Turnover equipment for aluminum alloy profile machining
By introducing an adjustable spacing structure and a clamping structure into the aluminum alloy profile processing and turning equipment, the problems of easy damage to electric drive components and frequent replacement of grippers have been solved, achieving stable clamping of different types of aluminum alloy profiles and stable operation of the device.
Patent Information
- Application Number
- CN202423042216.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-12-10
AI Technical Summary
In existing aluminum alloy profile processing and turning devices, the electric drive components are prone to damage, and the grippers need to be frequently replaced to adapt to different types of aluminum alloy profiles, resulting in inconvenience in use.
A flipping device comprising an adjustable spacing structure and a clamping structure is designed. The distance of the clamping structure is adjusted by a drive motor and a transmission structure to accommodate aluminum alloy profiles of different lengths. Stable clamping is achieved by using the connecting rod and spring seat in the clamping structure, reducing electric drive failures.
This improves the device's applicability and interoperability, reduces electric drive failures, and ensures smooth operation and stable clamping.
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Figure CN223591779U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to aluminum alloy section bar processing technical field, concretely is a kind of overturning equipment for aluminum alloy section bar processing. BACKGROUND
[0002] Aluminum alloy section bar has been widely used in aviation, aerospace, automobile, machinery manufacturing, ship, building, decoration and chemical industry, with the rapid development of science and technology and industrial economy in recent years, the demand for aluminum alloy welded structural member is increasing, so that the weldability of aluminum alloy is also in-depth, the wide application of aluminum alloy promotes the development of aluminum alloy welding technology, and the development of welding technology also expands the application field of aluminum alloy;
[0003] The existing overturning device for aluminum alloy section bar processing is mostly electrically driven, and then the aluminum alloy section bar is grabbed, but in the long-term use, the driving element of electric drive can be damaged, affecting the use of device, and the model of aluminum alloy section bar is not fixed in aluminum alloy section bar processing, so different clamping jaws need to be replaced when grabbing, resulting in that the device is not very convenient to use. UTILITY MODEL CONTENT
[0004] The utility model provides a kind of overturning equipment for aluminum alloy section bar processing to solve the above-mentioned problems.
[0005] To achieve the above object, the utility model provides the following technical scheme:
[0006] A kind of overturning equipment for aluminum alloy section bar processing, including connecting base, the end face of the connecting base is connected with fixed support, the side wall of the fixed support is connected with overturning motor by connecting seat, the driving end of the overturning motor is connected with driving rod by shaft coupling, the other end of the driving rod is connected with driven bevel gear by driving bevel gear meshing, the center of the driven bevel gear is connected with rotating rod, the other end of the rotating rod is connected with interval adjustable structure, the interval adjustable structure is connected with clamping structure, the end face of the connecting base and located the both sides of fixed support symmetry is connected with conveyor, the side wall of the connecting base is connected with controller;
[0007] The adjustable spacing structure comprises a fixed shell connected to one end of a rotating rod, a driving motor connected to the side wall of the fixed shell through a connecting seat, a driving rotating rod connected to the driving end of the driving motor through a shaft coupling, a transmission bevel gear connected to the other end of the driving rotating rod through meshing engagement of a rotating bevel gear, a rotating rotating rod connected to the center of the transmission bevel gear, a rotating gear connected to the side wall of the rotating rotating rod, a moving rack symmetrically connected to the side wall of the rotating gear, a fixed slide rail connected to the side wall of the moving rack, the fixed slide rail being connected to the side wall of the inner cavity of the fixed shell through a connecting plate, and an engaging connecting rod connected to one end of the moving rack.
[0008] As a preferred scheme of the utility model, the clamping structure comprises a fixed connecting seat connected to one end of the engaging connecting rod, a fixed connecting plate connected to the side wall of the fixed connecting seat, a rotating connecting rod symmetrically connected to the side wall of the fixed connecting plate, a clamping roller connected to the other end of the rotating connecting rod, a connecting connecting rod connected to the side wall of the rotating connecting rod, a moving connecting plate connected to the other end of the connecting connecting rod, and a spring seat connected between the fixed connecting plate and the moving connecting plate.
[0009] As a preferred scheme of the utility model, the turnover motor is connected with the controller through wires and the connection mode is electrical connection, the driving rod is connected to the side wall of the fixed support through a bearing seat, and the connection mode of the driving rod and the bearing seat is rotary connection.
[0010] As a preferred scheme of the utility model, the rotating rod is connected to the side wall of the fixed support through a bearing seat, the connection mode of the rotating rod and the bearing seat is rotary connection, and the conveyor is connected with the controller through wires and the connection mode is electrical connection.
[0011] As a preferred scheme of the utility model, the driving motor is connected with the controller through wires and the connection mode is electrical connection, the driving rotating rod is connected to the side wall of the fixed shell through a bearing seat, and the connection mode of the driving rotating rod and the bearing seat is rotary connection.
[0012] As a preferred scheme of the utility model, the rotating rotating rod is connected to the side wall of the fixed shell through a bearing seat, the connection mode of the rotating rotating rod and the bearing seat is rotary connection, and a sliding groove is formed in the fixed slide rail and corresponds to the moving rack, and the connection mode of the moving rack and the sliding groove is sliding connection.
[0013] As a preferred scheme of the utility model, the fixed connecting plate and the rotating connecting rod are rotatably connected through a rotating shaft, and the rotating connecting rod and the clamping roller are rotatably connected through a rotating shaft.
[0014] The rotating connecting rod and the connecting rod are connected through a rotating shaft, and the connecting rod and the moving plate are connected through a rotating shaft.
[0015] In the utility model, the distance adjustable structure is arranged in the turnover equipment for aluminum alloy profile machining, the distance between the two sets of clamping structures is adjusted through the transmission structure of the driving motor in the distance adjustable structure, the device can clamp aluminum alloy profiles with different lengths, and the use range of the device is wider.
[0016] In the utility model, the clamping structure is arranged in the turnover equipment for aluminum alloy profile machining, the fixed plate, the rotating connecting rod, the clamping roller, the connecting rod, the moving plate, the spring seat and the mutual action between the parts in the clamping structure are utilized, the two sets of clamping structures are driven to move in the opposite direction through the driving motor in the distance adjustable structure, the aluminum alloy profile is clamped quickly when the clamping structure is extruded with the two ends of the aluminum alloy profile, the linkage of the device is improved, the failure caused by electric drive can be reduced, and the smooth operation of the device can be maintained. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 It is a part structure schematic view of the utility model;
[0018] Figure 2 It is a part structure schematic view of the utility model Figure 1 ;
[0019] Figure 3 It is a structure schematic view of the distance adjustable structure of the utility model;
[0020] Figure 4 It is an internal structure schematic view of the utility model Figure 3 ;
[0021] Figure 5 It is a structure schematic view of the clamping structure of the utility model;
[0022] Figure 6 It is a part structure schematic view of the utility model Figure 5 .
[0023] In the figure: 1, connecting base; 2, fixed support; 3, overturning motor; 4, drive rod; 5, drive bevel gear; 6, driven bevel gear; 7, rotating rod; 8, spacing adjustable structure; 9, clamping structure; 10, conveyor; 11, controller; 801, fixed housing; 802, drive motor; 803, drive rotating rod; 804, rotating bevel gear; 805, transmission bevel gear; 806, rotating rotating rod; 807, rotating gear; 808, moving rack; 809, fixed slide rail; 810, link rod; 901, fixed connecting seat; 902, fixed connecting plate; 903, rotating connecting rod; 904, clamping roller; 905, connecting rod; 906, moving connecting plate; 907, spring seat. DETAILED DESCRIPTION
[0024] The technical scheme in the embodiments of the present application will be described clearly and completely below in conjunction with the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0025] Embodiment, please refer to Figures 1-6 The present application provides a technical scheme:
[0026] A kind of overturning equipment for aluminum alloy profile processing, including connecting base 1, the end surface of connecting base 1 is connected with fixed support 2, fixed support 2 is connected with overturning motor 3 on the side wall of fixed support 2 by connecting seat, the drive end of overturning motor 3 is connected with drive rod 4 by shaft coupling, the other end of drive rod 4 is connected with driven bevel gear 6 by drive bevel gear 5 meshing, rotating rod 7 is connected at the center of driven bevel gear 6, the other end of rotating rod 7 is connected with spacing adjustable structure 8, clamping structure 9 is connected on spacing adjustable structure 8, conveyor 10 is connected on the end surface of connecting base 1 and is located on the both sides of fixed support 2 symmetry, controller 11 is connected on the side wall of connecting base 1.
[0027] Overturning motor 3 is connected with controller 11 by wire and the connection mode is electrically connected, conveyor 10 is connected with controller 11 by wire and the connection mode is electrically connected, the operation of overturning motor 3 and conveyor 10 can be controlled by controller 11;Drive rod 4 is connected on the side wall of fixed support 2 by bearing seat, wherein the connection mode of drive rod 4 and bearing seat is rotary connection, rotating rod 7 is connected on the side wall of fixed support 2 by bearing seat, wherein the connection mode of rotating rod 7 and bearing seat is rotary connection, through the mutual action between each component in the device, the device can run smoothly when in use.
[0028] In this embodiment, reference is made toFigure 1 、 Figure 2 、 Figure 3 and Figure 4 The spacing adjustable structure 8 comprises a fixed shell 801 connected to one end of the rotating rod 7, a driving motor 802 connected to the side wall of the fixed shell 801 through a connecting seat, a driving rotating rod 803 connected to the driving end of the driving motor 802 through a shaft coupling, a transmission bevel gear 805 engaged with the other end of the driving rotating rod 803 through a rotating bevel gear 804, a rotating rotating rod 806 connected to the center of the transmission bevel gear 805, a rotating gear 807 connected to the side wall of the rotating rotating rod 806, a moving rack 808 symmetrically connected to the side wall of the rotating gear 807, a fixed sliding rail 809 connected to the side wall of the inner cavity of the fixed shell 801 through a connecting plate, and a connecting link 810 connected to one end of the moving rack 808.
[0029] Based on the above structure and the connection relationship under the condition of the above structure, the driving motor 802 is controlled by the controller 11, and when the driving end of the driving motor 802 rotates, the driving rotating rod 803, the rotating bevel gear 804, the transmission bevel gear 805, the rotating rotating rod 806 and the rotating gear 807 are sequentially driven to rotate. When the rotating gear 807 rotates, the two groups of moving racks 808 and the connecting link 810 are driven to move in opposite directions, and in turn the two groups of clamping structures 9 are driven to move in opposite directions.
[0030] The driving motor 802 is connected to the controller 11 by wires and is electrically connected, and the operation of the driving motor 802 can be controlled by the controller 11; the driving rotating rod 803 is connected to the side wall of the fixed shell 801 through a bearing seat, wherein the connection between the driving rotating rod 803 and the bearing seat is a rotating connection, the rotating rotating rod 806 is connected to the side wall of the fixed shell 801 through a bearing seat, wherein the connection between the rotating rotating rod 806 and the bearing seat is a rotating connection, and the fixed sliding rail 809 is provided with a sliding groove corresponding to the moving rack 808, wherein the connection between the moving rack 808 and the sliding groove is a sliding connection. Through the mutual action between each part in the spacing adjustable structure 8, the spacing adjustable structure 8 can run smoothly when in use.
[0031] In this embodiment, reference is made to Figure 1 、 Figure 2 、 Figure 5 and Figure 6The clamping structure 9 comprises a fixed connecting seat 901 connected to one end of the connecting rod 810, a fixed connecting plate 902 connected to the side wall of the fixed connecting seat 901, a rotating connecting rod 903 symmetrically connected to the side wall of the fixed connecting plate 902, a clamping roller 904 connected to the other end of the rotating connecting rod 903, a connecting connecting rod 905 connected to the side wall of the rotating connecting rod 903, a moving connecting plate 906 connected to the other end of the connecting connecting rod 905, and a spring seat 907 connected between the fixed connecting plate 902 and the moving connecting plate 906.
[0032] Under the condition of the above structure and the connection relationship of the above structure, the two groups of clamping structures 9 are driven to move in opposite directions by the spacing adjustable structure 8. When the moving connecting plate 906 on the clamping structure 9 contacts the two ends of the aluminum alloy profile, the moving connecting plate 906 on the two groups of clamping structures 9 moves in opposite directions when the two groups of clamping structures 9 continue to move in opposite directions. In turn, the connecting connecting rod 905, the rotating connecting rod 903 and the clamping roller 904 are rotated towards the upper and lower end faces of the aluminum alloy profile, so that the aluminum alloy profile is clamped by the clamping roller 904.
[0033] The fixed connecting plate 902 and the rotating connecting rod 903 are connected by a rotating shaft, the rotating connecting rod 903 and the clamping roller 904 are connected by a rotating shaft, the rotating connecting rod 903 and the connecting connecting rod 905 are connected by a rotating shaft, and the connecting connecting rod 905 and the moving connecting plate 906 are connected by a rotating shaft. Through the mutual action between each component in the clamping structure 9, the clamping structure 9 can run smoothly when in use.
[0034] When using the turnover device for aluminum alloy profile processing, first connect the device to the power supply so that the device is in a working state. Then control the driving motor 802 through the controller 11. When the driving end of the driving motor 802 rotates, in turn, the driving rod 803, the rotating bevel gear 804, the transmission bevel gear 805, the rotating rod 806 and the rotating gear 807 are rotated. When the rotating gear 807 rotates, the two groups of moving racks 808 and the connecting rods 810 are moved in opposite directions, and in turn, the two groups of clamping structures 9 are moved in opposite directions. When the moving connecting plate 906 on the clamping structure 9 contacts the two ends of the aluminum alloy profile, the moving connecting plate 906 on the two groups of clamping structures 9 moves in opposite directions when the two groups of clamping structures 9 continue to move in opposite directions. In turn, the connecting connecting rod 905, the rotating connecting rod 903 and the clamping roller 904 are rotated towards the upper and lower end faces of the aluminum alloy profile, so that the aluminum alloy profile is clamped by the clamping roller 904;
[0035] Finally, the driving motor 802 is controlled by the controller 11, when the driving end of the driving motor 802 rotates, in turn, the driving rod 4, the driving bevel gear 5, the driven bevel gear 6 and the rotating rod 7 are driven to rotate; when the rotating rod 7 rotates, the adjustable interval structure 8 is driven to rotate, so that the aluminum alloy profile on the adjustable interval structure 8 is flipped to drive the end face of the left conveyor 10.
[0036] Although the embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present application, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A turnover device for aluminium alloy profile machining, comprising a connecting base (1), characterised in that: The end face of the connecting base (1) is connected with a fixed support (2), the side wall of the fixed support (2) is connected with a turnover motor (3) through a connecting seat, the driving end of the turnover motor (3) is connected with a driving rod (4) through a shaft coupling, the other end of the driving rod (4) is engagedly connected with a driven bevel gear (6) through a driving bevel gear (5), the center of the driven bevel gear (6) is connected with a rotating rod (7), the other end of the rotating rod (7) is connected with a spacing adjustable structure (8), the spacing adjustable structure (8) is connected with a clamping structure (9), the end face of the connecting base (1) and located on both sides of the fixed support (2) are symmetrically connected with conveyors (10), and the side wall of the connecting base (1) is connected with a controller (11). The spacing adjustable structure (8) comprises a fixed shell (801), the fixed shell (801) is connected to one end of the rotating rod (7), the side wall of the fixed shell (801) is connected with a driving motor (802) through a connecting seat, the driving end of the driving motor (802) is connected with a driving rotating rod (803) through a shaft coupling, the other end of the driving rotating rod (803) is engagedly connected with a transmission bevel gear (805) through a rotating bevel gear (804), the center of the transmission bevel gear (805) is connected with a rotating rotating rod (806), the side wall of the rotating rotating rod (806) is connected with a rotating gear (807), the side wall of the rotating gear (807) is symmetrically connected with a moving rack (808), the side wall of the moving rack (808) is connected with a fixed sliding rail (809), the fixed sliding rail (809) is connected to the side wall of the inner cavity of the fixed shell (801) through a connecting plate, and one end of the moving rack (808) is connected with a link rod (810).
2. A turn around apparatus for processing of aluminium alloy sections as claimed in claim 1 wherein: The clamping structure (9) comprises a fixed connecting seat (901), the fixed connecting seat (901) is connected to one end of the link rod (810), the side wall of the fixed connecting seat (901) is connected with a fixed connecting plate (902), the side wall of the fixed connecting plate (902) is symmetrically connected with a rotating connecting rod (903), the other end of the rotating connecting rod (903) is connected with a clamping roller (904), the side wall of the rotating connecting rod (903) is connected with a connecting connecting rod (905), the other end of the connecting connecting rod (905) is connected with a moving connecting plate (906), and the fixed connecting plate (902) and the moving connecting plate (906) are connected with a spring seat (907).
3. A turn around apparatus for processing of aluminium alloy sections as claimed in claim 2 wherein: The turnover motor (3) is connected with the controller (11) through wires and is electrically connected, the driving rod (4) is connected to the side wall of the fixed support (2) through a bearing seat, and the connection between the driving rod (4) and the bearing seat is rotating connection.
4. A turn around apparatus for aluminum alloy profile machining according to claim 2, characterized in that: The rotating rod (7) is connected to the side wall of the fixed support (2) through a bearing seat, the connection between the rotating rod (7) and the bearing seat is rotating connection, and the conveyor (10) is connected with the controller (11) through wires and is electrically connected.
5. A turn around apparatus for aluminum alloy profile machining according to claim 2, characterized in that: The driving motor (802) is connected with the controller (11) through wires in an electrical connection mode, and the driving rotating shaft (803) is connected with the side wall of the fixed shell (801) through a bearing seat in a rotating connection mode.
6. A turn around apparatus for aluminum alloy profile machining according to claim 2, characterized in that: The rotating rotating shaft (806) is connected with the side wall of the fixed shell (801) through a bearing seat in a rotating connection mode, and the fixed sliding rail (809) is provided with a sliding groove corresponding to the moving rack (808) in a sliding connection mode.
7. A turn around apparatus for aluminum alloy profile machining according to claim 2, characterized in that: The fixed connecting plate (902) and the rotating connecting rod (903) are connected through a rotating shaft in a rotating connection mode, and the rotating connecting rod (903) and the clamping roller (904) are connected through a rotating shaft in a rotating connection mode.
8. A turn around apparatus for aluminum alloy profile machining according to claim 2, characterized in that: The rotating connecting rod (903) and the connecting connecting rod (905) are connected through a rotating shaft in a rotating connection mode, and the connecting connecting rod (905) and the moving connecting plate (906) are connected through a rotating shaft in a rotating connection mode.