System window machining equipment with auxiliary mechanism
By designing servo moving support, positioning detection box, maintenance and processing components, coordination control components and collection devices in the system window processing equipment, the problems of equipment positioning module pollution and welding smoke treatment are solved, and high-precision welding and a good processing environment are achieved.
Patent Information
- Application Number
- CN202510370572.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2025-06-17
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
After long-term use of the existing system window processing equipment, the positioning module is easily contaminated by dust, affecting the welding accuracy, and welding smoke is difficult to deal with in a timely manner, polluting the environment.
A system window processing equipment with auxiliary mechanism is designed, including a servo moving support, a positioning detection box, a maintenance and processing component, a matching control component and a collection device. Through the auxiliary positioning and maintenance automatic cleaning function of the positioning detection box, weld positioning accuracy and operation convenience are improved; weld positioning is coordinated with control components and collection devices to collect and deal with welding smoke and dust in a timely manner to avoid contamination.
It improves the accuracy of welding positioning and operation convenience, reduces the need for manual cleaning, promptly deal with welding smoke and dust, and maintains the cleanliness of the processing environment.
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Figure CN120155696A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of welding equipment, and particularly to a system window processing device with an auxiliary mechanism. Background Art
[0002] A system window refers to a high-performance window designed systematically, usually including components such as window frames, glass, and hardware. Through overall optimization, functions such as heat insulation, sound insulation, waterproofing, and airtightness are achieved. Such windows are often applied to high-end buildings or scenarios with high energy-saving requirements. When producing system windows, their frame structures need to be strengthened by welding and painted later.
[0003] The utility model with the existing publication number CN222095061U discloses a double-station skylight frame welding machine, including a workbench and a positioning component. Through the setting of the positioning component, when welding the skylight frame, two plates can be placed on one side of the positioning plate. At this time, when turning the screw by the handle, since the slider and the chute can limit the rotation direction of the screw sleeve, the position of the screw sleeve can be adjusted to drive the clamping plate to press the other side of the plate, so that the two plates can be fixed simultaneously, improving the efficiency during clamping. The above solution performs auxiliary welding operations by clamping and positioning the window frame. In order to improve production efficiency, in the existing welding device with a gantry and a conveyor belt, during use, the assembled window frame needs to be horizontally placed on the conveying mechanism, and then through a combined method of vision and laser positioning modules, intelligent auxiliary positioning of the welding points is carried out, and then the welding torch is controlled to reach the accurate position for welding operations. However, this welding method relies relatively heavily on the accurate positioning of vision and laser. After the module is used for a long time, the protective lens is easily contaminated by dust and dirt. After being used for a certain period of time, manual cleaning is often required, which is inconvenient to use. Moreover, when welding fumes are used for large-area gantry welding equipment, it is not easy to be processed in time, and it is more likely to contaminate the positioning lens and affect the processing environment. Summary of the Invention
[0004] The purpose of the present invention is to provide a system window processing device with an auxiliary mechanism to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solution: A system window processing device with an auxiliary mechanism, including:
[0006] A servo moving support, on one side of the servo moving support is provided a welding torch, and at the lower end of the servo moving support is provided a positioning detection box. Inside the positioning detection box, two auxiliary positioning components are rotatably provided. The auxiliary positioning components each include a rotating housing and a positioning detection module;
[0007] Maintenance processing component, the maintenance processing component is arranged between two rotating housing in the positioning detection box, the maintenance processing component includes a maintenance processing box, two piston push disks and two cleaning disks;
[0008] Cooperating control component, the cooperating control component is arranged at the upper ends on both sides of the maintenance processing box, the cooperating control component includes two control boxes and two L-shaped toggle rods, and the two L-shaped toggle rods are respectively arranged in cooperation with the two rotating housing;
[0009] Collection device, the collection device is arranged on one side of the servo moving support near the welding torch, the collection device includes a support guide rod and a collection adapter box.
[0010] Preferably, upper and lower cavities are respectively opened at the upper and lower ends inside the positioning detection box, two bearing mounting blocks are symmetrically arranged on both sides inside the lower cavity, the two rotating housing are respectively horizontally arranged on both sides inside the lower cavity through the bearing mounting blocks, and the positioning detection module is placed inside the rotating housing and horizontally arranged between two adjacent bearing mounting blocks.
[0011] Preferably, receiving grooves are respectively opened on both sides inside the maintenance processing box close to the rotating housing, access windows are respectively opened through one side of the maintenance processing box close to the rotating housing in the receiving grooves, external windows are arranged on the same side of the detection surface of the positioning detection module of the rotating housing, high lens pieces are respectively inserted and arranged at the end faces of the external windows, and the diameter of the access window of the maintenance processing box is larger than the diameter of the external window.
[0012] Preferably, piston push disks are vertically inserted and arranged in the receiving grooves, a plurality of spring guide rods are annularly arranged on one side surface of the piston push disk close to the access window, the plurality of spring guide rods respectively pass through one side of the receiving groove movably, and compression springs are respectively sleeved on one side of the spring guide rods located inside the receiving groove.
[0013] Preferably, self-rotation grooves are respectively opened on one side of the piston push disk close to the rotating housing, the two cleaning disks are respectively rotatably inserted into the self-rotation grooves of the two piston push disks, and when the external window is inserted into the access window, the piston push disk squeezes the compression spring to the maximum extent, and one side surface of the cleaning disk is in contact with the high lens piece.
[0014] Preferably, a docking insertion tube is vertically provided at the center of the upper end of the maintenance processing box. The upper end of the docking insertion tube penetrates through the lower cavity and is inserted into the upper cavity. An external air groove is opened at the lower end inside the servo moving support. An access air groove is provided at the center inside the docking insertion tube. The upper end of the docking insertion tube is inserted into the lower end of the servo moving support. The access air groove is communicated with the external air groove. Two control boxes are respectively horizontally arranged on both sides of the docking insertion tube placed inside the lower cavity. Two L-shaped toggle rods are respectively arranged corresponding to the two control boxes. A piston rod is horizontally provided on one side of the vertical section of the L-shaped toggle rod. A piston groove is opened inside the control box. The two piston grooves are respectively communicated with the access air groove. The piston rod is horizontally and movably inserted into the piston groove and is provided with a pushing piston. A return spring is sleeved on one side of the piston rod where it is located and on the side of the pushing piston.
[0015] Preferably, a plurality of first toggle teeth are symmetrically provided at the lower ends of the horizontal sections of the L-shaped toggle rods. A plurality of second toggle teeth are symmetrically provided on the outer peripheral side of the rotary housing close to the L-shaped toggle rods. The first toggle teeth are meshed and connected with the second toggle teeth. Support guide rods are horizontally provided on one side of the docking insertion tube close to the horizontal sections of the L-shaped toggle rods. The horizontal sections of the L-shaped toggle rods are movably sleeved on the support guide rods.
[0016] Preferably, a blowing air groove is opened inside the maintenance processing box. A synchronous shaft is horizontally provided at the center of one side of the cleaning disc located inside the self-rotating groove. The synchronous shaft penetrates through the piston pushing disc through a sealing bearing and is inserted into the blowing air groove. Toggle impellers are sleeved on the synchronous shaft located inside the blowing air groove. Transfer air grooves are opened at the lower ends of the sides of the piston grooves far from the access air groove and penetrate through the docking insertion tube and communicate with the upper ends of the blowing air grooves. A valve groove is vertically penetrated at the center of the lower end inside the blowing air groove. A discharge check valve is vertically inserted into the valve groove. The release pressure of the discharge check valve is greater than the elastic supporting force of the compression spring on the piston pushing disc.
[0017] Preferably, a blocking valve is provided at the lower end of one side of the servo moving support located inside the upper cavity. A blocking ball core is rotatably provided inside the blocking valve. A diversion groove is provided inside the servo moving support close to the side of the welding torch. One side of the external air groove penetrates through the blocking valve and is communicated with the diversion groove.
[0018] Preferably, a porous filter block is inserted into the collection transfer box. An external connection groove is opened at the upper end of one side of the collection transfer box. A plurality of flow air grooves are opened at the lower end of the collection transfer box and communicate with the diversion groove. Negative pressure suction holes are obliquely opened downward on one side of the flow air grooves close to the welding surface.
[0019] Compared with the prior art, the beneficial effects of the present invention are:
[0020] The welding positioning accuracy of the welding torch can be improved through the positioning detection box. Meanwhile, with the assistance of the maintenance processing component, automatic maintenance processing of the two rotating housing can be carried out, improving the convenience of operation and the stability of positioning. Additionally, with the assistance of the cooperation control component and the collection component, the operation is more worry-free, and at the same time, the welding fumes generated by the welding torch can be collected and processed in a timely manner, avoiding the pollution of the positioning detection box by welding fumes and affecting the environment. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 Schematic diagram of the three-dimensional structure of the present invention;
[0022] Figure 2 Schematic diagram of the side-sectional structure of the present invention;
[0023] Figure 3 For the present invention Figure 2 Schematic diagram of part A;
[0024] Figure 4 For the present invention Figure 3 Schematic diagram of part B;
[0025] Figure 5 For the present invention Figure 4 Schematic diagram of part C;
[0026] Figure 6 For the present invention Figure 3 Schematic diagram of part D;
[0027] Figure 7 For the present invention Figure 6 Schematic diagram of part E;
[0028] Figure 8 For the present invention Figure 2 Schematic diagram of part F;
[0029] Figure 9 Schematic diagram of the structure of the positioning detection box of the present invention;
[0030] Figure 10 Schematic diagram of the mating structure of the rotating housing of the present invention;
[0031] Figure 11 For the present invention Figure 10 Schematic diagram of part G;
[0032] Figure 12 Schematic diagram of the combined structure of the cleaning tray of the present invention.
[0033] In the figure: servo movable support 1, welding gun 2, positioning detection box 3, lower cavity 4, upper cavity 5, rotating cover 6, positioning detection module 7, external window 8, high lens sheet 9, maintenance processing box 10, storage groove 11, piston push plate 12, spring guide rod 13, contraction spring 14, cleaning plate 15, blowing air groove 16, synchronous shaft 17, toggle impeller 18, control box 19, L-shaped toggle rod 20, piston groove 21, piston rod 22, push piston 23, reset spring 24, docking tube 25, access air groove 26, external air groove 27, transfer air groove 28, first toggle tooth 29, second toggle tooth 30, support guide rod 31, blocking valve 32, blocking ball core 33, collection transfer box 34, porous filter block 35, flow air groove 36, negative pressure suction hole 37, discharge one-way valve 38, diverter groove 39. DETAILED DESCRIPTION
[0034] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0035] Please see attached Figure 1-12 , this application provides the following technical solutions.
[0036] Embodiment 1: A system window processing equipment with an auxiliary mechanism comprises a servo movable support 1, a welding gun 2 is arranged on one side of the servo movable support 1, a positioning detection box 3 is arranged at the lower end of the servo movable support 1, the servo movable support 1 is suspended and installed through a gantry, and the system window frame is horizontally placed under the servo movable support 1 of the empty gantry through a conveyor belt, and two auxiliary positioning components are rotatably arranged in the positioning detection box 3, and the auxiliary positioning components each comprise a rotating cover 6 and a positioning detection module 7, and an upper cavity 5 and a lower cavity 4 are respectively opened at the upper and lower ends of the positioning detection box 3, and two Two bearing mounting blocks are symmetrically provided on both sides, and the two rotating cover shells 6 are horizontally arranged on both sides of the lower cavity 4 through the bearing mounting blocks respectively. The positioning detection module 7 is placed in the rotating cover shell 6 and horizontally arranged between two adjacent bearing mounting blocks. The rotating cover shell 6 is provided with an external window 8 on the same side of the detection surface of the positioning detection module 7, and the end faces of the external window 8 are plugged with high lens sheets 9. The rotating cover shell 6 can rotate in the lower cavity 4 through the bearing mounting blocks. When the two positioning detection modules 7 are in use, the precise positioning of the welding position can be achieved through the cooperation of the visual detection positioning module and the laser positioning module.
[0037] A maintenance processing component is set to perform maintenance processing on the high - lens 9 of the rotating housing 6. The maintenance processing component is arranged between two rotating housings 6 in the positioning detection box 3. The maintenance processing component includes a maintenance processing box 10, two piston - pushing disks 12 and two cleaning disks 15. On both sides of the maintenance processing box 10 close to the rotating housing 6, storage grooves 11 are opened. Through the side of the maintenance processing box 10 close to the rotating housing 6 in the storage grooves 11, access windows are opened, and the diameter of the access window of the maintenance processing box 10 is larger than the diameter of the external window 8. In the storage grooves 11, piston - pushing disks 12 are vertically inserted. On one side of the piston - pushing disk 12 close to the access window, a number of spring guide rods 13 are arranged in a circular array. The number of spring guide rods 13 respectively pass through one side of the storage groove 11 movably, and on the side of the spring guide rods 13 located in the storage groove 11, compression springs 14 are sleeved. When it is necessary to clean the high - lens 9, the rotating housing 6 rotates, so that the external window 8 and the high - lens 9 rotate to the position of the access window of the maintenance processing box 10.
[0038] On one side of the piston - pushing disk 12 close to the rotating housing 6, self - rotating grooves are opened. Two cleaning disks 15 are respectively rotatably inserted into the self - rotating grooves of the two piston - pushing disks 12. And when the external window 8 is inserted into the access window, the piston - pushing disk 12 compresses the compression spring 14 to the maximum extent, and one side of the cleaning disk 15 is in contact with the high - lens 9. The cleaning disk 15 can process the surface of the high - lens 9.
[0039] A cooperation control component is set to actively control the rotary housing 6. The cooperation control component is arranged at the upper ends on both sides of the maintenance processing box 10. The cooperation control component includes two control boxes 19 and two L-shaped toggle rods 20. The two L-shaped toggle rods 20 are respectively arranged in cooperation with the two rotary housings 6. A docking insertion tube 25 is vertically arranged at the center of the upper end of the maintenance processing box 10. The upper end of the docking insertion tube 25 penetrates through the lower cavity 4 and is inserted into the upper cavity 5. An external air groove 27 is opened at the lower end inside the servo moving support 1. An access air groove 26 is arranged at the center inside the docking insertion tube 25. The upper end of the docking insertion tube 25 is inserted into the lower end of the servo moving support 1. The access air groove 26 is communicated with the external air groove 27. The two control boxes 19 are respectively horizontally arranged on both sides of the docking insertion tube 25 located inside the lower cavity 4. The two L-shaped toggle rods 20 are respectively arranged corresponding to the two control boxes 19. A piston rod 22 is horizontally arranged on one side of the vertical section of the L-shaped toggle rod 20. A piston groove 21 is opened inside the control box 19. The two piston grooves 21 are respectively communicated with the access air groove 26. The piston rod 22 is horizontally and movably inserted into the piston groove 21 and is provided with a pushing piston 23. A return spring 24 is sleeved on one side of the piston rod 22 where it is located at the pushing piston 23. A plurality of first toggle teeth 29 are symmetrically arranged at the lower ends of the horizontal sections of the L-shaped toggle rods 20. A plurality of second toggle teeth 30 are symmetrically arranged on the outer peripheral side of the rotary housing 6 close to the L-shaped toggle rod 20. The first toggle teeth 29 are meshed and connected with the second toggle teeth 30. Support guide rods 31 are horizontally arranged on one side of the horizontal section of the docking insertion tube 25 close to the L-shaped toggle rod 20. The horizontal sections of the L-shaped toggle rods 20 are movably sleeved on the support guide rods 31. When the docking insertion tube 25 is connected to the external air groove 27, the high-pressure gas in the external air groove 27 enters the two piston grooves 21 from the access air groove 26, and then pushes the L-shaped toggle rod 20 connected to the piston rod 22 to move. At this time, the L-shaped toggle rod 20 drives the rotary housing 6 engaged with the second toggle teeth 30 through the first toggle teeth 29 to rotate. Furthermore, the external window 8 of the rotary housing 6 corresponds to the cleaning disk 15.
[0040] A blowing air groove 16 is formed in the maintenance processing box 10. A synchronous shaft 17 is horizontally arranged at the center of one side of the cleaning disc 15 located in the self-rotation groove. The synchronous shaft 17 passes through the piston pushing disc 12 through a sealed bearing and is inserted into the blowing air groove 16. Stirring impellers 18 are sleeved on the synchronous shaft 17 located in the blowing air groove 16. Transfer air grooves 28 are formed at the lower ends of the sides of the piston groove 21 far away from the access air groove 26, and the upper ends of the transfer air grooves 28 penetrate through the docking insertion pipes 25 and communicate with the blowing air groove 16. A valve groove is formed through the center of the lower end of the blowing air groove 16, and a discharge check valve 38 is vertically inserted into the valve groove. The release pressure of the discharge check valve 38 is greater than the elastic supporting force of the compression spring 14 on the piston pushing disc 12. When the external window 8 corresponds to the cleaning disc 15, the pushing piston 23 just crosses the position of the transfer air groove 28, and the high-pressure gas in the piston groove 21 enters the blowing air groove 16 through the transfer air groove 28. At this time, the high-pressure gas in the blowing air groove 16 pushes the piston pushing discs 12 on both sides to respectively squeeze the compression spring 14 to move, and then the piston pushing disc 12 controls the cleaning disc 15 to contact the high-lens 9 of the rotating housing 6. When the piston pushing disc 12 cannot move and the gas pressure in the blowing air groove 16 continues to rise, the discharge check valve 38 is pushed to release. At this time, the high-pressure air flow is quickly discharged from the position of the discharge check valve 38, and the quickly flowing air blows the cleaning disc 15 connected to the stirring impeller 18 to rotate, so as to rotate and clean the high-lens 9 and improve the cleaning effect.
[0041] Embodiment 2: On the basis of Embodiment 1, a collection device is provided to collect and process the fumes generated during welding. The collection device is arranged on one side of the servo moving support 1 close to the welding torch 2. The collection device includes a support guide rod 31 and a collection adapter box 34. A blocking valve 32 is provided at the lower end of one side of the servo moving support 1 located in the upper cavity 5. A blocking ball core 33 is rotatably arranged in the blocking valve 32. A diversion groove 39 is arranged on one side of the servo moving support 1 close to the welding torch 2. One side of the external air groove 27 penetrates through the blocking valve 32 and is connected to the diversion groove 39. A porous filter block 35 is inserted in the collection adapter box 34. An external connection groove is opened at the upper end of one side of the collection adapter box 34. A plurality of flow air grooves 36 are opened at the lower end of the collection adapter box 34 communicating with the diversion groove 39. Negative pressure suction holes 37 are inclined downward on one side of the flow air grooves 36 close to the welding surface. During normal welding, the high-pressure gas introduced into the external air groove 27 is basically all sent into the diversion groove 39 through the connection of the blocking ball core 33, and then blown into the collection adapter box 34 upward through a plurality of flow air grooves 36. At this time, the high-speed passing high-pressure air flow will form a negative pressure at the position of the servo moving support 1 close to the negative pressure suction holes 37. At this time, the fumes generated by the welding of the welding torch 2 are, under the negative pressure action of a plurality of negative pressure suction holes 37, drawn into the flow air grooves 36 during the rising process, and then carried into the porous filter block 35 by the rising high-pressure air flow in the flow air grooves 36 for preliminary particle filtration treatment of the welding fumes. Since the servo moving support 1 is suspended and installed by a gantry, when it is not convenient to set up a fume treatment device, effective welding fume treatment can be carried out to improve the safety of the processing environment;
[0042] When the rotary housing 6 rotates and the cleaning disk 15 rotates during control, the blocking ball core 33 needs to block the negative pressure suction holes 37. At this time, the high-pressure air flow can only enter the access air groove 26 of the docking insertion tube 25 to complete different functional operations.
[0043] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirits of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A system window processing device with an auxiliary mechanism, characterized in that: include: A servo movable support (1), wherein a welding gun (2) is provided on one side of the servo movable support (1), a positioning detection box (3) is provided at the lower end of the servo movable support (1), two auxiliary positioning components are rotatably provided in the positioning detection box (3), and the auxiliary positioning components each include a rotating cover (6) and a positioning detection module (7); A maintenance processing component, the maintenance processing component is arranged between two rotating covers (6) in the positioning detection box (3), and the maintenance processing component comprises a maintenance processing box (10), two piston push disks (12) and two cleaning disks (15); A matching control assembly, the matching control assembly being arranged at the upper ends of both sides of the maintenance processing box (10), the matching control assembly comprising two control boxes (19) and two L-shaped toggle rods (20), and the two L-shaped toggle rods (20) are respectively matched with the two rotating cover shells (6); A collecting device is provided on a side of a servo movable support (1) close to a welding gun (2), and comprises a supporting guide rod (31) and a collecting adapter box (34).
2. The system window processing equipment with auxiliary mechanism according to claim 1, characterized in that: The upper and lower ends of the positioning detection box (3) are respectively provided with an upper cavity (5) and a lower cavity (4); two bearing mounting blocks are symmetrically arranged on both sides of the lower cavity (4); two rotating covers (6) are horizontally arranged on both sides of the lower cavity (4) through the bearing mounting blocks; and the positioning detection module (7) is placed in the rotating cover (6) and horizontally arranged between two adjacent bearing mounting blocks.
3. The system window processing equipment with auxiliary mechanism according to claim 2, characterized in that: The maintenance processing box (10) is provided with storage grooves (11) on both sides close to the rotating cover (6), and access windows are provided in the storage grooves (11) through the side of the maintenance processing box (10) close to the rotating cover (6). The rotating cover (6) is provided with an external window (8) on the same side as the detection surface of the positioning detection module (7), and the end surface of the external window (8) is plugged with a high lens sheet (9), and the diameter of the access window of the maintenance processing box (10) is larger than the diameter of the external window (8).
4. The system window processing equipment with auxiliary mechanism according to claim 3, characterized in that: A piston push disk (12) is vertically inserted in the receiving groove (11), and a plurality of spring guide rods (13) are provided in a circular array on a side of the piston push disk (12) close to the access window. The plurality of spring guide rods (13) are respectively movable and penetrate one side of the receiving groove (11), and a contraction spring (14) is sleeved on one side of the spring guide rods (13) located in the receiving groove (11).
5. The system window processing equipment with auxiliary mechanism according to claim 4, characterized in that: The piston push disk (12) is provided with a self-rotation groove on one side close to the rotating cover shell (6), and the two cleaning disks (15) are respectively rotated and inserted into the self-rotation grooves of the two piston push disks (12), and when the external window (8) is inserted into the access window, the piston push disk (12) squeezes the contraction spring (14) to the maximum extent of four, and one side of the cleaning disk (15) contacts the high lens sheet (9).
6. The system window processing equipment with auxiliary mechanism according to claim 5, characterized in that: A docking plug (25) is vertically provided at the center of the upper end of the maintenance processing box (10). The upper end of the docking plug (25) penetrates the lower cavity (4) and is plugged into the upper cavity (5). An external air groove (27) is provided at the lower end of the servo movable support (1). An access air groove (26) is provided at the center of the docking plug (25). The upper end of the docking plug (25) is plugged into the lower end of the servo movable support (1). The access air groove (26) is connected to the external air groove (27). Two control boxes (19) are horizontally arranged at the docking plug (25) and the lower end of the servo movable support (1). Two L-shaped toggle rods (20) are respectively arranged corresponding to the two control boxes (19) on both sides of the lower cavity (4); a piston rod (22) is horizontally arranged on one side of the vertical section of the L-shaped toggle rod (20); a piston groove (21) is provided in the control box (19); the two piston grooves (21) are respectively connected to the access air groove (26); the piston rod (22) is horizontally movably inserted into the piston groove (21) and is provided with a pushing piston (23); and a return spring (24) is sleeved on one side of the piston rod (22) located on the pushing piston (23).
7. The system window processing equipment with auxiliary mechanism according to claim 6, characterized in that: A plurality of first toggle teeth (29) are symmetrically arranged at the lower end of the horizontal section of the L-shaped toggle rod (20); a plurality of second toggle teeth (30) are symmetrically arranged on the outer peripheral side of the rotating cover (6) close to the L-shaped toggle rod (20); the first toggle teeth (29) are meshed and connected with the second toggle teeth (30); a support guide rod (31) is horizontally arranged on one side of the horizontal section of the docking tube (25) close to the L-shaped toggle rod (20); and the horizontal section of the L-shaped toggle rod (20) is movably sleeved with the support guide rod (31).
8. The system window processing equipment with auxiliary mechanism according to claim 7, characterized in that: The maintenance processing box (10) is provided with a blowing air groove (16), and a synchronous shaft (17) is horizontally provided at the center of one side of the cleaning disk (15) located in the self-rotating groove. The synchronous shaft (17) passes through the piston pushing disk (12) through a sealing bearing and is inserted into the blowing air groove (16). The synchronous shaft (17) is located in the blowing air groove (16) and is sleeved with a toggle impeller (18). The lower end of the piston groove (21) away from the access air groove (26) passes through a docking plug (25) and is connected to the upper end of the blowing air groove (16) to form a transfer air groove (28). A valve groove is penetrated at the center of the lower end of the blowing air groove (16), and a discharge check valve (38) is vertically inserted in the valve groove, and the release pressure of the discharge check valve (38) is greater than the elastic supporting force of the contraction spring (14) on the piston pushing disk (12).
9. The system window processing equipment with auxiliary mechanism according to claim 8, characterized in that: A blocking valve (32) is provided at the lower end of one side of the servo movable support (1) located in the upper cavity (5), a blocking ball core (33) is rotatably provided in the blocking valve (32), a diverter groove (39) is provided on a side of the servo movable support (1) close to the welding gun (2), and one side of the external gas groove (27) penetrates the blocking valve (32) and is connected to the diverter groove (39).
10. The system window processing equipment with auxiliary mechanism according to claim 9, characterized in that: A porous filter block (35) is inserted into the collecting adapter box (34), an external connection groove is provided at an upper end of one side of the collecting adapter box (34), a plurality of flow air grooves (36) are provided at a lower end of the collecting adapter box (34) connected to a diversion groove (39), and negative pressure suction holes (37) are provided in the flow air grooves (36) on one side close to the welding surface.
Citation Information
Patent Citations
Double-station skylight frame welding machine
CN222095061U
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