Automatic material clamping and feeding device for forge piece machining

By introducing the combination of the insulation shell and the clamping parts into the automatic feeding device for processing for forgings, the problem of the forgings losing temperature during feeding is solved, and the automatic clamping and insulation of the forgings is realized, and the processing accuracy and efficiency are improved.

CN223070362UActive Publication Date: 2025-07-08JIANGSU DELONG NEW MATERIAL TECH CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202421580238.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-05
Publication Date
2025-07-08
Estimated Expiration
2034-07-05

AI Technical Summary

Technical Problem

The existing automatic feeding device for processing for forgings lacks insulation devices during feeding forgings, resulting in the forgings being easily lost.

Method used

An automatic clamp feeding device including an insulation shell, a clamping member and a driving assembly is designed. Through the cooperation of the clamping rod and the transmission rod, the automatic clamping and insulation of the forgings are realized. The driving assembly and the rotating assembly are used to ensure that the forgings are stored in the insulation shell and sealed to prevent temperature loss.

Benefits of technology

It effectively prevents forgings from losing a large amount of temperature during feeding, improves the temperature stability of the forgings, and improves processing accuracy and efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223070362U_ABST
    Figure CN223070362U_ABST
Patent Text Reader

Abstract

The utility model belongs to the technical field of automatic material clamping and feeding devices, and particularly relates to an automatic material clamping and feeding device for forge piece machining, which comprises an automatic feeding device body and a carrying assembly body, the carrying assembly body is arranged on the automatic feeding device body, and a clamping component body is arranged on the carrying assembly body. Two clamping rods are connected to the clamping part body in a sliding mode. The heat preservation shell is fixedly connected to the carrying assembly body, a first sliding groove is formed in the top face of the inner wall of the heat preservation shell, a sliding rod is slidably connected into the first sliding groove, a second sliding groove is formed in the sliding rod, two transmission rods are slidably connected into the second sliding groove, and the two transmission rods are fixedly connected with the two clamping rods correspondingly; the automatic feeding device solves the problem that when the automatic feeding device is used, although automatic clamping and automatic feeding are achieved through a clamping component, the automatic feeding device is not provided with a heat preservation device, and therefore the temperature loss situation can happen to forgings in the feeding process.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model belongs to the technical field of automatic material clamping and feeding devices, and particularly relates to an automatic material clamping and feeding device for forging processing. Background Technique

[0002] An automatic material clamping and feeding device for forging processing is a kind of automatic equipment specially used in the forging processing process, which is used to realize the automatic clamping, conveying and positioning of forgings. This device usually consists of a clamping mechanism, a conveying mechanism, a control system and other parts, aiming to improve the production efficiency and accuracy of forging processing, reduce the labor intensity, and reduce the errors caused by human factors.

[0003] For example, the Chinese patent with the publication number CN219484088U discloses an automatic feeding device for forgings to be die-forged, including a calcining furnace. At the other end of the upper end surface of the bottom platform, a forging assembly is installed. A track is fixedly connected between the calcining furnace and the forging assembly on the upper end surface of the bottom platform. A handling assembly is installed on the upper part of the track; the handling assembly includes a moving part, a moving part is installed on the upper part of the track, an angle part is installed on the upper end surface of the moving part, a lifting part is installed on the upper end surface of the angle part, and a clamping part is installed on one side of the lifting part. Through the mutual cooperation of the track and the handling assembly, the utility model realizes the clamping and handling of forgings, and thus facilitates the subsequent forging of forgings.

[0004] The above patent has the following problems:

[0005] There are some disadvantages in the use of this patent. For example, when the above automatic feeding device is in use, although it realizes automatic material clamping and automatic feeding through the clamping part, the above automatic feeding device does not have a heat preservation device, resulting in a large amount of heat loss of the forging during the feeding process. In view of this, we propose an automatic material clamping and feeding device for forging processing. Content of the Utility Model

[0006] The purpose of the utility model is to provide an automatic material clamping and feeding device for forging processing to solve the problems put forward in the above background technique.

[0007] In view of this, the utility model provides an automatic material clamping and feeding device for forging processing, including:

[0008] An automatic feeding device body and a handling assembly body. The handling assembly body is arranged on the automatic feeding device body. A clamping part body is arranged on the handling assembly body. Two clamping rods are slidably connected to the clamping part body.

[0009] The heat preservation shell is fixedly connected to the main body of the handling component. The top surface of the inner wall of the heat preservation shell is provided with a first sliding groove, and a sliding rod is slidably connected in the first sliding groove. A second sliding groove is provided on the sliding rod, and two transmission rods are slidably connected in the second sliding groove, and the two transmission rods are respectively fixedly connected to two clamping rods;

[0010] The driving component is located inside the heat preservation shell and is used to drive the sliding rod to move;

[0011] Two third sliding grooves are symmetrically provided on the heat preservation shell and communicated with the inner cavity of the heat preservation shell. A heat preservation baffle is slidably connected between the two third sliding grooves. Two first threaded rods are respectively threadedly connected to both ends of the heat preservation baffle, and the two first threaded rods are respectively located in the two third sliding grooves and rotatably connected to the two third sliding grooves;

[0012] The rotating component is located inside the heat preservation shell and is used to drive the two first threaded rods to rotate.

[0013] Based on the above structure, by providing the heat preservation shell, it is ensured that the heat preservation shell can protect the forging from losing a large amount of heat. The first sliding groove and the sliding rod ensure that the sliding rod can slide in the first sliding groove. By providing the clamping rod, the second sliding groove and the transmission rod, it is ensured that the two transmission rods can respectively drive the two clamping rods to slide in the second sliding groove. By providing the driving component, it is ensured that the user can drive the sliding rod to move through the driving component, and the sliding rod can drive the two transmission rods to move through the second sliding groove; when the two transmission rods move, the two transmission rods can respectively drive the two clamping rods to move, so that the two clamping rods can receive the forging into the heat preservation shell. By providing the third sliding groove and the heat preservation baffle, it is ensured that the heat preservation baffle can slide between the two third sliding grooves and further prevent the forging from losing heat. By providing the rotating component and the first threaded rod, it is ensured that the user can drive the two first threaded rods to rotate through the rotating component, so that the heat preservation baffle can seal the heat preservation shell.

[0014] In the above technical solution, further, the driving component includes:

[0015] Two second threaded rods are rotatably connected in the first sliding groove, and the two second threaded rods are threadedly connected to the sliding rod;

[0016] The movable groove is provided inside the heat preservation shell and communicated with the first sliding groove. Two chain wheels are rotatably connected in the movable groove, and one end of each of the two chain wheels extends into the first sliding groove and is respectively fixed to the two second threaded rods. A chain is engaged between the two chain wheels;

[0017] A gear groove is provided in the heat preservation shell and is communicated with the movable groove. A first bevel gear is rotatably connected in the gear groove, and one end of the first bevel gear extends into the movable groove and is fixed to one of the sprockets. A second bevel gear is meshed with one side of the first bevel gear, and the second bevel gear is located in the gear groove and is rotatably connected with the gear groove;

[0018] A first motor is fixedly connected to the top surface of the heat preservation shell, and the output shaft of the first motor penetrates through the top surface of the heat preservation shell and extends into the gear groove to be fixed to the second bevel gear.

[0019] In this technical solution, it is ensured that the two clamping rods can take the forging into the heat preservation shell from the outside.

[0020] In the above technical solution, further, one end of each of the two sprockets is rotatably connected to the first chute, and one end of the first bevel gear is rotatably connected to the movable groove.

[0021] In this technical solution, it is ensured that one end of each of the two sprockets can rotate normally in the first chute, and one end of the first bevel gear can rotate normally in the movable groove.

[0022] In the above technical solution, further, the output shaft of the first motor is rotatably connected to the heat preservation shell.

[0023] In this technical solution, it is ensured that the output shaft of the first motor can rotate normally in the heat preservation shell.

[0024] In the above technical solution, further, the rotating assembly includes:

[0025] Two first rotating grooves are provided in the heat preservation shell and are respectively communicated with two third chutes. A first worm gear is rotatably connected in the first rotating groove, and one end of the first worm gear extends into the third chute and is fixed to the first threaded rod;

[0026] Two second rotating grooves are respectively provided on the inner walls of the two first rotating grooves. A first worm that meshes with the first worm gear is rotatably connected in the second rotating groove;

[0027] Two third rotating grooves are symmetrically provided in the heat preservation shell and are respectively communicated with the two second rotating grooves. A second worm gear is rotatably connected in the third rotating groove, and one end of the second worm gear extends into the second rotating groove and is fixed to the first worm;

[0028] A fourth rotating groove is provided in the heat preservation shell and is communicated with the two third rotating grooves. A second worm gear set is rotatably connected in the fourth rotating groove, and the second worm gear set meshes with the two second worm gears;

[0029] The fifth rotating groove is formed on the inner wall of the fourth rotating groove. A through groove communicating with the outside is formed on the inner wall of the fifth rotating groove. A third worm gear fixed to the second worm gear set is rotatably connected in the fifth rotating groove. A third worm that rotates with the through groove is engaged with one side of the third worm gear.

[0030] The second motor is fixedly connected to the top surface of the heat preservation shell, and the output shaft of the second motor extends into the through groove and is fixed to the third worm.

[0031] In this technical solution, it is ensured that when the heat preservation baffle moves to a suitable position, the heat preservation baffle will completely enclose the heat preservation shell to prevent a large amount of heat loss of the forging.

[0032] In the above technical solution, further, the thread helix directions of the two first worms are opposite, and the second worm gear set is composed of two second worms.

[0033] In this technical solution, it is ensured that when the two first worms rotate, the two first worms can drive the two first worm gears to rotate in the same direction respectively, ensuring that the second worm gear set can drive the two second worm gears to rotate.

[0034] The beneficial effects of the present utility model are:

[0035] For the automatic clamping and feeding device for forging processing, through the provided heat preservation shell, it is ensured that the heat preservation shell can protect the forging from a large amount of heat loss. The first sliding groove and the sliding rod ensure that the sliding rod can slide in the first sliding groove. Through the provided clamping rod, the second sliding groove and the transmission rod, it is ensured that the two transmission rods can drive the two clamping rods to slide in the second sliding groove respectively. Through the provided driving assembly, it is ensured that the user can drive the sliding rod to move through the driving assembly, and the sliding rod drives the two transmission rods to move through the second sliding groove; when the two transmission rods move, the two transmission rods can drive the two clamping rods to move respectively, so that the two clamping rods receive the forging into the heat preservation shell. Through the provided third sliding groove and the heat preservation baffle, it is ensured that the heat preservation baffle can slide between the two third sliding grooves and further prevent the forging from losing heat. Through the provided rotating assembly and the first threaded rod, it is ensured that the user can drive the two first threaded rods to rotate through the rotating assembly, so that the heat preservation baffle can seal the heat preservation shell, solving the problem that although the automatic feeding device realizes automatic clamping and feeding through the clamping component during use, the above automatic feeding device does not have a heat preservation device, resulting in the problem that the forging may lose heat during the feeding process. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] Figure 1 is the overall structural schematic diagram of the present utility model;

[0037] Figure 2It is a schematic diagram of the regional structure of the heat preservation shell of the present utility model;

[0038] Figure 3 It is a schematic diagram of the regional structure of the body of the handling component of the present utility model;

[0039] Figure 4 It is one of the schematic diagrams of the internal structure of the heat preservation shell of the present utility model;

[0040] Figure 5 It is the second schematic diagram of the internal structure of the heat preservation shell of the present utility model;

[0041] Figure 6 It is the third schematic diagram of the internal structure of the heat preservation shell of the present utility model.

[0042] The markings in the figure are indicated as:

[0043] 1. Body of the automatic feeding device; 2. Body of the handling component; 3. Body of the clamping component; 4. Clamping rod; 5. First sliding groove; 6. Slide bar; 7. Second sliding groove; 8. Transmission rod; 9. Third sliding groove; 10. Heat preservation baffle; 11. First threaded rod; 12. Second threaded rod; 13. Activity groove; 14. Sprocket; 15. Chain; 16. Gear groove; 17. First bevel gear; 18. Second bevel gear; 19. First motor; 20. Heat preservation shell; 21. First rotation groove; 22. First worm wheel; 23. Second rotation groove; 24. First worm; 25. Third rotation groove; 26. Second worm wheel; 27. Fourth rotation groove; 28. Second worm group; 29. Fifth rotation groove; 30. Through groove; 31. Third worm wheel; 32. Third worm; 33. Second motor. Specific embodiments

[0044] Next, the technical solutions in the embodiments of the present application will be clearly described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art belong to the scope protected by the present application.

[0045] In the description of the present application, it should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments of the present application. For ease of description, the dimensions of the various parts shown in the drawings are not drawn in actual proportional relationships. Technologies, methods, and devices known to those of ordinary skill in the relevant art may not be discussed in detail, but where appropriate, such technologies, methods, and devices should be regarded as part of the authorization specification. In all the examples shown and discussed here, any specific value should be construed as merely exemplary and not as a limitation. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that like reference numerals and letters denote like items in the following drawings, and thus, once an item is defined in one drawing, it need not be further discussed in subsequent drawings.

[0046] It should be noted that the terms "first", "second", etc. in the description and claims of the present application are used to distinguish similar objects and are not used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of the present application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first", "second", etc. are generally of the same category and do not limit the number of objects. For example, the first object can be one or multiple. In addition, "and / or" in the description and claims means at least one of the connected objects, and the character " / ", generally represents an "or" relationship between the associated objects before and after.

[0047] It should be noted that in the description of the present application, the orientation or positional relationships indicated by orientation terms such as "front, back, up, down, left, right", "lateral, vertical, perpendicular, horizontal" and "top, bottom" are generally based on the orientation or positional relationships shown in the drawings. These terms are only for ease of describing the present application and simplifying the description. Without contrary description, these orientation terms do not indicate or imply that the devices or elements referred to must have a specific orientation or be constructed and operated in a specific orientation, and thus should not be construed as limiting the protection scope of the present application; the orientation terms "inside, outside" refer to the inside and outside relative to the contour of each component itself.

[0048] It should be noted that in this application, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or further includes elements inherent in such a process, method, article or device. Without further limitation, an element defined by the statement "including one..." does not exclude the existence of additional identical elements in the process, method, article or device including such an element. In addition, it should be pointed out that the scope of the methods and devices in the embodiments of this application is not limited to performing functions in the order shown or discussed, and may also include performing functions in a substantially simultaneous manner or in the reverse order according to the functions involved. For example, the described methods may be performed in an order different from that described, and various steps may be added, omitted, or combined. In addition, the features described with reference to certain examples may be combined in other examples. Embodiment 1

[0049] Please refer to Figure 1 - Figure 6 As shown, this embodiment provides an automatic clamping and feeding device for forging processing, including:

[0050] The automatic feeding device body 1 and the handling component body 2, the handling component body 2 is arranged on the automatic feeding device body 1, a clamping component body 3 is arranged on the handling component body 2, and two clamping rods 4 are slidably connected to the clamping component body 3;

[0051] The heat preservation shell 20, the heat preservation shell 20 is fixedly connected to the handling component body 2, a first sliding groove 5 is opened on the top surface of the inner wall of the heat preservation shell 20, a sliding rod 6 is slidably connected in the first sliding groove 5, a second sliding groove 7 is opened on the sliding rod 6, two transmission rods 8 are slidably connected in the second sliding groove 7, and the two transmission rods 8 are respectively fixedly connected to the two clamping rods 4;

[0052] The driving component, the driving component is located in the heat preservation shell 20 and is used to drive the sliding rod 6 to move;

[0053] Two third sliding grooves 9, the two third sliding grooves 9 are symmetrically opened on the heat preservation shell 20 and communicate with the inner cavity of the heat preservation shell 20, a heat preservation baffle 10 is slidably connected between the two third sliding grooves 9, both ends of the heat preservation baffle 10 are respectively threadedly connected with two first threaded rods 11, and the two first threaded rods 11 are respectively located in the two third sliding grooves 9 and rotatably connected to the two third sliding grooves 9;

[0054] The rotating component, the rotating component is located in the heat preservation shell 20 and is used to drive the two first threaded rods 11 to rotate. Embodiment 2

[0055] This embodiment provides an automatic clamping and feeding device for forging processing. In addition to the technical solutions of the above embodiment, it also has the following technical features. The driving assembly includes:

[0056] Two second threaded rods 12, which are rotatably connected in the first chute 5, and the two second threaded rods 12 are threadedly connected to the slide rod 6;

[0057] The movable chute 13 is opened in the heat preservation shell 20 and communicates with the first chute 5. Two sprockets 14 are rotatably connected in the movable chute 13, and one end of each of the two sprockets 14 extends into the first chute 5 and is respectively fixed to the two second threaded rods 12. A chain 15 is engaged between the two sprockets 14;

[0058] The gear groove 16 is opened in the heat preservation shell 20 and communicates with the movable chute 13. A first bevel gear 17 is rotatably connected in the gear groove 16, and one end of the first bevel gear 17 extends into the movable chute 13 and is fixed to one of the sprockets 14. A second bevel gear 18 is engaged on one side of the first bevel gear 17, and the second bevel gear 18 is located in the gear groove 16 and is rotatably connected to the gear groove 16;

[0059] The first motor 19 is fixedly connected to the top surface of the heat preservation shell 20, and the output shaft of the first motor 19 penetrates the top surface of the heat preservation shell 20 and extends into the gear groove 16 and is fixed to the second bevel gear 18.

[0060] Among them, when in use, when the clamping component body 3 drives the two clamping rods 4 to clamp the forging, when the clamping component body 3 drives the two clamping rods 4 to clamp the forging, the two transmission rods 8 will approach each other in the second chute 7. The user starts the first motor 19, so that the output shaft of the first motor 19 drives the second bevel gear 18 to rotate in the gear groove 16, and the second bevel gear 18 drives the first bevel gear 17 to rotate in the gear groove 16. When the first bevel gear 17 rotates, the first bevel gear 17 drives one of the sprockets 14 to rotate in the movable chute 13, and one of the sprockets 14 drives the other sprocket 14 to rotate through the chain 15. When the two sprockets 14 rotate, the two sprockets 14 respectively drive the two second threaded rods 12 to rotate in the first chute 5. When the two second threaded rods 12 rotate in the first chute 5, the slide rod 6 moves along the first chute 5 under the action of the threads of the two second threaded rods 12, and the slide rod 6 drives the two transmission rods 8 to move through the second chute 7. When the two transmission rods 8 move, the two transmission rods 8 respectively drive the two clamping rods 4 to slide on the clamping component body 3, ensuring that the two clamping rods 4 can receive the forging from the outside into the heat preservation shell 20. Embodiment 3

[0061] This embodiment provides an automatic material clamping and feeding device for forging processing. In addition to including the technical solutions of the above embodiment, it also has the following technical features: one end of two sprockets 14 is rotatably connected to the first chute 5, and one end of the first bevel gear 17 is rotatably connected to the movable slot 13.

[0062] Among them, it is ensured that one end of the two sprockets 14 can rotate normally in the first chute 5, and it is ensured that one end of the first bevel gear 17 can rotate normally in the movable slot 13. Embodiment 4

[0063] This embodiment provides an automatic material clamping and feeding device for forging processing. In addition to including the technical solutions of the above embodiment, it also has the following technical features: the output shaft of the first motor 19 is rotatably connected to the heat preservation shell 20.

[0064] Among them, it is ensured that the output shaft of the first motor 19 can rotate normally in the heat preservation shell 20. Embodiment 5

[0065] This embodiment provides an automatic material clamping and feeding device for forging processing. In addition to including the technical solutions of the above embodiment, it also has the following technical features: the rotating assembly includes:

[0066] Two first rotating slots 21, which are opened in the heat preservation shell 20 and are respectively communicated with the two third chutes 9. A first worm gear 22 is rotatably connected in the first rotating slot 21, and one end of the first worm gear 22 extends into the third chute 9 and is fixed to the first threaded rod 11;

[0067] Two second rotating slots 23, which are respectively opened on the inner walls of the two first rotating slots 21. A first worm 24 meshing with the first worm gear 22 is rotatably connected in the second rotating slot 23;

[0068] Two third rotating slots 25, which are symmetrically opened in the heat preservation shell 20 and are respectively communicated with the two second rotating slots 23. A second worm gear 26 is rotatably connected in the third rotating slot 25, and one end of the second worm gear 26 extends into the second rotating slot 23 and is fixed to the first worm 24;

[0069] A fourth rotating slot 27, which is opened in the heat preservation shell 20 and is communicated with the two third rotating slots 25. A second worm gear set 28 is rotatably connected in the fourth rotating slot 27, and the second worm gear set 28 meshes with the two second worm gears 26;

[0070] The fifth rotation groove 29 is formed on the inner wall of the fourth rotation groove 27. A through groove 30 communicating with the outside is formed on the inner wall of the fifth rotation groove 29. A third worm gear 31 fixed to the second worm gear set 28 is rotatably connected in the fifth rotation groove 29. A third worm 32 rotatable in the through groove 30 is engaged with one side of the third worm gear 31.

[0071] The second motor 33 is fixedly connected to the top surface of the heat preservation shell 20, and the output shaft of the second motor 33 extends into the through groove 30 and is fixed to the third worm 32.

[0072] Among them, when the user starts the second motor 33, the output shaft of the second motor 33 drives the third worm 32 to rotate in the through groove 30. When the third worm 32 rotates, the third worm 32 drives the third worm gear 31 to rotate in the fifth rotation groove 29, and the third worm gear 31 drives the second worm gear set 28 to rotate in the fourth rotation groove 27. When the second worm gear set 28 rotates, the second worm gear set 28 drives the two second worm gears 26 to rotate in the two third rotation grooves 25 respectively. When the two second worm gears 26 rotate, the two second worm gears 26 drive the two first worms 24 to rotate in the two second rotation grooves 23 respectively. When the two first worms 24 rotate, the two first worms 24 drive the two first worm gears 22 to rotate respectively. When the two first worm gears 22 rotate, the two first worm gears 22 drive the two first threaded rods 11 to rotate in the two third sliding grooves 9 respectively. When the two first threaded rods 11 rotate, the heat preservation baffle 10 moves downward under the action of the threads of the two first threaded rods 11, ensuring that when the heat preservation baffle 10 moves to a suitable position, the heat preservation baffle 10 completely closes the heat preservation shell 20, preventing a large amount of heat loss of the forging. Embodiment 6

[0073] This embodiment provides an automatic material clamping and feeding device for forging processing. In addition to including the technical solutions of the above embodiments, it also has the following technical features: the thread helix directions on the two first worms 24 are opposite, and the second worm gear set 28 is composed of two second worms.

[0074] Among them, it is ensured that when the two first worms 24 rotate, the two first worms 24 can drive the two first worm gears 22 to rotate in the same direction respectively, ensuring that the second worm gear set 28 can drive the two second worm gears 26 to rotate.

[0075] During use, when the clamping component body 3 drives the two clamping rods 4 to clamp the forging, the two transmission rods 8 will approach each other within the second chute 7. The user starts the first motor 19, causing the output shaft of the first motor 19 to drive the second bevel gear 18 to rotate within the gear slot 16, and the second bevel gear 18 drives the first bevel gear 17 to rotate within the gear slot 16. When the first bevel gear 17 rotates, the first bevel gear 17 drives one of the sprockets 14 to rotate within the movable slot 13, and one of the sprockets 14 drives the other sprocket 14 to rotate through the chain 15. When the two sprockets 14 rotate, the two sprockets 14 respectively drive the two second threaded rods 12 to rotate within the first chute 5. When the two second threaded rods 12 rotate within the first chute 5, the sliding rod 6 moves along the first chute 5 under the action of the threads of the two second threaded rods 12, and the sliding rod 6 drives the two transmission rods 8 to move through the second chute 7. When the two transmission rods 8 move, the two transmission rods 8 respectively drive the two clamping rods 4 to slide on the clamping component body 3, enabling the two clamping rods 4 to receive the forging from the outside into the heat preservation shell 20. Subsequently, the user starts the second motor 33, causing the output shaft of the second motor 33 to drive the third worm 32 to rotate within the through slot 30. When the third worm 32 rotates, the third worm 32 drives the third worm gear 31 to rotate within the fifth rotation slot 29, and the third worm gear 31 drives the second worm gear group 28 to rotate within the fourth rotation slot 27. When the second worm gear group 28 rotates, the second worm gear group 28 drives the two second worm gears 26 to rotate within the two third rotation slots 25 respectively. When the two second worm gears 26 rotate, the two second worm gears 26 respectively drive the two first worms 24 to rotate within the two second rotation slots 23. When the two first worms 24 rotate, the two first worms 24 respectively drive the two first worm gears 22 to rotate. When the two first worm gears 22 rotate, the two first worm gears 22 respectively drive the two first threaded rods 11 to rotate within the two third chutes 9. When the two first threaded rods 11 rotate, the heat preservation baffle 10 moves downward under the action of the threads of the two first threaded rods 11. When the heat preservation baffle 10 moves to a suitable position, the heat preservation baffle 10 completely closes the heat preservation shell 20 to prevent a large amount of heat loss of the forging.

[0076] The embodiments of the present application have been described above in conjunction with the accompanying drawings. Without conflict, the embodiments and the features in the embodiments in the present application can be combined with each other. The present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not restrictive. Under the inspiration of the present application, those of ordinary skill in the art can also make many forms without departing from the purpose of the present application and the scope protected by the claims, and all belong to the protection scope of the present application.

Claims

1. An automatic clamping and feeding device for forging processing, characterized in that, Comprising: The main body of the automatic feeding device (1) and the main body of the handling component (2), the main body of the handling component (2) is arranged on the main body of the automatic feeding device (1), a clamping component main body (3) is arranged on the main body of the handling component (2), and two clamping rods (4) are slidably connected to the clamping component main body (3); A heat preservation shell (20), the heat preservation shell (20) is fixedly connected to the main body of the handling component (2), a first sliding groove (5) is opened on the top surface of the inner wall of the heat preservation shell (20), a sliding rod (6) is slidably connected in the first sliding groove (5), a second sliding groove (7) is opened on the sliding rod (6), two transmission rods (8) are slidably connected in the second sliding groove (7), and the two transmission rods (8) are respectively fixedly connected to the two clamping rods (4); A driving component, the driving component is located in the heat preservation shell (20) and is used to drive the sliding rod (6) to move; Two third sliding grooves (9), the two third sliding grooves (9) are symmetrically opened on the heat preservation shell (20) and communicated with the inner cavity of the heat preservation shell (20), a heat preservation baffle (10) is slidably connected between the two third sliding grooves (9), two first threaded rods (11) are respectively threadedly connected to both ends of the heat preservation baffle (10), and the two first threaded rods (11) are respectively located in the two third sliding grooves (9) and rotatably connected to the two third sliding grooves (9); A rotating component, the rotating component is located in the heat preservation shell (20) and is used to drive the two first threaded rods (11) to rotate.

2. An automatic material clamping and feeding device for forging processing according to claim 1, characterized in that, The driving component includes: Two second threaded rods (12), the two second threaded rods (12) are rotatably connected in the first sliding groove (5), and the two second threaded rods (12) are threadedly connected to the sliding rod (6); An activity groove (13), the activity groove (13) is opened in the heat preservation shell (20) and communicated with the first sliding groove (5), two chain wheels (14) are rotatably connected in the activity groove (13), and one end of the two chain wheels (14) extends into the first sliding groove (5) and is respectively fixed to the two second threaded rods (12), and a chain (15) is engaged between the two chain wheels (14); A gear groove (16), the gear groove (16) is opened in the heat preservation shell (20) and communicated with the activity groove (13), a first bevel gear (17) is rotatably connected in the gear groove (16), and one end of the first bevel gear (17) extends into the activity groove (13) and is fixed to one of the chain wheels (14), a second bevel gear (18) is engaged on one side of the first bevel gear (17), and the second bevel gear (18) is located in the gear groove (16) and rotatably connected to the gear groove (16); A first motor (19), the first motor (19) is fixedly connected to the top surface of the heat preservation shell (20), and the output shaft of the first motor (19) penetrates through the top surface of the heat preservation shell (20) and extends into the gear groove (16) and is fixed to the second bevel gear (18).

3. An automatic clamping and feeding device for forging processing according to claim 2, characterized in that, One end of the two chain wheels (14) is rotatably connected to the first sliding groove (5), and one end of the first bevel gear (17) is rotatably connected to the activity groove (13).

4. An automatic clamping and feeding device for forging processing according to claim 2, characterized in that, The output shaft of the first motor (19) is rotatably connected to the heat preservation shell (20).

5. An automatic material clamping and feeding device for forging processing according to claim 1, characterized in that, The rotating assembly includes: Two first rotating grooves (21) are opened in the heat preservation shell (20) and are respectively communicated with two third sliding grooves (9). A first worm wheel (22) is rotatably connected in the first rotating groove (21), and one end of the first worm wheel (22) extends into the third sliding groove (9) and is fixed to the first threaded rod (11). Two second rotating grooves (23) are respectively opened on the inner walls of the two first rotating grooves (21). A first worm (24) meshing with the first worm wheel (22) is rotatably connected in the second rotating groove (23). Two third rotating grooves (25) are symmetrically opened in the heat preservation shell (20) and are respectively communicated with the two second rotating grooves (23). A second worm wheel (26) is rotatably connected in the third rotating groove (25), and one end of the second worm wheel (26) extends into the second rotating groove (23) and is fixed to the first worm (24). A fourth rotating groove (27) is opened in the heat preservation shell (20) and is communicated with the two third rotating grooves (25). A second worm group (28) is rotatably connected in the fourth rotating groove (27), and the second worm group (28) meshes with the two second worm wheels (26). A fifth rotating groove (29) is opened on the inner wall of the fourth rotating groove (27). A through groove (30) communicating with the outside is opened on the inner wall of the fifth rotating groove (29). A third worm wheel (31) fixed to the second worm group (28) is rotatably connected in the fifth rotating groove (29). A third worm (32) rotating with the through groove (30) meshes with one side of the third worm wheel (31). A second motor (33) is fixedly connected to the top surface of the heat preservation shell (20), and the output shaft of the second motor (33) extends into the through groove (30) and is fixed to the third worm (32).

6. The automatic clamping and feeding device for forging processing according to claim 5, characterized in that, The thread helix directions of the two first worms (24) are opposite, and the second worm group (28) is composed of two second worms.

Citation Information

Patent Citations

  • Automatic feeding device for die forging to be forged

    CN219484088U