Forging device for manufacturing high-quality titanium forge piece bearing seat and forging process of forging device

By designing a forging device with automatic discharge and linkage soot blowing mechanism, the problem of low manual discharge efficiency in the prior art is solved, and automatic discharge and mold cleaning after forging is realized, and processing efficiency and quality are improved.

CN120205729APending Publication Date: 2025-06-27HEBEI NIMENGHUI INTELLIGENT TECHNOLOGY CO LTD

Patent Information

Application Number
CN202510516679.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2025-06-27

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Abstract

The invention discloses a forging device for manufacturing a high-quality titanium forge piece bearing seat and a forging process of the forging device, and relates to the field of high-quality titanium forge piece bearing seat forging.The forging device comprises a bottom plate, a supporting rod, a mounting table, a top plate, a hydraulic rod and an upper die, the supporting rod is fixed to the bottom plate, and the mounting table fixed to the supporting rod is arranged above the bottom plate; a top plate fixed to the supporting rods is arranged above the mounting table. According to the forging device for manufacturing the high-quality titanium forge piece bearing seat and the forging process of the forging device, an automatic discharging mechanism is adopted, after blank forging is completed, automatic discharging of blanks can be achieved, the convenience of device operation is improved, and therefore the machining efficiency is effectively improved; at the moment, the two lower dies are matched with the upper die to achieve the forging effect of the blank, after forging is completed, the slope block and the rotating plate are matched to slide, the fixing plate and the lower dies are made to move, the two lower dies are separated, then the blank automatically falls, and the automatic discharging effect is achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of forging technology for high-quality titanium forging bearing seats, and specifically to a forging device and a forging process for manufacturing high-quality titanium forging bearing seats. Background Art

[0002] In the modern industrial field, as a key component for supporting and fixing bearings in mechanical equipment, the quality of the bearing seat directly affects the operation stability and reliability of the entire equipment. With the rapid development of technology, the performance requirements for bearing seats are increasing day by day. Especially in some high-end equipment manufacturing fields, such as aerospace and precision machine tools, the demand for high-quality titanium forging bearing seats is becoming more and more urgent. A high-quality titanium forging bearing seat is a supporting component used to support the shaft. During the processing of a high-quality titanium forging bearing seat, to ensure the strength of the bearing seat, the blank needs to be heated and then processed through a forging device in cooperation with a mold (including punching and plasticity);

[0003] An existing bearing seat forging device, such as a combined bearing seat forging device and its forging process with the publication number CN113751651B. It includes a frame, a bearing seat, and a connecting seat, and also includes a first forging mechanism, which includes a first driving mechanism and a first mold. The first mold is installed at the output end of the first driving mechanism, and the mold core of the first mold matches the outer shape of the bearing seat; a second forging mechanism, which includes a second driving mechanism and a second mold. The second mold is installed at the output end of the second driving mechanism, and the mold core of the second mold matches the outer shape of the connecting seat. The device shown in this application greatly improves the processing and forming efficiency of the combined bearing seat, has specific molds, and improves the forging accuracy of the blank. The present invention also relates to a forging process for a combined bearing seat. The forging process of the combined bearing seat shown in this application greatly improves the forging efficiency and accuracy of the combined bearing seat, and has characteristics such as high efficiency and energy saving, reducing production costs;

[0004] In the actual use process of the above existing bearing seat forging device, although the forging processing of the blank can be realized, after forging, manual blanking is required. Since the fit between the blank and the mold is relatively tight after forging, manual blanking is rather troublesome, affecting the processing efficiency. Therefore, in view of the above problems, a forging device and a forging process for manufacturing high-quality titanium forging bearing seats are now designed to better meet the actual use requirements. Summary of the Invention

[0005] The purpose of the present invention is to provide a forging device and a forging process for manufacturing high-quality titanium forging bearing seats to solve the problems raised in the above background art.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a forging device for manufacturing a high-quality titanium forged bearing seat, comprising a base plate, a support rod, a mounting platform, a top plate, a hydraulic rod and an upper die, wherein the base plate is fixed with a support rod, a mounting platform fixed to the support rod is arranged above the base plate, a top plate fixed to the support rod is arranged above the mounting platform, a hydraulic rod is fixed to the lower end surface of the top plate, an upper die is fixed to the output end of the hydraulic rod, a discharge mechanism is installed on the mounting platform, the discharge mechanism is connected to the soot blowing mechanism, and the discharge mechanism comprises a lower The mold, ear plate, guide rod, fixed plate, rotating plate, inclined plane block and first spring, the lower mold contacts and slides with the mounting platform, and the mounting platform is provided with a slot matching with the lower mold, an ear plate is fixed on the side of the lower mold, the ear plate and the guide rod are slidably connected, the guide rod is fixed on the mounting platform, a fixed plate is fixed on the lower mold, a rotating plate is rotatably connected on the fixed plate, a torsion spring is connected between the rotating plate and the fixed plate, the rotating plate is located below the inclined plane block, the inclined plane block is symmetrically fixed on the upper mold, and a first spring is fixed between the fixed plate and the mounting platform.

[0007] Preferably, a debris box is installed on the base plate, and the debris box is located directly below the slot on the mounting table, a finished product box is installed on the base plate, and the finished product box is located on the lower side of the end of the unloading mechanism, and the unloading mechanism is installed on the lower end surface of the mounting table. Through the functions of the debris box and the finished product box, the residual materials and finished products generated by stamping can be classified and collected for subsequent processing.

[0008] Preferably, the soot blowing mechanism includes a cylinder, a piston, a one-way air inlet valve, a one-way air outlet valve, an air guide rod, a second spring, an air outlet and a side plate. The cylinder is fixed on a mounting table, and a piston is slidably connected to the cylinder, and the piston is fixed on a lower mold. When the lower mold moves, the piston is synchronously driven to move, and the sliding action between the piston and the cylinder can realize the exhaust function of the cylinder.

[0009] Preferably, a one-way air inlet valve is installed on the cylinder, and the cylinder is connected to the gas guide rod through a one-way air outlet valve and a conduit, and the gas guide rod and the lower mold are slidably connected. Through the action of the one-way air inlet valve and the one-way air outlet valve, one-way delivery of gas can be achieved, thereby providing basic guarantee for the normal operation of the device.

[0010] Preferably, a second spring is fixed between the air guide rod and the lower mold, and an air outlet is opened on the air guide rod, and a side plate fixed on the cylinder is arranged on the side of the air guide rod. The elastic action of the second spring can provide a basic force for resetting the air guide rod, and the action of the air outlet can blow away the debris in the lower mold to ensure the cleanliness of the lower mold.

[0011] Preferably, a cross bar, a connecting rod, a convex tooth rod, a fixing block, a gear, a rotating shaft, a convex plate and a limiting plate are provided on the blank feeding mechanism. The cross bar is fixed on the fixing plate, and the cross bar is slidably connected to the mounting table. A connecting rod is fixed on the cross bar. By the movement of the fixing plate, a basic acting force can be provided for the movement of the cross bar and the connecting rod. With the sliding guiding function between the cross bar and the mounting table, the stability of the movement of the cross bar and the connecting rod can be ensured.

[0012] Preferably, a convex tooth rod is fixed on the connecting rod, and the convex tooth rod is slidably connected to the fixing block. The fixing block is fixed on the lower end surface of the mounting table. By driving the convex tooth rod to move through the connecting rod and with the sliding guiding function between the convex tooth rod and the fixing block, the stability of the movement of the convex tooth rod can be ensured.

[0013] Preferably, the convex tooth rod is meshed with the gear, the gear is fixed on the rotating shaft, the rotating shaft is connected to the lower end surface of the mounting table by a bearing, and the rotating shaft is inclined. By the meshing transmission between the convex tooth rod and the gear, a basic acting force can be provided for the rotation of the rotating shaft. By the inclined installation of the rotating shaft, the guiding function of the blank can be realized.

[0014] Preferably, a convex plate is fixed on the rotating shaft, a limiting plate is arranged on the side of the rotating shaft, and the limiting plate is fixed on the lower end surface of the mounting table. When the rotating shaft rotates, the convex plate is driven to rotate synchronously, so that the blank can move up and down, facilitating the shaking off of impurities on the blank. With the function of the limiting plate, the blank can be prevented from falling to the side, ensuring the normal blank feeding function.

[0015] A forging process for a high-quality titanium forging bearing seat is as follows:

[0016] Step 1: Place the heated blank into the lower die through a worker or a manipulator to complete the installation of the blank.

[0017] Step 2: After the blank is installed, drive the upper die to move down to cooperate with the lower die through a hydraulic rod to complete the forging process of the blank. The waste generated by stamping and forging directly falls into the debris box and is collected.

[0018] Step 3: After stamping, drive the upper die to move up through a hydraulic rod. With the sliding function between the inclined plane block and the rotating plate, the two lower dies are separated, realizing the automatic discharging of the product after plasticity. And the product after plasticity automatically falls into the finished product box and is collected through the guiding function of the blank feeding mechanism.

[0019] Step 4: When the product is separated from the lower die, cooperate with the function of the dust blowing mechanism to blow off the debris remaining on the lower die, ensuring the cleanliness of the lower die and thus the forging quality of the bearing seat.

[0020] Compared with the prior art, the beneficial effects of the present invention are:

[0021] 1. The forging device and its forging process for manufacturing the bearing seat of high-quality titanium forgings adopt an automatic blank discharging mechanism, which can realize the automatic discharging of the blank after forging, eliminating the need for manual blanking, improving the convenience of device operation, and thus effectively enhancing the processing efficiency. Specifically, when forging the blank, the two lower dies cooperate with the upper die to achieve the forging of the blank. After forging, the inclined block and the rotating plate cooperate to slide, causing the fixed plate and the lower die to move, thereby separating the two lower dies, and then the blank automatically falls, realizing the function of automatic discharging;

[0022] 2. The forging device and its forging process for manufacturing the bearing seat of high-quality titanium forgings adopt an interlocking dust blowing mechanism, which can not only assist in blank discharging but also blow out the residual debris in the lower die, ensuring the cleanliness of the lower die. Specifically, when the two lower dies move and separate, they synchronously drive the piston to move, causing the gas in the cylinder to enter the air guide rod and spray out through the air outlet. With the movement of the lower die, the comprehensive blowing out of the debris in the lower die can be realized. And when the blank adheres to the lower die, the air guide rod generates a force on the blank, which can push the blank away from the lower die, ensuring the normal blanking of the blank;

[0023] 3. The forging device and its forging process for manufacturing the bearing seat of high-quality titanium forgings adopt an interlocking blanking mechanism, which can not only guide the blank but also vibrate the blank to facilitate the shaking off of the debris on the surface of the blank. Specifically, when the blank falls onto the rotating shaft, due to the inclined structure of the rotating shaft and the limiting effect of the limiting plate, the normal blanking of the blank can be ensured. And with the transmission between the convex tooth rod and the gear, the rotating shaft and the convex plate rotate. Through the contact and sliding between the convex plate and the blank, a basic force for the up and down movement of the blank can be provided, enabling the blank to move up and down, facilitating the shaking off of the debris on the blank. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a front view three-dimensional structure schematic diagram of the whole device of the present invention;

[0025] Figure 2 It is a bottom view three-dimensional structure schematic diagram of the whole device of the present invention;

[0026] Figure 3 It is a front view three-dimensional structure schematic diagram of the upper die and the discharging mechanism of the present invention;

[0027] Figure 4 It is a front view three-dimensional structure schematic diagram composed of the discharging mechanism and the dust blowing mechanism of the present invention;

[0028] Figure 5 It is a front view sectional three-dimensional structure schematic diagram composed of the discharging mechanism and the dust blowing mechanism of the present invention;

[0029] Figure 6 This is the front view sectional three-dimensional structure schematic diagram of the air guide rod of the present invention;

[0030] Figure 7 This is the three-dimensional structure schematic diagram composed of the convex tooth rod and the gear of the present invention.

[0031] In the figure: 1, bottom plate; 101, sundry box; 102, finished product box; 2, support rod; 3, installation table; 4, top plate; 5, hydraulic rod; 6, upper die; 7, discharging mechanism; 701, lower die; 702, ear plate; 703, guide rod; 704, fixing plate; 705, rotating plate; 706, inclined plane block; 707, first spring; 8, soot blowing mechanism; 801, cylinder; 802, piston; 803, one-way air inlet valve; 804, one-way air outlet valve; 805, air guide rod; 806, second spring; 807, air outlet; 808, side plate; 9, blanking mechanism; 901, cross bar; 902, connecting rod; 903, convex tooth rod; 904, fixing block; 905, gear; 906, rotating shaft; 907, convex plate; 908, limiting plate. Specific embodiments

[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying 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. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0033] Please refer to Figures 1-7, the present invention provides a technical solution: a forging device for manufacturing a bearing seat of a high-quality titanium forging, including a bottom plate 1, a support rod 2, a mounting table 3, a top plate 4, a hydraulic rod 5 and an upper die 6. The support rod 2 is fixed on the bottom plate 1. Above the bottom plate 1, there is a mounting table 3 fixed on the support rod 2. Above the mounting table 3, there is a top plate 4 fixed on the support rod 2. The lower end surface of the top plate 4 is fixed with a hydraulic rod 5, and the output end of the hydraulic rod 5 is fixed with an upper die 6. A discharging mechanism 7 is installed on the mounting table 3, and the discharging mechanism 7 is connected to a dust blowing mechanism 8. The discharging mechanism 7 includes a lower die 701, an ear plate 702, a guide rod 703, a fixing plate 704, a rotating plate 705, an inclined surface block 706 and a first spring 707. The lower die 701 is in contact with and slides on the mounting table 3, and a slot matching the lower die 701 is opened on the mounting table 3. The side of the lower die 701 is fixed with an ear plate 702, and the ear plate 702 is slidably connected to the guide rod 703. The guide rod 703 is fixed on the mounting table 3. The lower die 701 is fixed with a fixing plate 704, and a rotating plate 705 is rotatably connected to the fixing plate 704. A torsion spring is connected between the rotating plate 705 and the fixing plate 704. The rotating plate 705 is located below the inclined surface block 706. The inclined surface blocks 706 are symmetrically fixed on the upper die 6 left and right. A first spring 707 is fixed between the fixing plate 704 and the mounting table 3.

[0034] A sundry box 101 is installed on the bottom plate 1, and the sundry box 101 is located directly below the slot on the mounting table 3. A finished product box 102 is installed on the bottom plate 1, and the finished product box 102 is located below the end of the blanking mechanism 9, and the blanking mechanism 9 is installed on the lower end surface of the mounting table 3;

[0035] When using the forging device for manufacturing a bearing seat of a high-quality titanium forging, as Figures 1-7As shown in the figure, first place the heated blank in the lower die 701. When forging the blank, control the hydraulic rod 5 to extend to drive the upper die 6 to move downward, and simultaneously drive the inclined block 706 to move downward. When the inclined block 706 contacts the rotating plate 705, the rotating plate 705 is forced to rotate at this time and will not hinder the downward movement of the upper die 6 and the inclined block 706. When the inclined block 706 separates from the rotating plate 705, the upper die 6 just contacts the blank at this time. The forging of the blank can be realized by the cooperation of the upper die 6 and the lower die 701. During the forging process, the waste generated by punching the blank directly falls into the sundry box 101 and is collected. When the forging of the blank is completed, the hydraulic rod 5 contracts to drive the upper die 6 and the inclined block 706 to move upward. When the upper die 6 is completely separated from the blank and the lower die 701, the inclined block 706 just contacts the rotating plate 705 at this time. Since the fixed plate 704 limits the rotation of the rotating plate 705, when the inclined block 706 moves upward, through the sliding action between the inclined surface of the inclined block 706 and the rotating plate 705, the rotating plate 705 moves outward, thereby synchronously driving the fixed plate 704 and the lower die 701 to move. With the sliding and guiding action between the ear plate 702 and the guide rod 703, the stability of the movement of the fixed plate 704 and the lower die 701 can be ensured, so as to realize the separation of the two lower dies 701, facilitate the automatic falling of the processed blank, and realize the automatic discharging function;

[0036] The soot blowing mechanism 8 includes a cylinder 801, a piston 802, a one-way intake valve 803, a one-way exhaust valve 804, a guide air rod 805, a second spring 806, an air outlet 807 and a side plate 808. The cylinder 801 is fixed on the mounting table 3, and a piston 802 is slidably connected to the cylinder 801, and the piston 802 is fixed on the lower die 701; a one-way intake valve 803 is installed on the cylinder 801, and the cylinder 801 is connected to the guide air rod 805 through a one-way exhaust valve 804 and a conduit, and the guide air rod 805 is slidably connected to the lower die 701; a second spring 806 is fixed between the guide air rod 805 and the lower die 701, and an air outlet 807 is provided on the guide air rod 805, and a side plate 808 fixed on the cylinder 801 is provided on the side of the guide air rod 805;

[0037] After processing the blank, when the lower die 701 moves outward to realize automatic discharging, as Figures 1-7As shown in the figure, the lower die 701 moves synchronously to drive the piston 802 to slide into the cylinder 801, so that the gas in the cylinder 801 enters the air guide rod 805 through the one-way air outlet valve 804 and the conduit, and is ejected through the air outlet 807. When the lower die 701 moves, the air guide rod 805 is driven to move synchronously. When the air guide rod 805 contacts the side plate 808, at this time, the air guide rod 805 and the air outlet 807 are forced to move towards the inside of the lower die 701, and the second spring 806 is forced to contract. The relative movement between the air guide rod 805 and the air outlet 807 and the lower die 701 can clean the debris of the material inside the lower die 701. And when the forged blank adheres to the lower die 701 and cannot be normally discharged, the relative movement between the air guide rod 805 and the lower die 701 can push the blank to separate from the lower die 701 to ensure the normal discharge of the blank;

[0038] The blanking mechanism 9 is provided with a cross bar 901, a connecting rod 902, a convex tooth rod 903, a fixed block 904, a gear 905, a rotating shaft 906, a convex plate 907 and a limiting plate 908. The cross bar 901 is fixed on the fixed plate 704, and the cross bar 901 is slidably connected to the mounting table 3, and a connecting rod 902 is fixed on the cross bar 901; A convex tooth rod 903 is fixed on the connecting rod 902, and the convex tooth rod 903 is slidably connected to the fixed block 904, and the fixed block 904 is fixed on the lower end surface of the mounting table 3; The convex tooth rod 903 is meshed with the gear 905, and the gear 905 is fixed on the rotating shaft 906, and the rotating shaft 906 is connected by a bearing to the lower end surface of the mounting table 3, and at the same time the rotating shaft 906 is obliquely installed; A convex plate 907 is fixed on the rotating shaft 906, and a limiting plate 908 is arranged on the side of the rotating shaft 906, and the limiting plate 908 is fixed on the lower end surface of the mounting table 3;

[0039] During the use of the device, such as Figures 1-7As shown in the figure, after the processed blank is separated from the lower die 701, the blank just falls onto the rotating shaft 906. With the limiting function of the limiting plate 908, it can prevent the blank from sliding outward. Then, with the tilting function of the rotating shaft 906, the blank can slide backward under its own gravity. When the blank slides on the rotating shaft 906, through the movement of the fixing plate 704, the cross bar 901, the connecting rod 902 and the convex tooth rod 903 can be driven to move synchronously. With the sliding function between the convex tooth rod 903 and the fixed block 904, the stability of the movement of the convex tooth rod 903 can be ensured. When the convex tooth rod 903 moves, with the transmission function between the convex tooth rod 903 and the gear 905, the rotating shaft 906 and the convex plate 907 rotate. When the convex plate 907 contacts the blank on the rotating shaft 906, the blank moves upward by a certain distance. When the convex plate 907 separates from the blank on the rotating shaft 906, at this time the blank automatically falls to contact the rotating shaft 906, so that the blank can be jolted up and down. This can not only ensure the normal backward sliding of the blank on the rotating shaft 906 and avoid jamming problems, but also shake off the debris on the surface of the blank through the up and down jolting of the blank. Finally, the blank automatically falls into the finished product box 102 and is collected under the limiting and guiding action of the rotating shaft 906 and the limiting plate 908;

[0040] A forging process for a high-quality titanium forging bearing seat is as follows:

[0041] Step 1: Place the heated blank into the lower die 701 by a worker or a manipulator to complete the installation of the blank;

[0042] Step 2: After the blank is installed, drive the upper die 6 to move downward by the hydraulic rod 5 to cooperate with the lower die 701 to complete the forging process of the blank, and the waste generated by stamping and forging directly falls into the sundry box 101 and is collected;

[0043] Step 3: After stamping, drive the upper die 6 to move upward by the hydraulic rod 5. With the sliding function between the inclined plane block 706 and the rotating plate 705, the two lower dies 701 are separated to realize the automatic discharging of the product after plasticity. And the product after plasticity automatically falls into the finished product box 102 and is collected under the guiding action of the blanking mechanism 9;

[0044] Step 4: When the product is separated from the lower die 701, cooperate with the function of the dust blowing mechanism 8 to blow off the residual debris on the lower die 701, ensure the cleanliness of the lower die 701, and thus the forging quality of the bearing seat.

[0045] 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 forging device for manufacturing a high-quality titanium forged bearing seat, comprising a base plate (1), a support rod (2), a mounting platform (3), a top plate (4), a hydraulic rod (5) and an upper die (6), wherein the base plate (1) is fixed with a support rod (2), a mounting platform (3) fixed to the support rod (2) is arranged above the base plate (1), a top plate (4) fixed to the support rod (2) is arranged above the mounting platform (3), a hydraulic rod (5) is fixed to the lower end surface of the top plate (4), and an upper die (6) is fixed to the output end of the hydraulic rod (5), characterized in that: A discharge mechanism (7) is installed on the mounting platform (3), and the discharge mechanism (7) is connected to the soot blowing mechanism (8). The discharge mechanism (7) comprises a lower die (701), an ear plate (702), a guide rod (703), a fixed plate (704), a rotating plate (705), an inclined block (706) and a first spring (707). The lower die (701) is in contact and slides with the mounting platform (3), and a slot is provided on the mounting platform (3) to match the lower die (701). An ear plate (702) is fixed on the side of the lower die (701), and the ear plate (70 2) is slidably connected to the guide rod (703), the guide rod (703) is fixed on the mounting platform (3), a fixed plate (704) is fixed on the lower mold (701), a rotating plate (705) is rotatably connected to the fixed plate (704), a torsion spring is connected between the rotating plate (705) and the fixed plate (704), the rotating plate (705) is located below the inclined block (706), the inclined block (706) is symmetrically fixed on the upper mold (6), and a first spring (707) is fixed between the fixed plate (704) and the mounting platform (3).

2. A forging device for manufacturing a high-quality titanium forged bearing seat according to claim 1, characterized in that: A sundry box (101) is installed on the bottom plate (1), and the sundry box (101) is located directly below the slot on the mounting platform (3); a finished product box (102) is installed on the bottom plate (1), and the finished product box (102) is located at the lower side of the end of the unloading mechanism (9), and the unloading mechanism (9) is installed on the lower end surface of the mounting platform (3).

3. A forging device for manufacturing a high-quality titanium forged bearing seat according to claim 2, characterized in that: The soot blowing mechanism (8) comprises a cylinder (801), a piston (802), a one-way air inlet valve (803), a one-way air outlet valve (804), an air guide rod (805), a second spring (806), an air outlet (807) and a side plate (808); the cylinder (801) is fixed on a mounting platform (3), and the piston (802) is slidably connected to the cylinder (801), and the piston (802) is fixed on a lower mold (701).

4. A forging device for manufacturing a high-quality titanium forged bearing seat according to claim 3, characterized in that: The cylinder (801) is provided with a one-way air inlet valve (803), and the cylinder (801) is connected to the air guide rod (805) via a one-way air outlet valve (804) and a conduit, and the air guide rod (805) is slidably connected to the lower mold (701).

5. A forging device for manufacturing a high-quality titanium forged bearing seat according to claim 4, characterized in that: A second spring (806) is fixed between the air guide rod (805) and the lower mold (701), an air outlet (807) is provided on the air guide rod (805), and a side plate (808) fixed on the cylinder (801) is provided on the side of the air guide rod (805).

6. A forging device for manufacturing a high-quality titanium forged bearing seat according to claim 5, characterized in that: The unloading mechanism (9) is provided with a cross bar (901), a connecting rod (902), a convex gear rod (903), a fixed block (904), a gear (905), a rotating shaft (906), a convex plate (907) and a limit plate (908); the cross bar (901) is fixed on the fixed plate (704), and the cross bar (901) is slidably connected to the mounting platform (3), and the connecting rod (902) is fixed on the cross bar (901).

7. A forging device for manufacturing a high-quality titanium forged bearing seat according to claim 6, characterized in that: A convex tooth rod (903) is fixed on the connecting rod (902), and the convex tooth rod (903) is slidably connected to a fixed block (904), and the fixed block (904) is fixed on the lower end surface of the mounting platform (3).

8. A forging device for manufacturing a high-quality titanium forged bearing seat according to claim 7, characterized in that: The convex gear rod (903) is meshedly connected with the gear (905), and the gear (905) is fixed on the rotating shaft (906), and the rotating shaft (906) is bearing-connected to the lower end surface of the mounting platform (3), and the rotating shaft (906) is tiltedly mounted.

9. A forging device for manufacturing a high-quality titanium forged bearing seat according to claim 8, characterized in that: A convex plate (907) is fixed on the rotating shaft (906), and a limiting plate (908) is arranged on the side of the rotating shaft (906), and the limiting plate (908) is fixed on the lower end surface of the mounting platform (3).

10. A forging process for a high-quality titanium forged bearing seat, applied to a forging device for manufacturing a high-quality titanium forged bearing seat as claimed in claim 9, characterized in that: The specific steps are as follows: Step 1: The heated blank is placed in the lower mold (701) by a staff member or a robot to install the blank; Step 2: After the blank is installed, the upper die (6) is driven downward by the hydraulic rod (5) to cooperate with the lower die (701) to realize the forging process of the blank, and the waste generated by the stamping and forging directly falls into the debris box (101) to be collected; Step 3: After the stamping is completed, the upper die (6) is driven upward by the hydraulic rod (5), and the two lower dies (701) are separated by the sliding action between the inclined block (706) and the rotating plate (705), so as to realize the automatic discharge of the plasticized product, and the plasticized product is guided by the discharge mechanism (9) and automatically falls into the finished product box (102) to be collected; Step 4: When the product is separated from the lower die (701), the soot blowing mechanism (8) is used to blow away the debris remaining on the lower die (701) to ensure the cleanliness of the lower die (701) and thus improve the forging quality of the bearing seat.

Citation Information

Patent Citations

  • A combined bearing seat forging device and forging process thereof

    CN113751651B

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