Machining system of automatic profile machining equipment

By designing a processing system for automatic profile processing equipment, the automatic transfer and cutting of profiles is achieved by using telescopic drive parts and push-pull drive parts, the problem of low loading efficiency of profiles in existing profile cutting equipment is solved and the cutting efficiency is improved.

CN120095354APending Publication Date: 2025-06-06GUANGDONG LIJIANG KECHUANG IND CO LTD
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Patent Information

Application Number
CN202510341938.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-21
Publication Date
2025-06-06

AI Technical Summary

Technical Problem

In existing profile cutting equipment, the profile loading efficiency is low, resulting in slower cutting efficiency.

Method used

A processing system for automatic profile processing equipment is designed, including transfer components, transfer components, cutting components and support components. Through the cooperation of the telescopic drive member and the push-pull drive member, automatic transfer, separation and cutting of the profile is achieved.

Benefits of technology

The efficiency of loading profiles is improved, the automatic cutting of profiles is realized, manual operation time is reduced, and the overall cutting efficiency is improved.

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Abstract

The invention relates to the technical field of profile automatic processing equipment, in particular to a processing system of profile automatic processing equipment, comprising: a transfer assembly which is obliquely arranged and is inclined downwards from an input end to an output end; the transferring assembly is arranged at the output end of the transferring assembly and comprises a pushing column, an abutting column and a telescopic driving part for driving the pushing column and the abutting column to move, the pushing column and the abutting column are sequentially arranged in the transferring direction of the transferring assembly, and the top face of the abutting column is higher than the top face of the pushing column; the cutting assembly is used for clamping, transferring and cutting the profile; and the supporting assembly is arranged between the transferring assembly and the cutting assembly, the supporting assembly comprises a guide wheel and a push-pull driving part for driving the guide wheel to move up and down, the guide wheel is used for supporting the sectional material, and the sectional material feeding efficiency can be improved.
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Description

Technical Field

[0001] The present application relates to the technical field of automatic profile processing equipment, and in particular to a processing system of automatic profile processing equipment. Background Art

[0002] Profiles are widely used in various fields. In profile production, long profiles need to be cut into multiple smaller sections to facilitate subsequent processing of the profile sections.

[0003] At present, profiles are often cut by laser tube cutting machines. Laser tube cutting machines are mechanical equipment that use laser technology to cut metal or non-metallic tubes. Laser tube cutting machines have the advantages of high precision, high efficiency, and contactless processing. They are suitable for cutting and processing various profiles, including round tubes, square tubes, oval tubes and other profiles of different shapes.

[0004] The laser cutting machine mainly includes a fixed chuck, a laser cutting head and a mobile chuck (or feeding chuck). The mobile chuck can push the profile to the laser cutting head, and the fixed chuck can clamp the pipe during the laser cutting process. The mobile chuck and the fixed chuck drive the pipe to rotate at the same time, so that the fixed laser cutting head can perform laser cutting on the pipe around the circle, thereby cutting the profile into multiple sections.

[0005] The profile is long, and workers are usually required to place one end of the profile into a mobile chuck for clamping. After that, the mobile chuck pushes the profile. However, manual placement takes a long time, resulting in a slow efficiency in cutting the profile into segments. Summary of the invention

[0006] In order to improve the efficiency of profile feeding, the present application provides a processing system of profile automatic processing equipment.

[0007] The present application provides a processing system for an automatic profile processing device, which adopts the following technical solution: A processing system of a profile automatic processing equipment, comprising: Transfer assembly: The transfer assembly is tilted, and the tilting direction of the transfer assembly is downward from the input end to the output end; Transfer assembly: The transfer assembly is arranged at the output end of the transfer assembly. The transfer assembly includes a push column and an abutment column, and a telescopic driving member for driving the push column and the abutment column to move. The push column and the abutment column are arranged in sequence along the transfer direction of the transfer assembly, and the top surface of the abutment column is higher than the top surface of the push column; Cutting assembly: The cutting assembly is used to clamp, transfer and cut profiles; Support assembly: The support assembly is arranged between the transfer assembly and the cutting assembly. The support assembly includes a guide wheel and a push-pull driving member that drives it to move up and down. The guide wheel is used to support the profile.

[0008] By adopting the above technical scheme, multiple profiles are placed on the top surface of the input end of the transfer assembly in sequence, the transfer assembly transfers the profile, and the telescopic driving member is started. The telescopic driving member pulls the pushing column and the abutting column to move toward one end of the profile until the top surface of the conveyor belt and the top surface of the pushing column are at the same horizontal plane close to one end of the abutting column. At this time, the top surface of the abutting column is higher than the top surface of the conveyor belt, so that the profile at the front end can pass through the top surface of the pushing column. Afterwards, when the outer wall of the profile at the front end abuts against the abutting column, the telescopic driving member is started, and the telescopic driving member pushes the pushing column and the abutting column to move synchronously with the conveyor belt until the top surface of the pushing column is higher than the top surface of the conveyor belt. At this time, the conveyor belt stops working, and the pushing column pushes the profile at the front end to move, and the pushing column pushes the profile at the front end to the output end of the transfer assembly, thereby separating the profile at the front end from multiple other profiles, and transporting the profile at the front end alone to the output end. The guide wheel is in a descending state, and then the telescopic driving component is started, which pushes the pushing column and the abutting column to move, thereby driving the profile between the pushing column and the moving column to move until the profile is located at the top of the guide wheel, and then the push-pull driving component is started, and the push-pull driving component drives the guide wheel to move upward, so that the guide wheel supports the top profile and drives it to move upward, and then the cutting assembly clamps one end of the profile and performs drilling and cutting.

[0009] The present application can sequentially transfer a plurality of profiles to the cutting assembly, after which the cutting assembly sequentially punches and cuts the profiles, thereby improving the efficiency of profile feeding.

[0010] Preferably, a support rod is provided on one side of the transfer component, and the support rod includes a support part. The support part is obliquely arranged on one side of the transfer component, and the inclination direction and angle of the support part are consistent with those of the transfer component. The transfer component supports the profile through the support part when transferring the profile.

[0011] By adopting the above technical solution, the inclination angle and direction of the support part are adapted to the inclination angle and direction of the conveyor belt, so that when the profile moves on the top surface of the conveyor belt, the support part can support the profile, making the movement of the profile more stable.

[0012] Preferably, the support rod also includes an adjustment part, which is fixed at the input end of the support part. The adjustment part is tilted, the tilt direction of the adjustment part is consistent with the tilt direction of the support part, and the tilt angle of the adjustment part is greater than the tilt angle of the support part.

[0013] By adopting the above technical solution, when the profile is placed on the top surface of the adjustment part, there is a gap between the bottom surface of the profile and the top surface of the conveyor belt. Under the action of the adjustment part, the adjustment time can be increased, and multiple profiles can be aligned and parallel. Compared with the situation where the profile is directly placed on the top surface of the conveyor belt and adjusted while being conveyed, the movement of the conveyor belt will affect the adjustment of the profile, causing panic when adjusting the profile.

[0014] Preferably, an aligning column is provided on the outer side of the transfer assembly, and one side of the plurality of profiles abuts against the side wall of the aligning column, and the aligning column is used to align the plurality of profiles.

[0015] By adopting the above technical solution, when the profile is placed on the top surface of the support rod, one side of the profile abuts against the side wall of the neat column, and one end of multiple profiles are aligned, so that the profile can be adjusted and limited, and the long side of the profile can be parallel to the long side of the mounting frame when the profile is placed on the support rod.

[0016] Preferably, a baffle is provided at the starting end of the transfer component, a lifting drive member is provided at the bottom of the baffle to drive the baffle to move up and down, and the long side of the baffle is perpendicular to the transfer direction of the profile.

[0017] By adopting the above technical solution, when the side wall of the profile at the front end abuts against the outer wall of the abutment column, the top of the baffle is aligned with the gap between the profile at the front end and another adjacent profile, and the lifting drive is started. The lifting drive drives the baffle to move upward, so that the top of the baffle passes through the gap between the two profiles, thereby blocking the other profiles except the front end. Afterwards, the conveyor belt transports the profile at the front end, thereby separating the profile at the front end from the other profiles. When the distance between multiple profiles is relatively close, the situation in which the profile at the front end and its adjacent profiles produce synchronous movement, making it difficult to separate them, can be reduced.

[0018] Preferably, the top of the baffle is a conical structure, and the width of the top surface of the baffle is smaller than the width of the bottom of the baffle.

[0019] By adopting the above technical solution, the width of the top surface of the baffle is smaller than the width of the bottom of the baffle, so that it can better enter between two profiles with a relatively close spacing. The wider bottom can provide better support for the baffle and reduce the situation where the baffle is bent in the process of resisting the profile.

[0020] Preferably, a guide groove is provided on the outer wall of the guide wheel, and the profile is located in the guide groove.

[0021] By adopting the above technical solution, the profile is located in the guide groove. When the profile is placed on the top of the guide wheel, the profile can be limited to reduce the situation where the profile slides off the guide wheel.

[0022] Preferably, it includes a mounting frame, the telescopic driving member is installed on one side of the mounting frame, the transmission component also includes a mounting seat, one side of the mounting seat is slidably connected to one side of the mounting frame, the output end of the telescopic driving member is assembled with one end of the mounting seat, and the pushing column and the abutment column are respectively arranged at the end of the mounting seat away from the telescopic driving member.

[0023] By adopting the above technical solution, the mounting seat is slidably connected to the mounting frame. Under the action of the mounting seat, the movement direction of the pushing column and the abutting column can be guided, so that the movement of the pushing column and the abutting column is more stable, and the shaking and instability caused by the movement of the pushing column and the moving column is reduced.

[0024] Preferably, it includes a frame, the cutting assembly is installed on the frame, the support assembly also includes a support seat, the side wall of the support seat is slidably connected to the side of the frame close to the transfer assembly, the support seat can be raised and lowered along the vertical direction of the frame, the output end of the push-pull drive member is assembled with the top of the support seat, and the guide wheel is installed on the top surface of the support seat.

[0025] By adopting the above technical solution, under the action of the support seat, the support seat can play a role in supporting the guide wheel, and at the same time, can also play a role in guiding the moving direction of the guide wheel.

[0026] Preferably, there are multiple support assemblies, and the multiple support assemblies are distributed along the long side direction of the frame.

[0027] By adopting the above technical solution, there are multiple supporting components, so that the profile can be better supported.

[0028] In summary, the present application includes at least one of the following beneficial technical effects: 1. Place multiple profiles on the top surface of the input end of the transfer component in sequence, the transfer component transfers the profiles, and starts the telescopic driving component. The telescopic driving component pulls the pushing column and the abutting column to move toward one end of the profile until the top surface of the conveyor belt and the top surface of the pushing column are at the same horizontal plane close to one end of the abutting column. At this time, the top surface of the abutting column is higher than the top surface of the conveyor belt, so that the profile at the front end can pass through the top surface of the pushing column. After that, when the outer wall of the profile at the front end abuts against the abutting column, start the telescopic driving component, and the telescopic driving component pushes the pushing column and the abutting column to move synchronously with the conveyor belt until the top surface of the pushing column is higher than the top surface of the conveyor belt. At this time, the conveyor belt stops working, and the pushing column pushes the profile at the front end to move. The pushing column pushes the profile at the front end to the output end of the transfer component, thereby separating the profile at the front end from multiple other profiles, and transporting the profile at the front end alone to the output end. The guide wheel is in a descending state, and then the telescopic driving component is started, which pushes the pushing column and the abutting column to move, thereby driving the profile between the pushing column and the moving column to move until the profile is located at the top of the guide wheel, and then the push-pull driving component is started, and the push-pull driving component drives the guide wheel to move upward, so that the guide wheel supports the top profile and drives it to move upward, and then the cutting assembly clamps one end of the profile and performs drilling and cutting.

[0029] The present application can sequentially transfer a plurality of profiles to the cutting assembly, after which the cutting assembly sequentially punches and cuts the profiles, thereby improving the efficiency of profile feeding.

[0030] 2. When the side wall of the frontmost profile abuts against the outer wall of the abutment column, the top of the baffle is aligned with the gap between the frontmost profile and another adjacent profile, and the lifting drive is started. The lifting drive drives the baffle to move upward so that the top of the baffle passes through the gap between the two profiles, thereby blocking the other profiles except the frontmost profile. Afterwards, the conveyor belt transports the frontmost profile, thereby separating the frontmost profile from the other profiles. When the distance between multiple profiles is relatively close, the synchronous movement of the frontmost profile and its adjacent profiles, which makes it difficult to separate them, can be reduced. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present application.

[0032] Figure 2 It is a schematic diagram of the local structure of an embodiment of the present application.

[0033] Figure 3 yes Figure 2 A is an enlarged view of the middle image.

[0034] Figure 4 It is a partial structural diagram of another state of an embodiment of the present application.

[0035] Figure 5 yes Figure 4 Enlarged view of B.

[0036] Figure 6 It is a schematic diagram of the local structure of the cutting component in the embodiment of the present application.

[0037] Explanation of the reference numerals in the accompanying drawings: 1. Mounting frame; 11. Support rod; 111. Adjustment part; 112. Support part; 12. Alignment column; 2. Conveyor belt; 3. Transfer assembly; 31. Telescopic cylinder; 32. Mounting seat; 33. Push column; 34. Abutment column; 35. Placement rod; 36. Guide rail; 37. Mounting plate; 4. Resistance assembly; 41. Lifting cylinder; 42. Baffle; 5. Frame; 6. Cutting assembly; 61. Moving chuck; 62. Fixed chuck; 63. Laser cutting part; 7. Support assembly; 71. Support seat; 72. Guide wheel; 73. Push-pull cylinder; 8. Profile. DETAILED DESCRIPTION

[0038] The following is combined with Figure 1-6 This application is described in further detail.

[0039] The embodiment of the present application discloses a processing system of an automatic profile processing device.

[0040] Reference Figure 1 A processing system of an automatic processing equipment for profiles includes a mounting frame 1, one end of the mounting frame 1 is an input end, and the other end of the mounting frame 1 is an output end. A transfer assembly is arranged on the mounting frame 1. In the embodiment of the present application, the transfer assembly includes a conveyor belt 2, which is arranged at one end of the mounting frame 1. The transfer direction of the conveyor belt 2 is from the input end to the output end. The number of conveyor belts 2 depends on the specific situation. In the embodiment of the present application, there are two groups of conveyor belts 2, and the two groups of conveyor belts 2 are arranged relatively parallel. The two groups of conveyor belts 2 are distributed at both ends of the mounting frame 1, and multiple profiles 8 are placed in sequence on the top surface of the input end of the conveyor belt 2, and the two ends of the profile 8 are respectively placed on the top surface of the conveyor belt 2 close to it, and the conveyor belt 2 can transfer the profile 8 from the input end to the output end.

[0041] Reference Figure 2 and Figure 3A transmission component 3 is provided on one side of the output end of the mounting frame 1. There are two transmission components 3. The two transmission components 3 are respectively located on one side of the conveyor belt 2 close to it. The transmission component 3 includes a telescopic driving member, a mounting seat 32, a pushing column 33 and an abutting column 34. In the embodiment of the present application, the telescopic driving member is a telescopic cylinder 31. The telescopic cylinder 31 is installed on one side of the mounting frame 1. A guide rail 36 is fixed on the side of the mounting frame 1 close to the telescopic cylinder 31. The extension direction of the guide rail 36 is consistent with the transfer direction of the profile 8. The guide rail 36 is horizontally arranged. One side of the mounting seat 32 is The guide rail 36 is slidably connected, and the output end of the telescopic cylinder 31 is assembled with one end of the mounting seat 32. A mounting plate 37 is fixed to the bottom of the mounting seat 32 away from the telescopic cylinder 31. The pushing column 33 and the abutting column 34 are respectively fixed at the two ends of the top surface of the mounting plate 37. The abutting column 34 is located at the end of the mounting plate 37 away from the telescopic cylinder 31. The top surface of the abutting column 34 is higher than the top surface of the pushing column 33. When the telescopic cylinder 31 is started, the telescopic cylinder 31 drives the mounting seat 32 to move along the long side direction of the guide rail 36, and the mounting seat 32 drives the pushing column 33 and the abutting column 34 to move.

[0042] Reference Figure 4 and Figure 5 The conveyor belt 2 is tilted, and the conveyor belt 2 is tilted downward from the input end to the output end. The profile 8 is transported from the input end of the conveyor belt 2. The telescopic cylinder 31 is started, and the telescopic cylinder 31 pulls the push column 33 and the abutment column 34 to move toward one end of the profile 8 until the top surface of the conveyor belt 2 and the top surface of the push column 33 are at the same horizontal plane near the end of the abutment column 34. At this time, it is the starting end of the transmission component 3, and the top surface of the abutment column 34 is higher than the top surface of the conveyor belt 2, so that the profile 8 at the front end can pass through the top surface of the push column 33. Afterwards, when the outer wall of the profile 8 at the front end abuts against the abutment column 34, the telescopic cylinder 31 is started, and the telescopic cylinder 31 pushes the pushing column 33 and the abutment column 34 to move synchronously with the conveyor belt 2 until the top surface of the pushing column 33 is higher than the top surface of the conveyor belt 2. At this time, the conveyor belt 2 stops working, and the pushing column 33 pushes the profile 8 at the front end to move. The pushing column 33 pushes the profile 8 at the front end to the output end of the mounting frame 1, thereby separating the profile 8 at the front end from multiple other profiles 8, and transporting the profile 8 at the front end alone to the output end.

[0043] A placing rod 35 is fixed between the pushing column 33 and the abutting column 34. When the pushing column 33 and the abutting column 34 transport the profile 8 to the output end, the top surface of the placing rod 35 is higher than the top surface of the conveyor belt 2. At this time, the two ends of the profile 8 are respectively placed on the top surfaces of the placing rod 35 close to them, and the two placing rods 35 support the profile 8.

[0044] A support rod 11 is fixed to the top surface of the mounting frame 1. The support rod 11 is arranged along the moving direction of the profile 8. The number of the support rods 11 depends on the specific situation. In the embodiment of the present application, there are two support rods 11. The two support rods 11 are relatively parallel and located between the two conveyor belts 2. The support rod 11 includes an adjustment portion 111 and a support portion 112. The adjustment portion 111 is fixed at the input end of the mounting frame 1, and the support portion 112 is fixed at the output end of the adjustment portion 111. The support portion 112 is tilted. The tilt angle and direction of the support portion 112 are adapted to the tilt angle and direction of the conveyor belt 2, so that when the profile 8 moves on the top surface of the conveyor belt 2, the support portion 112 can support the profile 8, so that the movement of the profile 8 is more stable.

[0045] Correspondingly, the adjusting portion 111 is also inclined, and the inclination direction of the adjusting portion 111 is consistent with the inclination direction of the supporting portion 112. The inclination angle of the adjusting portion 111 is greater than the inclination angle of the supporting portion 112, so that the height of the top surface of the adjusting portion 111 on the same horizontal plane is higher than the height of the top surface of the conveyor belt 2. When the profile 8 is placed on the top surface of the adjusting portion 111, there is a gap between the bottom surface of the profile 8 and the top surface of the conveyor belt 2. An aligning column 12 is fixed to one end of the mounting frame 1. The shape of the aligning column 12 is consistent with the shape of the support rod 11. On the same horizontal plane, the top surface of the aligning column 12 is higher than the top surface of the support rod 11, so that when the profile 8 is placed on the top surface of the support rod 11, one side of the profile 8 abuts against the side wall of the aligning column 12, and one end of multiple profiles 8 are aligned, so that the profile 8 can be adjusted and limited, and the long side of the profile 8 can be parallel to the long side of the mounting frame 1 when the profile 8 is placed on the support rod 11.

[0046] First, place the profile 8 on the top surface of the adjustment part 111, and then, abut one side of the profile 8 against the side wall of the alignment column 12. After the profile 8 is adjusted, the profile 8 slides downward along the top surface of the adjustment part 111 to the top surface of the support part 112, and the profile 8 is then transmitted through the conveyor belt 2. Under the action of the adjustment part 111, the adjustment time can be increased. Compared with the situation where the profile is directly placed on the top surface of the conveyor belt 2 and adjusted while being conveyed, the movement of the conveyor belt 2 will affect the adjustment of the profile 8, causing panic when adjusting the profile 8.

[0047] Reference Figure 4 and Figure 5A resisting assembly 4 is installed on the mounting frame 1, and the resisting assembly 4 is located between the two support rods 11. The resisting assembly 4 includes a lifting drive member and a baffle 42. In the embodiment of the present application, the lifting drive member is a lifting cylinder 41, and the lifting cylinder 41 is installed on the bottom surface of the mounting frame 1. The output end of the lifting cylinder 41 is assembled with one side of the middle part of the baffle 42, and the two ends of the baffle 42 are respectively slidably connected with the side walls of the mounting frame 1 close thereto. When the side wall of the frontmost profile 8 abuts against the outer wall of the abutting column 34, the top of the baffle 42 is aligned with the gap between the frontmost profile 8 and another adjacent profile 8.

[0048] Start the lifting cylinder 41, which drives the baffle 42 to move upward, so that the top of the baffle 42 passes through the gap between the two profiles 8, thereby blocking the other profiles 8 except the front end. Afterwards, the conveyor belt 2 transports the front end profile 8, thereby separating the front end profile 8 from the other profiles 8. When the distance between multiple profiles 8 is relatively close, the synchronous movement of the front end profile 8 and its adjacent profiles 8, which makes it difficult to separate them, can be reduced.

[0049] Therefore, the abutment column 34 can abut the frontmost profile 8, so that the frontmost profile 8 is located between the pushing column 33 and the abutment column 34. At the same time, it can also play a positioning role, so that the top of the baffle 42 can be aligned with the gap between the frontmost profile 8 and another adjacent profile 8, which is convenient for separating the frontmost profile 8 from other profiles 8, so that the pushing column 33 and the abutment column 34 can transport the profiles 8 in turn.

[0050] The top of the baffle 42 is a conical structure, and the width of the top surface of the baffle 42 is smaller than the width of the bottom of the baffle 42, so that it can better enter between two profiles 8 with a relatively close spacing. The wider bottom can provide better support for the baffle 42 and reduce the situation where the baffle 42 is bent in the process of resisting the profile 8.

[0051] The present application sets the conveyor belt 2 at an angle, and utilizes the inclined feature of the conveyor belt 2. As the pushing column 33 and the abutting column 34 move along the conveying direction of the conveyor belt 2, a height difference is formed. Through the height difference between the pushing column 33 and the conveyor belt 2 and the cooperation of the baffle 42, multiple profiles 8 that are closely connected to each other on the conveyor belt 2 can be separated one by one. The pushing column 33 and the abutting column 34 transport the multiple profiles 8 to the output end of the conveyor belt 2 one by one, which is convenient for the subsequent cutting of the profiles 8 one by one. In comparison, when the operator places multiple profiles 8 on the top surface of the conveyor belt 2, the operator places two adjacent profiles 8 at a certain distance, which will waste more time. The present application can reduce the time it takes to place the profiles 8 on the top surface of the conveyor belt 2, and does not require the operator to place them one by one with a certain distance, thereby saving time.

[0052] Reference Figure 1 and Figure 6 A frame 5 is provided at the output end of the mounting frame 1, and the long side of the frame 5 is parallel to the long side of the mounting frame 1. A cutting assembly 6 is provided on the frame 5, and the cutting assembly 6 includes a movable chuck 61, a fixed chuck 62 and a laser cutting component 63. The movable chuck 61 is slidably connected to one end of the frame 5, and a linear module is installed on the top surface of the frame 5. The bottom end of the movable chuck 61 is assembled with the output end of the linear module, so that the movable chuck 61 can move along the long side direction of the frame 5. Correspondingly, the fixed chuck 62 is connected to the other end of the frame 5, and the laser cutting component 63 is arranged at the top of the frame 5 away from the movable chuck 61, and the output end of the laser cutting component 63 faces downward.

[0053] The movable chuck 61 clamps one end of the profile 8, and then the movable chuck 61 moves toward one end of the fixed chuck 62, so that the other end of the profile 8 passes through the fixed chuck 62. After the profile 8 extends out of the fixed chuck 62 by a corresponding length, the fixed chuck 62 clamps the profile 8 to stabilize the profile 8, and the output end of the laser cutting component 63 punches holes in the profile 8. After punching the holes, the fixed chuck 62 releases the profile 8, and the movable chuck 61 drives the profile 8 to continue moving. After moving a corresponding distance, the fixed chuck 62 clamps the profile 8, and the laser cutting component 63 punches the next hole, and the cycle is repeated in sequence. After a section of the holes in the profile 8 is completed, the fixed chuck 62 clamps the profile 8. Then, the movable chuck 61 and the fixed chuck 62 rotate the profile 8, so that the output end of the laser cutting component 63 cuts the profile 8 for one circle, thereby completing the punching and cutting of the profile 8 section, and then, the punching and cutting of the next section of the profile 8 are performed in the same steps.

[0054] Reference Figure 2 and Figure 3 The support assembly 7 is provided on the side of the frame 5 close to the mounting frame 1. The support assembly 7 is located between the movable chuck 61 and the fixed chuck 62. The support assembly 7 includes a support seat 71, a guide wheel 72 and a push-pull driving member. In the embodiment of the present application, the push-pull driving member is a push-pull cylinder 73. The push-pull cylinder 73 is installed on the side of the frame 5 close to the mounting frame 1. The side wall of the support seat 71 is slidably connected to the side of the frame 5 close to the mounting frame 1. The support seat 71 can be lifted and lowered along the vertical direction of the frame 5. The output end of the push-pull cylinder 73 is assembled with the top of the support seat 71, and the guide wheel 72 is installed on the top surface of the support seat 71. The outer wall of the guide wheel 72 is provided with a guide groove, and the guide groove corresponds to the center of the movable chuck 61, so that when the movable chuck 61 clamps the profile 8, the profile 8 can be placed on the outer wall of the guide wheel 72, and the profile 8 is located in the guide groove, thereby supporting the profile 8 and reducing the situation where the profile 8 is too long and unstable.

[0055] There are multiple support assemblies 7, and the multiple support assemblies 7 are evenly distributed along the long side of the frame 5. When the push-pull cylinder 73 is in an extended state, the guide wheel 72 supports the profile 8. When the mobile chuck 61 moves to one side of the guide wheel 72, the push-pull cylinder 73 is started, and the push-pull cylinder 73 drives the support seat 71 to move downward, thereby driving the guide wheel 72 to descend, thereby reducing the influence of the guide wheel 72 on the movement of the mobile chuck 61.

[0056] When all guide wheels 72 are lowered, the top surface of guide wheel 72 is lower than the top surface of placing rod 35, then, telescopic cylinder 31 is started, and telescopic cylinder 31 pushes pushing column 33 and abutting column 34 to move, thereby driving profile 8 between pushing column 33 and moving column to move until profile 8 is located at the top of guide groove, at this time, profile 8 clamped by moving chuck 61 completes punching and cutting, then, moving chuck 61 moves along the end away from fixed chuck 62 until moving chuck 61 returns to its original position, and then starting push-pull cylinder 73, pushing-pull cylinder 73 drives support seat 71 to move upward, so that multiple guide wheels 72 support and drive the top profile 8 to move upward, when moving chuck 61 moves toward fixed chuck 62 again, after one end of profile 8 extends into moving chuck 61, moving chuck 61 clamps one end of profile 8, then, moving chuck 61 clamps profile 8 for punching and cutting.

[0057] The above are all preferred embodiments of the present application. The embodiments are only explanations of the present application and are not intended to limit the protection scope of the present application. Therefore, all equivalent changes made based on the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A processing system for automatic profile processing equipment, characterized in that: include: Transfer assembly: The transfer assembly is tilted, and the tilting direction of the transfer assembly is downward from the input end to the output end; Transmission assembly (3): The transmission assembly (3) is arranged at the output end of the transfer assembly, and the transmission assembly (3) comprises a push column (33) and an abutment column (34), and a telescopic driving member driving the push column (33) and the abutment column (34) to move, the push column (33) and the abutment column (34) are arranged in sequence along the transfer direction of the transfer assembly, and the top surface of the abutment column (34) is higher than the top surface of the push column (33); Cutting assembly (6): the cutting assembly (6) is arranged at the output end of the transmission assembly (3), and the cutting assembly (6) is used to clamp, transfer and cut the profile (8); Support assembly (7): The support assembly (7) is arranged between the transfer assembly and the cutting assembly (6). The support assembly (7) includes a guide wheel (72) and a push-pull driving member for driving the guide wheel (72) to move up and down. The guide wheel (72) is used to support the profile (8).

2. The processing system of the profile automatic processing equipment according to claim 1, characterized in that: A support rod (11) is arranged on one side of the transfer assembly. The support rod (11) includes a support portion (112). The support portion (112) is arranged obliquely on one side of the transfer assembly. The inclination direction and angle of the support portion (112) are consistent with those of the transfer assembly. When the transfer assembly transfers the profile (8), it is supported by the support portion (112).

3. The processing system of the profile automatic processing equipment according to claim 2, characterized in that: The support rod (11) also includes an adjustment portion (111), the adjustment portion (111) is fixed at the input end of the support portion (112), the adjustment portion (111) is arranged to be tilted, the tilting direction of the adjustment portion (111) is consistent with the tilting direction of the support portion (112), and the tilting angle of the adjustment portion (111) is greater than the tilting angle of the support portion (112).

4. The processing system of the profile automatic processing equipment according to claim 1, characterized in that: An aligning column (12) is arranged on the outer side of the transfer assembly, one side of the plurality of profiles (8) is in contact with the side wall of the aligning column (12), and the aligning column (12) is used to align the plurality of profiles (8).

5. The processing system of the profile automatic processing equipment according to claim 1, characterized in that: A baffle (42) is arranged at the starting end of the transfer component (3), and a lifting driving member for driving the baffle (42) to move up and down is arranged at the bottom of the baffle (42), and the long side of the baffle (42) is perpendicular to the transfer direction of the profile (8).

6. The processing system of the profile automatic processing equipment according to claim 5, characterized in that: The top of the baffle (42) is a conical structure, and the width of the top surface of the baffle (42) is smaller than the width of the bottom of the baffle (42).

7. The processing system of the profile automatic processing equipment according to claim 1, characterized in that: The outer wall of the guide wheel (72) is provided with a guide groove, and the profile (8) is located in the guide groove.

8. The processing system of the profile automatic processing equipment according to claim 1, characterized in that: The invention comprises a mounting frame (1), a telescopic driving member is mounted on one side of the mounting frame (1), a transmission component (3) further comprises a mounting seat (32), one side of the mounting seat (32) is slidably connected to one side of the mounting frame (1), an output end of the telescopic driving member is assembled with one end of the mounting seat (32), and a pushing column (33) and an abutting column (34) are respectively arranged at one end of the mounting seat (32) away from the telescopic driving member.

9. The processing system of the profile automatic processing equipment according to claim 1, characterized in that: The invention comprises a frame (5), a cutting assembly (6) is mounted on the frame (5), a supporting assembly (7) further comprises a supporting seat (71), a side wall of the supporting seat (71) is slidably connected to a side of the frame (5) close to the transfer assembly, the supporting seat (71) can be lifted and lowered along the vertical direction of the frame (5), an output end of a push-pull driving member is assembled with the top of the supporting seat (71), and a guide wheel (72) is mounted on the top surface of the supporting seat (71).

10. The processing system of the profile automatic processing equipment according to claim 1, characterized in that: There are multiple support assemblies (7), and the multiple support assemblies (7) are distributed along the long side direction of the frame (5).