Titanium alloy plate forging and pressing equipment with pushing function

By designing a titanium alloy sheet forging equipment with over-pushing function, the problem of inconvenience of taking out the sheet after forging is solved, and fast and convenient over-pushing and removal is achieved, and production efficiency is improved.

CN222985618UActive Publication Date: 2025-06-17JIANGSU TIANGONG TECH CO LTD
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Patent Information

Application Number
CN202421585702.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-05
Publication Date
2025-06-17
Estimated Expiration
2034-07-05

AI Technical Summary

Technical Problem

After forging and pressing the titanium alloy sheet, the staff needs to work hard to push and pull the sheet to remove the sheet, which leads to inconvenience in pushing and removing the top.

Method used

A titanium alloy sheet forging equipment with a push-push function is designed, including a forging member, a conveying member and a push-push member. The forging member is used for forging operations, the conveying member is used to guide and convey the plate material, and the pushing member drives the pushing rod through an electric cylinder to quickly eject the forged plate material.

Benefits of technology

This equipment enables the titanium alloy sheet to be ejected from the forging member quickly and conveniently after forging, avoiding the difficulty of manual push and pulling, and improving production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses titanium alloy plate forging and pressing equipment with a pushing function, which belongs to the field of titanium alloy plate forging and pressing, and comprises a forging and pressing component, a pushing component, a pressing component and a pushing component, and the conveying component is detachably arranged on the forging and pressing component. According to the titanium alloy plate forging and pressing equipment with the pushing function, through the arranged forging and pressing component, a worker turns on a switch of the hydraulic oil cylinder, so that the output end of the hydraulic oil cylinder outputs, and the forging and pressing plate is driven to move in the direction towards the forging and pressing base; the forging and pressing component is arranged on the connecting belt and used for conducting forging and pressing operation on the titanium alloy plates arranged on the forging and pressing base, and through the arranged conveying component, a worker starts the driving motor to convey the titanium alloy plates arranged on the connecting belt so as to convey a set of titanium alloy plates into the forging and pressing component, so that the titanium alloy plates arranged on the connecting belt are guided.
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Description

Technical Field

[0001] The utility model belongs to the field of forging and pressing of titanium alloy plates, and particularly relates to a forging and pressing device for titanium alloy plates with a pushing function. Background Art

[0002] Titanium alloy is an important metal material widely used in the fields of aviation, aerospace, medical treatment, chemical industry, etc. Due to its excellent corrosion resistance, high strength, low density and other characteristics, titanium alloy has broad application prospects in many fields. However, in the production process of titanium alloy plates, in order to further improve the strength of titanium alloy plates, it is necessary to carry out forging operations on titanium alloy plates;

[0003] In the prior art, in the process of forging titanium alloy plates, generally, workers place the titanium alloy plates in the forging and pressing equipment, and by starting the forging and pressing oil cylinder in the forging and pressing equipment, the output end of the forging and pressing oil cylinder is driven to move downward to drive the forging and pressing plate to press down to carry out forging operations on the titanium alloy plates. However, after the forging of the titanium alloy plates is completed, workers often need to push and pull the forged titanium alloy plates with more effort to take out the titanium alloy plates, which is not convenient for pushing out the titanium alloy plates after forging. Therefore, it is necessary to improve this situation.

[0004] The utility model attempts to alleviate or at least mitigate such problems or defects by providing a new or otherwise improved forging and pressing of titanium alloy plates. Summary of the Utility Model

[0005] In view of one or more of the above-mentioned defects or improvement requirements in the prior art, the utility model provides a forging and pressing device for titanium alloy plates with a pushing function, which has the advantages of being convenient for conveying and guiding titanium alloy plates and being able to quickly push out the titanium alloy plates from the forging and pressing member after forging.

[0006] To achieve the above object, the utility model provides a forging and pressing device for titanium alloy plates with a pushing function, which includes a forging and pressing member for carrying out forging operations on the titanium alloy plates placed therein;

[0007] A conveying member detachably arranged on the forging and pressing member, which is used for conveying the titanium alloy plates placed thereon and conveying the titanium alloy plates into the forging and pressing member, and can guide the titanium alloy plates passing through it on both sides;

[0008] A pushing member detachably arranged at the bottom of the forging and pressing member, which has an output end that can penetrate into the forging and pressing member. When its output end pushes upward along the longitudinal direction, it is used to push out the titanium alloy plates that have been forged by the forging and pressing member from the forging and pressing member.

[0009] As a further improvement of the present utility model, the forging member includes

[0010] a forging frame, on which a forging base is detachably arranged;

[0011] columns, which are detachably arranged on the forging base and extend upward along the longitudinal direction;

[0012] a forging plate, which is slidably arranged on the columns, has an internal notch therein, and an internal connecting seat is detachably arranged in the internal notch; and

[0013] a placement housing, which is detachably arranged on the top of the forging frame, has a hydraulic cylinder detachably arranged therein, and the output end of the hydraulic cylinder is detachably connected to the internal connecting seat;

[0014] Wherein, when the output end of the hydraulic cylinder outputs, it is used to drive the forging plate to move along the direction towards the forging base for forging the titanium alloy plate placed on the forging base.

[0015] As a further improvement of the present utility model, an outer protective frame is detachably sleeved on the outer peripheral surface of the forging member, a connecting track is detachably arranged on the outer protective frame, one end of the connecting track is detachably connected to the side surface of the forging plate, and the length of the connecting track is greater than the length of the columns.

[0016] As a further improvement of the present utility model, a plurality of groups of reserved grooves are also formed on the upper end surface of the forging base, and the sizes of the plurality of groups of reserved grooves are adapted to the size of the forging base.

[0017] As a further improvement of the present utility model, a plurality of groups of reinforcing ribs are detachably installed at the bottom of the forging frame, and the sizes of the reinforcing ribs are adapted to the size of the forging frame.

[0018] As a further improvement of the present utility model, the conveying member includes

[0019] a conveying frame, which is detachably arranged on the forging frame;

[0020] two groups of internal rotating rollers, which are respectively rotatably arranged at the head and tail ends of the conveying frame;

[0021] a connecting belt, which is removably sleeved on the two groups of internal rotating rollers;

[0022] a driving motor, which is detachably arranged on the conveying frame, and its output end is detachably connected to one of the groups of internal rotating rollers;

[0023] Two sets of connecting baffles, both of which are detachably arranged on the conveying frame; and

[0024] Two sets of side ears, both of which are detachably arranged on the conveying frame, on which a first electric cylinder is detachably arranged, and the output end of the first electric cylinder can pass through the connecting baffle. A guide plate is detachably arranged on the output end of the first electric cylinder, and the guide plate does not contact the connecting belt;

[0025] Wherein, when the output ends of the two sets of first electric cylinders output, they are used to drive the two sets of guide plates to approach or move away from each other, so as to guide the titanium alloy plates placed on the connecting belt.

[0026] As a further improvement of the present utility model, a collar is also detachably arranged on the side ear, and the collar surrounds the first electric cylinder therein, and the size of the collar is adapted to the size of the side ear.

[0027] As a further improvement of the present utility model, the pushing member includes

[0028] A pushing frame, which is detachably arranged at the bottom of the forging press frame, on which a second electric cylinder is detachably arranged, and the output end of the second electric cylinder passes through the pushing frame. A coupling is detachably arranged on the output end of the second electric cylinder;

[0029] An internal sliding rod, which is detachably arranged in the pushing frame, on which a lifting plate is slidably arranged. A short shaft is detachably arranged on the lifting plate, and the short shaft is detachably connected to the coupling; and

[0030] A chassis, which is detachably arranged on the lifting plate, on which a left push rod and a right push rod are detachably arranged, and the left push rod and the right push rod can pass through the forging base. In the initial state, the highest points of the left push rod and the right push rod are flush with the highest point of the forging base, and the left push rod and the right push rod constitute the output end of the pushing member;

[0031] Wherein, when the output end of the second electric cylinder outputs, it is used to drive the left push rod and the right push rod to push upward along the longitudinal direction, so as to push out the titanium alloy plates after being forged by the forging member from the forging base.

[0032] Generally speaking, compared with the prior art by the above technical solutions conceived by the present utility model, the beneficial effects include:

[0033] The forging equipment for titanium alloy plates with a pushing function of the present utility model, through the arranged forging components, the staff turns on the switch of the hydraulic cylinder so that the output end of the hydraulic cylinder outputs to drive the forging plate to move along the direction towards the forging base for forging the titanium alloy plates placed on the forging base. Through the arranged conveying components, the staff turns on the driving motor to convey the titanium alloy plates placed on the connecting belt to convey a group of titanium alloy plates into the forging components. The staff turns on the first electric cylinder so that the output ends of the two first electric cylinders output to drive the two guide plates to approach or move away from each other for guiding the titanium alloy plates placed on the connecting belt. Through the arranged pushing components, the staff turns on the switch of the second electric cylinder so that the output end of the second electric cylinder outputs to drive the left push rod and the right push rod to push upwards in the longitudinal direction to push out the titanium alloy plates after being forged by the forging components from the forging base, avoiding the problem that the titanium alloy plates are not easy to take out after being forged by the forging components and staying in the forging components. Brief Description of the Drawings

[0034] Figure 1 It is a schematic structural diagram of the overall forging equipment for titanium alloy plates with a pushing function of the present utility model;

[0035] Figure 2 It is a schematic structural diagram of the forging equipment for titanium alloy plates with a pushing function of the present utility model when viewed from another angle;

[0036] Figure 3 It is a front view of the forging equipment for titanium alloy plates with a pushing function of the present utility model;

[0037] Figure 4 It is a schematic structural diagram of the overall conveying components of the present utility model;

[0038] Figure 5 It is a schematic structural diagram of the overall pushing components of the present utility model;

[0039] Figure 6 It is a schematic structural diagram of the overall pushing components of the present utility model when viewed from another angle.

[0040] In all the attached drawings, the same reference numerals represent the same technical features, specifically: 1. Forging member; 11. Forging frame; 12. Forging base; 121. Reserved groove; 13. Column; 14. Forging plate; 15. Built-in connection seat; 16. Placing shell; 17. Hydraulic cylinder; 18. Outer guard frame; 19. Connecting track; 191. Reinforcing rib; 2. Conveying member; 21. Conveying frame; 22. Built-in rotating roller; 23. Connecting belt; 24. Driving motor; 25. Connecting baffle; 26. Side ear; 27. First electric cylinder; 28. Guide plate; 29. Collar; 3. Pushing member; 31. Pushing frame; 32. Second electric cylinder; 33. Built-in sliding rod; 34. Lifting plate; 35. Short shaft; 36. Coupling; 37. Chassis; 38. Left pushing rod; 39. Right pushing rod. Detailed implementation mode

[0041] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the attached drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative work belong to the scope of protection of the present invention.

[0042] The terms used herein are only for describing specific embodiments and are not intended to limit the present invention. The terms "including", "comprising", etc. used herein indicate the presence of the described features, steps, operations and / or components, but do not exclude the presence or addition of one or more other features, steps, operations or components.

[0043] All the terms used herein (including technical and scientific terms) have the meanings commonly understood by those of ordinary skill in the art, unless otherwise defined. It should be noted that the terms used here should be interpreted as having a meaning consistent with the context of this specification and should not be interpreted in an idealized or overly rigid manner.

[0044] In the embodiment, it is given by Figure 1-6 a titanium alloy plate forging equipment with a pushing function, wherein Figure 1 is the overall structural schematic diagram of the titanium alloy plate forging equipment with a pushing function of the present invention; Figure 2 is the structural schematic diagram of the titanium alloy plate forging equipment with a pushing function of the present invention when viewed from another angle; Figure 3 is the front view of the titanium alloy plate forging equipment with a pushing function of the present invention; Figure 4 is the overall structural schematic diagram of the conveying member of the present invention; Figure 5 is the overall structural schematic diagram of the pushing member of the present invention; Figure 6This is a schematic structural view of the pushing member as a whole from another angle of the present utility model. It includes a forging member 1, which is used for forging the titanium alloy plate placed therein; a conveying member 2, which is detachably arranged on the forging member 1, and is used for conveying the titanium alloy plate placed thereon and conveying the titanium alloy plate into the forging member 1, and can guide the titanium alloy plate passing through it on both sides; a pushing member 3, which is detachably arranged at the bottom of the forging member 1, and has an output end that can penetrate into the forging member 1. When its output end pushes upward along the longitudinal direction, it is used to push out the titanium alloy plate after being forged by the forging member 1 from the forging member 1.

[0045] An overall idea of the present utility model is that through the arranged forging member 1, the staff turns on the switch of the hydraulic cylinder 17 so that the output end of the hydraulic cylinder 17 outputs to drive the forging plate 14 to move along the direction towards the forging base 12 for forging the titanium alloy plate placed on the forging base 12. Through the arranged conveying member 2, the staff turns on the driving motor 24 to convey the titanium alloy plate placed on the connecting belt 23 to convey a group of titanium alloy plates into the forging member 1. The staff turns on the first electric cylinder 27 so that the output ends of the two first electric cylinders 27 output to drive the two guide plates 28 to approach or move away from each other to guide the titanium alloy plate placed on the connecting belt 23. Through the arranged pushing member 3, the staff turns on the switch of the second electric cylinder 32 so that the output end of the second electric cylinder 32 outputs to drive the left push rod 38 and the right push rod 39 to push upward along the longitudinal direction to push out the titanium alloy plate after being forged by the forging member 1 from the forging base 12, avoiding the problem that the titanium alloy plate stays in the forging member 1 and is not easy to take out after being forged by the forging member 1.

[0046] Next, a more specific structure and configuration are given to the forging member 1 as a whole for further explanation. The forging member 1 includes a forging frame 11, on which a forging base 12 is detachably arranged; a column 13, which is detachably arranged on the forging base 12 and extends upward along the longitudinal direction; a forging plate 14, which is slidably arranged on the column 13 and has an internal notch therein, and an internal connecting seat 15 is detachably arranged in the internal notch; and a placement housing 16, which is detachably arranged on the top of the forging frame 11, and a hydraulic cylinder 17 is detachably arranged therein, and the output end of the hydraulic cylinder 17 is detachably connected to the internal connecting seat 15;

[0047] Next, a further explanation of the overall working principle of the forging member 1 is provided. The staff member turns on the switch of the hydraulic cylinder 17 so that the output end of the hydraulic cylinder 17 outputs to drive the forging plate 14 to move in the direction towards the forging base 12 for forging the titanium alloy plate placed on the forging base 12.

[0048] In some embodiments, more specifically, in order to further improve the stability of the forging plate 14 during the downward movement, a protective frame 18 is detachably sleeved on the outer peripheral surface of the forging member 1. A connecting track 19 is detachably arranged on the protective frame 18. One end of the connecting track 19 is detachably connected to the side surface of the forging plate 14, and the length of the connecting track 19 is greater than the length of the column 13.

[0049] In some embodiments, in order to further prevent the slag in the titanium alloy plate from adhering to the forging base 12, a plurality of sets of reserved grooves 121 are opened on the upper end surface of the forging base 12. The sizes of the plurality of sets of reserved grooves 121 are adapted to the size of the forging base 12. After forging, the slag part of the titanium alloy plate stays in the plurality of sets of reserved grooves 121, and the slag of the titanium alloy plate in the reserved grooves 121 can be removed after forging.

[0050] In some embodiments, in order to further improve the stability of the forging frame 11 during use, a plurality of sets of reinforcing ribs 191 are detachably installed at the bottom of the forging frame 11, and the sizes of the reinforcing ribs 191 are adapted to the size of the forging frame 11.

[0051] Next, a more specific structure and configuration of the conveying member 2 are given for further explanation. The conveying member 2 includes a conveying frame 21 detachably arranged on the forging frame 11; two built-in rotating rollers 22 respectively rotatably arranged at the head and tail ends of the conveying frame 21; a connecting belt 23 removably sleeved on the two built-in rotating rollers 22; a driving motor 24 detachably arranged on the conveying frame 21, and its output end is detachably connected to one of the built-in rotating rollers 22; two connecting baffles 25 both detachably arranged on the conveying frame 21; and two side ears 26 both detachably arranged on the conveying frame 21, on which a first electric cylinder 27 is detachably arranged, and the output end of the first electric cylinder 27 can pass through the connecting baffle 25. A guiding plate 28 is detachably arranged on the output end of the first electric cylinder 27, and the guiding plate 28 does not contact the connecting belt 23.

[0052] Next, a further explanation of the overall operating principle of the conveying member 2 is provided. The staff turns on the switch of the first electric cylinder 27 so that the output ends of the two groups of first electric cylinders 27 output to drive the two guide plates 28 to approach or move away from each other, for guiding the titanium alloy plates placed on the connecting belt 23.

[0053] In some embodiments, to further enhance the stability of the first electric cylinder 27 during use and to further restrain the first electric cylinder 27, a collar 29 is detachably arranged on the side ear 26, and the collar 29 surrounds the first electric cylinder 27 therein. The size of the collar 29 is adapted to the size of the side ear 26.

[0054] Next, a more specific structure and configuration of the pushing member 3 as a whole are given for further explanation. The pushing member 3 includes a pushing frame 31, which is detachably arranged at the bottom of the forging press frame 11. A second electric cylinder 32 is detachably arranged thereon, and the output end of the second electric cylinder 32 passes through the pushing frame 31. A coupling 36 is detachably arranged on the output end of the second electric cylinder 32; a built-in sliding rod 33, which is detachably arranged inside the pushing frame 31. A lifting plate 34 is slidably arranged thereon. A short shaft 35 is detachably arranged on the lifting plate 34, and the short shaft 35 is detachably connected to the coupling 36; and a chassis 37, which is detachably arranged on the lifting plate 34. A left push rod 38 and a right push rod 39 are detachably arranged thereon, and the left push rod 38 and the right push rod 39 can pass through the forging base 12. In the initial state, the highest points of the left push rod 38 and the right push rod 39 are flush with the highest point of the forging base 12. The left push rod 38 and the right push rod 39 constitute the output end of the pushing member 3.

[0055] Next, a further explanation of the overall operating principle of the pushing member 3 is provided. The staff turns on the switch of the second electric cylinder 32 so that the output end of the second electric cylinder 32 outputs to drive the left push rod 38 and the right push rod 39 to push upward in the longitudinal direction to push out the titanium alloy plates forged by the forging member 1 from the forging base 12.

[0056] In summary, by arranging the forging member 1, the staff turns on the switch of the hydraulic cylinder 17 so that the output end of the hydraulic cylinder 17 outputs to drive the forging plate 14 to move in the direction towards the forging base 12 for forging the titanium alloy plate placed on the forging base 12. By arranging the conveying member 2, the staff turns on the driving motor 24 to convey the titanium alloy plate placed on the connecting belt 23 to convey a set of titanium alloy plates into the forging member 1. The staff turns on the first electric cylinders 27 so that the output ends of the two first electric cylinders 27 output to drive the two guide plates 28 to approach or move away from each other for guiding the titanium alloy plate placed on the connecting belt 23. By arranging the pushing member 3, the staff turns on the switch of the second electric cylinder 32 so that the output end of the second electric cylinder 32 outputs to drive the left push rod 38 and the right push rod 39 to push upwards in the longitudinal direction to push out the titanium alloy plate forged by the forging member 1 from the forging base 12, avoiding the problem that the titanium alloy plate is not easy to take out after being forged by the forging member 1 and staying in the forging member 1.

[0057] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A titanium alloy plate forging equipment with a push function, characterized in that: It includes A forging component (1), used for performing a forging operation on a titanium alloy plate placed therein; A conveying member (2) is detachably arranged on the forging member (1), and is used to convey the titanium alloy plate placed thereon and convey the titanium alloy plate into the forging member (1), and is capable of guiding the titanium alloy plate on both sides thereof; A pushing member (3) is detachably arranged at the bottom of the forging member (1), and has an output end capable of penetrating into the forging member (1), wherein when the output end pushes in the longitudinal direction, it is used to push the titanium alloy plate material that has been forged by the forging member (1) out of the forging member (1).

2. The titanium alloy sheet forging equipment with a push function according to claim 1 is characterized in that: The forged component (1) comprises A forging machine frame (11) on which a forging base (12) is detachably mounted; A column (13) which is detachably arranged on the forging base (12) and extends upward in the longitudinal direction; a forging plate (14) which is slidably arranged on the column (13) and has a built-in slot therein, in which a built-in connecting seat (15) is detachably arranged; and A housing (16) is disposed detachably on the top of the forging machine frame (11), a hydraulic cylinder (17) is detachably disposed therein, and an output end of the hydraulic cylinder (17) is detachably connected to the built-in connecting seat (15); When the output end of the hydraulic cylinder (17) outputs, it is used to drive the forging plate (14) to move in a direction toward the forging base (12), so as to perform a forging operation on a titanium alloy plate placed on the forging base (12).

3. The titanium alloy sheet forging equipment with a push function according to claim 2 is characterized in that: An outer guard frame (18) is detachably mounted on the outer peripheral surface of the forging component (1), and a connecting track (19) is detachably arranged on the outer guard frame (18). One end of the connecting track (19) is detachably connected to the side surface of the forging plate (14), and the length of the connecting track (19) is greater than the length of the column (13).

4. The titanium alloy sheet forging equipment with a push function according to claim 2 is characterized in that: A plurality of groups of reserved grooves (121) are also provided on the upper end surface of the forging base (12), and the sizes of the plurality of groups of reserved grooves (121) are adapted to the sizes of the forging base (12).

5. The titanium alloy sheet forging equipment with a push function according to claim 2 is characterized in that: A plurality of groups of reinforcing ribs (191) are detachably mounted on the bottom of the forging machine frame (11), and the size of the reinforcing ribs (191) is compatible with the size of the forging machine frame (11).

6. The titanium alloy sheet forging equipment with a push function according to claim 2 is characterized in that: The conveying member (2) comprises A conveying frame (21) which is detachably arranged on the forging frame (11); Two sets of built-in rotating rollers (22) are rotatably arranged at the head and tail ends of the conveyor frame (21); A connecting belt (23) which is removably mounted on the two sets of built-in rotating rollers (22); A driving motor (24) is detachably arranged on the conveying frame (21), and an output end of the driving motor is detachably connected to one of the sets of built-in rotating rollers (22); Two sets of connecting baffles (25) are detachably arranged on the conveyor frame (21); and Two sets of side ears (26) are detachably arranged on the conveyor frame (21), a first electric cylinder (27) is detachably arranged thereon, and the output end of the first electric cylinder (27) can pass through the connecting baffle (25), a guide plate (28) is detachably arranged on the output end of the first electric cylinder (27), and the guide plate (28) does not contact the connecting belt (23); When the output ends of the two groups of the first electric cylinders (27) are output, they are used to drive the two groups of the guide plates (28) to move closer to or farther from each other, so as to guide the titanium alloy plate placed on the connecting belt (23).

7. The titanium alloy sheet forging equipment with a push function according to claim 6 is characterized in that: A ring (29) is detachably disposed on the side ear (26), and the ring (29) surrounds the first electric cylinder (27) therein, and the size of the ring (29) is adapted to the size of the side ear (26).

8. The titanium alloy sheet forging equipment with a push function according to claim 2 is characterized in that: The pushing member (3) comprises A push frame (31) is detachably arranged at the bottom of the forging frame (11), a second electric cylinder (32) is detachably arranged on the push frame, and an output end of the second electric cylinder (32) passes through the push frame (31), and a coupling (36) is detachably arranged on the output end of the second electric cylinder (32); An internal slide bar (33) is detachably arranged in the push frame (31), a lift plate (34) is slidably arranged on the internal slide bar (33), a short shaft (35) is detachably arranged on the lift plate (34), and the short shaft (35) is detachably connected to the coupling (36); and A chassis (37) is detachably arranged on the jacking plate (34), and a left jacking rod (38) and a right jacking rod (39) are detachably arranged on the chassis (37), and the left jacking rod (38) and the right jacking rod (39) can pass through the forging base (12). When in an initial state, the highest points of the left jacking rod (38) and the right jacking rod (39) are flush with the highest point of the forging base (12), and the left jacking rod (38) and the right jacking rod (39) constitute the output end of the jacking member (3); When the output end of the second electric cylinder (32) outputs, it is used to drive the left push rod (38) and the right push rod (39) to push in the longitudinal direction, so as to eject the titanium alloy plate after forging of the forging component (1) from the forging base (12).