Forge piece turnover device for forge piece machining

By configuring a base plate and a unified splint to connect auxiliary components in the forging processing device, the forging flipping and auxiliary tools can be used across multiple links, solving the problems of repeated equipment purchase and poor versatility in the existing technology, and improving processing efficiency and flexibility.

CN120619264AInactive Publication Date: 2025-09-12ZHEJIANG DONGXIN MASCH CO LTD
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Patent Information

Application Number
CN202511006860.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-22
Publication Date
2025-09-12
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In existing forging processing equipment, the separation of flipping equipment and auxiliary tools leads to repeated purchase of equipment, large footprint, high cost and difficulty in cross-link interoperability, which cannot adapt to the diversified and flexible needs of modern forging processing.

Method used

A forging flipping device is designed. By configuring a base plate in each processing link and connecting the auxiliary components through a unified second clamping plate and a connecting seat, the forging flipping and auxiliary tools can be used across links. The transmission component and the linkage component are used to ensure the synchronous or reverse rotation of the forging and the auxiliary component, and the distance between the auxiliary component and the forging can be adjusted to meet the needs of different processing links.

Benefits of technology

It realizes seamless switching between different processing links and flexible use of auxiliary tools, improves processing efficiency and versatility of equipment, avoids fragmentation of production processes, and meets the diversified needs of modern forging processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of forge piece machining and overturning, and discloses a forge piece overturning device for forge piece machining, which comprises a bracket, a base disc is arranged on the bracket, a rotating shaft is rotatably mounted in the base disc, the rotating shaft is driven by a first output source arranged in the base disc to rotate, an overturning frame is coaxially and fixedly mounted at one end of the rotating shaft, and a first output source is arranged in the overturning frame; the base disc is arranged in each forge piece body machining link, the auxiliary assembly is connected with the connecting base through the unified second clamping plate, the rotating shaft drives the overturning frame to achieve overturning of the forge piece, meanwhile, the overturning frame can actively cooperate with the auxiliary assembly in the current link to work, the process effect of the link is remarkably improved, and the machining efficiency is improved. The key point is that when a rotating shaft or an auxiliary assembly in a certain link breaks down, normal base discs in other links can be rapidly moved to a fault station, seamless replacement can be achieved by rapidly replacing corresponding auxiliary assemblies, and turnover devices and auxiliary tools in different links can be universally used in a cross-link mode.
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Description

Technical Field

[0001] The invention relates to the technical field of forging processing and turnover, and in particular to a forging turnover device for forging processing. Background Art

[0002] The forging processing flipping device achieves multi-angle flipping of forgings through the coordination of fixtures, rotating shafts and drive systems, meeting the posture adjustment requirements of multiple links such as forging and heat treatment. However, the demand for auxiliary tools in each processing link varies significantly. During quenching, an agitator is required to stir the medium evenly, during grinding, a purge nozzle is required to remove debris, and during inspection, non-destructive testing probes are relied upon to scan for defects.

[0003] Traditional designs separate the turning device from the auxiliary tools, and often adopt a "one link, one device" solution, such as separately configuring a special turning machine for quenching, a special turntable for testing, etc. This model not only causes repeated purchase of equipment, large floor space, and soaring costs, but also due to the rigidification of equipment functions, it is difficult to achieve cross-link universality. Because the turning equipment in different links is closely bound to specific auxiliary tools, the production process is fragmented and the processing tasks cannot be flexibly switched. For example, when a problem occurs with the turning device in one link, the entire production line needs to stop production, and it is impossible to temporarily replace it with a turning device in another link to continue production, which makes it difficult to adapt to the diversification and flexibility of modern forging processing. Based on this, the present invention purposely provides a forging turning device for forging processing that can be used across links and cooperate with auxiliary tools in other links. Summary of the Invention

[0004] The purpose of the present invention is to provide a forging turning device for forging processing in order to solve the technical problems in the prior art.

[0005] The purpose of the present invention can be achieved through the following technical solutions:

[0006] A forging turning device for forging processing, comprising:

[0007] A bracket is provided on the bracket, a base plate is rotatably installed in the base plate, the rotation shaft is driven to rotate by a first output source built into the base plate, a turning frame is coaxially fixedly installed on one end of the rotation shaft, two first clamping plates moving in opposite directions are slidably installed on the turning frame, the two first clamping plates are driven to move by a first driving source, and the two first clamping plates are used to clamp and fix the forging body;

[0008] An inner ring with teeth, the inner ring with teeth is rotatably mounted on a base plate, the inner ring with teeth is provided with two symmetrically arranged connecting seats, each of the connecting seats is slidably mounted with two second clamping plates that move in opposite directions, the two second clamping plates are driven to move by a second driving source, the two second clamping plates are used to clamp and fix the auxiliary component, and the auxiliary component is used to cooperate with the forging body;

[0009] The transmission assembly is arranged on the base plate, and the rotating shaft is connected to the inner ring with teeth through the transmission assembly.

[0010] As a further solution of the present invention: the transmission assembly includes an outer ring gear, a first gear, a second gear and a linkage assembly, a cavity is opened in the base plate, the outer ring gear and the first gear are both rotatably installed in the cavity, and the outer ring gear is meshed with the first gear, the outer ring gear is coaxially fixed on the outer circular surface of the rotating shaft, the second gear is rotatably installed on the base plate, the second gear is meshed with the inner ring of the inner ring toothed ring, and the second gear is connected to the first gear through the linkage assembly.

[0011] As a further solution of the present invention: the linkage assembly is a ratchet assembly. When the first gear rotates forward, the first gear drives the second gear to rotate synchronously through the linkage assembly. When the first gear rotates backward, the second gear stops.

[0012] As a further solution of the present invention: a sliding groove is provided on the inner ring toothed ring, the connecting seat is slidably installed in the sliding groove, and the connecting seat moves along the radial direction of the inner ring toothed ring, a threaded rod is rotatably installed in the sliding groove, the threaded rod is driven to rotate by the second output source, and the threaded rod is threadedly connected to the connecting seat.

[0013] As a further solution of the present invention: a sealing cover is fixedly installed on the base plate, the sealing cover is sleeved on the rotating shaft, and the inner wall of the sealing cover is rotatably connected to the outer circular surface of the rotating shaft, the sealing cover is fitted with the inner ring with teeth, and the two are slidably connected.

[0014] As a further solution of the present invention: a connecting block is fixedly installed at one end of the base away from the rotating shaft, a round rod is fixedly installed on the connecting block, the round rod is rotatably installed on the bracket, the connecting block is driven to rotate by the driving assembly, and the rotation angle of the connecting block is ninety degrees.

[0015] As a further solution of the present invention: the drive assembly includes a sleeve, a slider, a cross slot and a groove, one end of the round rod extends to the outside of the bracket, and four circumferentially arranged grooves are provided on the outer circular surface of the end, the sleeve is sleeved on the round rod, and the sleeve is slidably connected to the round rod, and the sleeve is driven to move by a third driving source, a cross slot is provided on the bracket, and the four circumferentially arranged sliders are fixedly mounted on the sleeve, the slider is slidably connected to the groove, and the slider is slidably connected to the cross slot, and when the third driving source drives the sleeve away from the bracket, the slider slides away from the cross slot.

[0016] As a further solution of the present invention: the drive assembly also includes a transmission gear and a partially toothed semicircular ring, the partially toothed semicircular ring is fixedly mounted on the outer arc surface of the connecting block, and the partially toothed semicircular ring is coaxially arranged with the round rod, the transmission gear is rotatably mounted on the bracket, and the transmission gear is driven to rotate by a third output source built into the bracket, and the transmission gear is meshed with the partially toothed semicircular ring.

[0017] Beneficial effects of the present invention:

[0018] 1. In the present invention, by configuring a base plate at each forging body processing link, and connecting the auxiliary components to the connecting seat through a unified second clamping plate, it is achieved that only the corresponding auxiliary components need to be replaced in different processing links, and the rotating shaft drives the turning frame to realize the turning of the forging, and can actively cooperate with the auxiliary components of the current link, significantly improving the process effect of this link. The key is that when the rotating shaft or auxiliary component of a link fails, the normal base plate of other links can be quickly moved to the faulty workstation, and the corresponding auxiliary components can be quickly replaced to achieve seamless replacement, so that the turning devices and auxiliary tools of different links can be used across links;

[0019] 2. In the present invention, when the rotating shaft rotates in the forward direction, the transmission assembly can drive the inner ring with teeth to rotate synchronously. When the rotating shaft rotates in the reverse direction, the inner ring with teeth is in a stationary state. In this way, the forging body and the auxiliary assembly can rotate synchronously, but in opposite directions. It can also achieve the effect of the auxiliary assembly being stationary while the forging body actively rotates. This ensures that when the base plate of other links moves to the faulty link, it can match the matching mode of the forging body and the auxiliary assembly in the faulty link.

[0020] 3. In the present invention, the connecting seat is moved along the radial direction of the inner ring with teeth, that is, the distance between the auxiliary component and the forging body is adjusted. This can avoid the problem that the auxiliary component is too close to the turning frame when the turning frame is turned over, resulting in obstruction of the turning frame. At the same time, the corresponding connecting seat can be moved according to the needs of different processing links, so that the corresponding auxiliary component can perform auxiliary processing operations at a suitable position away from the forging body, thereby improving the processing effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] The present invention will be further described below with reference to the accompanying drawings.

[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 It is a schematic structural diagram of the base plate in the present invention;

[0024] Figure 3 This is a schematic structural diagram of the inner ring with teeth in the present invention;

[0025] Figure 4 It is a schematic structural diagram of a cross-section of the base plate in the present invention;

[0026] Figure 5 This is a schematic structural diagram of the sleeve moving out of the cross slot in the present invention;

[0027] Figure 6 It is a schematic structural diagram of a cross-section of the stent in the present invention;

[0028] Figure 7 It is a schematic structural diagram of a partially toothed semicircular ring in the present invention;

[0029] Figure 8 It is a schematic diagram of the base plate rotating on the bracket in the present invention.

[0030] In the figure: 1. bracket; 2. base plate; 201. cavity; 3. rotating shaft; 4. turning frame; 5. first splint; 6. inner ring with teeth; 7. connecting seat; 8. second splint; 9. auxiliary component; 10. outer ring gear; 11. first gear; 12. second gear; 13. linkage component; 14. sealing cover; 15. slide groove; 16. threaded rod; 17. connecting block; 18. round rod; 19. sleeve; 20. slider; 21. cross groove; 22. groove; 23. transmission gear; 24. partially toothed semicircular ring. DETAILED DESCRIPTION

[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.

[0032] See also Figures 1-8 As shown, the present invention is a forging turning device for forging processing, comprising:

[0033] A bracket 1 is provided with a base plate 2, a rotating shaft 3 is rotatably mounted in the base plate 2, the rotating shaft 3 is driven to rotate by a first output source built into the base plate 2, a turning frame 4 is coaxially fixedly mounted on one end of the rotating shaft 3, two first clamping plates 5 moving in opposite directions are slidably mounted on the turning frame 4, the two first clamping plates 5 are driven to move by a first driving source, and the two first clamping plates 5 are used to clamp and fix the forging body;

[0034] An inner ring with a toothed ring 6 is rotatably mounted on the base plate 2. Two symmetrically arranged connecting seats 7 are provided on the inner ring with a toothed ring 6. Two second clamping plates 8 that move toward each other are slidably mounted in each connecting seat 7. The two second clamping plates 8 are driven to move by a second driving source. The two second clamping plates 8 are used to clamp and fix an auxiliary component 9, which is used to cooperate with the forging body.

[0035] The transmission assembly is arranged on the base plate 2, and the rotating shaft 3 is connected to the inner ring with teeth 6 through the transmission assembly.

[0036] In one case of this embodiment, the first driving source and the second driving source can both be selected from electric cylinders, electric telescopic rods and other components, and other mechanisms that can realize linear reciprocating motion can also be selected. The first output source can be selected from servo motors, servo motors and other components, and other mechanisms that can realize rotational motion can also be selected. This embodiment is not specifically limited here. It should be noted that the auxiliary component 9 includes quenching agitators, grinding and blowing devices, detection probes and other devices. Different forging processing processes require the use of different auxiliary components 9, that is, the base plate 2 of different links is provided with auxiliary components 9 corresponding to the processing links. The components included in the auxiliary component 9 of the present invention are all existing technologies, and the present invention has not improved them. Therefore, there is no need to disclose their specific mechanical structure and circuit structure, and it does not affect the integrity of the present invention.

[0037] The working principle of the present invention is as follows: first, on the processing production line of the forging body, a bracket 1 is provided in each link where the forging needs to be flipped, and according to the requirements of the forging processing in different links, a suitable auxiliary component 9 is selected, and then the two auxiliary components 9 are clamped and fixed on the connecting seat 7 through the second clamping plate 8. When processing the forging body, the forging body is first clamped and fixed on the flipping frame 4 through the first clamping plate 5. When flipping is required, the rotating shaft 3 is driven to rotate by the first output source, and the rotating shaft 3 will drive the flipping frame 4 to flip, thereby completing the flipping of the forging body. During the flipping process, the auxiliary components 9 are on both sides of the forging body to assist the forging body. For example, in the heat treatment stage, the auxiliary component 9 is selected as a quenching agitator. At this time, the role of the flipping of the rotating shaft 3 is to drive the forging body to rotate in the quenching liquid, and the auxiliary components 9 are distributed on both sides of the forging body, which can stir the quenching liquid, thereby destroying the steam film on the surface of the quenching liquid, enhancing the heat exchange efficiency of the liquid-solid interface, and allowing the quenching liquid to directly impact the workpiece surface, significantly improving the cooling rate. In the polishing stage, the auxiliary component 9 is selected as a purge device. That is, the air outlet is directed toward the forging body. At this time, when one side of the forging body is polished, the forging body is flipped by the rotating shaft 3 in order to polish the other side. During the flipping process, one auxiliary component 9 blows the polished surface, and the other auxiliary component 9 blows the surface to be polished, thereby achieving the purpose of cleaning the grinding chips left on the surface of the forging body after polishing and cleaning the surface to be polished, thereby improving the polishing effect. When the rotating shaft 3 or the auxiliary component 9 of one of the processing links fails, the auxiliary component 9 of the other link can be removed from the connecting seat 7 through the second clamping plate 8, and then the auxiliary component 9 corresponding to the faulty link can be installed on the connecting seat 7 through the second clamping plate 8. At this time, the bracket 1 of the other link can be directly moved to the faulty link and put into use. In this way, the brackets 1 of different links can be used across links, thereby avoiding the problem that the flipping equipment of different links is tightly bound to specific auxiliary tools in the traditional flipping device, resulting in the fragmentation of the production process, and the flipping equipment is difficult to be used across links, resulting in the inability to flexibly switch processing tasks.

[0038] like Figures 1-4 As shown, as a preferred embodiment of the present invention, the transmission assembly includes an outer ring gear 10, a first gear 11, a second gear 12 and a linkage assembly 13. A cavity 201 is opened in the base plate 2. The outer ring gear 10 and the first gear 11 are both rotatably mounted in the cavity 201, and the outer ring gear 10 is meshed with the first gear 11. The outer ring gear 10 is coaxially fixedly mounted on the outer cylindrical surface of the rotating shaft 3. The second gear 12 is rotatably mounted on the base plate 2. The second gear 12 is meshed with the inner ring of the inner toothed ring 6, and the second gear 12 is transmission-connected to the first gear 11 through the linkage assembly 13.

[0039] Specifically, the linkage assembly 13 is a ratchet assembly. When the first gear 11 rotates forward, the first gear 11 drives the second gear 12 to rotate synchronously through the linkage assembly 13. When the first gear 11 rotates backward, the second gear 12 stops.

[0040] In one case of this embodiment, it should be noted that the ratchet assembly described in the present invention includes a pawl and a ratchet gear, the pawl is rotatably mounted on the first gear 11, and the ratchet gear is coaxially fixedly mounted on the second gear 12, so that when the first gear 11 rotates forward, the pawl and the ratchet gear are engaged, so that the first gear 11 drives the second gear 12 to rotate synchronously, and when the first gear 11 rotates reversely, the pawl and the ratchet gear are slidingly connected. At this time, the first gear 11 cannot drive the second gear 12 to rotate, so the second gear 12 is stationary, and the ratchet assembly is a prior art, and the present invention does not improve them. Therefore, there is no need to disclose their specific mechanical structure and circuit structure, which does not affect the integrity of the present invention.

[0041] In actual application of this embodiment, it is taken into account that in some processing links, the auxiliary component 9 needs to rotate around the forging body when the forging body is turned over. For example, in the heat treatment stage, when the forging body rotates in the quenching liquid, the auxiliary component 9 rotates around the forging body to further improve the effect of stirring the quenching liquid. In the polishing stage and the inspection stage, the auxiliary component 9 is rotated around the forging body. It should be noted that the rotation direction of the auxiliary component 9 should be opposite to the rotation direction of the rotating shaft 3. In this way, the auxiliary component 9 can sweep the surface of the forging body faster, thereby performing corresponding auxiliary operations. Therefore, a transmission component is set. Specifically: when the rotating shaft 3 rotates forward, the rotating shaft 3 drives the outer gear ring 10 to rotate synchronously. The outer gear ring 10 is meshed with the first gear 11, so the outer gear ring 10 drives the first gear 11 to rotate synchronously. At this time, the first gear 11 rotates forward, but the forward rotation of the first gear 11 is opposite to the rotation direction of the outer gear ring 10, that is, the forward rotation of the first gear 11 is opposite to the forward rotation direction of the rotating shaft 3. At this time, the first gear 11 drives the second gear 12 to rotate synchronously through the ratchet assembly, and the second gear 12 drives the inner ring gear ring 6 to rotate synchronously. At this time, the rotation direction of the inner ring gear ring 6 is the same as that of the first gear 11. Therefore, the rotation direction of the inner ring gear ring 6 is opposite to the rotation direction of the rotating shaft 3, thereby achieving the purpose of the auxiliary component 9 rotating in the opposite direction to the forging body flipping direction;

[0042] Taking into account the different positions of the auxiliary component 9 relative to the forging body in different links, when the inner ring toothed ring 6 is driven to rotate by the rotating shaft 3 so that the auxiliary component 9 is in a suitable position, the rotating shaft 3 rotates in the opposite direction, thereby driving the first gear 11 to rotate in the opposite direction, and the first gear 11 does not drive the second gear 12 to rotate through the ratchet assembly. At this time, the second gear 12 is stationary so that the position of the inner ring toothed ring 6 is fixed, and the rotating shaft 3 is rotated to the turning frame 4 to return to the position of clamping and fixing the forging body. At this time, the forging body is clamped and fixed on the turning frame 4, so that the position of the auxiliary component 9 relative to the forging body can be achieved in a reasonable manner, and the position of the inner ring toothed ring 6 and the auxiliary component 9 can be fixed when the forging body is flipped, thereby adapting to the needs of more and more special processing links.

[0043] At the same time, an additional driving source can be designed to drive the inner ring toothed ring 6 to rotate, so that the inner ring toothed ring 6 can rotate alone without driving the rotating shaft 3 to rotate, thereby achieving the effect that the forging body is stationary and the auxiliary component 9 actively rotates around the forging body. Such a variety of coordination ensures that when the base plate 2 of other links moves to the faulty link, it can match the coordination mode of the forging body and the auxiliary component 9 in the faulty link.

[0044] like Figures 1-4 As shown, as a preferred embodiment of the present invention, a sliding groove 15 is provided on the inner ring toothed ring 6, the connecting seat 7 is slidably installed in the sliding groove 15, and the connecting seat 7 moves along the radial direction of the inner ring toothed ring 6, and a threaded rod 16 is rotatably installed in the sliding groove 15, and the threaded rod 16 is driven to rotate by the second output source, and the threaded rod 16 is threadedly connected to the connecting seat 7.

[0045] In one case of this embodiment, the second output source may be manual rotation, a servo motor or other components, or other mechanisms capable of achieving rotational motion, which is not specifically limited in this embodiment.

[0046] In actual application of this embodiment, the threaded rod 16 can be rotated to drive the connecting seat 7 to move on the first clamping plate 5, and the connecting seat 7 moves along the radial direction of the inner ring toothed ring 6, which is actually close to or away from the turning frame 4, that is, adjusting the distance between the auxiliary component 9 and the forging body. In this way, the problem of the auxiliary component 9 being too close to the turning frame 4 and causing the turning of the turning frame 4 to be obstructed can be avoided when the turning frame 4 is turned over. At the same time, the corresponding connecting seat 7 can be moved according to the needs of different processing links, so that the corresponding auxiliary component 9 can perform auxiliary processing operations at a suitable position away from the forging body, thereby improving the processing effect.

[0047] like Figures 1-4As shown, as a preferred embodiment of the present invention, a sealing cover 14 is fixedly installed on the base plate 2, the sealing cover 14 is sleeved on the rotating shaft 3, and the inner wall of the sealing cover 14 is rotatably connected to the outer circular surface of the rotating shaft 3, the sealing cover 14 is fitted with the inner ring toothed ring 6, and the two are slidably connected.

[0048] In actual application of this embodiment, the provision of the sealing cover 14 can prevent the second gear 12 and the linkage assembly 13 from being exposed to the external environment, thereby protecting the second gear 12 and the linkage assembly 13 and ensuring stable operation of the transmission system.

[0049] like Figures 1-8 As shown, as a preferred embodiment of the present invention, a connecting block 17 is fixedly installed at one end of the base plate 2 away from the rotating shaft 3, and a round rod 18 is fixedly installed on the connecting block 17. The round rod 18 is rotatably installed on the bracket 1, and the connecting block 17 is driven to rotate by the driving assembly, and the rotation angle of the connecting block 17 is ninety degrees.

[0050] Specifically, the drive assembly includes a sleeve 19, a slider 20, a cross slot 21 and a groove 22. One end of the round rod 18 extends to the outside of the bracket 1, and four circumferentially arranged grooves 22 are provided on the outer circular surface of the end. The sleeve 19 is sleeved on the round rod 18, and the sleeve 19 is slidably connected to the round rod 18. The sleeve 19 is driven to move by a third driving source. A cross slot 21 is provided on the bracket 1, and the four circumferentially arranged sliders 20 are fixedly mounted on the sleeve 19. The slider 20 is slidably connected to the groove 22, and the slider 20 is slidably connected to the cross slot 21. When the third driving source drives the sleeve 19 away from the bracket 1, the slider 20 slides away from the cross slot 21.

[0051] Specifically, the drive assembly also includes a transmission gear 23 and a partial toothed semicircular ring 24. The partial toothed semicircular ring 24 is fixedly mounted on the outer arc surface of the connecting block 17, and the partial toothed semicircular ring 24 is coaxially arranged with the round rod 18. The transmission gear 23 is rotatably mounted on the bracket 1, and the transmission gear 23 is driven to rotate by a third output source built into the bracket 1, and the transmission gear 23 is meshed with the partial toothed semicircular ring 24.

[0052] In one case of this embodiment, the third driving source can be selected from components such as manual drive, electric cylinder, electric telescopic rod, etc., and other mechanisms that can achieve linear reciprocating motion can also be selected. The third output source can be selected from components such as servo motor, servo motor, etc., and other mechanisms that can achieve rotational motion can also be selected. This embodiment does not make specific limitations here.

[0053] In practical application, the connection block 17 is driven by the driving assembly to rotate, and the rotation angle of the connection block 17 is 90 degrees, so that the base plate 2 can be switched between the horizontal state and the vertical state. Figure 1 and Figure 8 As shown in the figure, these two states also meet the needs of different links. In the most intuitive way, in the heat treatment stage, the forging body is usually inserted vertically into the quenching liquid. At this time, the base plate 2 needs to be in the following state: Figure 8 The vertical state shown in FIG, and the base plate 2 is in the Figure 1 When the horizontal state is shown, it is more suitable for the grinding and testing stages. After the grinding and testing are completed, the base plate 2 can be switched to the vertical state. At this time, the forging body is closer to the ground, which makes it easier to carry out the unloading operation and the loading operation.

[0054] In order to ensure the stability of the connecting block 17, in the locked state, as shown in FIG. Figure 1 and Figure 6 As shown in the example, at this time, the sleeve 19 on the round rod 18 is located in the bracket 1, and the slider 20 on the sleeve 19 is inserted into the cross groove 21 of the bracket 1, and the slider 20 also slides in the groove 22 on the round rod 18. Therefore, the round rod 18 is in a state of being locked by the bracket 1 and cannot be locked, thereby ensuring the stability of the base plate 2 when the forging body is processed. When the state needs to be switched, the sleeve 19 is driven out and away from the cross groove 21 by the third driving source. At this time, the connecting block 17 can be rotated ninety degrees. After the rotation, the slider 20 on the sleeve 19 is still aligned with the cross groove 21. Therefore, the sleeve 19 is driven by the third driving source to be inserted into the cross groove 21, which can achieve the effect of locking the round rod 18.

[0055] In order to drive the connecting block 17 to rotate smoothly and steadily through ninety degrees, the transmission gear 23 is driven to rotate by the third output source. The transmission gear 23 is engaged with the local toothed semicircular ring 24, thereby driving the local toothed semicircular ring 24 to rotate, thereby causing the connecting block 17 to rotate. In this way, as long as the rotation direction is changed by the transmission gear 23, the rotation direction of the connecting block 17 can be changed, thereby realizing the switching of the base plate 2 between the vertical state and the horizontal state. When the transmission gear 23 stops rotating, it can also lock the local toothed semicircular ring 24, further improving the stability of the connecting block 17 and the base plate 2.

[0056] The above is a detailed description of an embodiment of the present invention. However, the content described is only a preferred embodiment of the present invention and should not be considered to limit the scope of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.

Claims

1. A forging turning device for forging processing, characterized in that: include: A bracket (1) is provided on the bracket (1), a base plate (2) is rotatably mounted in the base plate (2), the rotation shaft (3) is driven to rotate by a first output source built into the base plate (2), a turning frame (4) is coaxially fixedly mounted on one end of the rotation shaft (3), two first clamping plates (5) that move toward each other are slidably mounted on the turning frame (4), the two first clamping plates (5) are driven to move by a first driving source, and the two first clamping plates (5) are used to clamp and fix the forging body; An inner ring with teeth (6), the inner ring with teeth (6) is rotatably mounted on a base plate (2), two symmetrically arranged connecting seats (7) are provided on the inner ring with teeth (6), two second clamping plates (8) moving toward each other are slidably mounted in each connecting seat (7), the two second clamping plates (8) are driven to move by a second driving source, the two second clamping plates (8) are used to clamp and fix an auxiliary component (9), and the auxiliary component (9) is used to cooperate with the forging body; A transmission assembly is provided on a base plate (2), and a rotating shaft (3) is connected to an inner toothed ring (6) via the transmission assembly.

2. A forging turning device for forging processing according to claim 1, characterized in that: The transmission assembly comprises an outer gear ring (10), a first gear (11), a second gear (12) and a linkage assembly (13); a cavity (201) is provided in the base plate (2); the outer gear ring (10) and the first gear (11) are both rotatably mounted in the cavity (201), and the outer gear ring (10) is meshed with the first gear (11); the outer gear ring (10) is coaxially fixedly mounted on the outer cylindrical surface of the rotating shaft (3); the second gear (12) is rotatably mounted on the base plate (2); the second gear (12) is meshed with the inner ring of the inner toothed ring (6), and the second gear (12) is transmission-connected to the first gear (11) through the linkage assembly (13).

3. A forging turning device for forging processing according to claim 2, characterized in that: The linkage assembly (13) is a ratchet assembly. When the first gear (11) rotates in the forward direction, the first gear (11) drives the second gear (12) to rotate synchronously through the linkage assembly (13). When the first gear (11) rotates in the reverse direction, the second gear (12) stops.

4. A forging turning device for forging processing according to claim 1, characterized in that: A sliding groove (15) is provided on the inner ring toothed ring (6), the connecting seat (7) is slidably installed in the sliding groove (15), and the connecting seat (7) moves along the radial direction of the inner ring toothed ring (6), a threaded rod (16) is rotatably installed in the sliding groove (15), the threaded rod (16) is driven to rotate by a second output source, and the threaded rod (16) is threadedly connected to the connecting seat (7).

5. The forging turning device for forging processing according to claim 1, characterized in that: A sealing cover (14) is fixedly mounted on the base plate (2). The sealing cover (14) is sleeved on the rotating shaft (3), and the inner wall of the sealing cover (14) is rotatably connected to the outer surface of the rotating shaft (3). The sealing cover (14) is fitted with the inner toothed ring (6), and the two are slidably connected.

6. A forging turning device for forging processing according to claim 1, characterized in that: A connecting block (17) is fixedly mounted on one end of the base plate (2) away from the rotating shaft (3); a round rod (18) is fixedly mounted on the connecting block (17); the round rod (18) is rotatably mounted on the bracket (1); the connecting block (17) is driven to rotate by a driving assembly, and the rotation angle of the connecting block (17) is ninety degrees.

7. A forging turning device for forging processing according to claim 6, characterized in that: The driving assembly comprises a sleeve (19), a slider (20), a cross slot (21) and a groove (22); one end of the round rod (18) extends to the outside of the bracket (1), and four circumferentially arranged grooves (22) are provided on the outer circular surface of the end; the sleeve (19) is sleeved on the round rod (18), and the sleeve (19) and the round rod (18) are slidably connected; the sleeve (19) is driven to move by a third driving source; a cross slot (21) is provided on the bracket (1); the four circumferentially arranged sliders (20) are fixedly mounted on the sleeve (19); the slider (20) is slidably connected to the groove (22), and the slider (20) is slidably connected to the cross slot (21); when the third driving source drives the sleeve (19) away from the bracket (1), the slider (20) slides away from the cross slot (21).

8. A forging turning device for forging processing according to claim 7, characterized in that: The drive assembly further comprises a transmission gear (23) and a partially toothed semicircular ring (24); the partially toothed semicircular ring (24) is fixedly mounted on the outer arc surface of the connecting block (17), and the partially toothed semicircular ring (24) is coaxially arranged with the round rod (18); the transmission gear (23) is rotatably mounted on the bracket (1), and the transmission gear (23) is driven to rotate by a third output source built into the bracket (1); the transmission gear (23) is meshed with the partially toothed semicircular ring (24).