Forged and pressed part manufacturing equipment with wheel positioning function

By designing components such as annular grooves and toothed rings, the rotating clamping parts of the forging press manufacturing equipment can be flexibly rotated and extended, solving the shortcomings of existing equipment in displacement adjustment and improving positioning accuracy and adaptability.

CN223997216UActive Publication Date: 2026-03-17YANCHENG DAFENG JIEWEI PRECISION FORGING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-19
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing forging equipment is not flexible enough in displacement adjustment, making it difficult to meet the processing needs of diverse products.

Method used

By employing components such as annular grooves, toothed rings, electric grooved wheels, wheel frames, base blocks, pneumatic telescopic rods, and grooved inserts, the rotating clamping components can be flexibly rotated and extended, thereby improving positioning accuracy.

Benefits of technology

By combining these components, the equipment can be adaptively adjusted according to product requirements, improving positioning accuracy and flexibility, and meeting diverse processing needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides forged and pressed part manufacturing equipment with a wheel positioning function, and relates to the technical field of forged and pressed part manufacturing, the forged and pressed part manufacturing equipment comprises a bearing damping assembly and forging and pressing mechanisms, the outer side of the bearing damping assembly is provided with a rotary clamping part in rolling insertion connection, and the forging and pressing mechanisms are arranged above the two ends of the bearing damping assembly. The forging and pressing mechanism comprises second shock absorbers, a lifting frame, a control panel, a cross beam frame, an impact air cylinder and a forging and pressing head, the second shock absorbers are arranged above the two ends of the bearing shock absorption assembly, and the lifting frame is arranged above the second shock absorbers; an annular groove and a gear ring are mainly used for being matched with an electric grooved wheel, a wheel frame, a base block, a pneumatic telescopic rod and a groove-shaped inserting block, so that a rotary clamping component can effectively rotate and operate, equipment can be adaptively adjusted according to the machining requirement of a product, telescopic adjustment can be conducted in multiple times, and the machining efficiency is improved. Therefore, the positioning flexibility and precision of the equipment can be improved.
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Description

Technical Field

[0001] This utility model relates to the field of forging manufacturing technology, and in particular to a forging manufacturing equipment with wheel positioning function. Background Technology

[0002] Forging is a general term for forging and stamping. It is a forming process that uses the hammer, anvil, punch or die of forging machinery to apply pressure to the blank, causing plastic deformation, so as to obtain the part with the required shape and size. Forging and rolling and drawing in the metallurgical industry are both plastic processing, or pressure processing. However, forging is mainly used to produce metal parts, while rolling and drawing are mainly used to produce general metal materials such as plates, strips, pipes, profiles and wires.

[0003] Existing forging manufacturing equipment, such as the forging manufacturing equipment with positioning function provided in application number CN202420615901.0, includes: a base; a first sliding plate slidably connected to the left side of the base, a vertical plate fixedly connected to the left end of the first sliding plate, an outer cylinder fixedly connected to the right side of the vertical plate, a sliding rod slidably connected to the right side of the outer cylinder, and a circular hole opened on the circumferential side of the outer cylinder, with a limit pin slidably connected inside the circular hole; however, in the above technology, it is mainly driven by a single set of gears, which is not convenient for effective displacement adjustment. Therefore, this utility model proposes a forging manufacturing equipment with wheel positioning function to solve the problems existing in the prior art. Utility Model Content

[0004] To address the aforementioned problems, this utility model proposes a forging manufacturing equipment with wheel positioning function. This forging manufacturing equipment mainly utilizes annular grooves and toothed rings in conjunction with an electric grooved wheel, wheel frame, base block, pneumatic telescopic rod, and grooved insert block to enable the rotating clamping components to rotate effectively. This allows the equipment to be adaptively adjusted according to the processing needs of the product, thereby enabling multiple extension and retraction adjustments and improving the positioning flexibility and accuracy of the equipment.

[0005] To achieve the purpose of this utility model, the utility model is achieved through the following technical solution: a forging part manufacturing equipment with wheel positioning function, including a bearing and shock-absorbing component and a forging mechanism, wherein a rotating clamping component with rolling insertion is provided on the outer side of the bearing and shock-absorbing component, and a forging mechanism is provided above both ends of the bearing and shock-absorbing component;

[0006] The forging mechanism includes a second shock absorber, a lifting frame, a control panel, a crossbeam frame, an impact cylinder, and a forging head. The second shock absorber is disposed above both ends of the bearing shock absorber assembly. A lifting frame is disposed above the second shock absorber, and a control panel is disposed on one side of the lifting frame. A crossbeam frame is disposed above the lifting frame, and an impact cylinder is disposed above the crossbeam frame. A forging head is disposed at the output end of the impact cylinder.

[0007] In a preferred embodiment of this utility model, the lifting frame and the crossbeam frame are symmetrically distributed around the central axis of the impact cylinder.

[0008] In a preferred embodiment of the present invention, the bearing and shock-absorbing assembly includes a pad, a first shock absorber, a central column, an annular groove, a toothed ring, and a mounting platform. The first shock absorber is disposed above the center of the pad, and the central column is disposed above the first shock absorber. An annular groove is disposed on the side of the central column, and a toothed ring is disposed on the outer side of the annular groove. The mounting platform is disposed above the central column.

[0009] In a preferred embodiment of this utility model, the rotating clamping component includes an electric grooved wheel, a wheel frame, a base block, a pneumatic telescopic rod, a slotted insert, an outer frame plate, a threaded cylinder, a gearbox, a drive motor, a first gear set, a second gear set, a threaded rod, an outer frame block, a shock-absorbing pad, and a clamping block. The electric grooved wheel is disposed in the inner groove of the annular groove, a wheel frame is disposed above the electric grooved wheel, a base block is disposed at the outer end of the wheel frame, and a pneumatic telescopic rod is disposed at the output end of the base block. A slotted insert is disposed at one end of the pneumatic telescopic rod.

[0010] In a preferred embodiment of this utility model, an outer support plate is provided above one end of the base block, and a threaded cylinder is provided on the inner side above the outer support plate. A gearbox is provided at one end of the threaded cylinder, a drive motor is provided on the outer side of the gearbox, a first gear set is provided at the output end of the drive motor, a second gear set is provided at the output end of the first gear set, and a threaded rod is provided at the output end of the second gear set.

[0011] In a preferred embodiment of the present invention, one end of the threaded rod is provided with an outer frame block, and one end of the outer frame block is provided with a shock-absorbing pad, and one end of the shock-absorbing pad is provided with a clamping block.

[0012] The beneficial effects of this utility model are as follows:

[0013] This utility model mainly utilizes annular grooves and toothed rings in conjunction with electric grooved wheels, wheel frames, base blocks, pneumatic telescopic rods, and grooved inserts to enable the rotating clamping components to rotate effectively. This allows the equipment to be adaptively adjusted according to the processing needs of the product, enabling multiple extension and retraction adjustments, thus improving the positioning flexibility and accuracy of the equipment. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0015] Figure 2 This is a bottom-view three-dimensional structural diagram of the present invention;

[0016] Figure 3 This is a three-dimensional structural diagram of the rotating clamping component of this utility model;

[0017] Figure 4 This is a schematic diagram of the first gear set and the second gear set of this utility model.

[0018] The components include: 1. Bearing and shock absorption assembly; 101. Pad plate; 102. First shock absorber; 103. Central column; 104. Annular groove; 105. Gear ring; 106. Mounting platform; 2. Rotating clamping component; 201. Electric grooved wheel; 202. Wheel frame; 203. Base block; 204. Pneumatic telescopic rod; 205. Slotted insert block; 206. Outer frame plate; 207. Threaded cylinder; 208. Gearbox; 209. Drive motor; 2010. First gear set; 2011. Second gear set; 2012. Threaded rod; 2013. Outer frame block; 2014. Shock absorption pad; 2015. Clamping block; 3. Forging mechanism; 301. Second shock absorber; 302. Lifting frame; 303. Control panel; 304. Crossbeam frame; 305. Impact cylinder; 306. Forging head. Detailed Implementation

[0019] To deepen the understanding of this utility model, the following detailed description will be provided in conjunction with embodiments. These embodiments are only used to explain this utility model and do not constitute a limitation on the scope of protection of this utility model.

[0020] according to Figure 1-4 As shown, this embodiment proposes a forging manufacturing equipment with wheel positioning function, including a bearing and shock-absorbing component 1 and a forging mechanism 3. The outer side of the bearing and shock-absorbing component 1 is provided with a rotating clamping component 2 that is rolled and inserted, and the forging mechanism 3 is provided above both ends of the bearing and shock-absorbing component 1.

[0021] The forging mechanism 3 includes a second shock absorber 301, a lifting frame 302, a control panel 303, a crossbeam frame 304, an impact cylinder 305, and a forging head 306. The second shock absorber 301 is disposed above both ends of the bearing shock absorber assembly 1. The lifting frame 302 is disposed above the second shock absorber 301, and the control panel 303 is disposed on one side of the lifting frame 302. The crossbeam frame 304 is disposed above the lifting frame 302, and the impact cylinder 305 is disposed above the crossbeam frame 304. The forging head 306 is disposed at the output end of the impact cylinder 305.

[0022] The lifting frame 302 and the crossbeam frame 304 are symmetrically distributed around the central axis of the impact cylinder 305.

[0023] In this embodiment, the control panel 303 on one side of the lifting frame 302 then outputs a command, causing the impact cylinder 305 above the crossbeam frame 304 to output power and run, so that the forging head 306 performs forging processing on the product.

[0024] The bearing and shock absorption assembly 1 includes a pad 101, a first shock absorber 102, a central column 103, an annular groove 104, a toothed ring 105, and a mounting platform 106. The first shock absorber 102 is disposed above the middle of the pad 101, and the central column 103 is disposed above the first shock absorber 102. The annular groove 104 is disposed on the side of the central column 103, and the toothed ring 105 is disposed on the outer side of the annular groove 104. The mounting platform 106 is disposed above the central column 103.

[0025] In this embodiment, when in use, the equipment is placed at the processing location by means of the pad 101, so that the mounting table 106 places the wheel raw material to be forged, and the central column 103 cooperates with the annular groove 104 and the toothed ring 105 to insert and install the rotating clamping component 2.

[0026] The rotating clamping component 2 includes an electric grooved wheel 201, a wheel frame 202, a base block 203, a pneumatic telescopic rod 204, a slotted insert 205, an outer frame plate 206, a threaded cylinder 207, a gearbox 208, a drive motor 209, a first gear set 2010, a second gear set 2011, a threaded rod 2012, an outer frame block 2013, a shock-absorbing pad 2014, and a clamping block 2015. The electric grooved wheel 201 is located in the inner groove of the annular groove 104. The wheel frame 202 is located above the electric grooved wheel 201. The base block 203 is located at the outer end of the wheel frame 202, and the pneumatic telescopic rod 204 is located at the output end of the base block 203. The slotted insert 205 is located at one end of the pneumatic telescopic rod 204.

[0027] In this embodiment, when rotational adjustment and positioning are required, the electric grooved wheel 201 on the wheel frame 202 outputs power to drive the output end to run. After the electric grooved wheel 201 outputs power to run, the rotating clamping component 2 rotates to achieve the effect of angle adjustment. After the pneumatic telescopic rod 204 outputs power to drive the output end to run, the slotted insert 205 inserts into the toothed ring 105.

[0028] An outer support plate 206 is provided above one end of the base block 203, and a threaded cylinder 207 is provided on the inner side above the outer support plate 206. A gearbox 208 is provided at one end of the threaded cylinder 207, and a drive motor 209 is provided on the outer side of the gearbox 208. A first gear set 2010 is provided at the output end of the drive motor 209, a second gear set 2011 is provided at the output end of the first gear set 2010, and a threaded rod 2012 is provided at the output end of the second gear set 2011.

[0029] In this embodiment, when clamping is required, the drive motor 209 outputs power to drive the output end to run, so that the first gear set 2010 and the second gear set 2011 in the gearbox 208 mesh and drive, so that the screw of the threaded cylinder 207 and the threaded rod 2012 is adjusted to a suitable length position after the screw is adjusted.

[0030] One end of the threaded rod 2012 is provided with an outer frame block 2013, and one end of the outer frame block 2013 is provided with a shock-absorbing pad 2014, and one end of the shock-absorbing pad 2014 is provided with a clamping block 2015.

[0031] In this embodiment, after being adjusted to a suitable length position, the outer frame block 2013, the shock-absorbing pad 2014, and the clamping block 2015 effectively clamp the product.

[0032] The working principle of this forging manufacturing equipment with wheel positioning function is as follows: During use, the equipment is placed at the processing location via the pad 101, allowing the mounting platform 106 to place the wheel raw material to be forged. The central column 103, along with the annular groove 104 and gear ring 105, inserts and installs the rotating clamping component 2. When clamping is required, the drive motor 209 outputs power to drive the output end, causing the first gear set 2010 and the second gear set 2011 in the gearbox 208 to mesh and transmit power. This allows the screw threads of the threaded cylinder 207 and the threaded rod 2012 to be adjusted to a suitable length position. Once adjusted to the suitable length position, the forging process begins. The outer frame block 2013, shock-absorbing pad 2014, and clamping block 2015 effectively clamp the product. Then, the control panel 303 on one side of the lifting frame 302 outputs commands, causing the impact cylinder 305 above the crossbeam frame 304 to output power and run, so that the forging head 306 performs forging processing on the product. When rotation adjustment and positioning are required, the electric grooved wheel 201 on the wheel frame 202 outputs power to drive the output end to run. After the electric grooved wheel 201 outputs power, the rotating clamping component 2 rotates to achieve the angle adjustment effect. After the pneumatic telescopic rod 204 outputs power to drive the output end to run, the slotted insert block 205 inserts into the toothed ring 105.

[0033] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A forging manufacturing equipment having a wheel alignment function, comprising a load bearing damping assembly (1) and a forging mechanism (3), characterized in that: The outer side of the bearing damping assembly (1) is provided with a rolling plug-in rotating clamping part (2), and the upper part of the two ends of the bearing damping assembly (1) is provided with a forging mechanism (3); The forging mechanism (3) comprises a second damper (301), a lifting frame (302), a control panel (303), a cross beam frame (304), an impact air cylinder (305) and a forging head (306), the second damper (301) is arranged above the two ends of the bearing damping assembly (1), the upper part of the second damper (301) is provided with the lifting frame (302), one side of the lifting frame (302) is provided with the control panel (303), the upper part of the lifting frame (302) is provided with the cross beam frame (304), and the upper part of the cross beam frame (304) is provided with the impact air cylinder (305), and the output end of the impact air cylinder (305) is provided with the forging head (306).

2. The swaging apparatus having a wheel alignment function according to claim 1, wherein: The lifting frame (302) and the cross beam frame (304) are symmetrically distributed about the central axis of the impact air cylinder (305).

3. The swaging apparatus having a wheel alignment function according to claim 1, wherein: The bearing damping assembly (1) comprises a base plate (101), a first damper (102), a central column (103), an annular groove (104), a tooth ring (105) and a carrying table (106), the upper part of the middle part of the base plate (101) is provided with the first damper (102), the upper part of the first damper (102) is provided with the central column (103), the side of the central column (103) is provided with the annular groove (104), the outer side of the annular groove (104) is provided with the tooth ring (105), and the upper part of the central column (103) is provided with the carrying table (106).

4. The swaging apparatus having a wheel alignment function according to claim 3, wherein: The rotating clamping part (2) comprises an electric groove wheel (201), a wheel frame (202), a base block (203), a pneumatic telescopic rod (204), a groove-shaped plug block (205), an outer pair of frame plates (206), a threaded cylinder (207), a gear box (208), a driving motor (209), a first gear set (2010), a second gear set (2011), a threaded rod (2012), an outer frame block (2013), a damping pad (2014) and a clamping block (2015), the electric groove wheel (201) is arranged at the inner groove of the annular groove (104), the upper part of the electric groove wheel (201) is provided with the wheel frame (202), the outer end of the wheel frame (202) is provided with the base block (203), the output end of the base block (203) is provided with the pneumatic telescopic rod (204), and one end of the pneumatic telescopic rod (204) is provided with the groove-shaped plug block (205).

5. The swaging apparatus having a wheel alignment function according to claim 4, wherein: The one end of the base block (203) is provided with an outer pair of shelves (206), and the upper inner side of the outer pair of shelves (206) is provided with a threaded cylinder (207), and one end of the threaded cylinder (207) is provided with a gear box (208), the outer side of the gear box (208) is provided with a driving motor (209), and the output end of the driving motor (209) is provided with a first gear set (2010), the output end of the first gear set (2010) is provided with a second gear set (2011), and the output end of the second gear set (2011) is provided with a threaded rod (2012).

6. The swaging apparatus having a wheel alignment function according to claim 4, wherein: One end of the threaded rod (2012) is provided with an outer shelf block (2013), and one end of the outer shelf block (2013) is provided with a shock pad (2014), and one end of the shock pad (2014) is provided with a clamping block (2015).

Citation Information

Patent Citations

  • Forged and pressed part manufacturing equipment with positioning function

    CN221909630U