Radiator fixing bracket forming and processing equipment

Through multi-stage continuous forming and processing equipment, the radiator fixed bracket is realized by using components such as arc extrusion modules and top die columns, which solves the problems of complex processing and low efficiency in the prior art, and reduces cost and labor consumption.

CN115815453BActive Publication Date: 2025-07-11ZHUCHENG HAIYUN AUTOMOBILE FITTING
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202211361398.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-02
Publication Date
2025-07-11
Estimated Expiration
2042-11-02

AI Technical Summary

Technical Problem

The existing radiator fixed bracket processing method is complex, with high processing difficulty, long processes, low efficiency, high equipment costs and high labor consumption.

Method used

The multi-stage continuous forming and processing equipment is adopted, including the first module and the second module, and the one-piece forming processing of the bracket is achieved through the synergistic effect of components such as arc extrusion module, top die column, flip plate and right-angle push die.

Benefits of technology

The processing process has been simplified, the work efficiency has been improved, the equipment cost investment has been reduced, and human resources have been liberated.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115815453B_ABST
    Figure CN115815453B_ABST
Patent Text Reader

Abstract

The present invention discloses a forming and processing device for a radiator fixing bracket, which includes a first module and a second module. The first module and the second module are arranged vertically. The first module includes a substrate, on the side wall of the substrate, two arc-shaped extrusion modules are slidably arranged, and at the bottom of the substrate, two long die bars are arranged; by adopting a multi-stage continuous forming and processing method to process the bracket, a one-time forming and processing method of the bracket can be realized, effectively shortening the process steps, simplifying the processing method, improving the work efficiency, and at the same time avoiding the cost investment of using multiple devices for cooperative processing and liberating manpower.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of automotive parts in emerging strategic industries, and particularly to a forming and processing device for radiator fixing brackets. Background Art

[0002] As is well known, a radiator fixing bracket is a metal bracket used to fix a radiator or its upper pipeline inside an automobile. It is generally formed by stamping. For example, Figure 8 For the shown bracket structure, during processing, first, a sheet is cut into a specified profile, and then bending or stamping processing is performed on specified positions of the profile to obtain a complete product.

[0003] When using the existing processing method to process the bracket, multiple stamping devices or bending devices are required to gradually process each processing position on the bracket step by step. However, when using this method, due to the relatively complex shape of the bracket, multiple processing positions on the bracket are prone to occlusion, resulting in greater processing difficulty, longer processing procedures, lower working efficiency, and the need to consume more manpower to operate the multiple devices in cooperation, and a larger investment in equipment costs. Summary of the Invention

[0004] To solve the above technical problems, the present invention provides a forming and processing device for radiator fixing brackets.

[0005] To achieve the above object, the technical solution adopted by the present invention is:

[0006] A forming and processing device for radiator fixing brackets includes a first module and a second module. The first module and the second module are arranged vertically. The first module includes a base plate. Two arc-shaped extrusion modules are slidably arranged on the side wall of the base plate, and two long die rods are arranged at the bottom of the base plate;

[0007] The second module includes an H-shaped supporting die. A top die column is arranged in each of the two openings of the H-shaped supporting die. A turning plate is hinged on the outer wall of the top die column. An extrusion die column is arranged at the outer end of the turning plate. Right-angle pushing dies are arranged on both sides of the H-shaped supporting die.

[0008] Further, a first empty groove is formed on the side wall of the base plate where the arc-shaped extrusion module is located. A first gear is rotatably arranged in the first empty groove. Teeth are arranged on the side wall of the arc-shaped extrusion module facing the first empty groove. A tooth row is inclinedly engaged with the first gear. The tooth row slides in the base plate, and the outer end of the tooth row extends to the outside of the base plate. A first leaf spring is connected between the arc-shaped extrusion module and the base plate. A limiting plate is in contact with the top of the arc-shaped extrusion module, and the limiting plate is fixed on the base plate.

[0009] Further, a connecting block is fixed on the side wall of the long die bar. The connecting block is slidably installed at the bottom of the substrate. An installation groove is formed at the middle position of the bottom of the substrate. A cylinder is fixed in the installation groove. Two push-pull plates are obliquely and rotatably arranged at the movable end of the cylinder. The two push-pull plates have opposite oblique directions. The outer ends of the push-pull plates are rotatably installed on the long die bar.

[0010] Further, it further includes two fixed seats which are located on both sides of the H-shaped mold carrier. The fixed seats are provided with inclined surfaces. A first sliding groove is formed on the inclined surface. The right-angle pushing die is obliquely and slidably installed on the inclined surface through the first sliding groove. A second leaf spring is connected between the right-angle pushing die and the fixed seat. A second sliding groove is formed on the inner wall of the vertical right-angle side of the right-angle pushing die. A first sliding rod is slidably arranged in the second sliding groove. The outer end of the first sliding rod is slidably inserted into the H-shaped mold carrier.

[0011] Further, the second module further includes an outer fixed groove plate which is located at the bottom of the two fixed seats and is fixedly connected. The bottom of the top die column is slidably inserted into the outer fixed groove plate. Two inclined grooves are formed on the inner side wall of the outer fixed groove plate, and the positions of the two inclined grooves are opposite;

[0012] An inclined plate is fixed on the outer side wall of the top die column. A base column is fixed at the bottom of the H-shaped mold carrier. The bottom of the base column passes through the outer fixed groove plate and is slidably connected.

[0013] Further, second empty grooves are formed on the side walls between the top die column and the base column. A plurality of third leaf springs are arranged in the second empty grooves. One end of the third leaf spring is connected to the base column, and the other end of the third leaf spring is connected to the top die column.

[0014] Further, at the end of the hinge shaft at the hinge position between the top die column and the flipping plate, a second gear is provided. A right-angle plate is arranged outside the second gear. Teeth are arranged on the side wall of the right-angle plate. The right-angle plate is meshed and connected to the second gear through the teeth thereon. A second sliding rod is horizontally arranged on the outer side wall of the right-angle plate. The outer end of the second sliding rod is slidably inserted into the H-shaped mold carrier;

[0015] A guide rail is vertically arranged on the inner side wall of the right-angle plate. A slider is slidably arranged on the guide rail. The slider is rotatably connected to the second gear.

[0016] Further, a bottom plate is arranged at the bottom of the base column. A plurality of third sliding rods are slidably arranged on the bottom plate. The tops of the third sliding rods are fixed to the bottom of the outer fixed groove plate. Springs are sleeved on the outer walls of the third sliding rods. The two ends of the springs are respectively connected to the bottom plate and the outer fixed groove plate.

[0017] The beneficial effects of the present invention compared with the prior art are as follows: By adopting a multi-stage continuous forming process to process the bracket, a one-time forming process of the bracket can be realized, effectively shortening the process steps, simplifying the processing method, improving work efficiency, and at the same time avoiding the cost investment of using multiple devices for coordinated processing and liberating human resources. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments recorded in the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0019] Figure 1 is the front view structural schematic diagram of the present invention;

[0020] Figure 2 is Figure 1 the enlarged sectional view of the middle substrate;

[0021] Figure 3 is Figure 1 the enlarged schematic diagram of the internal structure of the outer fixed groove plate in ;

[0022] Figure 4 is Figure 3 the sectional view structural schematic diagram of the H-shaped support mold and the top mold column in ;

[0023] Figure 5 is Figure 3 the enlarged schematic diagram of the first chute in ;

[0024] Figure 6 is Figure 1 the enlarged sectional view of the outer fixed groove plate in ;

[0025] Figure 7 is Figure 3 the enlarged schematic diagram of the flip plate in ;

[0026] Figure 8 is the structural schematic diagram of the processed product of the present invention;

[0027] Labels in the attached drawings: 1, substrate; 2, arc extrusion module; 3, long die bar; 4, H-shaped die support; 5, top die column; 6, turnover plate; 7, extrusion die column; 8, right-angle die push; 9, first empty groove; 10, first gear; 11, tooth row; 12, first leaf spring; 13, limit plate; 14, fixed seat; 15, first chute; 16, second chute; 17, second leaf spring; 18, first slide bar; 19, outer fixed groove plate; 20, inclined groove; 21, inclined plate; 22, base column; 23, second empty groove; 24, third leaf spring; 25, second gear; 26, right-angle plate; 27, second slide bar; 28, guide rail; 29, slider; 30, bottom plate; 31, third slide bar; 32, spring; 33, connecting block; 34, installation groove; 35, cylinder; 36, push-pull plate. Detailed implementation mode

[0028] 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 the embodiments.

[0029] In the description of the present invention, it should be noted that the orientation or position relationships indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inside", "outside", etc. are based on the orientation or position relationships shown in the accompanying drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.

[0030] In the description of the present invention, it should be noted that unless otherwise clearly defined and limited, the terms "installation", "connection", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, and it can be the communication inside two elements. 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. This embodiment is written in a progressive manner.

[0031] As Figures 1 to 7 shown, the heat sink fixing bracket forming and processing equipment of the present invention includes a first module and a second module. The first module and the second module are distributed up and down. The first module includes a substrate 1. Two arc extrusion modules 2 are slidably arranged on the side wall of the substrate 1, and two long die bars 3 are arranged at the bottom of the substrate 1;

[0032] The second module includes an H-shaped mold carrier 4. Inside each of the two openings of the H-shaped mold carrier 4, there is a top mold post 5. A turning plate 6 is hinged to the outer wall of the top mold post 5. An extrusion mold post 7 is arranged at the outer end of the turning plate 6. Right-angle pushing molds 8 are arranged on both sides of the H-shaped mold carrier 4.

[0033] Specifically, the two arc-shaped extrusion modules 2 are respectively located on the left and right sides of the substrate 1, and the arc-shaped extrusion modules 2 can slide vertically on the substrate 1. The two top mold posts 5 are respectively located at the left and right end openings of the H-shaped mold carrier 4. The turning plate 6 is hinged to the side wall of the top mold post 5. The directions of the two right-angle pushing molds 8 are opposite. One right-angle side of the right-angle pushing mold 8 is set in a horizontal state, and the other right-angle side is set in a vertical state, and the horizontal right-angle side faces the H-shaped mold carrier 4.

[0034] When the profile needs to be formed and processed, place the profile on the top of the H-shaped mold carrier 4, and push the substrate 1, the arc-shaped extrusion modules 2 and the long mold rods 3 downward. The bottoms of the two long mold rods 3 first contact the upper surface of the profile and push the profile downward. At this time, the two right-angle pushing molds 8 are in a fixed state. The long mold rods 3 and the H-shaped mold carrier 4 clamp the profile and push it downward. The right-angle pushing molds 8 push the edge position of the profile to bend upward. When the long mold rods 3 move to the lower side of the horizontal right-angle side of the right-angle pushing molds 8, push the two right-angle pushing molds 8 to approach each other. The horizontal right-angle sides of the two right-angle pushing molds 8 push the edge position of the profile to approach the outer wall of the substrate 1, so that the profile deforms and wraps around the outer wall of the long mold rods 3. The horizontal right-angle side of the right-angle pushing mold 8 pushes the profile on it to be squeezed at the included angle position between the substrate 1 and the long mold rods 3. At this time, the profile bends and deforms again on the side wall of the substrate 1 facing the right-angle pushing mold 8. When the H-shaped mold carrier 4 moves downward, the H-shaped mold carrier 4 and the top mold post 5 move synchronously. When the top mold post 5 moves to the specified position, the top mold post 5 stops moving downward, and the H-shaped mold carrier 4 continues to move. At this time, the top mold post 5 pushes the profile on it to bend upward. This part of the profile can be folded and attached to the side wall of the substrate 1 facing the top mold post 5. At the same time, the outer end of this part of the profile can overlap on the arc-shaped extrusion module 2. Push the arc-shaped extrusion module 2 downward, and at the same time push the turning plate 6 to turn upward. The turning plate 6 pushes the extrusion mold post 7 to move synchronously. The extrusion mold post 7 turns to the side wall of the substrate 1 facing the top mold post 5. At this time, the bottom of the arc-shaped extrusion module 2 and the outer wall of the extrusion mold post 7 perform extrusion deformation processing on the profile between them, thus completing the multi-stage continuous forming processing of the profile, and the forming processing of the bracket is completed.

[0035] By adopting the multi-stage continuous forming processing method to process the bracket, the one-time forming processing method of the bracket can be realized, effectively shortening the process steps, simplifying the processing method, improving the work efficiency, and at the same time avoiding the cost investment of using multiple devices for cooperative processing and liberating manpower.

[0036] Such as Figure 2As shown in the figure, as a preference of the above embodiment, a first empty groove 9 is formed on the side wall of the substrate 1 where the arc extrusion module 2 is located. A first gear 10 is rotatably arranged in the first empty groove 9. Teeth are arranged on the side wall of the arc extrusion module 2 facing the first empty groove 9. A tooth row 11 is obliquely meshed on the first gear 10. The tooth row 11 slides in the substrate 1, and the outer end of the tooth row 11 extends to the outside of the substrate 1. A first leaf spring 12 is connected between the arc extrusion module 2 and the substrate 1. A limiting plate 13 is in contact with the top of the arc extrusion module 2, and the limiting plate 13 is fixed on the substrate 1.

[0037] Specifically, when the top die post 5 and the extrusion die post 7 push the profile part thereon to be close to the side wall of the substrate 1, the profile contacts the outer end of the tooth row 11 and pushes the tooth row 11 to slide into the substrate 1. The tooth row 11 pushes the first gear 10 to rotate, and the first gear 10 pushes the arc extrusion module 2 to move downward synchronously, so as to provide power supply for the movement of the arc extrusion module 2, achieve the purpose of synchronous movement of the extrusion die post 7 and the arc extrusion module 2, avoid the structural complexity of adding a power source for the arc extrusion module 2, simplify the structural mode. At the same time, due to the inclination of the tooth row 11, the tooth row 11 can move obliquely, which is convenient for the tooth row 11 to move away from the arc extrusion module 2, avoiding collision between the arc extrusion module 2 and the tooth row 11 when the arc extrusion module 2 moves downward synchronously. By setting the limiting plate 13, it is convenient to limit and position the arc extrusion module 2. By setting the first leaf spring 12, it is convenient to reset the arc extrusion module 2.

[0038] As Figure 2 shown in the figure, as a preference of the above embodiment, a connecting block 33 is fixed on the side wall of the long die bar 3. The connecting block 33 is slidably installed at the bottom of the substrate 1. An installation groove 34 is formed at the middle position of the bottom of the substrate 1. A cylinder 35 is fixed in the installation groove 34. Two push-pull plates 36 are obliquely and rotatably arranged at the movable end of the cylinder 35. The two push-pull plates 36 have opposite inclination directions, and the outer ends of the push-pull plates 36 are rotatably installed on the long die bar 3.

[0039] Specifically, the cylinder 35 can pull the two long die bars 3 to approach each other through the push-pull plates 36. The long die bars 3 can drive the connecting block 33 to slide at the bottom of the substrate 1. When the bracket is processed, pull the two long die bars 3 to approach each other. At this time, the two long die bars 3 are separated from the bracket, so as to facilitate the removal of the bracket, avoiding the phenomenon that the formed bracket is stuck on the first module and cannot be disassembled when the long die bars 3 cannot move.

[0040] As Figure 5As shown in the figure, as an optimization of the above embodiments, it further includes two fixing seats 14. The two fixing seats 14 are located on both sides of the H-shaped mold carrier 4. An inclined surface is provided on the fixing seat 14, and a first sliding groove 15 is formed on the inclined surface. The right-angle pushing mold 8 is installed on the inclined surface through the first sliding groove 15 in an inclined sliding manner. A second leaf spring 17 is connected between the right-angle pushing mold 8 and the fixing seat 14. A second sliding groove 16 is formed on the inner wall of the vertical right-angle side of the right-angle pushing mold 8, and a first sliding rod 18 is slidably arranged in the second sliding groove 16. The outer end of the first sliding rod 18 is slidably inserted into the H-shaped mold carrier 4.

[0041] Specifically, when the H-shaped mold carrier 4 moves downward, the H-shaped mold carrier 4 drives the first sliding rod 18 to move downward synchronously. When the first sliding rod 18 slides to the lower end of the second sliding groove 16 in the second sliding groove 16, the first sliding rod 18 stops sliding in the second sliding groove 16. At this time, the horizontal right-angle side of the right-angle pushing mold 8 is located above the long mold rod 3. The H-shaped mold carrier 4 pushes the right-angle pushing mold 8 to move downward synchronously through the first sliding rod 18. The right-angle pushing mold 8 slides on the inclined surface of the fixing seat 14, so that the right-angle pushing mold 8 moves toward the substrate 1. The two right-angle pushing molds 8 move obliquely and approach each other synchronously. The horizontal right-angle sides of the two right-angle pushing molds 8 extrude and deform the profile on the top of the long mold rod 3, so as to realize the two-stage movement state of the right-angle pushing mold 8. At this time, the second leaf spring 17 undergoes elastic deformation. The first sliding groove 15 can guide and limit the right-angle pushing mold 8. When the two right-angle pushing molds 8 approach each other, the right-angle pushing mold 8 can push the first sliding rod 18 to slide and insert into the H-shaped mold carrier 4.

[0042] As Figure 3 and Figure 6 As shown in the figure, as an optimization of the above embodiments, the second module further includes an outer fixed groove plate 19. The outer fixed groove plate 19 is located at the bottom of the two fixing seats 14 and is fixedly connected. The bottom of the top mold column 5 is slidably inserted into the outer fixed groove plate 19. Two inclined grooves 20 are formed on the inner side wall of the outer fixed groove plate 19, and the positions of the two inclined grooves 20 are opposite.

[0043] An inclined plate 21 is fixed on the outer side wall of the top mold column 5, and a base column 22 is fixed at the bottom of the H-shaped mold carrier 4. The bottom of the base column 22 passes through the outer fixed groove plate 19 and is slidably connected.

[0044] Specifically, the external fixing groove plate 19 can support the H-shaped mold carrier 4, the top mold post 5, the right-angle pushing mold 8, and the fixed seat 14. When the H-shaped mold carrier 4 moves downward, the H-shaped mold carrier 4 can drive the base post 22 to slide on the external fixing groove plate 19. When the top mold post 5 moves downward, the top mold post 5 can drive the inclined plate 21 to slide on the inner side wall of the external fixing groove plate 19. When the inclined plate 21 slides to the position of the inclined groove 20, the inclined plate 21 slides obliquely into the inclined groove 20. At this time, the top mold post 5 moves obliquely synchronously, and a specified distance is separated between the top mold post 5 and the H-shaped mold carrier 4. Moreover, the bottom of the top mold post 5 contacts the bottom of the inner wall of the external fixing groove plate 19, and the external fixing groove plate 19 pushes the top mold post 5 to stop moving. The top mold post 5 pushes the mold plate on its top to bend and deform upward.

[0045] Since a specified distance is separated between the top mold post 5 and the H-shaped mold carrier 4, it is convenient for the top of the top mold post 5 to smoothly push the mold plate to bend and deform, convenient for separating a specified distance between the side wall of the top mold post 5 and the side wall of the base plate 1, and convenient for separating a specified distance between the top of the top mold post 5 and the notch position on the mold plate, facilitating the smooth bending and deformation of the mold plate. When the top of the top mold post 5 is too close to the notch position on the mold plate, it can avoid the top mold post 5 exerting a force on the mold plate and causing the mold plate to tear, avoid stress concentration and damage to the mold plate, and facilitate the protection of the mold plate. Since the bottom of the base plate 1 cannot contact the mold plate, by adopting this method, the mold plate can be protected while ensuring the smooth deformation of the mold plate.

[0046] As Figure 4 shown, as an optimization of the above-mentioned embodiment, second empty grooves 23 are provided on the side walls between the top mold post 5 and the base post 22, and a plurality of third leaf springs 24 are arranged in the second empty grooves 23. One end of the third leaf spring 24 is connected to the base post 22, and the other end of the third leaf spring 24 is connected to the top mold post 5.

[0047] Specifically, by adopting the structure of the second empty grooves 23 and the third leaf springs 24, it is convenient to elastically connect between the top mold post 5 and the base post 22, thereby connecting between the H-shaped mold carrier 4 and the top mold post 5, facilitating their synchronous movement. When the inclined plate 21 enters the inclined groove 20, relative movement occurs between the top mold post 5 and the H-shaped mold carrier 4, and at the same time, it is convenient for the top mold post 5 and the H-shaped mold carrier 4 to reset synchronously.

[0048] As Figure 7 shown, as an optimization of the above-mentioned embodiment, at the end of the hinge axis of the hinge position between the top mold post 5 and the flipping plate 6, a second gear 25 is provided. On the outside of the second gear 25, a right-angle plate 26 is provided. Teeth are provided on the side wall of the right-angle plate 26, and the right-angle plate 26 is meshed and connected to the second gear 25 through the teeth thereon. Horizontally arranged on the outer side wall of the right-angle plate 26 is a second sliding rod 27, and the outer end of the second sliding rod 27 is slidably inserted into the H-shaped mold carrier 4;

[0049] On the inner side wall of the right-angle plate 26, a guide rail 28 is vertically arranged, and a slider 29 is slidably arranged on the guide rail 28. The slider 29 is rotatably connected to the second gear 25.

[0050] Specifically, when the H-shaped mold carrier 4 and the top mold post 5 move relative to each other, the H-shaped mold carrier 4 drives the right-angle plate 26 to move through the second sliding rod 27. The right-angle plate 26 drives the second gear 25 to rotate self, and the second gear 25 drives the turning plate 6 and the extrusion mold post 7 to turn upwards. By arranging the guide rail 28 and the slider 29, it is convenient to connect the second gear 25 and the right-angle plate 26. When the top mold post 5 is separated from the H-shaped mold carrier 4, the second gear 25 can drive the second sliding rod 27 to slide on the H-shaped mold carrier 4 through the guide rail 28, the slider 29 and the right-angle plate 26, ensuring that the teeth on the second gear 25 and the right-angle plate 26 are always in a meshing state.

[0051] As Figure 4 shown, as the preference of the above embodiment, a bottom plate 30 is arranged at the bottom of the base post 22. A plurality of third sliding rods 31 are slidably arranged on the bottom plate 30. The top of the third sliding rod 31 is fixed to the bottom of the outer fixed groove plate 19. A spring 32 is sleeved on the outer wall of the third sliding rod 31. Two ends of the spring 32 are respectively connected to the bottom plate 30 and the outer fixed groove plate 19.

[0052] Specifically, when the base post 22 moves downwards, the base post 22 drives the bottom plate 30 to move synchronously. The bottom plate 30 and the third sliding rod 31 generate relative sliding, and the spring 32 undergoes elastic deformation. By arranging the spring 32, it is convenient to pull the bottom plate 30, the base post 22, the H-shaped mold carrier 4 and the top mold post 5 to reset.

[0053] The above are only the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the technical principle of the present invention, several improvements and modifications can still be made, and these improvements and modifications should also be regarded as the protection scope of the present invention.

Claims

1. The forming and processing equipment for the radiator fixing bracket is characterized in that It includes a first module and a second module. The first module and the second module are arranged vertically. The first module includes a substrate (1), on the side wall of the substrate (1), two arc-shaped extrusion modules (2) are slidably arranged, and at the bottom of the substrate (1), two long die bars (3) are arranged; The second module includes an H-shaped die support (4). In each of the two openings of the H-shaped die support (4), a top die post (5) is arranged. On the outer wall of the top die post (5), a turning plate (6) is hinged. At the outer end of the turning plate (6), an extrusion die post (7) is arranged. On both sides of the H-shaped die support (4), right-angle die pushers (8) are arranged; On the side wall of the substrate (1) where the arc-shaped extrusion module (2) is located, a first empty slot (9) is opened. In the first empty slot (9), a first gear (10) is rotatably arranged. On the side wall of the arc-shaped extrusion module (2) facing the first empty slot (9), teeth are arranged. On the first gear (10), a tooth row (11) is inclinedly engaged. The tooth row (11) slides in the substrate (1), and the outer end of the tooth row (11) extends to the outside of the substrate (1). Between the arc-shaped extrusion module (2) and the substrate (1), a first leaf spring (12) is connected. At the top of the arc-shaped extrusion module (2), a limiting plate (13) is in contact setting, and the limiting plate (13) is fixed on the substrate (1); It also includes two fixed seats (14). The two fixed seats (14) are located on both sides of the H-shaped die support (4). On the fixed seats (14), inclined surfaces are arranged. On the inclined surfaces, first sliding slots (15) are opened. The right-angle die pusher (8) is inclinedly slidably installed on the inclined surface through the first sliding slot (15). Between the right-angle die pusher (8) and the fixed seat (14), a second leaf spring (17) is connected. On the inner wall of the vertical right-angle side of the right-angle die pusher (8), a second sliding slot (16) is opened. In the second sliding slot (16), a first sliding rod (18) is slidably arranged. The outer end of the first sliding rod (18) is slidably inserted into the H-shaped die support (4); The second module also includes an outer fixed groove plate (19). The outer fixed groove plate (19) is located at the bottom of the two fixed seats (14) and is fixedly connected. The bottom of the top die post (5) is slidably inserted into the outer fixed groove plate (19). On the inner side wall of the outer fixed groove plate (19), two inclined slots (20) are opened, and the positions of the two inclined slots (20) are opposite; On the outer side wall of the top die post (5), an inclined plate (21) is fixed. At the bottom of the H-shaped die support (4), a base post (22) is fixed. The bottom of the base post (22) passes through the outer fixed groove plate (19) and is slidably connected; On the side walls between the top die post (5) and the base post (22), second empty slots (23) are opened. In the second empty slots (23), a plurality of third leaf springs (24) are arranged. One end of the third leaf spring (24) is connected to the base post (22), and the other end of the third leaf spring (24) is connected to the top die post (5); At the end of the hinge axis at the hinged position between the top die post (5) and the flipping plate (6), a second gear (25) is provided. A right-angle plate (26) is arranged outside the second gear (25). Teeth are provided on the side wall of the right-angle plate (26). The right-angle plate (26) is meshed and connected with the second gear (25) through the teeth thereon. A second sliding rod (27) is horizontally arranged on the outer side wall of the right-angle plate (26). The outer end of the second sliding rod (27) is slidably inserted into the H-shaped die carrier (4). A guide rail (28) is vertically arranged on the inner side wall of the right-angle plate (26). A slider (29) is slidably arranged on the guide rail (28). The slider (29) is rotationally connected with the second gear (25). A bottom plate (30) is provided at the bottom of the base post (22). A plurality of third sliding rods (31) are slidably arranged on the bottom plate (30). The top of the third sliding rod (31) is fixed to the bottom of the outer fixed groove plate (19). A spring (32) is sleeved on the outer wall of the third sliding rod (31). The two ends of the spring (32) are respectively connected with the bottom plate (30) and the outer fixed groove plate (19).

2. The radiator fixing bracket forming and processing equipment according to claim 1, wherein, A connecting block (33) is fixed on the side wall of the long die rod (3). The connecting block (33) is slidably installed at the bottom of the base plate (1). An installation groove (34) is formed at the middle position of the bottom of the base plate (1). A cylinder (35) is fixed in the installation groove (34). Two push-pull plates (36) are obliquely and rotatably arranged at the movable end of the cylinder (35). The two push-pull plates (36) have opposite oblique directions. The outer ends of the push-pull plates (36) are rotatably installed on the long die rod (3).

Citation Information

Patent Citations

  • Novel combined stamping equipment for multi-section machining of metal plates

    CN115229011A

  • Punching and flanging die for radiator

    CN215614491U