Shaping device for metal steel machining
The unidirectional rotation of the transfer table is achieved through the electric telescopic rod and ratchet structure of the feeding mechanism. Combined with the conveying belt and feeding teeth of the feeding mechanism, the problem of discontinuous steel loading in the existing device is solved, and the continuous processing and automatic discharge of steel is realized, which improves processing efficiency.
Patent Information
- Application Number
- CN202510600537.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the steel loading process of existing plastic shaping devices, the rack and ratchet are prone to obstacles, resulting in deformation of the rack and the continuous loading cannot be achieved.
The feeding mechanism is adopted to realize unidirectional rotation of the transfer table and continuous push of steel through an electric telescopic rod and ratchet structure. The feeding mechanism uses conveying belts and feeding teeth to separate the steel to prevent collisions and combine it with the discharge mechanism to achieve automatic discharge.
The continuous loading and automatic discharge of steel is realized, processing efficiency is improved, the pressure of the electric telescopic rod is reduced, and the steel is prevented from collision and accumulation.
Smart Images

Figure CN120243756A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of metal steel processing, and particularly to a shaping device for metal steel processing. Background Technique
[0002] Metal steel processing refers to the process of cutting, shaping, connecting, or surface treating metal steel through mechanical, thermal, or chemical methods to manufacture parts or products. Its core purpose is to change the shape, size, or properties of the steel to meet the needs of industries such as industry or construction. Common processing methods include cutting (turning, milling, drilling), stamping, welding, forging, casting, etc.
[0003] In metal steel processing, shaping is to correct the shape of the processed or deformed steel to restore or achieve the geometric accuracy required by the design, so as to ensure the dimensional accuracy, flatness, or functionality of the workpiece. In order to continuously feed the steel, the existing shaping device will rotate the feeding tray by driving the ratchet to rotate through the rack during the process of the push block pushing the steel, so that the receiving grooves on the feeding tray can be rotated in turn, and multiple steels can be loaded into the receiving grooves in sequence. However, when the push block pushes the next steel, the rack will reset, and the rack will come into contact with the ratchet again, causing the ratchet to obstruct the rack, and the rack is prone to bending. After long-term feeding, the tooth profile is prone to deformation, and continuous feeding of the steel cannot be achieved. Summary of the Invention
[0004] The purpose of the present invention is to provide a shaping device for metal steel processing to solve the problems raised in the above background technique.
[0005] To achieve the above purpose, the present invention provides the following technical solutions: A shaping device for metal steel processing, comprising: a processing platform and a base fixedly installed at the bottom of the processing platform, a feeding box fixedly installed on the top of the processing platform, a material transfer table arranged on the top of the processing platform on the right side of the feeding box, four feeding grooves symmetrically distributed around the center are opened on the outer side of the material transfer table, a mounting frame is fixedly installed on the top of the processing platform, an electric push rod is fixedly installed on the top of the mounting frame, and a bending member is fixedly installed at the bottom of the electric push rod; further comprising: a feeding mechanism for enabling the material transfer table to continuously feed the steel, the feeding mechanism is installed at the bottom of the processing platform; a discharging mechanism for discharging the processed steel on the material transfer table, the discharging mechanism is installed inside the material transfer table; a feeding mechanism for enabling the steel in the feeding box to be safely discharged, the feeding mechanism is installed inside the feeding box.
[0006] Preferably, the feeding mechanism includes an electric telescopic rod fixedly installed on the top of the processing platform. The end of the electric telescopic rod is fixedly installed with a U-shaped bracket. Both ends of the U-shaped bracket are fixedly installed with push blocks. The top of the push block is hinged with an elastic push plate, and the elastic push plate is of an inclined structure. The bottom of the material transfer table is fixedly installed with a rotating rod, and the rotating rod is rotatably installed between the processing platform and the base. The outer side of the rotating rod is fixedly installed with a positioning disk, and a plurality of sprocket teeth symmetrically distributed about the center are slidably installed on the outer side of the positioning disk. An elastic telescopic rod is fixedly installed between the sprocket tooth and the inner side of the positioning disk. An L-shaped moving plate is fixedly installed between the electric telescopic rod and the U-shaped bracket. A long strip groove for the L-shaped moving plate to be limited and slide is opened on the surface of the processing platform. One end of the L-shaped moving plate away from the U-shaped bracket is fixedly installed with a movable plate, and a plurality of triangular push teeth evenly distributed are fixedly installed on the outer side of the movable plate. The inclined surfaces of the triangular push teeth and the sprocket teeth are both arc surface structures. A pressing component for positioning the rotating rod is further arranged at the bottom of the processing platform.
[0007] Preferably, the discharging mechanism includes a receiving plate arranged in the receiving groove on the material transfer table. The bottom of the receiving plate is hinged with a positioning plate, and the positioning plate is fixedly installed on the inner side of the receiving groove. The bottom of the receiving plate is fixedly installed with a mounting plate, and a mounting rod is fixedly installed on the outer side of the mounting plate. A U-shaped socket is slidably installed on the outer side of the mounting rod. A sliding rod is fixedly installed at the bottom of the U-shaped socket, and the sliding rod slidably penetrates the bottom of the material transfer table. One end of the sliding rod away from the U-shaped socket is fixedly installed with a hemispherical block, and the bottom of the hemispherical block is in contact with the top of the processing platform. A first spherical groove for the hemispherical block to be limited and inserted is opened on the top of the processing platform, and the first spherical groove is of a one-third spherical structure. Two symmetrically distributed tension springs are fixedly installed between the bottom of the U-shaped socket and the inner side of the receiving groove.
[0008] Preferably, the feeding mechanism includes two conveyor belts symmetrically arranged inside the feeding box. A plurality of receiving teeth evenly distributed are fixedly installed on the outer side of the conveyor belt. Two symmetrically distributed driving rollers are rotatably installed on the inner side of the conveyor belt, and both ends of the driving roller are rotatably installed inside the feeding box. Two symmetrically distributed support bars are fixedly installed inside the feeding box. The top of the support bar and the receiving plate are on the same horizontal line. A groove for the receiving teeth to be limited and slide is opened on the outer side of the support bar. Two mutually meshing gears are rotatably installed on the outer side of the feeding box. A synchronous belt is rotatably installed between the gear and the adjacent driving roller. Two symmetrically distributed transparent plates are opened on the outer side of the feeding box.
[0009] Preferably, the pressing assembly includes an annular seat fixedly installed at the bottom of the processing platform. A plurality of abutting rods distributed centrally are slidably installed inside the annular seat. One end of the abutting rod close to the rotating rod is of a hemispherical structure. A second spherical groove for the abutting rod to be limited and inserted is provided on the outer side of the rotating rod, and the second spherical groove is a one-third spherical structure. A convex ring is provided on the outer side of the abutting rod, and a spring is fixedly installed between the convex ring and the inner side of the annular seat.
[0010] Preferably, two symmetrically distributed positioning rib strips are fixedly installed on the outer side of the ratchet teeth. A sliding groove for the positioning rib strips to be limited and slide is provided inside the positioning disc.
[0011] Preferably, a first guide rod fixedly installed in the long strip groove of the processing platform slidably penetrates the L-shaped moving plate, and a second guide rod fixedly installed on the top of the base slidably penetrates the movable plate.
[0012] Preferably, a guiding arc strip for the hemispherical block to be limited and slide is fixedly installed on the top of the processing platform.
[0013] Preferably, two symmetrically distributed inserting rods are fixedly installed at the bottom of the U-shaped socket. A jack for the inserting rods to be limited and inserted is provided in the receiving groove of the material turning table, and the inserting rods are located inside the tension spring.
[0014] Preferably, a guiding material frame is fixedly installed on the inner wall of the top of the feeding box. An opening for the receiving engaging teeth to be limited and slide is provided on the outer side of the guiding material frame.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. Through the feeding mechanism of the present invention, during the process of pushing the steel in the feeding box towards the material turning table, the material turning table can be rotated by 90 degrees. The receiving groove on the material turning table can be aligned with the steel, facilitating the feeding of the steel. And before pushing the next steel, the material turning table remains in a stopped state, realizing the one-way rotation of the material turning table, enabling continuous feeding of multiple steels, facilitating the continuous processing of multiple steels by the bending part, thereby achieving the effect of continuous processing and improving the processing efficiency of the steel.
[0016] 2. Through the discharging mechanism of the present invention, after the bending part processes the steel, with the rotation of the material turning table, the hemispherical block directly below the steel can be inserted into the first spherical groove on the processing platform, enabling the receiving plate to be in an inclined state, and the processed steel can slide down along the inclined surface of the receiving plate, thereby achieving the effect of automatic discharging.
[0017] 3. Through the feeding mechanism of the present invention, steel can be placed between two conveyor belts, and the bottom of the steel is supported by two symmetrical material receiving teeth. Then, the weight of the steel can be utilized to separate and convey multiple steel materials downward by multiple material receiving teeth, preventing the steel materials from colliding, facilitating the elastic push plate to push out the steel materials, preventing the accumulation of steel materials, reducing the pressure on the electric telescopic rod, and ensuring the continuous pushing of the steel materials, thereby achieving the effect of safe feeding. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the positioning disk and the L-shaped moving plate in the present invention; Figure 3 is Figure 2 the enlarged schematic diagram of area A in Figure 4 is a schematic diagram of the ratchet tooth and the triangular push tooth in the present invention; Figure 5 is a schematic diagram of the transfer table and the guiding arc strip in the present invention; Figure 6 is a schematic diagram of the receiving plate and the hemispherical block in the present invention; Figure 7 is a schematic diagram of the feeding box and the elastic push plate in the present invention; Figure 8 is a schematic diagram of the material receiving tooth and the support bar in the present invention.
[0019] In the figure: 1. Processing platform; 2. Base; 3. Feeding box; 4. Transfer table; 5. Mounting frame; 6. Electric push rod; 7. Bending part; 8. Electric telescopic rod; 9. U-shaped bracket; 10. Push block; 11. Elastic push plate; 12. Rotating rod; 13. Positioning disk; 14. Ratchet tooth; 15. Elastic telescopic rod; 16. L-shaped moving plate; 17. Movable plate; 18. Triangular push tooth; 19. Receiving plate; 20. Positioning plate; 21. Mounting plate; 22. Mounting rod; 23. U-shaped socket; 24. Slide bar; 25. Hemispherical block; 26. Tension spring; 27. Conveyor belt; 28. Material receiving tooth; 29. Driving roller; 30. Support bar; 31. Gear; 32. Synchronous belt; 33. Ring seat; 34. Resistance rod; 35. Spring; 36. Positioning rib; 37. First guiding rod; 38. Second guiding rod; 39. Guiding arc strip; 40. Insert rod; 41. Material guiding frame. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0020] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to 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. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0021] Embodiment 1: Please refer to Figures 1-8 , a shaping device for processing metal steel materials shown in the figure, including a processing platform 1 and a base 2 fixedly installed at the bottom of the processing platform 1. A feeding box 3 is fixedly installed on the top of the processing platform 1 for loading the steel materials to be processed. A material transfer table 4 is arranged on the top of the processing platform 1 on the right side of the feeding box 3. Four feeding grooves are arranged on the outer side of the material transfer table 4 and are symmetrically distributed around the center for rotating and conveying the steel materials. An installation frame 5 is fixedly installed on the top of the processing platform 1. An electric push rod 6 is fixedly installed on the top of the installation frame 5. The bottom end of the electric push rod 6 is fixedly installed with a bending member 7. The bending member 7 is pushed downward by the electric push rod 6 to bend the steel materials on the material transfer table 4; further including: a feeding mechanism for enabling the material transfer table 4 to continuously feed the steel materials. The feeding mechanism is installed at the bottom of the processing platform 1.
[0022] The feeding mechanism includes an electric telescopic rod 8 fixedly installed on the top of the processing platform 1. The end of the electric telescopic rod 8 is fixedly installed with a U-shaped bracket 9. Both ends of the U-shaped bracket 9 are fixedly installed with push blocks 10. The top of the push block 10 is hingedly equipped with an elastic push plate 11, and the elastic push plate 11 is in an inclined structure. The electric telescopic rod 8 can push the elastic push plate 11 to move through the U-shaped bracket 9, so that the elastic push plate 11 can push the steel in the feeding box 3 into the material transfer table 4. When the electric telescopic rod 8 retracts, the elastic push plate 11 can contact the steel in the feeding box 3. Utilizing the resistance of the steel to the inclined surface of the elastic push plate 11, the elastic push plate 11 swings downward, and when the elastic push plate 11 is away from the steel, it can swing upward to reset, realizing continuous feeding of the steel. A rotating rod 12 is fixedly installed at the bottom of the material transfer table 4. The rotating rod 12 is rotatably installed between the processing platform 1 and the base 2. A positioning disk 13 is fixedly installed on the outer side of the rotating rod 12. A plurality of ratchet teeth 14 distributed in central symmetry are slidably installed on the outer side of the positioning disk 13. An elastic telescopic rod 15 is fixedly installed between the ratchet teeth 14 and the inner side of the positioning disk 13. An L-shaped moving plate 16 is fixedly installed between the electric telescopic rod 8 and the U-shaped bracket 9. A long strip groove for the L-shaped moving plate 16 to be limited and slide is formed on the surface of the processing platform 1. One end of the L-shaped moving plate 16 away from the U-shaped bracket 9 is fixedly installed with a movable plate 17. A plurality of triangular push teeth 18 distributed at equal intervals are fixedly installed on the outer side of the movable plate 17. The inclined surfaces of the triangular push teeth 18 and the ratchet teeth 14 are both arc surface structures, so that the electric telescopic rod 8 can drive the movable plate 17 to move through the L-shaped moving plate 16. The triangular push teeth 18 on the movable plate 17 can contact the ratchet teeth 14 on the outer side of the positioning disk 13, making the positioning disk 13 rotate 90 degrees. The positioning disk 13 can drive the material transfer table 4 to rotate synchronously through the rotating rod 12, realizing the position replacement of the four material receiving grooves. When the triangular push teeth 18 are away from the ratchet teeth 14, the elastic push plate 11 can push the steel into the corresponding material receiving groove. When the electric telescopic rod 8 pulls the movable plate 17 to reset, the arc surface of the triangular push teeth 18 can push the arc surface of the ratchet teeth 14 to move, so that the ratchet teeth 14 compress the elastic telescopic rod 15 and retract into the inner side of the positioning disk 13, realizing the one-way rotation of the material transfer table 4. Two symmetrically distributed positioning rib strips 36 are fixedly installed on the outer side of the ratchet teeth 14. A sliding groove for the positioning rib strips 36 to be limited and slide is formed on the inner side of the positioning disk 13, improving the smoothness of the movement of the ratchet teeth 14. A first guide rod 37 sliding through the L-shaped moving plate 16 is fixedly installed in the long strip groove of the processing platform 1. A second guide rod 38 sliding through the movable plate 17 is fixedly installed on the top of the base 2, so that when the L-shaped moving plate 16 and the movable plate 17 move, they can move along the outer sides of the first guide rod 37 and the second guide rod 38 respectively, improving the smoothness of the movement of the L-shaped moving plate 16 and the movable plate 17. A pressing component for positioning the rotating rod 12 is further provided at the bottom of the processing platform 1. The pressing component includes an annular seat 33 fixedly installed at the bottom of the processing platform 1. A plurality of abutting rods 34 distributed in central symmetry are slidably installed on the inner side of the annular seat 33.One end of the abutting rod 34 close to the rotating rod 12 is of a hemispherical structure, and a second spherical groove for the abutting rod 34 to be limited and inserted is formed on the outer side of the rotating rod 12. The second spherical groove is a one-third spherical structure. A convex ring is formed on the outer side of the abutting rod 34, and a spring 35 is fixedly installed between the convex ring and the inner side of the annular seat 33. When the rotating rod 12 rotates, it can push the abutting rod 34 to move along the inner side of the annular seat 33 through the second spherical groove and compress the spring 35. When the rotating rod 12 stops rotating, the resilience of the spring 35 can be utilized to insert the spherical end of the abutting rod 34 into the second spherical groove of the rotating rod 12 to provide positioning for the rotating rod 12 and prevent the rotating rod 12 from rotating back.
[0023] Embodiment 2: Please refer to Figures 2-6 , this embodiment further illustrates Embodiment 1. The discharging mechanism in the figure includes a receiving plate 19 arranged in the receiving groove on the material turning table 4. The elastic pushing plate 11 can push the steel to above the receiving plate 19, so that the receiving plate 19 provides support for the bottom of the steel. The bending part 7 can cooperate with the receiving plate 19 to bend the steel. The bottom of the receiving plate 19 is hinged and assembled with a positioning plate 20. The positioning plate 20 is fixedly installed on the inner side of the receiving groove. The bottom of the receiving plate 19 is fixedly installed with a mounting plate 21. The outer side of the mounting plate 21 is fixedly installed with a mounting rod 22. A U-shaped socket 23 is slidably installed on the outer side of the mounting rod 22. The bottom of the U-shaped socket 23 is fixedly installed with a sliding rod 24. The sliding rod 24 slidably penetrates the bottom of the material turning table 4. When the sliding rod 24 moves downward, it can pull the mounting rod 22 to move downward through the U-shaped socket 23. The mounting rod 22 pulls the receiving plate 19 to swing downward with the positioning plate 20 as the fulcrum through the mounting plate 21, so that the receiving plate 19 is in an inclined state. The processed steel can then slide downward from the inclined receiving plate 19, facilitating discharging. One end of the sliding rod 24 away from the U-shaped socket 23 is fixedly installed with a hemispherical block 25. The bottom of the hemispherical block 25 is in contact with the top of the processing platform 1. A first spherical groove for the hemispherical block 25 to be limited and inserted is formed on the top of the processing platform 1. The first spherical groove is a one-third spherical structure. Two symmetrically distributed tension springs 26 are fixedly installed between the bottom of the U-shaped socket 23 and the inner side of the receiving groove. The resilience of the tension springs 26 can be utilized to insert the hemispherical block 25 into the spherical groove when the hemispherical block 25 is aligned with the first spherical groove, realizing the movement of the sliding rod 24. A guiding arc bar 39 for the hemispherical block 25 to be limited and slide is fixedly installed on the top of the processing platform 1, providing guidance and support for the movement of the hemispherical block 25 and protecting the top of the processing platform 1. Two symmetrically distributed inserting rods 40 are fixedly installed on the bottom of the U-shaped socket 23. A jack for the inserting rods 40 to be limited and inserted is formed in the receiving groove of the material turning table 4. The inserting rods 40 are located inside the tension springs 26, providing guidance for the movement of the U-shaped socket 23 and preventing the tension springs 26 from bending during stretching and contraction.
[0024] Embodiment 3: Please refer toFigures 1-8 In this embodiment, a further description is provided for other embodiments. The feeding mechanism in the figure includes two conveyor belts 27 symmetrically arranged inside the feeding box 3. A plurality of receiving teeth 28 are fixedly installed on the outer side of the conveyor belt 27 at equal intervals. The corresponding receiving teeth 28 on the two conveyor belts 27 can provide support for the bottom of the steel. Two symmetrically distributed driving rollers 29 are rotatably installed inside the conveyor belt 27. Both ends of the driving roller 29 are rotatably installed inside the feeding box 3. Two symmetrically distributed support bars 30 are fixedly installed inside the feeding box 3. The top of the support bar 30 is on the same horizontal line as the receiving plate 19. A groove for the receiving teeth 28 to slide with limited position is provided on the outer side of the support bar 30. The weight between the steels between the two receiving teeth 28 can be utilized to make the conveyor belt 27 rotate and move downward under the rotational support of the driving roller 29. The staff can then place multiple steels in sequence and separate the steels to prevent collision between the steels. When the steel contacts the two support bars 30, the elastic push plate 11 can push the steel on the support bar 30 onto the receiving plate 19. Two meshing gears 31 are rotatably installed on the outer side of the feeding box 3. A synchronous belt 32 is rotatably installed between the gear 31 and the adjacent driving roller 29 to keep the two conveyor belts 27 rotating and moving synchronously. Two symmetrically distributed transparent plates are provided on the outer side of the feeding box 3 for the staff to observe the steel. A guiding frame 41 is fixedly installed on the inner wall of the top of the feeding box 3. An opening for the receiving teeth 28 to slide with limited position is provided on the outer side of the guiding frame 41 to provide guidance for the feeding of the steel and facilitate the steel to enter between the two conveyor belts 27. Two symmetrically distributed inner support plates are provided inside the conveyor belt 27. The inner support plates are fixedly installed inside the feeding box 3 to provide auxiliary support for the conveyor belt 27.
[0025] Working principle: First, the staff sequentially load multiple steel materials between two conveyor belts 27, making the steel materials contact two symmetric receiving teeth 28 on the two conveyor belts 27 to provide support for the bottom of the steel materials. The multiple receiving teeth 28 separate and store the multiple steel materials to prevent the steel materials from colliding. Using the weight of the steel materials, the steel materials push the receiving teeth 28 to move downward. The receiving teeth 28 can drive the conveyor belt 27 to rotate and move downward under the rotational support of two driving rollers 29. When the lowermost steel material contacts two support bars 30, the conveyor belt 27 stops rotating and moving. Then, the staff starts the electric telescopic rod 8, causing the electric telescopic rod 8 to drive two push blocks 10 to move through a U-shaped bracket 9. The push blocks 10 push the steel materials on the support bars 30 to move through elastic push plates 11. At the same time, the electric telescopic rod 8 drives an L-shaped moving plate 16 to move synchronously, causing the L-shaped moving plate 16 to drive a movable plate 17 to move. The triangular push teeth 18 on the movable plate 17 contact the ratchet teeth 14 on the outer side of a positioning disk 13, causing the positioning disk 13 to rotate by 90 degrees. The positioning disk 13 drives a rotating rod 12 to rotate synchronously, causing the rotating rod 12 to drive a material-transferring table 4 to rotate synchronously, realizing the position replacement of four receiving slots. When the triangular push teeth 18 are away from the ratchet teeth 14, the elastic push plates 11 push the steel materials onto the receiving plates 19 in the aligned receiving slots. Subsequently, the electric telescopic rod 8 pulls the elastic push plates 11 to reset. The arc surface of the triangular push teeth 18 contacts the arc surface of the ratchet teeth 14, causing the triangular push teeth 18 to push the arc surface of the ratchet teeth 14 to move. The ratchet teeth 14 compress elastic telescopic rods 15 and retract into the inner side of the positioning disk 13, and the material-transferring table 4 remains stationary. Moreover, the next steel material can contact the two support bars 30, and the inclined surface of the elastic push plate 11 can contact the outer side of this steel material, causing the elastic push plate 11 to swing downward. The elastic push plate 11 can move along the bottom of the steel material. When the elastic push plate 11 is away from this steel material, the elastic push plate 11 swings upward to reset. Then, the electric telescopic rod 8 pushes the elastic push plate 11 to contact the outer side of the steel material again, and the next steel material can be pushed into another receiving slot on the material-transferring table 4. Thus, with the reciprocating movement of the electric telescopic rod 8, continuous feeding of the steel materials is achieved. When the steel material moves directly below the bending part 7, the staff starts an electric push rod 6, causing the electric push rod 6 to push the bending part 7 to contact the steel material. The bending part 7 can cooperate with the receiving plate 19 to perform bending processing on the steel material. Finally, the material-transferring table 4 moves the processed steel material directly above the first spherical groove on the processing platform 1, aligning the hemispherical block 25 directly below the corresponding receiving plate 19 with the first spherical groove. Using the resilience of a tension spring 26, the tension spring 26 pulls a U-shaped socket 23 to move downward. The U-shaped socket 23 drives a sliding rod 24 to move downward, causing the sliding rod 24 to insert the hemispherical block 25 into the first spherical groove. The U-shaped socket 23 then pulls the receiving plate 19 to swing downward with a positioning plate 20 as a fulcrum through a mounting rod 22 and a mounting plate 21, making the receiving plate 19 in an inclined state. The processed steel material can then slide out along the inclined surface of the receiving plate 19, realizing automatic discharging of the steel material.Thus, the effect of continuously processing steel is achieved, and the processing efficiency of steel is improved.
[0026] 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 also includes elements inherent to such process, method, article or device.
[0027] 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 principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A shaping device for metal steel processing, characterized in that, Including: A processing platform (1) and a base (2) installed at the bottom of the processing platform (1). A feeding box (3) is installed on the top of the processing platform (1). A material transfer table (4) is arranged on the top of the processing platform (1). Four feeding grooves are symmetrically distributed around the center on the outer side of the material transfer table (4). An installation frame (5) is installed on the top of the processing platform (1). An electric push rod (6) is installed on the top of the installation frame (5). A bending part (7) is installed at the bottom end of the electric push rod (6); Also including: A feeding mechanism for enabling the material transfer table (4) to continuously feed steel. The feeding mechanism is installed at the bottom of the processing platform (1); A discharging mechanism for discharging the processed steel on the material transfer table (4). The discharging mechanism is installed inside the material transfer table (4); A feeding mechanism for safely discharging the steel in the feeding box (3). The feeding mechanism is installed inside the feeding box (3).
2. The shaping device for metal steel processing according to claim 1, wherein: The feeding mechanism includes an electric telescopic rod (8) installed on the top of the processing platform (1). A U-shaped bracket (9) is installed at the end of the electric telescopic rod (8). Push blocks (10) are installed at both ends of the U-shaped bracket (9). An elastic push plate (11) is hinged and assembled at the top of the push block (10), and the elastic push plate (11) is of an inclined structure. A rotating rod (12) is fixedly installed at the bottom of the material transfer table (4). The rotating rod (12) is rotatably installed between the processing platform (1) and the base (2). A positioning disk (13) is fixedly installed on the outer side of the rotating rod (12). A plurality of ratchet teeth (14) are slidably installed on the outer side of the positioning disk (13). An elastic telescopic rod (15) is installed between the ratchet teeth (14) and the inner side of the positioning disk (13). An L-shaped moving plate (16) is fixedly installed between the electric telescopic rod (8) and the U-shaped bracket (9). A long strip groove for limiting the sliding of the L-shaped moving plate (16) is formed on the surface of the processing platform (1). A movable plate (17) is fixedly installed at one end of the L-shaped moving plate (16). A plurality of triangular push teeth (18) are fixedly installed on the outer side of the movable plate (17). A pressing assembly for positioning the rotating rod (12) is further arranged at the bottom of the processing platform (1).
3. The shaping device for metal steel processing according to claim 2, wherein: The discharging mechanism includes a receiving plate (19) disposed in a receiving groove on the material transfer table (4). The bottom of the receiving plate (19) is hingedly assembled with a positioning plate (20). The positioning plate (20) is installed on the inner side of the receiving groove. The bottom of the receiving plate (19) is provided with a mounting plate (21). The outer side of the mounting plate (21) is provided with a mounting rod (22). A U-shaped socket (23) is slidably installed on the outer side of the mounting rod (22). The bottom of the U-shaped socket (23) is fixedly installed with a sliding rod (24). The sliding rod (24) slidably penetrates the bottom of the material transfer table (4). One end of the sliding rod (24) is fixedly installed with a hemispherical block (25). The bottom of the hemispherical block (25) is in contact with the top of the processing platform (1). A first spherical groove for the hemispherical block (25) to be limited and inserted is formed in the top of the processing platform (1). Two tension springs (26) are fixedly installed between the bottom of the U-shaped socket (23) and the inner side of the receiving groove.
4. A shaping device for metal steel processing according to claim 3, characterized in that: The feeding mechanism includes two conveyor belts (27) symmetrically arranged inside the feeding box (3). A plurality of receiving teeth (28) are fixedly installed on the outer side of the conveyor belt (27). Two driving rollers (29) are rotatably installed inside the conveyor belt (27). Both ends of the driving roller (29) are rotatably installed inside the feeding box (3). Two support bars (30) are fixedly installed inside the feeding box (3). The top of the support bar (30) is on the same horizontal line as the receiving plate (19). Two mutually meshing gears (31) are rotatably installed on the outer side of the feeding box (3). A synchronous belt (32) is rotatably installed between the gear (31) and the adjacent driving roller (29).
5. The shaping device for metal steel processing according to claim 2, wherein: The pressing assembly includes an annular seat (33) installed at the bottom of the processing platform (1). A plurality of pressing rods (34) are slidably installed inside the annular seat (33). One end of the pressing rod (34) is of a hemispherical structure. A second spherical groove for the pressing rod (34) to be limited and inserted is formed on the outer side of the rotating rod (12), and the second spherical groove is a one-third spherical structure. A convex ring is formed on the outer side of the pressing rod (34), and a spring (35) is fixedly installed between the convex ring and the inner side of the annular seat (33).
6. The shaping device for metal steel processing according to claim 2, wherein: Two positioning ribs (36) are fixedly installed on the outer side of the ratchet tooth (14). A sliding groove for the positioning rib (36) to be limited and slide is formed inside the positioning disk (13).
7. The shaping device for metal steel processing according to claim 2, wherein: A first guiding rod (37) that slidably penetrates the L-shaped moving plate (16) is installed in the long slot of the processing platform (1). A second guiding rod (38) that slidably penetrates the movable plate (17) is installed on the top of the base (2).
8. An aligning device for metal steel processing according to claim 3, characterized in that: A guiding arc bar (39) for the hemispherical block (25) to be limited and slide is fixedly installed on the top of the processing platform (1).
9. An shaping device for metal steel processing according to claim 3, characterized in that: Two inserting rods (40) are fixedly installed at the bottom of the U-shaped socket (23). A jack for the inserting rod (40) to be limited and inserted is formed in the receiving groove of the material transfer table (4).
10. A shaping device for metal steel processing according to claim 4, characterized in that: A material guiding frame (41) is installed on the inner wall of the top of the feeding box (3), and an opening for the limiting sliding of the material receiving teeth (28) is formed on the outer side of the material guiding frame (41).