A hardware blank automatic processing and forging device

By designing the matching structure of the rotating shell and the radially movable shell, the problem of uneven force on the billet during the forging process is solved, uniform forging of the billet and automatic removal of residues are achieved, and the forging efficiency and product quality are improved.

CN119839223BActive Publication Date: 2025-09-05SHENZHEN WEIMATE HARDWARE & PLASTIC PROD CO LTD
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Patent Information

Application Number
CN202510239526.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-01
Publication Date
2025-09-05
Estimated Expiration
2045-03-01

AI Technical Summary

Technical Problem

When forging large billets with existing forging equipment, manual movement of the billets is laborious and cannot ensure uniform forging, resulting in warping, cracks or deformation on the surface of the formed product.

Method used

An automatic forging device for hardware blanks is designed. The coordinated structure of a rotating shell, annular tooth grooves, a radially movable shell, and a transmission sleeve is utilized to realize the rotation and reciprocating radial motion of the blank during the forging process, ensuring uniform force. The automatic removal of residues is achieved through the coordination of an electromagnet and a magnetic ring.

Benefits of technology

It ensures uniform force on the blank during the forging process, prevents warping, cracking or deformation of the product surface after forming, and automatically removes impurities generated during the forging process, thereby improving forging efficiency and product quality.

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Abstract

The present invention relates to the technical field of forging equipment, and provides a hardware blank automatic processing and forging device, which includes a bearing mechanism, an upper die assembly, a rotating assembly, a position adjustment mechanism, a lower die assembly and a control display. The surface of the bearing bottom shell is provided with an annular tooth groove, the rotating assembly includes a rotating shell, a driving part and a first transmission gear, the position adjustment mechanism includes a first transmission assembly and a radially movable shell, the first transmission assembly includes a first rotating rod, a transmission sleeve, a curved guide rail and a second transmission gear, the spherical protrusion is slidably connected in the curved guide rail, the lower die assembly includes a lower die and a die cavity, the lower die is located in the radially movable shell, the surface of the lower die is provided with a die cavity, and the blank can be automatically controlled to rotate and reciprocate radially while being forged and hammered, thereby ensuring that the blank is subjected to uniform force distribution during the forging process, and thus preventing the surface of the formed product from warping, cracking or deformation, and having the characteristics of good forging effect.
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Description

Technical Field

[0001] The invention relates to the technical field of forging equipment, in particular to an automatic processing and forging device for hardware blanks. Background Art

[0002] Hardware blanks are used as raw materials for forging gears, flanges or mechanical equipment frames, and their shapes are generally round, polygonal or rectangular.

[0003] Publication No. CN113579146B discloses a forging and forming device comprising: a base with a first fixed frame mounted thereon; a second fixed frame mounted on the first fixed frame; and a first fixed frame mounted on the base and fixedly connected to the first fixed frame. The driving mechanism and the forging mechanism work together to place a silver bar on a support block, start the motor, and the forging rod moves up and down, driving the forging block up and down. This movement forges the silver bar, and the silver bar can be repeatedly flipped during forging to enhance the forging effect. This makes forging silver more convenient and efficient.

[0004] The above technical solution also has the following defects when forging large billets: since the forging surface of the billet is larger than the end face of the forging block or head, manpower is required to repeatedly move the billet in different directions in the horizontal plane to ensure that the forging block or head uniformly forges the billet. The method of manually moving the billet has the problems of laborious operation, low work efficiency, and inability to ensure that the forging block uniformly forges the billet. Summary of the Invention

[0005] The purpose of the present invention is to provide a hardware blank automatic processing forging device, aiming to solve the problems existing in the existing forging equipment.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a device for automatically processing and forging hardware blanks, comprising a supporting mechanism, an upper die assembly, and a control display, wherein the supporting mechanism comprises a supporting bottom shell and a frame, the frame being fixedly connected to the supporting bottom shell, the upper die assembly and the control display being both connected to the frame, and further comprising:

[0007] A rotating assembly, the rotating assembly comprising a rotating housing, a driving unit, and a first transmission gear, the rotating housing being rotatably connected within the load-bearing bottom shell, the driving unit being fixedly connected to the rotating housing, the first transmission gear being fixedly connected to the rotating housing, and the driving unit being in transmission connection with the first transmission gear;

[0008] An annular tooth groove is provided on the surface of the bearing bottom shell;

[0009] A position adjustment mechanism, comprising a first transmission assembly and a radially movable housing, wherein the radially movable housing is in sliding contact with the surface of the rotating housing, the first transmission assembly comprising a first rotating rod, a transmission sleeve, a curved guide rail, and a second transmission gear, wherein the transmission sleeve and the second transmission gear are both fixedly connected to the first rotating rod, the first rotating rod is connected to the rotating housing, the annular tooth groove is in transmission connection with the second transmission gear, a curved guide rail is provided on the surface of the transmission sleeve, and a spherical protrusion is provided below the radially movable housing, wherein the spherical protrusion is slidably connected within the curved guide rail;

[0010] The lower mold assembly includes a lower mold and a mold cavity. The lower mold is located in a radially movable shell, and the mold cavity is provided on the surface of the lower mold.

[0011] As a further solution of the present invention, the lower mold assembly also includes a second transmission assembly, which includes a worm, a rotating tube sleeve, a third transmission gear, a limiting plate and a magnetic ring. The worm is connected to the inner wall of the radially movable shell, and the rotating tube sleeve is movably sleeved on the surface of the worm. The third transmission gear and the limiting plate are both fixedly connected to the rotating tube sleeve. The surface of the limiting plate is inlaid with a magnetic ring. The surface of the worm and the inner wall of the rotating tube sleeve are respectively provided with limiting ribs and limiting grooves, and the limiting ribs are slidably connected to the limiting grooves.

[0012] As a further solution of the present invention, a second linear guide rail and a linear tooth groove are provided on the surface of the rotating shell, the linear tooth groove is provided on the inner wall of the second linear guide rail, the rotating tube sleeve is slidably connected in the second linear guide rail, and the third transmission gear is transmission connected to the linear tooth groove.

[0013] As a further solution of the present invention, a second rotating rod is fixedly connected to the surface of the lower mold, a worm gear is fixedly connected to the surface of the second rotating rod, and the worm gear is transmission-connected to the worm gear.

[0014] As a further solution of the present invention, an arc-shaped cavity is provided on the surface of the radially movable shell, the second rotating rod is connected to the inner wall of the arc-shaped cavity, the cross-section of the lower mold is fan-shaped, and the lower mold is in sliding contact with the inner wall of the arc-shaped cavity.

[0015] As a further solution of the present invention, a bent rod and a slag guiding pipe are fixedly connected to the bottom of the radially movable shell, the bent rod is fixedly connected to the slag guiding pipe, the spherical protrusion is embedded in the surface of the slag guiding pipe, the surface of the bent rod is fixedly connected to a bracket, the surface of the bracket is embedded with an electromagnet, and a reset spring is connected between the limit plate and the bracket.

[0016] As a further solution of the present invention, when the electromagnet is magnetically fitted with the magnetic ring after power-on, the third transmission gear is connected to the linear tooth groove transmission. When the electromagnet is powered off, the elastic force of the return spring drives the magnetic ring to contact the bottom of the rotating shell, and the third transmission gear is disengaged from the linear tooth groove.

[0017] As a further solution of the present invention, a first linear guide rail is provided on the surface of the rotating shell, the bent rod is slidably connected in the first linear guide rail, and the bearing bottom shell and the surface of the rotating shell are respectively provided with a slag discharge port and a slag drop port, and the slag drop port is distributed between the slag inlet pipe and the slag discharge port.

[0018] As a further solution of the present invention, a Λ-shaped plate is fixedly connected to the inner wall of the slag guiding pipe, and the Λ-shaped plate is symmetrically distributed about the transmission pipe sleeve axis.

[0019] As a further solution of the present invention, the upper die assembly includes a telescopic cylinder and a forging block, the telescopic cylinder is fixedly connected to the frame, and the forging block is fixedly connected to the telescopic cylinder.

[0020] The beneficial effects of the present invention are as follows: the present application utilizes a structural design that cooperates with each other among a rotating shell, an annular tooth groove, a radially movable shell and a transmission sleeve, which can automatically control the rotation and reciprocating radial movement of the blank while forging and hammering, and can ensure that the force distribution of the blank during the forging process is uniform, thereby preventing the surface of the formed product from warping, cracking or deformation, and has the characteristics of good forging forming effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a perspective view of the present invention.

[0022] Figure 2 It is an exploded view of the present invention.

[0023] Figure 3 It is a three-dimensional diagram of the carrying mechanism and the upper mold assembly according to an embodiment of the present invention.

[0024] Figure 4 This is a three-dimensional diagram of a rotating assembly according to an embodiment of the present invention.

[0025] Figure 5 1 is an exploded view of the position adjustment mechanism according to an embodiment of the present invention.

[0026] Figure 6 This is an exploded view of the lower mold assembly according to an embodiment of the present invention.

[0027] Figure 7 This is an exploded view of the second transmission assembly according to an embodiment of the present invention.

[0028] Figure 8 This is an assembly diagram of the rotating assembly, position adjustment mechanism and lower mold assembly according to an embodiment of the present invention.

[0029] Figure 9 It is a first planar cross-sectional view of the present invention.

[0030] Figure 10 For the present invention Figure 9 A partial enlarged view of point a in the middle.

[0031] Figure 11 It is a second planar cross-sectional view of the present invention.

[0032] Reference numerals: 1-carrying mechanism, 11-carrying bottom shell, 12-frame, 13-annular tooth groove, 14-slag discharge port;

[0033] 2-upper die assembly, 21-telescopic cylinder, 22-forging block;

[0034] 3-rotating assembly, 31-rotating housing, 311-first linear guide rail, 312-second linear guide rail, 313-linear tooth groove, 314-slag outlet, 32-driving unit, 33-first transmission gear;

[0035] 4 - Position adjustment mechanism, 41 - First transmission assembly, 411 - First rotating rod, 412 - Transmission sleeve, 413 - Curved guide rail, 414 - Second transmission gear, 42 - Radial movable housing, 421 - Arc cavity, 422 - Curved rod, 423 - Slag guiding pipe, 4231 - Λ-shaped plate, 424 - Spherical protrusion, 425 - Bracket, 426 - Electromagnet, 427 - Return spring;

[0036] 5-lower mold assembly, 51-lower mold, 511-mold cavity, 512-second rotating rod, 513-worm gear, 52-second transmission assembly, 521-worm, 5211-limiting rib, 522-rotating sleeve, 5221-limiting groove, 523-third transmission gear, 524-limiting plate, 5241-magnetic ring, 6-control display. DETAILED DESCRIPTION

[0037] In order to make the purpose, technical solutions and advantages of the present invention clearer, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0038] The specific implementation of the present invention is described in detail below with reference to specific embodiments.

[0039] See also Figures 1 to 11In one embodiment of the present invention, a hardware blank automatic processing and forging device includes a supporting mechanism 1, an upper die assembly 2, and a control display 6. The supporting mechanism 1 includes a supporting bottom shell 11 and a frame 12. The frame 12 is fixedly connected to the supporting bottom shell 11. The upper die assembly 2 and the control display 6 are both connected to the frame 12. The device also includes:

[0040] The rotating assembly 3 includes a rotating housing 31, a driving unit 32, and a first transmission gear 33. The rotating housing 31 is rotatably connected to the load-bearing bottom shell 11. The driving unit 32 is fixedly connected to the rotating housing 31. The first transmission gear 33 is fixedly connected to the rotating housing 31. The driving unit 32 is in transmission connection with the first transmission gear 33.

[0041] An annular tooth groove 13 is provided on the surface of the bearing bottom shell 11;

[0042] The position adjustment mechanism 4 includes a first transmission assembly 41 and a radially movable housing 42. The radially movable housing 42 is in sliding contact with the surface of the rotating housing 31. The first transmission assembly 41 includes a first rotating rod 411, a transmission sleeve 412, a curved guide rail 413, and a second transmission gear 414. The transmission sleeve 412 and the second transmission gear 414 are both fixedly connected to the first rotating rod 411. The first rotating rod 411 is connected to the rotating housing 31. The annular tooth groove 13 is in transmission connection with the second transmission gear 414. The surface of the transmission sleeve 412 is provided with a curved guide rail 413. A spherical protrusion 424 is provided below the radially movable housing 42. The spherical protrusion 424 is slidably connected within the curved guide rail 413.

[0043] The lower mold assembly 5 includes a lower mold 51 and a mold cavity 511 . The lower mold 51 is located in the radially movable housing 42 . The mold cavity 511 is provided on the surface of the lower mold 51 .

[0044] Please refer to the figure Figure 3 and Figure 5 Furthermore, a bent rod 422 and a slag guiding pipe 423 are fixedly connected to the bottom of the radially movable shell 42, the bent rod 422 is fixedly connected to the slag guiding pipe 423, the spherical protrusion 424 is embedded in the surface of the slag guiding pipe 423, and a first linear guide rail 311 is provided on the surface of the rotating shell 31, the bent rod 422 is slidably connected in the first linear guide rail 311, and a Λ-shaped plate 4231 is fixedly connected to the inner wall of the slag guiding pipe 423, the Λ-shaped plate 4231 is symmetrically distributed about the axis of the transmission sleeve 412, and the Λ-shaped plate 4231 is used to avoid the transmission sleeve 412, thereby preventing residue from falling on the surface of the transmission sleeve 412 and hindering the spherical protrusion 424 from sliding in the curved guide rail 413.

[0045] Furthermore, the upper die assembly 2 includes a telescopic cylinder 21 and a forging block 22 . The telescopic cylinder 21 is fixedly connected to the frame 12 , and the forging block 22 is fixedly connected to the telescopic cylinder 21 .

[0046] In an embodiment of the present invention, when the driving part and the first transmission gear control the rotating shell, the position adjustment mechanism and the lower mold assembly to rotate 180 degrees, since the second transmission gear is connected to the annular tooth groove, it will drive the transmission pipe sleeve to rotate back and forth 360 degrees. The transmission pipe that rotates 180 degrees uses the sliding connection between the curved guide rail and the spherical protrusion to control the radially movable shell 42 to perform reciprocating linear motion of a certain stroke (the stroke is consistent with the radial length of the blank).

[0047] See also Figure 6 and Figure 7 In one embodiment of the present invention, the lower mold assembly 5 also includes a second transmission assembly 52, which includes a worm 521, a rotating sleeve 522, a third transmission gear 523, a limiting plate 524 and a magnetic ring 5241. The worm 521 is connected to the inner wall of the radially movable shell 42, and the rotating sleeve 522 is movably sleeved on the surface of the worm 521. The third transmission gear 523 and the limiting plate 524 are both fixedly connected to the rotating sleeve 522. The surface of the limiting plate 524 is inlaid with a magnetic ring 5241. The surface of the worm 521 and the inner wall of the rotating sleeve 522 are respectively provided with limiting ribs 5211 and limiting grooves 5221, and the limiting ribs 5211 are slidably connected to the limiting grooves 5221.

[0048] See also Figure 4 and Figure 8 Furthermore, a second linear guide rail 312 and a linear tooth groove 313 are provided on the surface of the rotating shell 31. The linear tooth groove 313 is provided on the inner wall of the second linear guide rail 312. The rotating sleeve 522 is slidably connected in the second linear guide rail 312, and the third transmission gear 523 is transmission-connected to the linear tooth groove 313.

[0049] See also Figure 6 and Figure 8 Furthermore, a second rotating rod 512 is fixedly connected to the surface of the lower mold 51, a worm gear 513 is fixedly connected to the surface of the second rotating rod 512, and the worm 521 is in transmission connection with the worm gear 513.

[0050] See also Figures 5 to 11 Furthermore, an arc-shaped cavity 421 is provided on the surface of the radially movable shell 42, the second rotating rod 512 is connected to the inner wall of the arc-shaped cavity 421, the cross-section of the lower mold 51 is fan-shaped, and the lower mold 51 is in sliding contact with the inner wall of the arc-shaped cavity 421.

[0051] See also Figures 8 to 11Furthermore, a bracket 425 is fixedly connected to the surface of the bent rod 422, an electromagnet 426 is embedded on the surface of the bracket 425, a reset spring 427 is connected between the limiting piece 524 and the bracket 425, and a slag discharge port 14 and a slag drop port 314 are respectively provided on the surfaces of the bearing bottom shell 11 and the rotating shell 31, and the slag drop port 314 is distributed between the slag guiding pipe 423 and the slag discharge port 14.

[0052] In an embodiment of the present invention, angle sensors are installed on the surfaces of the rotating shell 31 and the second rotating rod 512 for real-time monitoring of the rotation angle. When the electromagnet 426 is energized and magnetically fits with the magnetic ring 5241, the third transmission gear 523 is connected to the linear tooth groove 313. When the electromagnet 426 is de-energized, the elastic force of the return spring 427 drives the magnetic ring 5241 to contact the bottom of the rotating shell 31, and the third transmission gear 523 is disengaged from the linear tooth groove 313.

[0053] Working principle: First, the blank is placed in the die cavity 511. When the billet is forged and hammered by the telescopic cylinder 21 and the forging block 22, the driving part 32 and the first transmission gear 33 are used to control the rotation of the rotating shell 31, the position adjustment mechanism 4 and the lower die assembly 5. The second transmission gear 414 and the annular tooth groove 13 are connected to each other synchronously with the rotating shell 31 to drive the transmission sleeve 412 to rotate. The rotating transmission sleeve 412 is connected to the spherical protrusion 424 by sliding connection with the curved guide rail 413 to drive the bent rod 422 and the rotating sleeve 522 to perform reciprocating linear or radial motion along the first linear guide rail 311 and the second linear guide rail 312 respectively. The way in which the blank rotates and reciprocating radially at the same time under the forging block 22 can ensure that the force distribution of the blank is uniform during the forging process, thereby preventing warping, cracks or deformation on the surface of the formed product.

[0054] When the formed product is taken out, the electromagnet 426 is first energized. Since the electromagnet 426 is magnetically attached to the magnetic ring 5241 after being energized, the third transmission gear 523 is connected to the linear tooth groove 313. Then, the driving part 32 and the first transmission gear 33 are used to control the rotating shell 31, the position adjustment mechanism 4 and the lower mold assembly 5 to rotate 360 ​​degrees. The third transmission gear 523 that follows the radially movable shell 42 to make reciprocating radial movements is connected to the linear tooth groove 313 to achieve the purpose of driving the rotating shell. The purpose of the reciprocating rotation of the movable sleeve 522 and the worm 521 is that the reciprocating worm 521 drives the lower mold 51 to reciprocate 180 degrees around the second rotating rod 512 through the worm gear 513. Since the mold cavity 511 opens downward after the lower mold 51 rotates 180 degrees, the particles or impurities generated in the mold cavity 511 during the forging process automatically fall into the slag inlet pipe 423, the slag outlet 314 and the slag discharge outlet 14, which has the function of automatically clearing the residue in the mold cavity 511, thereby preventing the residue from damaging the product surface.

[0055] In summary, (1) the present application utilizes a structural design that cooperates with each other among the rotating shell 31, the annular tooth groove 13, the radially movable shell 42 and the transmission sleeve 412, which can automatically control the rotation and reciprocating radial movement of the blank during the forging hammering, and can ensure that the force distribution of the blank is uniform during the forging process, thereby preventing the surface of the formed product from warping, cracking or deformation, and has the characteristics of good forging forming effect.

[0056] (2) The present application utilizes the design of mutual cooperation among the lower die assembly 5, the worm 521, the linear tooth groove 313, the electromagnet 426 and the slag guiding pipe 423. In the process of controlling the gap between material removal and material loading to rotate the rotating shell 31 one circle, the lower die 51 can be driven to rotate 180 degrees. The particles or impurities generated in the die cavity 511 during the forging process automatically fall into the slag guiding pipe 423 and are discharged outward, which has the characteristics of automatically removing residues and preventing residues from damaging the surface of the product.

[0057] For those skilled in the art, although several embodiments and examples of the present invention have been described, these embodiments and examples are provided as examples and are not intended to limit the scope of the invention. These new embodiments can be implemented in various other ways, and various omissions, substitutions, and changes can be made without departing from the scope of the invention.

[0058] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A device for automatically processing and forging a metal blank, comprising a bearing mechanism (1), an upper die assembly (2) and a control display (6), wherein the bearing mechanism (1) comprises a bearing bottom shell (11) and a frame (12), the frame (12) being fixedly connected to the bearing bottom shell (11), the upper die assembly (2) and the control display (6) being connected to the frame (12), characterized in that: Also includes: A rotating assembly (3), the rotating assembly (3) comprising a rotating housing (31), a driving portion (32) and a first transmission gear (33), the rotating housing (31) being rotatably connected within the bearing bottom shell (11), the first transmission gear (33) being fixedly connected to the rotating housing (31), and the driving portion (32) being transmission-connected to the first transmission gear (33); An annular tooth groove (13) is provided on the surface of the bearing bottom shell (11); A position adjustment mechanism (4), the position adjustment mechanism (4) comprising a first transmission assembly (41) and a radially movable housing (42), the radially movable housing (42) being in sliding contact with the surface of the rotating housing (31), the first transmission assembly (41) comprising a first rotating rod (411), a transmission sleeve (412), a curved guide rail (413) and a second transmission gear (414), the transmission sleeve (412) and the second transmission gear (414) both being fixedly connected to the first rotating rod (411), the first rotating rod (411) being connected to the rotating housing (31), the annular tooth groove (13) being in transmission connection with the second transmission gear (414), the surface of the transmission sleeve (412) being provided with a curved guide rail (413), a spherical protrusion (424) being provided below the radially movable housing (42), the spherical protrusion (424) being slidably connected in the curved guide rail (413); A bent rod (422) is fixedly connected to the bottom of the radially movable housing (42), a first linear guide rail (311) is provided on the surface of the rotating housing (31), and the bent rod (422) is slidably connected in the first linear guide rail (311); The driving part (32) and the first transmission gear (33) are used to control the rotation of the rotating housing (31), the position adjustment mechanism (4) and the lower mold assembly (5). The second transmission gear (414) that rotates synchronously with the rotating housing (31) is connected to the annular tooth groove (13) to drive the transmission sleeve (412) to rotate. The rotating transmission sleeve (412) is connected to the spherical protrusion (424) by the curved guide rail (413) in a sliding manner to drive the bent rod (422) to perform reciprocating linear motion along the first linear guide rail (311). A lower mold assembly (5) includes a lower mold (51) and a mold cavity (511). The lower mold (51) is located in a radially movable housing (42). The mold cavity (511) is provided on the surface of the lower mold (51).

2. The automatic forging and forming device for hardware blanks according to claim 1 is characterized in that: The lower mold assembly (5) further comprises a second transmission assembly (52), the second transmission assembly (52) comprising a worm (521), a rotating sleeve (522), a third transmission gear (523), a limiting plate (524) and a magnetic ring (5241); the worm (521) is connected to the inner wall of the radially movable housing (42); the rotating sleeve (522) is movably sleeved on the surface of the worm (521); the third transmission gear (523) and the limiting plate (524) are both fixedly connected to the rotating sleeve (522); the surface of the limiting plate (524) is inlaid with a magnetic ring (5241); the surface of the worm (521) and the inner wall of the rotating sleeve (522) are respectively provided with limiting ribs (5211) and limiting grooves (5221); the limiting ribs (5211) are slidably connected to the limiting grooves (5221).

3. The automatic forging and forming device for hardware blanks according to claim 2, characterized in that: A second linear guide rail (312) and a linear tooth groove (313) are provided on the surface of the rotating housing (31), the linear tooth groove (313) is provided on the inner wall of the second linear guide rail (312), the rotating sleeve (522) is slidably connected in the second linear guide rail (312), and the third transmission gear (523) is transmission-connected to the linear tooth groove (313).

4. The automatic forging and forming device for hardware blanks according to claim 3 is characterized in that: A second rotating rod (512) is fixedly connected to the surface of the lower mold (51), a worm wheel (513) is fixedly connected to the surface of the second rotating rod (512), and the worm (521) is transmission-connected to the worm wheel (513).

5. The automatic forging and forming device for hardware blanks according to claim 4 is characterized in that: An arc-shaped cavity (421) is provided on the surface of the radially movable housing (42), the second rotating rod (512) is connected to the inner wall of the arc-shaped cavity (421), the cross-section of the lower mold (51) is fan-shaped, and the lower mold (51) is in sliding contact with the inner wall of the arc-shaped cavity (421).

6. The automatic forging and forming device for hardware blanks according to claim 5, characterized in that: The bottom of the radially movable housing (42) is fixedly connected to a slag guiding pipe (423), the curved rod (422) is fixedly connected to the slag guiding pipe (423), the spherical protrusion (424) is embedded in the surface of the slag guiding pipe (423), the surface of the curved rod (422) is fixedly connected to a bracket (425), the surface of the bracket (425) is embedded with an electromagnet (426), and a reset spring (427) is connected between the limiting piece (524) and the bracket (425).

7. The automatic forging and forming device for hardware blanks according to claim 6, characterized in that: When the electromagnet (426) is energized and magnetically adheres to the magnetic ring (5241), the third transmission gear (523) is in transmission connection with the linear tooth groove (313); when the electromagnet (426) is de-energized, the elastic force of the return spring (427) drives the magnetic ring (5241) to contact the bottom of the rotating housing (31), and the third transmission gear (523) is disengaged from the linear tooth groove (313).

8. The automatic forging and forming device for hardware blanks according to claim 7, characterized in that: A first linear guide rail (311) is provided on the surface of the rotating shell (31), and the bent rod (422) is slidably connected in the first linear guide rail (311). A slag discharge port (14) and a slag drop port (314) are respectively provided on the surfaces of the bearing bottom shell (11) and the rotating shell (31), and the slag drop port (314) is distributed between the slag guide pipe (423) and the slag discharge port (14).

9. The automatic forging and forming device for hardware blanks according to claim 6, characterized in that: A Λ-shaped plate (4231) is fixedly connected to the inner wall of the slag guiding pipe (423), and the Λ-shaped plate (4231) is symmetrically distributed about the transmission pipe sleeve (412).

10. The automatic forging and forming device for hardware blanks according to claim 1, characterized in that: The upper die assembly (2) comprises a telescopic cylinder (21) and a forging block (22); the telescopic cylinder (21) is fixedly connected to the frame (12); and the forging block (22) is fixedly connected to the telescopic cylinder (21).

Citation Information

Patent Citations

  • A silver forging forming equipment

    CN113579146B

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    CN114932187A

  • Forging die and forging method for electric power fittings

    CN116274794A