaft rotates counterclockwise, the rotating seat does not rotate, and multiple groups of connecting grooves connect multiple groups of limiting holes.
[0012] The present invention is further configured such that an annular groove is provided at the bottom end of the rotating seat, and the annular groove is connected to multiple groups of connecting grooves, a limiting plate is installed at the bottom end of the annular groove, a limiting track is installed on the inner wall of the base, and the outer wall of the limiting plate is movably connected to the inner wall of the limiting track, an air pipe is installed at one end of the limiting track, and the air pipe is connected to an external air suction pump and an air filter device.
[0013] By adopting the above technical solution, the suction pump is started, suction is generated through the air pipe, and suction is generated inside the limiting track, and the limiting plate is movably connected to the limiting track, so that the suction enters the annular groove through the limiting plate, and the annular groove is connected to multiple groups of connecting grooves, and the multiple groups of connecting grooves are connected to one end of multiple groups of limiting holes, so that the limiting holes generate suction, the limiting holes at the lower end of the workpiece adsorb and fix the workpiece, and the remaining limiting holes recover the harmful gases generated during laser welding.
[0014] The present invention is further configured such that the cross-sections of the two groups of mounting seats are both "L"-shaped, transmission shafts are installed inside the two groups of mounting seats, transmission bevel gears are installed on the upper ends of the two groups of transmission shafts, and the two groups of transmission shafts are connected to the drive shafts respectively through a second belt.
[0015] By adopting the above technical solution, the mounting seat lifts the push plate. When the drive shaft rotates, the two sets of transmission shafts are connected to each other through the second belt, so the two sets of transmission shafts rotate, thereby driving the two sets of transmission bevel gears to rotate.
[0016] The present invention is further configured such that a linkage shaft is installed inside the two groups of mounting seats, a linkage bevel gear is installed at one end of the two groups of linkage shafts, and the two groups of linkage bevel gears are respectively meshed and connected with the two groups of transmission bevel gears.
[0017] By adopting the above technical solution, the two sets of transmission bevel gears rotate, and the two sets of transmission bevel gears are respectively engaged with the two sets of linkage bevel gears, thereby driving the two sets of linkage bevel gears to rotate, and then driving the two sets of linkage shafts to rotate.
[0018] The present invention is further configured such that the two groups of linkage shafts are respectively connected to the multiple groups of shrinking cylinders via a first belt, and springs are installed inside the multiple groups of shrinking cylinders.
[0019] By adopting the above technical solution, when the two sets of connecting shafts rotate, the two sets of connecting shafts are respectively connected to the multiple sets of shrinking cylinders through the first belt, thereby driving the multiple sets of shrinking cylinders to rotate. When the rotating seat rotates, the telescopic rod moves into the shrinking cylinder. The telescopic rod continues to move, squeezing the spring, and the spring pushes the telescopic rod to continuously be threadedly connected with the shrinking cylinder.
[0020] The present invention is further configured such that the two groups of push plates are arranged at a relative inclination away from one end of the telescopic rod, and an air suction groove is provided at the lower end of the push plates, and rubber pads are installed on the outer walls of the two groups of push plates.
[0021] By adopting the above technical solution, when the two groups of push plates are displaced, the outer wall of the push plate contacts the outer wall of the upper end of the workpiece and pushes the workpiece to displace, and the outer wall of the push plate is relatively inclined, so that the workpiece moves toward the center of the rotating seat and moves toward the center position of the push plate at the same time, thereby improving the effect of moving the workpiece toward the center position of the rotating seat.
[0022] The present invention is further configured such that two groups of corrugated hoses are installed at one end of each of the two groups of mounting seats, and one end of multiple groups of corrugated hoses are respectively connected to the air outlet end of the push plate, and one end of multiple groups of corrugated hoses are connected to the limiting track through a connecting pipe.
[0023] By adopting the above technical solution, when suction is generated inside the limit track, the connecting pipe connects the limit track to the corrugated hose, and one end of the corrugated hose is connected to the air outlet end of the push plate, so that suction is generated at the lower end of the limit plate, further recovering the harmful gases generated during laser welding, thereby improving the harmful gas recovery effect.
[0024] The present invention is further configured such that a visual camera is installed on one side of the base, and the visual camera is electrically connected to the drive motor and the suction pump.
[0025] By adopting the above technical solution, the movement of the workpiece is observed through a visual camera, and the drive motor and the suction pump are controlled accordingly.
[0026] In summary, the present invention mainly has the following beneficial effects:
[0027] 1. The present invention solves the problem of the workpiece welding position not being fixed in the center by providing a mounting base and a push plate. The push plate is raised by the mounting base, and the operator places the workpiece to be welded on the upper end of the rotating base. The driving shaft rotates counterclockwise, driving the transmission shaft to rotate, thereby driving the shrinking cylinder to rotate, causing the telescopic rod to move outward, thereby driving the push plate to move, and pushing the workpiece to move. When the two sets of push plates push the workpiece welding end from the upper end of the workpiece to the center of the rotating base, the visual camera controls the driving shaft to rotate clockwise and starts the suction pump. The welding device performs laser welding on the workpiece, and the two sets of push plates make the workpiece welding end in the center of the rotating base, thereby improving work efficiency.
[0028] 2. The present invention is provided with a push plate, a rotating seat, a limiting hole and an air pipe. The air pipe is connected to an air suction pump. When the air suction pump is started, suction is generated through the air pipe, so that the limiting holes generate suction. The limiting holes at the lower end of the workpiece adsorb and fix the workpiece, and the remaining limiting holes recover the harmful gases generated during laser welding. At the same time, the lower end of the push plate generates suction to further recover the harmful gases generated during laser welding, thereby improving the harmful gas recovery effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 This is a schematic diagram of the base installation of the precision laser welding rotation positioning mechanism of the present invention;
[0030] Figure 2 This is a schematic structural diagram of the rotary positioning mechanism for precision laser welding according to the present invention;
[0031] Figure 3 Schematic diagram of the drive motor of the rotary positioning mechanism for precision laser welding according to the present invention;
[0032] Figure 4 This is a schematic diagram of the rotary seat of the rotary positioning mechanism for precision laser welding according to the present invention;
[0033] Figure 5 A side cross-sectional view of the rotary seat of the rotary positioning mechanism for precision laser welding according to the present invention;
[0034] Figure 6This is a schematic diagram of the mounting base of the rotary positioning mechanism for precision laser welding according to the present invention;
[0035] Figure 7 Schematic diagram of the limiting track of the rotary positioning mechanism for precision laser welding according to the present invention;
[0036] Figure 8 This is a schematic diagram of the internal structure of the mounting base of the precision laser welding rotation positioning mechanism described in the present invention.
[0037] In the figure: 1. Base; 2. Rotating seat; 3. Limiting hole; 4. Connecting groove; 5. Annular groove; 6. Limiting plate; 7. Driving motor; 8. Driving shaft; 9. One-way bearing; 10. Limiting track; 11. Air pipe; 12. Mounting seat; 13. Transmission shaft; 14. Transmission bevel gear; 15. Linking bevel gear; 16. Linking shaft; 17. First belt; 18. Retraction cylinder; 19. Telescopic rod; 20. Push plate; 21. Connecting pipe; 22. Corrugated hose; 23. Second belt. DETAILED DESCRIPTION
[0038] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be understood as limiting the present invention.
[0039] The following describes an embodiment of the present invention based on its overall structure.
[0040] Precision laser welded rotary positioning mechanism, such as Figure 1 - Figure 8 As shown, it includes a base 1, a rotating base 2 and a mounting base 12. The rotating base 2 is movably mounted on the upper end of the base 1, a workpiece is placed on the upper end of the rotating base 2, and the mounting base 12 is symmetrically mounted on the upper end of the base 1;
[0041] The two sets of mounting seats 12 are symmetrically installed with shrinkage cylinders 18. The inner walls of the multiple sets of shrinkage cylinders 18 are movably installed with telescopic rods 19. The shrinkage cylinders 18 rotate to drive the telescopic rods 19 to move, and one end of the multiple sets of telescopic rods 19 extends to the outer wall of the mounting seat 12. The push plates 6 are movably installed at one end of the two sets of mounting seats 12. The mounting seat 12 lifts the push plates 6, and the two sets of push plates 6 are respectively connected to the corresponding telescopic rods 19. The push plates 6 push the workpiece to move;
[0042] A driving motor 7 is installed inside the base 1, and a driving shaft 8 is installed at the output end of the driving motor 7. When the driving motor 7 is started, the driving shaft 8 is driven to rotate, and one end of the driving shaft 8 is connected to the rotating seat 2. The driving shaft 8 is movably connected to the multiple groups of shrinking cylinders 18. When the driving shaft 8 rotates, it drives the rotating seat 2 and the multiple groups of shrinking cylinders 18 to operate.
[0043] See also Figure 3 - Figure 5 A one-way bearing 9 is arranged between the drive shaft 8 and the rotating seat 2. Multiple groups of limiting holes 3 are opened at the upper end of the rotating seat 2. Multiple groups of connecting grooves 4 are opened inside the rotating seat 2, and the multiple groups of connecting grooves 4 are respectively connected to the multiple groups of limiting holes 3. Through the setting of the one-way bearing 9, when the drive shaft rotates counterclockwise, the rotating seat 2 does not rotate, and the multiple groups of connecting grooves 4 connect the multiple groups of limiting holes 3.
[0044] See also Figure 4 - Figure 7 , an annular groove 5 is provided at the bottom end of the rotating seat 2, and the annular groove 5 is connected to multiple groups of connecting grooves 4, a limiting plate 6 is installed at the bottom end of the annular groove 5, a limiting track 10 is installed on the inner wall of the base 1, and the outer wall of the limiting plate 6 is movably connected to the inner wall of the limiting track 10, an air pipe 11 is installed at one end of the limiting track 10, and the air pipe 11 is connected to the external air suction pump and the air filter device. When the air suction pump is started, suction is generated through the air pipe 11, and suction is generated inside the limiting track 10, and the limiting plate 6 is movably connected to the limiting track 10, so that the suction enters the annular groove 5 through the limiting plate 6, and the annular groove 5 is connected to multiple groups of connecting grooves 4, and multiple groups of connecting grooves 4 are connected to one end of multiple groups of limiting holes 3, so that the limiting holes 3 generate suction, and the limiting holes 3 at the lower end of the workpiece adsorb and fix the workpiece, and the remaining limiting holes 3 recycle the harmful gases generated during laser welding.
[0045] See also Figure 7 - Figure 8 The cross-sections of the two sets of mounting seats 12 are both "L"-shaped. A transmission shaft 13 is installed inside the two sets of mounting seats 12. A transmission bevel gear 14 is installed on the upper ends of the two sets of transmission shafts 13. The two sets of transmission shafts 13 are connected to the drive shaft 8 through a second belt 23 respectively. The mounting seat lifts the push plate 6. When the drive shaft 8 rotates, because the drive shaft 8 and the two sets of transmission shafts 13 are connected through the second belt 23 respectively, the two sets of transmission shafts 13 rotate, thereby driving the two sets of transmission bevel gears 14 to rotate.
[0046] See also Figure 8 A connecting shaft 16 is installed inside the two sets of mounting seats 12, and a connecting bevel gear 15 is installed at one end of the two sets of connecting shafts 16. The two sets of connecting bevel gears 15 are respectively engaged with the two sets of transmission bevel gears 14. The two sets of transmission bevel gears 14 rotate, and the two sets of transmission bevel gears 14 are respectively engaged with the two sets of connecting bevel gears 15, thereby driving the two sets of connecting bevel gears 15 to rotate, and then driving the two sets of connecting shafts 16 to rotate.
[0047] See also Figure 8The two sets of connecting shafts 16 are respectively connected to the multiple sets of shrinking cylinders 18 through the first belt 17, and the multiple sets of shrinking cylinders 18 are installed with springs. When the two sets of connecting shafts 16 rotate, the two sets of connecting shafts 16 are respectively connected to the multiple sets of shrinking cylinders 18 through the first belt 17, thereby driving the multiple sets of shrinking cylinders 18 to rotate. When the rotating seat 2 rotates, the telescopic rod 19 displaces into the shrinking cylinder 18. The telescopic rod 19 continues to displace, squeezing the spring, and the spring pushes the telescopic rod 19 to be continuously threadedly connected to the shrinking cylinder 18.
[0048] See also Figure 7 - Figure 8 The two groups of push plates 6 are relatively inclined away from one end of the telescopic rod 19, and an air suction groove is provided at the lower end of the push plate 6. The outer walls of the two groups of push plates 6 are installed with rubber pads. When the two groups of push plates 6 are displaced, the outer wall of the push plate 6 contacts the outer wall of the upper end of the workpiece and pushes the workpiece to displace. The outer wall of the push plate 6 is relatively inclined, so that the workpiece moves toward the center of the rotating seat 2 while moving toward the center position of the push plate 6, thereby improving the effect of moving the workpiece toward the center position of the rotating seat 2.
[0049] See also Figure 7 - Figure 8 Two sets of corrugated hoses 22 are installed at one end of each of the two sets of mounting seats 12, and one end of multiple sets of corrugated hoses 22 is connected to the air outlet end of the push plate 6 respectively, and one end of multiple sets of corrugated hoses 22 is connected to the limiting rail 10 through the connecting pipe 21. When suction is generated inside the limiting rail 10, the connecting pipe 21 connects the limiting rail 10 with the corrugated hose 22, and one end of the corrugated hose 22 is connected to the air outlet end of the push plate 20, so that suction is generated at the lower end of the limiting plate 6, further recovering the harmful gas generated during laser welding, and improving the harmful gas recovery effect.
[0050] See also Figure 1 - Figure 2 A visual camera is installed on one side of the base 1, and the visual camera is electrically connected to the drive motor 7 and the suction pump. The movement of the workpiece is observed by the visual camera, so as to control the drive motor 7 and the suction pump accordingly.
[0051] The working principle of the present invention is as follows: when the operator uses the device, the operator places the workpiece to be welded on the upper end of the rotating seat 12, and performs preliminary spot welding on the workpiece to connect the two parts of the workpiece to facilitate subsequent welding. The drive motor 7 is started, and the drive shaft 8 rotates, and the drive shaft 8 rotates in a counterclockwise direction. Since the one-way bearing 9 is idling at this time, the rotating seat 2 will not rotate with the drive shaft 8;
[0052] When the drive shaft 8 rotates, since the drive shaft 8 and the two sets of transmission shafts 13 are connected by the second belt 23, the two sets of transmission shafts 13 rotate, thereby driving the two sets of transmission bevel gears 14 to rotate, and the two sets of transmission bevel gears 14 are respectively engaged with the two sets of linkage bevel gears 15, thereby driving the two sets of linkage linkage bevel gears 15 to rotate, and further driving the two sets of linkage shafts 16 to rotate;
[0053] When the two sets of linkage shafts 16 rotate, the two sets of linkage shafts 16 are connected to the multiple sets of shrinking cylinders 18 through the first belt 17, thereby driving the multiple sets of shrinking cylinders 18 to rotate. The multiple sets of shrinking cylinders 18 are respectively connected to the multiple sets of telescopic rods 19 through threaded connections. Therefore, the telescopic rods 19 move, thereby pushing the push plate 6 to move;
[0054] When the two sets of push plates 6 are displaced, the outer wall of the push plate 6 contacts the outer wall of the upper end of the workpiece and pushes the workpiece to move. The outer wall of the push plate 6 is relatively inclined, so that the workpiece moves toward the center of the rotating seat 2 while moving toward the center position of the push plate 6, thereby improving the effect of moving the workpiece toward the center position of the rotating seat 2.
[0055] When the workpiece moves to the center position of the rotating seat 12, the visual camera observes and receives the signal, stops the drive motor 7 and drives the drive shaft 8 to rotate counterclockwise, so that the drive motor 7 drives the drive shaft 8 to rotate clockwise, and starts the suction pump at the same time;
[0056] When the driving shaft 8 rotates clockwise, it drives the rotating seat 2 to rotate, and at the same time the laser welding device performs laser welding on the workpiece;
[0057] The suction pump is started, generating suction through the air pipe 11 and inside the limiting track 10, and the limiting plate 6 is movably connected to the limiting track 10, so that the suction enters the annular groove 5 through the limiting plate 6, and the annular groove 5 is connected to the multiple groups of connecting grooves 4, and the multiple groups of connecting grooves 4 are connected to one end of the multiple groups of limiting holes 3, so that the limiting holes 3 generate suction. The limiting holes 3 at the lower end of the workpiece adsorb and fix the workpiece, and the remaining limiting holes 3 recover the harmful gases generated during laser welding;
[0058] When suction is generated inside the limiting track 10, the connecting pipe 21 connects the limiting track 10 with the corrugated hose 22, and one end of the corrugated hose 22 is connected to the gas outlet end of the push plate 20, so that suction is generated at the lower end of the limiting plate 6, further recovering the harmful gases generated during laser welding, thereby improving the harmful gas recovery effect;
[0059] The present invention uses the installation seat 12 and the push plate 20 to push the workpiece from the upper end of the workpiece and push the welding end of the workpiece to the center of the rotating seat to perform laser welding on the workpiece, thereby improving work efficiency. In addition, through the setting of the rotating seat 2, the limiting hole 3 and the push plate 20, the workpiece is adsorbed and fixed while absorbing harmful gases generated during laser welding, thereby reducing air pollution.
[0060] Although an embodiment of the present invention has been shown and described, this specific embodiment is merely an explanation of the present invention and is not a limitation of the invention. The specific features, structures, materials or characteristics described may be combined in an appropriate manner in any one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions and variations to the embodiment without creative contribution as needed without departing from the principles and purpose of the present invention. However, as long as they are within the scope of the claims of the present invention, they are protected by patent law.
Claims
1. A precision laser welded rotary positioning mechanism comprising a base (1), a rotating seat (2) and a mounting seat (12), characterized in that: A rotating seat (2) is movably mounted on the upper end of the base (1), and a mounting seat (12) is symmetrically mounted on the upper end of the base (1); The two groups of mounting seats (12) are symmetrically provided with shrinking cylinders (18), the inner walls of the multiple groups of shrinking cylinders (18) are movably provided with telescopic rods (19), and one end of the multiple groups of telescopic rods (19) extends to the outer wall of the mounting seat (12), and one end of the two groups of mounting seats (12) is movably provided with push plates (20), and the two groups of push plates (20) are respectively connected to the corresponding telescopic rods (19); A driving motor (7) is installed inside the base (1), a driving shaft (8) is installed at the output end of the driving motor (7), and one end of the driving shaft (8) is connected to the rotating base (2), and the driving shaft (8) is movably connected to the multiple groups of shrinking cylinders (18); A one-way bearing (9) is provided between the driving shaft (8) and the rotating seat (2); a plurality of groups of limiting holes (3) are provided on the upper end of the rotating seat (2); a plurality of groups of connecting grooves (4) are provided inside the rotating seat (2), and the plurality of groups of connecting grooves (4) are respectively connected to the plurality of groups of limiting holes (3); The bottom end of the rotating seat (2) is provided with an annular groove (5), and the annular groove (5) is connected to a plurality of connecting grooves (4). A limiting plate (6) is installed at the bottom end of the annular groove (5). A limiting track (10) is installed on the inner wall of the base (1), and the outer wall of the limiting plate (6) is movably connected to the inner wall of the limiting track (10). An air pipe (11) is installed at one end of the limiting track (10), and the air pipe (11) is connected to an external air suction pump and an air filter device. The cross-sections of the two sets of mounting seats (12) are both "L"-shaped, and transmission shafts (13) are installed inside the two sets of mounting seats (12). Transmission bevel gears (14) are installed on the upper ends of the two sets of transmission shafts (13). The two sets of transmission shafts (13) are connected to the drive shaft (8) via a second belt (23). The two groups of push plates (20) are relatively inclined away from one end of the telescopic rod (19), and an air suction groove is provided at the lower end of the push plate (20). The outer walls of the two groups of push plates (20) are installed with a rubber cushion layer. Two groups of corrugated hoses (22) are installed at one end of the two groups of mounting seats (12), and one end of multiple groups of corrugated hoses (22) are respectively connected to the air outlet end of the push plate (20), and one end of multiple groups of corrugated hoses (22) are connected to the limit track (10) through a connecting pipe (21).
2. The rotary positioning mechanism for precision laser welding according to claim 1, characterized in that: The two sets of mounting seats (12) are both internally mounted with linkage shafts (16), one end of the two sets of linkage shafts (16) is both mounted with linkage bevel gears (15), and the two sets of linkage bevel gears (15) are respectively meshed and connected with the two sets of transmission bevel gears (14).
3. The rotary positioning mechanism for precision laser welding according to claim 2, characterized in that: The two groups of linkage shafts (16) are respectively connected to the multiple groups of shrinking cylinders (18) via a first belt (17), and springs are installed inside the multiple groups of shrinking cylinders (18).
4. The rotary positioning mechanism for precision laser welding according to claim 1, characterized in that: A visual camera is installed on one side of the base (1), and the visual camera is electrically connected to the drive motor (7) and the suction pump.
Citation Information
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Rotary laser welding equipment for stainless steel parts
CN116060806A
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