A continuous stamping device for the curved surface forming of medium-thick plates

Through the adaptive positioning structure of the top and side blocks and the air pressure adjustment of the buffer plate, the versatility and efficiency of the curved surface molding device of the medium and thick plates is solved, and high-precision continuous stamping and automatic discharge of sheets of different specifications are achieved.

CN120038224BActive Publication Date: 2025-07-08JIANGSU BOLIN MACHINERY MFG
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Patent Information

Application Number
CN202510528717.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2025-07-08
Estimated Expiration
2045-04-25

AI Technical Summary

Technical Problem

The existing medium-thick plate curved stamping device requires frequent replacement of molds or equipment for sheets of different specifications, which is expensive, poor versatility, and low stamping efficiency, so continuous stamping cannot be achieved.

Method used

Adaptive positioning structure of the top and side blocks is adopted, combined with buffer plates and air pressure adjustment, to realize adaptive stamping of medium and thick plates of different widths and thicknesses, and automatic discharge of materials is achieved through unloading mechanisms.

Benefits of technology

It improves stamping accuracy and equipment versatility, reduces production costs, enhances stamping stability and efficiency, and realizes continuous stamping of medium and thick plates.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the technical field of medium and heavy plate processing, and discloses a continuous stamping device for the curved surface forming of medium and heavy plates, including a positioning mechanism. The positioning mechanism includes a main body housing, a first cavity, a top block, a first ventilation groove, a second cavity, a side block, and a first limiting groove; through the cooperation of structures such as the top block and the side block, the present invention facilitates the stamping and forming of medium and heavy plates with different widths and thicknesses, and can also correct the position of the medium and heavy plate by extrusion during its movement, which helps to ensure that the medium and heavy plate is in a relatively accurate position before stamping processing, thereby improving the precision of stamping processing, reducing stamping defects caused by the position deviation of the medium and heavy plate, improving the quality of stamped parts, and the slider can stamp medium and heavy plates with different widths, which greatly enhances the versatility of the stamping equipment, does not require frequent replacement of stamping dies or equipment components for medium and heavy plates with different widths, reduces production costs and improves production efficiency.
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Description

Technical Field

[0001] The present invention belongs to the technical field of medium and heavy plate processing, and particularly relates to a continuous stamping device for the curved surface forming of medium and heavy plates. Background Technique

[0002] In modern manufacturing, medium and heavy plates, with their excellent strength and stiffness characteristics, are widely used in many key fields such as construction, bridges, ships, and automobile manufacturing. From towering skyscrapers to ten-thousand-ton ocean liners cutting through the waves, medium and heavy plates play an indispensable and important role. For example, in the aerospace field, components such as the fuselage and wings of airplanes need to be processed from medium and heavy plates into specific curved surface shapes to meet aerodynamic requirements; in automobile manufacturing, some parts of the body frame also require the curved surface forming of medium and heavy plates to provide structural strength and an aesthetic appearance. During the production process of medium and heavy plates, curved surface forming is an important processing technology, and the processing quality and efficiency determine the performance and market competitiveness of the final product.

[0003] Existing stamping devices for the curved surface forming of medium and heavy plates can often only process medium and heavy plates with specific widths and thicknesses. For medium and heavy plates of different specifications, the molds or equipment need to be frequently replaced, which is not only costly and has poor versatility, but also causes the stamping of the device to be intermittent due to downtime, reducing the stamping efficiency and preventing the device from continuously stamping medium and heavy plates. Therefore, a continuous stamping device for the curved surface forming of medium and heavy plates is proposed. Summary of the Invention

[0004] To solve the problems raised in the above background technique, the present invention provides a continuous stamping device for the curved surface forming of medium and heavy plates.

[0005] To achieve the above object, the present invention provides the following technical solution: A continuous stamping device for the curved surface forming of medium and heavy plates, including a main body mechanism, and further including:

[0006] A positioning mechanism, the main body mechanism is located inside the positioning mechanism;

[0007] Among them, the positioning mechanism includes a main body housing, a first cavity, a top block, a first ventilation groove, a second cavity, a side block, and a first limiting groove. A first cavity and a second cavity are opened inside the main body housing. A top block for adapting to the thickness of the medium and heavy plate is slidably connected inside the first cavity. A side block for correcting the position of the medium and heavy plate is slidably connected inside the second cavity. The first cavity is communicated with the second cavity through the first ventilation groove. A first limiting groove is opened on the side block.

[0008] Preferably, a plurality of first springs are fixedly connected to the top of the top block, and a second spring is fixedly connected to the side of the side block away from the first limiting groove. The top of the top block is elastically connected to the inner wall of the first cavity through the first spring, and the side of the side block away from the first limiting groove is elastically connected to the inner wall of the second cavity through the second spring. The bottom of the top block and the side of the side block close to the first limiting groove respectively penetrate through the inner walls of the first cavity and the second cavity, and inclined surfaces are provided on both the top block and the side block.

[0009] Preferably, a buffer mechanism is arranged inside the positioning mechanism. The buffer mechanism includes a third cavity, and a plurality of first piston rods are slidably connected inside the third cavity. A third spring is fixedly connected to the bottom of the first piston rod, and a buffer plate is rotatably connected to the top of the first piston rod. A second ventilation groove is formed on the side of the third cavity, and a forming groove is formed inside the main body housing.

[0010] Preferably, the bottom of the first piston rod is elastically connected to the inner wall of the third cavity through the third spring. The top of the first piston rod penetrates through the inner wall of the third cavity. The forming groove is located above the third cavity. There are a plurality of buffer plates, and the buffer plates are slidably connected to the forming groove.

[0011] Preferably, the third cavity communicates with the inner wall of the second cavity through the second ventilation groove, and a plurality of buffer plates are all located below the side block.

[0012] Preferably, a stamping mechanism is arranged inside the positioning mechanism. The stamping mechanism is located above the buffer mechanism. The stamping mechanism includes a cylinder, and a telescopic rod is slidably connected inside the cylinder. A stamping block is fixedly connected to the bottom of the telescopic rod. A chute is formed on the bottom of the stamping block. A second limiting groove is formed on the inner wall of the chute. A sliding rod is fixedly connected inside the chute. A slider is slidably connected inside the chute. Limiting blocks are fixedly connected to the top and side of the slider, and a sliding hole is formed in the slider.

[0013] Preferably, the slider is slidably connected to the second limiting groove through the limiting block at the top, and the slider is slidably connected to the sliding rod through the sliding hole. The bottoms of the slider and the stamping block are both arc-shaped. The stamping block is located on the side of the side block close to the buffer plate. The cylinder is located above the main body housing. The slider is located on the side of the stamping block close to the side block. The slider is slidably connected to the first limiting groove through the limiting block on the side. A plurality of buffer plates are all located below the stamping block and the slider.

[0014] Preferably, the main body mechanism includes a medium-thick plate. A plurality of rollers are rotatably connected inside the main body housing. Two adjustment slots are provided on the side of the main body housing. A discharge slot is provided on one side of the main body housing close to the adjustment slot. The rollers are slidably connected to the adjustment slots. Both the medium-thick plate and the discharge slot are located between a plurality of rollers. The medium-thick plate is slidably connected to the inner wall of the main body housing. The top and bottom of the medium-thick plate are respectively abutted against a plurality of rollers. The size of the discharge slot is larger than that of the medium-thick plate. The roller located inside the adjustment slot is directly elastically connected to the inner wall of the adjustment slot through a telescopic rod spring.

[0015] Preferably, a discharge mechanism is provided above the positioning mechanism. The discharge mechanism includes a first air extraction cavity and an airbag. A second piston rod is slidably connected inside the first air extraction cavity. The top of the second piston rod is fixedly connected to a connecting plate. A ventilation hole is provided on the top of the main body housing. A second air extraction cavity is provided on one side of the main body housing away from the stamping block. A push plate is slidably connected inside the second air extraction cavity. An air delivery pipe is provided on one side of the second air extraction cavity away from the push plate. The top of the connecting plate abuts against the airbag. A fourth spring is fixedly connected inside the airbag.

[0016] Preferably, the bottom of the connecting plate is fixedly connected to the top of the stamping block. The inner wall of the airbag is elastically connected to the inner wall of the main body housing through a fourth spring. The inside of the airbag is communicated with the second air extraction cavity through an air delivery pipe. The push plate penetrates through the inner wall of the second air extraction cavity and extends into the interior of the second cavity. One side of the push plate away from the second air extraction cavity abuts against the side block. The inside of the first air extraction cavity is communicated with the interior of the second cavity through a ventilation hole.

[0017] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0018] By setting the cooperation of structures such as the top block and the side block, the present invention facilitates the stamping and forming of medium-thick plates with different widths and thicknesses. The side block and the top block can adapt to the width and height of the medium-thick plate. During the movement of the medium-thick plate, its position can be corrected by extrusion, which helps to ensure that the medium-thick plate is in a relatively accurate position before stamping processing, thereby improving the accuracy of stamping processing, reducing stamping defects caused by the position deviation of the medium-thick plate, improving the quality of stamped parts, and applying a pulling force to the limiting block on the side of the slider through the first limiting groove, causing it to move in the chute towards the side block, enabling the slider to stamp medium-thick plates with different widths. This greatly enhances the versatility of the stamping equipment, eliminates the need to frequently replace stamping dies or equipment components for medium-thick plates with different widths, reduces production costs and improves production efficiency;

[0019] Through the cooperation of structures such as a buffer plate and a third spring, the present invention facilitates the support and buffering of the deformation of medium-thick plates during the stamping process. During the stamping process, the medium-thick plate will squeeze the top block downward, causing the top block to squeeze the first piston rod downward. At the same time, because the buffer plate is rotatable on the first piston rod, several buffer plates will fit the curved surface formed by the medium-thick plate, avoiding defects such as local excessive deformation or wrinkles caused by uneven stress during stamping of the medium-thick plate, thereby improving the shape accuracy and surface quality of the medium-thick plate after stamping. The downward movement of the first piston rod will squeeze the space in the third spring and the third cavity. At the same time, since the spaces in the first cavity and the second cavity are both squeezed, and the first cavity, the second cavity, and the third cavity are connected through the first ventilation groove and the second ventilation groove, the air pressure in the third cavity is relatively high. At this time, the buffer plate will be supported and buffered by the air pressure in the third cavity and the elastic force of the third spring, which can effectively buffer the impact force during the stamping process, making the stamping effect more stable. At the same time, the vibration energy generated during the stamping process can be absorbed by the third spring and the air pressure, reducing the impact on other components of the stamping equipment and protecting the normal operation of the entire equipment, which is beneficial to continuous stamping of medium-thick plates;

[0020] Through the cooperation of structures such as a second piston rod and a push plate, the present invention facilitates the blanking of medium-thick plates. After stamping is completed, the telescopic rod is lifted by the cylinder, which will drive the second piston rod to move upward in the first air extraction cavity, and the gas in the second cavity is sucked into the inside of the first air extraction cavity through the ventilation hole, reducing the air pressure in the second cavity, thereby reducing the extrusion force of the side block and the top block on the medium-thick plate. When the top of the connecting plate abuts against the airbag, the continued upward movement of the stamping block will squeeze the airbag through the connecting plate, causing the gas inside it to enter the inside of the second air extraction cavity through the air delivery pipe, applying pressure to the push plate, thereby pushing the side block to push the medium-thick plate out from the discharge groove, realizing the automation of unloading, reducing the workload of manual unloading, improving production efficiency, and also reducing the safety risks that may be brought by manual operation, facilitating continuous stamping of the device. Description of the Drawings

[0021] Figure 1 Schematic three-dimensional structure diagram of the positioning mechanism of the present invention;

[0022] Figure 2 Front view structure diagram of the main body mechanism of the present invention;

[0023] Figure 3 Schematic sectional structure diagram of the stamping mechanism of the present invention;

[0024] Figure 4 Schematic sectional structure diagram of the positioning mechanism of the present invention;

[0025] Figure 5 Schematic sectional structure diagram of the unloading mechanism of the present invention;

[0026] Figure 6 Schematic three-dimensional structure diagram of the buffer mechanism of the present invention;

[0027] Figure 7 Exploded structure diagram of the positioning mechanism of the present invention;

[0028] Figure 8 Bottom view structure diagram of the stamping structure of the present invention.

[0029] In the figure: 1. Positioning mechanism; 101. Main body housing; 102. First cavity; 103. First spring; 104. Top block; 105. First ventilation groove; 106. Second cavity; 107. Second spring; 108. Side block; 109. First limiting groove; 2. Buffer mechanism; 201. Third cavity; 202. Third spring; 203. Piston rod; 204. Buffer plate; 205. Second ventilation groove; 206. Forming groove; 3. Stamping mechanism; 301. Cylinder; 302. Telescopic rod; 303. Stamping block; 304. Slide groove; 305. Second limiting groove; 306. Slide rod; 307. Slide block; 308. Limiting block; 309. Slide hole; 4. Main body mechanism; 401. Medium-thick plate; 402. Roller; 403. Adjusting groove; 404. Discharging groove; 405. Telescopic rod spring; 5. Discharging mechanism; 501. First air extraction cavity; 502. Second piston rod; 503. Connecting plate; 504. Ventilation hole; 505. Second air extraction cavity; 506. Pushing plate; 507. Air conveying pipe; 508. Airbag; 509. Fourth spring. Detailed implementation manners

[0030] 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. 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.

[0031] As Figures 1 to 8 shown, the present invention provides a continuous stamping device for forming a curved surface of a medium-thick plate, including a main body mechanism 4, and further including:

[0032] A positioning mechanism 1, and the main body mechanism 4 is located inside the positioning mechanism 1;

[0033] Among them, the positioning mechanism 1 includes a main body housing 101, a first cavity 102, a top block 104, a first ventilation groove 105, a second cavity 106, a side block 108, and a first limiting groove 109. A first cavity 102 and a second cavity 106 are provided inside the main body housing 101. A top block 104 for adapting to the thickness of the medium-thick plate 401 is slidably connected inside the first cavity 102. A side block 108 for correcting the position of the medium-thick plate 401 is slidably connected inside the second cavity 106. The first cavity 102 communicates with the second cavity 106 through the first ventilation groove 105. A first limiting groove 109 is provided on the side block 108.

[0034] A plurality of first springs 103 are fixedly connected to the top of the top block 104. A second spring 107 is fixedly connected to the side of the side block 108 away from the first limiting groove 109. The top of the top block 104 is elastically connected to the inner wall of the first cavity 102 through the first spring 103. The side of the side block 108 away from the first limiting groove 109 is elastically connected to the inner wall of the second cavity 106 through the second spring 107. The bottom of the top block 104 and the side of the side block 108 close to the first limiting groove 109 respectively penetrate the inner walls of the first cavity 102 and the second cavity 106. Both the top block 104 and the side block 108 are provided with inclined surfaces.

[0035] Adopting the above solution: Through the cooperation of structures such as the top block 104 and the side block 108, it is convenient to stamp and form medium-thick plates 401 with different widths and thicknesses. During the process of conveying the medium-thick plate 401, its top will squeeze the inclined surface on the top block 104, causing it to move upward under pressure and squeeze the first spring 103 and compress the space in the first cavity 102. At the same time, the side of the medium-thick plate 401 will squeeze the inclined surface on the side block 108, causing it to slide away from the medium-thick plate 401 under pressure, squeeze the second spring 107 and compress the space in the second cavity 106, so that the side block 108 and the top block 104 can adapt to the width and height of the medium-thick plate 401, and can correct its position by squeezing during the movement of the medium-thick plate 401, which helps to ensure that the medium-thick plate 401 is in a relatively accurate position before stamping processing, thereby improving the precision of stamping processing, reducing stamping defects caused by the position deviation of the medium-thick plate 401, improving the quality of stamped parts, and applying a pulling force to the limiting block 308 on the side of the slider 307 through the first limiting groove 109, causing it to move in the chute 304 towards the side block 108, enabling the slider 307 to stamp medium-thick plates 401 with different widths. This greatly enhances the versatility of the stamping equipment, eliminates the need to frequently replace stamping dies or equipment components for medium-thick plates with different widths, reduces production costs and improves production efficiency.

[0036] Such as Figures 3 to 8As shown in the figure, a buffer mechanism 2 is arranged inside the positioning mechanism 1. The buffer mechanism 2 includes a third cavity 201. A plurality of first piston rods 203 are slidably connected inside the third cavity 201. A third spring 202 is fixedly connected to the bottom of the first piston rod 203. A buffer plate 204 is rotatably connected to the top of the first piston rod 203. A second ventilation groove 205 is formed on the side of the third cavity 201. A molding groove 206 is formed inside the main body housing 101. The bottom of the first piston rod 203 is elastically connected to the inner wall of the third cavity 201 through the third spring 202. The top of the first piston rod 203 penetrates through the inner wall of the third cavity 201. The molding groove 206 is located above the third cavity 201. There are a plurality of buffer plates 204. The buffer plates 204 are slidably connected to the molding groove 206. The third cavity 201 communicates with the inner wall of the second cavity 106 through the second ventilation groove 205. A plurality of buffer plates 204 are all located below the side block 108.

[0037] A stamping mechanism 3 is arranged inside the positioning mechanism 1. The stamping mechanism 3 is located above the buffer mechanism 2. The stamping mechanism 3 includes a cylinder 301. A telescopic rod 302 is slidably connected inside the cylinder 301. A stamping block 303 is fixedly connected to the bottom of the telescopic rod 302. A chute 304 is formed at the bottom of the stamping block 303. A second limiting groove 305 is formed on the inner wall of the chute 304. A slide bar 306 is fixedly connected inside the chute 304. A slider 307 is slidably connected inside the chute 304. Limit blocks 308 are fixedly connected to the top and side of the slider 307. A slide hole 309 is formed in the slider 307. The top of the cylinder 301 is connected to the stamping frame in the workshop.

[0038] The slider 307 is slidably connected to the second limiting groove 305 through the limit block 308 at the top. The slider 307 is slidably connected to the slide bar 306 through the slide hole 309. The bottoms of the slider 307 and the stamping block 303 are both arc-shaped. The stamping block 303 is located on the side of the side block 108 close to the buffer plate 204. The cylinder 301 is located above the main body housing 101. The slider 307 is located on the side of the stamping block 303 close to the side block 108. The slider 307 is slidably connected to the first limiting groove 109 through the limit block 308 on the side. A plurality of buffer plates 204 are all located below the stamping block 303 and the slider 307.

[0039] The main body mechanism 4 includes a medium-thick plate 401. A plurality of rollers 402 are rotatably connected inside the main body housing 101. Two adjustment slots 403 are formed on the side of the main body housing 101. A discharge slot 404 is formed on one side of the main body housing 101 close to the adjustment slot 403. The rollers 402 are slidably connected to the adjustment slots 403. Both the medium-thick plate 401 and the discharge slot 404 are located between the plurality of rollers 402. The medium-thick plate 401 is slidably connected to the inner wall of the main body housing 101. The top and bottom of the medium-thick plate 401 are respectively abutted against the plurality of rollers 402. The size of the discharge slot 404 is larger than that of the medium-thick plate 401. The rollers 402 located inside the adjustment slots 403 are directly elastically connected to the inner wall of the adjustment slots 403 through telescopic rod springs 405.

[0040] Adopting the above scheme: Through the cooperation of structures such as the buffer plate 204 and the third spring 202, it is convenient to support and buffer the deformation of the medium-thick plate 401 during the stamping process. During the stamping process, the medium-thick plate 401 will squeeze the buffer plate 204 downward, causing the buffer plate 204 to squeeze the first piston rod 203 downward. At the same time, because the buffer plate 204 can rotate on the first piston rod 203, several buffer plates 204 will fit the curved surface formed by the medium-thick plate 401, avoiding defects such as local excessive deformation or wrinkles of the medium-thick plate 401 due to uneven force during stamping, thereby improving the shape accuracy and surface quality of the medium-thick plate 401 after stamping. The downward movement of the first piston rod 203 will squeeze the space in the third spring 202 and the third cavity 201. At the same time, since the spaces in the first cavity 102 and the second cavity 106 are also squeezed, and the first cavity 102, the second cavity 106, and the third cavity 201 are connected through the first ventilation groove 105 and the second ventilation groove 205, the air pressure in the third cavity 201 is relatively large. At this time, the buffer plate 204 is supported and buffered by the air pressure in the third cavity 201 and the elastic force of the third spring 202, which can effectively buffer the impact force during the stamping process, make the stamping effect more stable, and at the same time, the vibration energy generated during the stamping process can be absorbed by the third spring 202 and the air pressure, reducing the impact on other components of the stamping equipment and protecting the normal operation of the entire equipment, which is beneficial to continuous stamping of the medium-thick plate 401;

[0041] When the medium-thick plate 401 is wider or thicker, the punching force required for the medium-thick plate 401 will increase. Since the first cavity 102, the second cavity 106, and the third cavity 201 are connected through the first ventilation groove 105 and the second ventilation groove 205, the air pressure in the third cavity 201 will increase, thereby increasing the supporting force for the medium-thick plate 401, further maintaining the stability of stamping, enabling the device to adaptively adjust the supporting force according to the width and thickness of the medium-thick plate 401, and improving the adaptive effect of the device.

[0042] Such asFigures 5 to 8 As shown in the figure, a discharging mechanism 5 is arranged above the positioning mechanism 1. The discharging mechanism 5 includes a first air extraction chamber 501 and an airbag 508. A second piston rod 502 is slidably connected inside the first air extraction chamber 501. The top of the second piston rod 502 is fixedly connected to a connecting plate 503. An air vent hole 504 is opened at the top of the main body housing 101. A second air extraction chamber 505 is arranged on one side of the main body housing 101 away from the stamping block 303. A push plate 506 is slidably connected inside the second air extraction chamber 505. An air delivery pipe 507 is arranged on one side of the second air extraction chamber 505 away from the push plate 506. The top of the connecting plate 503 abuts against the airbag 508. A fourth spring 509 is fixedly connected inside the airbag 508.

[0043] A fixed connection is made between the bottom of the connecting plate 503 and the top of the stamping block 303. The inner wall of the airbag 508 is elastically connected to the inner wall of the main body housing 101 through the fourth spring 509. The inside of the airbag 508 is communicated with the second air extraction chamber 505 through the air delivery pipe 507. The push plate 506 penetrates through the inner wall of the second air extraction chamber 505 and extends into the second cavity 106. One side of the push plate 506 away from the second air extraction chamber 505 abuts against the side block 108. The inside of the first air extraction chamber 501 is communicated with the inside of the second cavity 106 through the air vent hole 504.

[0044] Adopting the above scheme: Through the cooperation of structures such as the second piston rod 502 and the push plate 506, it is convenient to unload the medium-thick plate 401. After stamping is completed, when the telescopic rod 302 is lifted by the cylinder 301, the second piston rod 502 will be lifted inside the first air extraction chamber 501, and the gas in the second cavity 106 will be sucked into the first air extraction chamber 501 through the air vent hole 504, reducing the air pressure in the second cavity 106, thereby reducing the extrusion force of the side block 108 and the top block 104 on the medium-thick plate 401. When the top of the connecting plate 503 abuts against the airbag 508, when the stamping block 303 continues to rise, it will squeeze the airbag 508 through the connecting plate 503, and the gas inside it will enter the second air extraction chamber 505 through the air delivery pipe 507, applying pressure to the push plate 506, thereby pushing the side block 108 to push the medium-thick plate 401 out from the unloading groove 404, realizing the automation of unloading, reducing the workload of manual unloading, improving the production efficiency, and also reducing the safety risks that may be brought by manual operation, facilitating the continuous stamping of the device.

[0045] Working principle and usage process of the present invention: First, an external power source is used to rotate the roller 402 located below the stamping block 303, and the medium-thick plate 401 to be stamped is placed inside the main body housing 101, so that it moves below the slider 307 driven by the rotation of the roller 402. When the medium-thick plate 401 passes through the roller 402 on the side of the slider 307, it will upwardly squeeze the roller 402 to compress the telescopic rod spring 405 at its top, and the roller 402 will apply pressure to the top of the medium-thick plate 401 through the elastic force of the telescopic rod spring 405. During this process, the top of the medium-thick plate 401 will squeeze the inclined surface on the top block 104, causing it to move upward under the action of the pressure and squeeze the first spring 103 and compress the space in the first cavity 102. At the same time, the side of the medium-thick plate 401 will squeeze the inclined surface on the side block 108, causing it to slide away from the medium-thick plate 401 under the pressure, squeeze the second spring 107 and compress the space in the second cavity 106, so that the side block 108 and the top block 104 can adapt to the width and height of the medium-thick plate 401, and can correct its position by squeezing during the movement of the medium-thick plate 401, which helps to ensure that the medium-thick plate 401 is in a relatively accurate position before stamping processing, and will apply a pulling force to the limiting block 308 on the side of the slider 307 through the first limiting groove 109, causing it to move in the sliding groove 304 towards the side block 108, so that the slider 307 can stamp medium-thick plates 401 of different widths;

[0046] Subsequently, the cylinder 301 is used to lower the telescopic rod 302, driving the stamping block 303 and the slider 307 to descend to stamp the medium-thick plate 401 below it, so that the medium-thick plate 401 is formed into a curved surface under the action of the stamping force. During this process, the medium-thick plate 401 will downwardly squeeze the top block 104, causing the top block 104 to downwardly squeeze the first piston rod 203. At the same time, because the buffer plates 204 are rotatable on the first piston rod 203, several buffer plates 204 will fit the curved surface formed by the medium-thick plate 401, avoiding defects such as local excessive deformation or wrinkles caused by uneven stress during stamping of the medium-thick plate 401, thereby improving the shape accuracy and surface quality of the medium-thick plate 401 after stamping. The downward movement of the first piston rod 203 will squeeze the third spring 202 and the space in the third cavity 201. At the same time, since the spaces in the first cavity 102 and the second cavity 106 are both squeezed, and the first cavity 102, the second cavity 106 and the third cavity 201 are connected through the first ventilation groove 105 and the second ventilation groove 205, the air pressure in the third cavity 201 is relatively large. At this time, the buffer plates 204 are supported and buffered by the air pressure in the third cavity 201 and the elastic force of the third spring 202, which can effectively buffer the impact force during the stamping process and at the same time reduce the impact on other components of the stamping equipment;

[0047] During the downward stamping process of the stamping block 303, the second piston rod 502 will be driven by the connecting plate 503 to move downward inside the first air extraction cavity 501, and the air pressure inside the second cavity 106 will be further compressed through the air vent hole 504. After the stamping is completed, when the telescopic rod 302 is driven by the cylinder 301 to move upward, the second piston rod 502 will be driven to move upward inside the first air extraction cavity 501, and the gas inside the second cavity 106 will be sucked into the first air extraction cavity 501 through the air vent hole 504, reducing the air pressure inside the second cavity 106, thereby reducing the extrusion force of the side block 108 and the top block 104 on the medium-thick plate 401. When the top of the connecting plate 503 abuts against the airbag 508, when the stamping block 303 continues to move upward, it will squeeze the airbag 508 through the connecting plate 503, and the gas inside it will enter the second air extraction cavity 505 through the air delivery pipe 507, applying pressure to the push plate 506, thereby pushing the side block 108 to push the medium-thick plate 401 out from the unloading groove 404. The distance between the unloading grooves 404 is greater than the distance of the area for conveying the medium-thick plate 401 inside the main body housing 101, so that even if the two sides of the medium-thick plate 401 are warped during bending forming, the blanking work can still be carried out on it. Finally, the above steps can be repeated to carry out continuous stamping work.

[0048] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.

[0049] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A continuous stamping device for the curved surface forming of medium-thick plates, comprising a main body mechanism (4), characterized in that: Further included are: A positioning mechanism (1), and the main body mechanism (4) is located inside the positioning mechanism (1); Among them, the positioning mechanism (1) includes a main body housing (101), a first cavity (102), a top block (104), a first ventilation groove (105), a second cavity (106), a side block (108), and a first limiting groove (109). A first cavity (102) and a second cavity (106) are formed inside the main body housing (101). A top block (104) for adapting to the thickness of the medium-thick plate (401) is slidably connected inside the first cavity (102). A side block (108) for correcting the position of the medium-thick plate (401) is slidably connected inside the second cavity (106). The first cavity (102) communicates with the second cavity (106) through the first ventilation groove (105). A first limiting groove (109) is formed on the side block (108); A buffer mechanism (2) is arranged inside the positioning mechanism (1). The buffer mechanism (2) includes a third cavity (201). A plurality of first piston rods (203) are slidably connected inside the third cavity (201). A third spring (202) is fixedly connected to the bottom of the first piston rod (203). A buffer plate (204) is rotatably connected to the top of the first piston rod (203). A second ventilation groove (205) is formed on the side of the third cavity (201). A forming groove (206) is formed inside the main body housing (101); A discharging mechanism (5) is arranged above the positioning mechanism (1). The discharging mechanism (5) includes a first air extraction cavity (501) and an airbag (508). A second piston rod (502) is slidably connected inside the first air extraction cavity (501). A connecting plate (503) is fixedly connected to the top of the second piston rod (502). A ventilation hole (504) is formed on the top of the main body housing (101). A second air extraction cavity (505) is arranged on one side of the main body housing (101) away from the stamping block (303). A push plate (506) is slidably connected inside the second air extraction cavity (505). An air delivery pipe (507) is arranged on one side of the second air extraction cavity (505) away from the push plate (506). The top of the connecting plate (503) abuts against the airbag (508). A fourth spring (509) is fixedly connected inside the airbag (508).

2. The continuous stamping device for the curved surface forming of medium-thick plates according to claim 1, wherein: A plurality of first springs (103) are fixedly connected to the top of the top block (104). A second spring (107) is fixedly connected to the side of the side block (108) away from the first limiting groove (109). The top of the top block (104) is elastically connected to the inner wall of the first cavity (102) through the first spring (103). The side of the side block (108) away from the first limiting groove (109) is elastically connected to the inner wall of the second cavity (106) through the second spring (107). The bottom of the top block (104) and the side of the side block (108) close to the first limiting groove (109) respectively penetrate the inner walls of the first cavity (102) and the second cavity (106). Inclined surfaces are provided on both the top block (104) and the side block (108).

3. The continuous stamping device for the curved surface forming of medium and heavy plates according to claim 1, characterized in that: The bottom of the first piston rod (203) is elastically connected to the inner wall of the third cavity (201) through the third spring (202). The top of the first piston rod (203) penetrates the inner wall of the third cavity (201). The forming groove (206) is located above the third cavity (201). The number of the buffer plates (204) is several. The buffer plates (204) are slidably connected to the forming groove (206).

4. The continuous stamping device for medium-thick plate curved surface forming according to claim 1, characterized in that: The third cavity (201) is communicated with the inner wall of the second cavity (106) through the second ventilation groove (205). A plurality of the buffer plates (204) are all located below the side block (108).

5. The continuous stamping device for the curved surface forming of medium and heavy plates according to claim 1, wherein: A stamping mechanism (3) is arranged inside the positioning mechanism (1). The stamping mechanism (3) is located above the buffer mechanism (2). The stamping mechanism (3) includes a cylinder (301). A telescopic rod (302) is slidably connected inside the cylinder (301). A stamping block (303) is fixedly connected to the bottom of the telescopic rod (302). A chute (304) is formed in the bottom of the stamping block (303). A second limiting groove (305) is formed in the inner wall of the chute (304). A slide bar (306) is fixedly connected inside the chute (304). A slider (307) is slidably connected inside the chute (304). Limiting blocks (308) are fixedly connected to the top and the side of the slider (307). A slide hole (309) is formed in the slider (307).

6. The continuous stamping device for the curved surface forming of medium-thick plates according to claim 5, characterized in that: The slider (307) is slidably connected between the limiting block (308) at the top and the second limiting groove (305). The slider (307) is slidably connected between the slide hole (309) and the slide bar (306). The bottoms of the slider (307) and the stamping block (303) are both arc-shaped. The stamping block (303) is located on one side of the side block (108) close to the buffer plate (204). The cylinder (301) is located above the main body housing (101). The slider (307) is located on one side of the stamping block (303) close to the side block (108). The slider (307) is slidably connected between the limiting block (308) on the side and the first limiting groove (109). A plurality of the buffer plates (204) are all located below the stamping block (303) and the slider (307).

7. The continuous stamping device for the curved surface forming of medium and heavy plates according to claim 5, characterized in that: The main body mechanism (4) includes a medium-thick plate (401). A plurality of rollers (402) are rotatably connected inside the main body housing (101). Two adjusting grooves (403) are provided on the side of the main body housing (101). A discharge groove (404) is provided on one side of the main body housing (101) close to the adjusting groove (403). The rollers (402) are slidably connected between the adjusting grooves (403). The medium-thick plate (401) and the discharge groove (404) are both located between a plurality of rollers (402). The medium-thick plate (401) is slidably connected between the inner walls of the main body housing (101). The top and bottom of the medium-thick plate (401) are respectively abutted against a plurality of rollers (402). The size of the discharge groove (404) is larger than that of the medium-thick plate (401). The rollers (402) located inside the adjusting groove (403) are directly elastically connected to the inner wall of the adjusting groove (403) through a telescopic rod spring (405).

8. The continuous stamping device for the curved surface forming of medium and heavy plates according to claim 7, characterized in that: The bottom of the connecting plate (503) is fixedly connected to the top of the stamping block (303). The inner wall of the airbag (508) is elastically connected to the inner wall of the main body housing (101) through a fourth spring (509). The inside of the airbag (508) is communicated with the second air extraction cavity (505) through an air delivery pipe (507). The push plate (506) penetrates through the inner wall of the second air extraction cavity (505) and extends into the inside of the second cavity (106). One side of the push plate (506) away from the second air extraction cavity (505) abuts against the side block (108). The inside of the first air extraction cavity (501) is communicated with the inside of the second cavity (106) through a ventilation hole (504).

Citation Information

Patent Citations

  • Stamping device for steel production

    CN216226554U