Bending forming machine for manufacturing furniture parts through aluminum alloy formworks
The pressure bending machine for aluminum alloy panels addresses misalignment issues by using a defense offset forming component and segmented pressing mechanism, ensuring precise bending and easy product removal, thereby improving forming quality and efficiency.
Patent Information
- Application Number
- CN202510599843.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2025-07-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing pressing and bending machines are prone to deviating during the bending process of aluminum alloy sheets, which affects the forming effect, and the finished product is not convenient to be exported after forming.
The anti-offset molding assembly and segmented stamping assembly are used to move the stamping box downward by lifting the assembly, so that the anti-offset block is close to the aluminum alloy sheet, preventing offset, and pushing the finished product out with the automatic discharge assembly.
The molding quality and processing efficiency of aluminum alloy sheets are improved, the deviation problem of aluminum alloy sheets during bending is avoided, and the export of finished products after forming is facilitated.
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Figure CN120306438A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of furniture production, and more specifically, to a bending and forming machine for manufacturing furniture components from aluminum alloy templates. Background Art
[0002] A bending and forming machine is a mechanical device used to bend metal materials into specific shapes or angles through pressure. It can bend aluminum alloy materials into the required shapes and angles to meet the needs of furniture component manufacturing. For example, the bending and forming of components such as wardrobe door frames, cabinet door panels, and table and chair legs usually requires bending aluminum alloy sheets into specific shapes, such as U-shaped structures.
[0003] Most of the existing bending and forming machines have structures where the aluminum alloy sheet is prone to deviation during the bending process, affecting the forming effect, and it is not convenient to export the formed finished product, having certain limitations. Therefore, in view of the above current situation, there is an urgent need to provide a bending and forming machine for manufacturing furniture components from aluminum alloy templates to overcome the deficiencies in current practical applications. Summary of the Invention
[0004] The purpose of the present invention is to provide a bending and forming machine for manufacturing furniture components from aluminum alloy templates, aiming to solve the problems in the above background art.
[0005] The present invention is realized as follows. A bending and forming machine for manufacturing furniture components from aluminum alloy templates includes:
[0006] A base;
[0007] An anti-offset forming assembly. The anti-offset forming assembly includes a forming block and an anti-offset block. The forming block is fixedly installed on the base, and a forming groove is also provided on the forming block. The anti-offset block is slidably connected to the forming block through an elastic component, and two groups of anti-offset blocks are symmetrically arranged on the forming block. A placement groove for placing the aluminum alloy sheet is also provided on the anti-offset block;
[0008] A stamping box located above the anti-offset block. A lifting assembly for driving the stamping box to move is also provided on the base, and a segmented stamping assembly is also provided inside the stamping box;
[0009] And an automatic blanking assembly provided inside the segmented stamping assembly.
[0010] As a further aspect of the present invention: The elastic component includes:
[0011] A guide post slidably installed on the forming block. The guide post is fixedly connected to the anti-offset block, and a circular stop block is also provided at the end of the guide post away from the anti-offset block;
[0012] A spring a for elastically supporting the circular stop block. The spring a is sleeved on the guide post.
[0013] As a further solution of the present invention: The lifting assembly includes:
[0014] A telescopic cylinder fixedly installed on the base, and multiple groups of the telescopic cylinders are provided;
[0015] A lifting plate fixedly connected to the telescopic end of the telescopic cylinder, the lifting plate is fixedly connected to the stamping box, and the lifting plate is of a U-shaped structure.
[0016] As a further solution of the present invention: The segmented stamping assembly includes:
[0017] A driving inclined surface located at the bottom of the stamping box, two groups of the driving inclined surfaces are provided at the bottom of the stamping box, and a driven inclined surface for cooperating with the driving inclined surface is also provided on the anti-deviation block;
[0018] A stamping block slidably installed in the stamping box, and a limiting block is also provided on the stamping block, and a strip-shaped hole for slidingly cooperating with the limiting block is opened on the side wall of the stamping box;
[0019] A spring c for elastically pressing the stamping block, and the spring c is arranged in the stamping box;
[0020] An L-shaped bracket a fixedly installed on the stamping block, and a rotating tube is also rotatably installed on the L-shaped bracket a;
[0021] A stamping roller for pressing the aluminum alloy plate, and the stamping roller is fixedly connected to the rotating tube.
[0022] As a further solution of the present invention: An electric motor is also fixedly installed on the L-shaped bracket a, and the output shaft of the electric motor is connected to the rotating tube through a linkage a, and the linkage a adopts a combined structure of a belt pulley and a transmission belt.
[0023] As a further solution of the present invention: The automatic blanking assembly includes:
[0024] A control box a, a receiving groove for slidably installing the control box a is opened on the stamping roller, and a piston plate a is slidably installed in the control box a;
[0025] A support column fixedly installed on the piston plate a, multiple groups of the support columns are provided on the piston plate a, and a through hole for the support column to penetrate is opened at the top of the control box a;
[0026] A pressing strip fixedly installed on the support column;
[0027] A spring b for elastically pressing the piston plate a, and the spring b is sleeved on the support column;
[0028] A translation assembly for driving the control box a to slide outwards;
[0029] and a pneumatic drive assembly for driving the translation assembly to work and driving the piston plate a to move.
[0030] As a further solution of the present invention: the translation assembly includes:
[0031] A pulley rotatably installed in the stamping roller, and the pulley is located at one end of the stamping roller far from the rotating pipe;
[0032] A winding roller rotatably installed in the stamping roller, a traction belt is arranged on the winding roller, and one end of the traction belt far from the winding roller passes through the pulley and is connected to one end of the control box a close to the rotating pipe;
[0033] A speed change assembly for driving the winding roller to rotate, and the speed change assembly is connected to the pneumatic drive assembly.
[0034] As a further solution of the present invention: the speed change assembly includes:
[0035] A rotating shaft a rotatably installed in the stamping roller, a gear a is fixedly installed on the rotating shaft a, and a rack meshing with the gear a is slidably installed in the stamping roller;
[0036] A rotating shaft b rotatably installed in the stamping roller, and a gear b is fixedly installed on the rotating shaft b;
[0037] A gear c meshing with the gear b, the gear c is fixedly connected to the winding roller, and the pitch circle diameter of the gear b is larger than the pitch circle diameter of the gear c;
[0038] A linkage b for connecting the rotating shaft a and the rotating shaft b, and the linkage b adopts a combined structure of a belt pulley and a transmission belt.
[0039] As a further solution of the present invention: the pneumatic drive assembly includes:
[0040] An L-shaped bracket b fixedly installed on the L-shaped bracket a, a guide air pipe a is fixedly installed on the L-shaped bracket b, and the guide air pipe a is rotatably connected to the rotating pipe;
[0041] An air guide groove b opened at the end of the stamping roller, and an air guide hole communicating with the air guide groove b is provided on the guide air pipe a;
[0042] A guide pipe fixedly installed in the control box a, a guide air pipe b is also slidably installed in the guide pipe, and the end of the guide air pipe b is communicated with the air guide groove b.
[0043] As a further solution of the present invention: the pneumatic drive assembly further includes:
[0044] An air guide groove a opened in the stamping roller, and the air guide groove a is communicated with the guide air pipe a;
[0045] A control box b, which is fixedly installed inside the stamping roller, and the control box b is communicated with the air guide groove a through a conduit;
[0046] A piston plate b slidably installed inside the control box b, and a push-pull rod is fixedly installed on the piston plate b, and the push-pull rod is fixedly connected with the rack through a cross plate;
[0047] A spring d for elastically supporting the piston plate b, and the spring d is located inside the control box b.
[0048] Compared with the prior art, the beneficial effects of the present invention are as follows: During use, the aluminum alloy plate to be processed is placed into the placement groove. At this time, the two anti-deviation blocks are separated from each other. Then, the lifting assembly drives the stamping box to move downward. During the downward movement of the stamping box, the segmented stamping assembly contacts the aluminum alloy plate. At the same time, the downward-moving stamping box also drives the two anti-deviation blocks to approach each other. During the process of the two anti-deviation blocks approaching each other, the stamping box continues to move downward, so that the segmented stamping assembly presses the aluminum alloy plate into the forming groove, and with the blocking effect of the two anti-deviation blocks, the aluminum alloy plate will not shift during the bending and forming process, which is convenient for improving the forming quality. After forming, the lifting assembly drives the stamping box to move upward a certain distance, and the automatic blanking assembly can push the finished product out of the forming groove, which can improve the processing efficiency; through the combined setting of the anti-deviation forming assembly and the segmented stamping assembly, it avoids the problems of most existing bending and forming machines, where the aluminum alloy plate is prone to shift during the bending process, affecting the forming effect, and it is not convenient to export the finished product after forming, and there are certain limitations. Description of the Drawings
[0049] Figure 1 It is a schematic structural diagram of the present invention.
[0050] Figure 2 is Figure 1 the rear view structural schematic diagram of
[0051] Figure 3 It is a schematic structural diagram of the anti-deviation forming assembly in the present invention.
[0052] Figure 4 It is a sectional structural schematic diagram of the stamping box in the present invention.
[0053] Figure 5 It is a schematic structural diagram of the stamping roller in the present invention.
[0054] Figure 6 It is a sectional structural schematic diagram of the stamping roller in the present invention.
[0055] Figure 7 is Figure 6 the enlarged structural schematic diagram at A in
[0056] Figure 8 is Figure 6 The enlarged structural schematic diagram at position B in
[0057] Figure 9 is Figure 6 The enlarged structural schematic diagram at position C in
[0058] In the attached drawings: 1 - base, 2 - forming block, 3 - stamping roller, 4 - anti - deviation block, 5 - guide post, 6 - spring a, 7 - stamping box, 8 - spring c, 9 - lifting plate, 10 - telescopic cylinder, 11 - limit block, 12 - stamping block, 13 - L - shaped bracket a, 14 - motor, 15 - rotating pipe, 16 - air duct a, 17 - L - shaped bracket b, 18 - forming groove, 19 - placement groove, 20 - driven inclined surface, 21 - driving inclined surface, 22 - linkage part a, 23 - control box a, 24 - pressing strip, 25 - air guide hole, 26 - air guide groove a, 27 - traction belt, 28 - rack, 29 - pulley, 30 - linkage part b, 31 - air guide groove b, 32 - support column, 33 - spring b, 34 - piston plate a, 35 - guide pipe, 36 - air duct b, 37 - rotating shaft a, 38 - gear a, 39 - control box b, 40 - conduit, 41 - piston plate b, 42 - spring d, 43 - push - pull rod, 44 - gear b, 45 - rotating shaft b, 46 - winding roller, 47 - gear c. Specific embodiments
[0059] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention. The following describes the specific implementation of the present invention in detail with specific embodiments.
[0060] Please refer to Figures 1-9 , a bending and forming machine for manufacturing furniture parts from aluminum alloy templates provided by an embodiment of the present invention, the bending and forming machine for manufacturing furniture parts from aluminum alloy templates includes:
[0061] Base 1;
[0062] An anti - deviation forming assembly, the anti - deviation forming assembly includes a forming block 2 and an anti - deviation block 4, the forming block 2 is fixedly installed on the base 1, and a forming groove 18 is further opened on the forming block 2, the anti - deviation block 4 is slidably connected to the forming block 2 through an elastic component, and two groups of anti - deviation blocks 4 are symmetrically arranged on the forming block 2, and a placement groove 19 for placing aluminum alloy plates is further opened on the anti - deviation block 4;
[0063] The stamping box 7 is located above the anti-deviation block 4. A lifting assembly for driving the stamping box 7 to move is further provided on the base 1, and a segmented stamping assembly is further provided in the stamping box 7;
[0064] And an automatic blanking assembly provided in the segmented stamping assembly.
[0065] In an embodiment of the present invention, in use, the aluminum alloy plate to be processed is placed in the placement groove 19. At this time, the two anti-deviation blocks 4 are separated from each other. Then, the lifting assembly is used to drive the stamping box 7 to move downward. During the downward movement of the stamping box 7, the segmented stamping assembly contacts the aluminum alloy plate. At the same time, the downward-moving stamping box 7 will also drive the two anti-deviation blocks 4 to approach each other. During the process of the two anti-deviation blocks 4 approaching each other, the stamping box 7 continues to move downward, so that the segmented stamping assembly presses the aluminum alloy plate into the forming groove 18, and with the blocking effect of the two anti-deviation blocks 4, the aluminum alloy plate will not shift during the bending and forming process, which is convenient for improving the forming quality. After forming, the lifting assembly drives the stamping box 7 to move upward a certain distance, and the automatic blanking assembly can push the finished product out of the forming groove 18, which can improve the processing efficiency; compared with the prior art, the present invention avoids the problems of most existing bending and forming machines, where the aluminum alloy plate is prone to shift during the bending process, affecting the forming effect, and it is not convenient to export the finished product after forming, and there are certain limitations through the combined setting of the anti-offset forming assembly and the segmented stamping assembly.
[0066] In an embodiment of the present invention, please refer to Figures 1-9 , the elastic assembly includes:
[0067] The guide post 5 slidably installed on the forming block 2, the guide post 5 is fixedly connected to the anti-deviation block 4, and a circular stop block is further provided at one end of the guide post 5 away from the anti-deviation block 4;
[0068] The spring a6 for elastically supporting the circular stop block, and the spring a6 is sleeved on the guide post 5.
[0069] In this embodiment, through the setting of the guide post 5, it is convenient to limit the movement track of the anti-deviation block 4. Through the setting of the spring a6, the anti-deviation block 4 can be reset after the stamping box 7 is separated from the anti-deviation block 4.
[0070] In an embodiment of the present invention, please refer to Figures 1-9 , the lifting assembly includes:
[0071] The telescopic cylinder 10 fixedly installed on the base 1, and multiple groups of telescopic cylinders 10 are provided;
[0072] The lifting plate 9 fixedly connected to the telescopic end of the telescopic cylinder 10, the lifting plate 9 is fixedly connected to the stamping box 7, and the lifting plate 9 is of a U-shaped structure;
[0073] The segmented stamping assembly includes:
[0074] The driving inclined surface 21 located at the bottom of the stamping box 7, there are two groups of the driving inclined surface 21 provided at the bottom of the stamping box 7, and the anti-deviation block 4 also has a driven inclined surface 20 cooperating with the driving inclined surface 21;
[0075] The stamping block 12, the stamping block 12 is slidably installed in the stamping box 7, and a limiting block 11 is also provided on the stamping block 12, and a strip-shaped hole slidably matched with the limiting block 11 is opened on the side wall of the stamping box 7;
[0076] The spring c8 for elastically pressing the stamping block 12, the spring c8 is arranged in the stamping box 7;
[0077] The L-shaped bracket a13 fixedly installed on the stamping block 12, and a rotating tube 15 is also rotatably installed on the L-shaped bracket a13;
[0078] The stamping roller 3 for pressing the aluminum alloy plate, the stamping roller 3 is fixedly connected with the rotating tube 15;
[0079] The motor 14 is also fixedly installed on the L-shaped bracket a13, and the output shaft of the motor 14 is connected with the rotating tube 15 through a linkage a22, and the linkage a22 adopts a combined structure of a belt pulley and a transmission belt.
[0080] In this embodiment, the telescopic cylinder 10 can drive the stamping box 7 to move up and down by driving the lifting plate 9 to move in the vertical direction; wherein the telescopic cylinder 10 can adopt a hydraulic telescopic cylinder 10; when the stamping box 7 moves down, by using the cooperation of the driving inclined surface 21 and the driven inclined surface 20, the stamping box 7 can be used to push the two anti-deviation blocks 4 to approach each other; the stamping box 7 can drive the stamping block 12, the spring c8 and the stamping roller 3 to move down synchronously, and the stamping roller 3 can be used to press the aluminum alloy plate into the forming groove 18, so that the aluminum alloy plate is pressed into a U-shaped structure. An arc-shaped groove is also provided at one end of the anti-deviation block 4 facing the forming block 2. If the stamping box 7 continues to move down, the spring c8 is compressed. At this time, the two anti-deviation blocks 4 continue to approach, and the aluminum alloy plate can be pressed into a circular structure, which has stronger practicability. The motor 14 can drive the rotating tube 15 and the stamping roller 3 to rotate through the cooperation with the linkage a22, which is convenient to switch the automatic blanking assembly to the working mode.
[0081] In an embodiment of the present invention, please refer to Figures 1-9 , the automatic blanking assembly includes:
[0082] The control box a23, a receiving groove for slidably installing the control box a23 is opened on the stamping roller 3, and a piston plate a34 is slidably installed in the control box a23;
[0083] Support columns 32 fixedly installed on the piston plate a34. Multiple groups of the support columns 32 are arranged on the piston plate a34, and through holes for the support columns 32 to pass through are formed at the top of the control box a23;
[0084] A pressing strip 24 fixedly installed on the support columns 32;
[0085] A spring b33 for elastically pressing the piston plate a34, with the spring b33 sleeved on the support columns 32;
[0086] A translation component for driving the control box a23 to slide outwards;
[0087] And a pneumatic drive component for driving the translation component to work and driving the piston plate a34 to move;
[0088] The translation component includes:
[0089] A pulley 29 rotatably installed in the stamping roller 3, and the pulley 29 is located at one end of the stamping roller 3 far from the rotating pipe 15;
[0090] A winding roller 46 rotatably installed in the stamping roller 3. A traction belt 27 is arranged on the winding roller 46, and one end of the traction belt 27 far from the winding roller 46 passes through the pulley 29 and is connected to one end of the control box a23 close to the rotating pipe 15;
[0091] A speed change component for driving the winding roller 46 to rotate, with the speed change component connected to the pneumatic drive component;
[0092] The speed change component includes:
[0093] A rotating shaft a37 rotatably installed in the stamping roller 3. A gear a38 is fixedly installed on the rotating shaft a37, and a rack 28 meshing with the gear a38 is slidably installed in the stamping roller 3;
[0094] A rotating shaft b45 rotatably installed in the stamping roller 3, and a gear b44 is fixedly installed on the rotating shaft b45;
[0095] A gear c47 meshing with the gear b44, with the gear c47 fixedly connected to the winding roller 46, and the pitch circle diameter of the gear b44 being greater than the pitch circle diameter of the gear c47;
[0096] A linkage b30 for connecting the rotating shaft a37 and the rotating shaft b45, and the linkage b30 adopts a combined structure of a belt pulley and a transmission belt;
[0097] The pneumatic drive component includes:
[0098] The L-shaped bracket b17 is fixedly mounted on the L-shaped bracket a13. A gas guide pipe a16 is fixedly mounted on the L-shaped bracket b17, and the gas guide pipe a16 is rotatably connected to the rotary pipe 15.
[0099] The air guide groove b31 is opened at the end of the stamping roller 3. The gas guide pipe a16 has a gas guide hole 25 communicating with the air guide groove b31.
[0100] The guide pipe 35 is fixedly mounted in the control box a23. A gas guide pipe b36 is also slidably mounted in the guide pipe 35, and the end of the gas guide pipe b36 communicates with the air guide groove b31.
[0101] The air driving assembly further includes:
[0102] The air guide groove a26 is opened in the stamping roller 3. The air guide groove a26 communicates with the gas guide pipe a16.
[0103] The control box b39 is fixedly mounted in the stamping roller 3, and the control box b39 is communicated with the air guide groove a26 through a conduit 40.
[0104] The piston plate b41 is slidably mounted in the control box b39. A push rod 43 is also fixedly mounted on the piston plate b41, and the push rod 43 is fixedly connected to the rack 28 through a cross plate.
[0105] The spring d42 for elastically supporting the piston plate b41 is located in the control box b39.
[0106] In this embodiment, automatic blanking is preferably applicable to the processing of U-shaped parts. During use, the gas guide pipe a16 is connected to an external air source. When the stamping roller 3 rotates and the pressing strip 24 is rotated to the lower side, the gas input by the gas guide pipe a16 will enter the gas guide pipe b36 through the air guide groove b31 and be introduced into the control box a23 through the guide pipe 35, thereby pushing the piston plate a34 to move. The piston plate a34 is used to drive the support column 32 and the pressing strip 24 to move, so that the pressing strip 24 presses on the finished product. At the same time, the gas entering the air guide groove a26 will enter the control box b39 through the conduit 40, thereby pushing the piston plate b41 to move. The piston plate b41 drives the push rod 43, the cross plate and the rack 28 to move. The rack 28 will drive the gear a38 to rotate. The gear a38 drives the rotating shaft a37 to rotate, and cooperates with the linkage b30 to drive the rotating shaft b45 to rotate. Through the cooperation of the gear b44 and the gear c47, the winding roller 46 can be driven to rotate, realizing the winding of the traction belt 27, thereby pulling the control box a23 to move outwards. The pressing strip 24 can drive the finished product to move synchronously to complete blanking; the surface of the pressing strip 24 can be covered with a rubber material to increase the friction force.
[0107] In the present invention, unless otherwise clearly specified or limited, terms such as "sliding", "rotating", "fixing", "provided with", etc. shall be understood in a broad sense. For example, it may be a welded connection, a bolt connection, or integrated; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements or the interaction relationship between two elements, unless otherwise clearly limited. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0108] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A bending and forming machine for manufacturing furniture parts from aluminum alloy templates, comprising a base, characterized in that, It also includes: An anti-offset forming component, which includes a forming block and an anti-offset block. The forming block is fixedly installed on the base, and a forming groove is also formed on the forming block. The anti-offset block is slidably connected to the forming block through an elastic component, and two groups of anti-offset blocks are symmetrically arranged on the forming block. A placement groove for placing aluminum alloy plates is also formed on the anti-offset block; A stamping box located above the anti-offset block. A lifting component for driving the stamping box to move is also provided on the base, and a segmented stamping component is also provided in the stamping box; And an automatic blanking component provided in the segmented stamping component.
2. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 1, wherein, The elastic component includes: A guide post slidably installed on the forming block. The guide post is fixedly connected to the anti-offset block, and a circular stop block is also provided at the end of the guide post away from the anti-offset block; Spring a for elastically supporting the circular stop block. Spring a is sleeved on the guide post.
3. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 1, characterized in that, The lifting component includes: A telescopic cylinder fixedly installed on the base. There are multiple groups of telescopic cylinders; A lifting plate fixedly connected to the telescopic end of the telescopic cylinder. The lifting plate is fixedly connected to the stamping box, and the lifting plate is of a U-shaped structure.
4. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 1, characterized in that, The segmented stamping component includes: A driving inclined plane located at the bottom of the stamping box. There are two groups of driving inclined planes at the bottom of the stamping box, and a driven inclined plane for cooperating with the driving inclined plane is also provided on the anti-offset block; A stamping block slidably installed in the stamping box. A limiting block is also provided on the stamping block, and a strip-shaped hole for slidably cooperating with the limiting block is formed on the side wall of the stamping box; Spring c for elastically pressing the stamping block. Spring c is provided in the stamping box; An L-shaped bracket a fixedly installed on the stamping block. A rotating tube is also rotatably installed on the L-shaped bracket a; A stamping roller for pressing the aluminum alloy plate. The stamping roller is fixedly connected to the rotating tube.
5. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 4, characterized in that, An electric motor is also fixedly installed on the L-shaped bracket a, and the output shaft of the electric motor is connected to the rotating tube through a linkage a. The linkage a adopts a combined structure of a belt pulley and a transmission belt.
6. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 4, characterized in that, The automatic blanking component includes: Control box a. A receiving groove for slidably installing control box a is formed on the stamping roller, and a piston plate a is slidably installed in control box a; Support columns fixedly installed on the piston plate a. There are multiple groups of support columns on the piston plate a, and through holes for the support columns to penetrate are formed at the top of control box a; A pressing strip fixedly installed on the support columns; Spring b for elastically pressing the piston plate a. Spring b is sleeved on the support columns; A translation component for driving control box a to slide outwards; And a gas drive component for driving the translation component to work and driving the piston plate a to move.
7. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 6, characterized in that, The translation component includes: A pulley rotatably installed in the stamping roller. The pulley is located at the end of the stamping roller away from the rotating tube; A winding roller rotatably installed in the stamping roller. A traction belt is provided on the winding roller, and one end of the traction belt away from the winding roller passes through the pulley and is connected to one end of control box a close to the rotating tube; A speed change component for driving the winding roller to rotate. The speed change component is connected to the gas drive component.
8. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 7, characterized in that, The speed change component includes: Rotate the rotating shaft a installed inside the stamping roller. A gear a is fixedly installed on the rotating shaft a, and a rack meshing with the gear a is slidably installed inside the stamping roller; A rotating shaft b is rotatably installed inside the stamping roller, and a gear b is fixedly installed on the rotating shaft b; A gear c meshing with the gear b. The gear c is fixedly connected to the winding roller, and the pitch circle diameter of the gear b is larger than the pitch circle diameter of the gear c; A linkage b is used for connecting the rotating shaft a and the rotating shaft b, and the linkage b adopts a combined structure of a pulley and a transmission belt.
9. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 8, characterized in that, The air drive assembly includes: An L-shaped bracket b fixedly installed on the L-shaped bracket a. A guide pipe a is fixedly installed on the L-shaped bracket b, and the guide pipe a is rotatably connected to the rotating pipe; An air guide groove b opened at the end of the stamping roller. The guide pipe a has an air guide hole communicating with the air guide groove b; A guide pipe fixedly installed inside the control box a. A guide pipe b is also slidably installed inside the guide pipe, and the end of the guide pipe b communicates with the air guide groove b.
10. The bending and forming machine for manufacturing furniture parts from aluminum alloy templates according to claim 9, characterized in that, The air drive assembly further includes: An air guide groove a opened inside the stamping roller. The air guide groove a communicates with the guide pipe a; A control box b is fixedly installed inside the stamping roller, and the control box b is communicated with the air guide groove a through a conduit; A piston plate b slidably installed inside the control box b. A push-pull rod is also fixedly installed on the piston plate b, and the push-pull rod is fixedly connected to the rack through a cross plate; A spring d for elastically supporting the piston plate b. The spring d is located inside the control box b.