Martensitic stainless steel heat treatment casting equipment and processing method

By setting up an independent clamping and flip device and worm gear and worm transmission system in the martensite stainless steel heat treatment casting equipment, the problem of low efficiency of a single forging station is solved, and efficient forging and quality assurance of multiple stations is achieved.

CN119897434BActive Publication Date: 2025-08-29ZHEJIANG AERO & BIOME MATERIAL CO LTD
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Patent Information

Application Number
CN202510353327.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2025-08-29
Estimated Expiration
2045-03-25

AI Technical Summary

Technical Problem

In the existing martensitic stainless steel processing equipment, a single forging station limits the forging efficiency of the blank and affects the overall processing efficiency.

Method used

A martensitic stainless steel heat treatment casting equipment is designed, and an independent clamping and flip device is arranged on both sides of the transmission box. It can realize independent rotation through a clutch mechanism, combine multiple forging stations, and use a driving motor and a worm gear and worm transmission system to improve forging efficiency and quality.

Benefits of technology

The independent operation of multiple forging stations is realized, the forging efficiency and quality of the blank material is improved, the equipment manufacturing cost is reduced, and the forging rhythm of each forging station is adapted.

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Abstract

The present invention relates to a martensitic stainless steel heat treatment casting device and processing method, belonging to the field of stainless steel processing technology. The casting device includes a base plate, forging tables are provided on both sides of the base plate, a transmission housing is provided between the forging tables on both sides, and a clamping and flipping device is provided on both sides of the transmission housing. The clamping and flipping devices on both sides cooperate with the corresponding forging tables to form multiple forging stations. The clamping and flipping devices include a drive shaft, which is rotatably connected to the transmission housing. One end of the drive shaft extends into the transmission housing as an extension end. The extension end is connected to a driven gear. One end is connected to a clamping claw. A rotating shaft is rotatably connected to the transmission housing. A worm is provided on the outer periphery of both sides of the rotating shaft. A worm wheel coupled to the worm is provided inside the transmission housing. A clutch mechanism is provided between the rotating shaft and the drive shaft. The clutch mechanism is used to connect or disconnect power transmission between the rotating shaft and the drive shaft. The present invention has the following advantages and effects: it can improve the forging efficiency of the blank.
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Description

Technical Field

[0001] The present invention relates to the technical field of martensitic stainless steel processing, and in particular to martensitic stainless steel heat treatment casting equipment and a processing method. Background Art

[0002] Martensitic stainless steel is a type of stainless steel that achieves a martensitic structure through heat treatment, resulting in higher strength and hardness. Currently, the processing of martensitic stainless steel primarily involves combining heat treatment with forging to improve the final performance of the steel.

[0003] In the process of combining heat treatment and forging, the billet is generally forged by forging equipment and then annealed to eliminate stress in preparation for subsequent quenching and tempering. In order to prevent the billet from cracking during forging, a heating furnace is generally required to heat the billet so that the billet reaches a suitable forging temperature. In order to facilitate the flipping of the billet during the forging process, a motor is used to drive the clamping jaws to rotate through the drive shaft to achieve the flipping of the billet clamped by the clamping jaws, thereby reducing the difficulty of flipping the billet.

[0004] However, in actual use, it was found that due to the structure of the above-mentioned turning device, only a single forging station could be set when forging the billet, which limited the forging efficiency of the billet and affected the overall processing efficiency of martensitic stainless steel. Summary of the Invention

[0005] In view of the shortcomings of the prior art, the present invention aims to provide a martensitic stainless steel heat treatment casting device that can improve the forging efficiency of the billet. Another object of the present invention is to provide a martensitic stainless steel heat treatment casting processing method.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solution: A martensitic stainless steel heat treatment casting equipment, comprising a base plate, forging tables are provided on both sides of the base plate, a transmission box is provided between the forging tables on both sides, and clamping and flipping devices independent of each other are provided on both sides of the transmission box, and the clamping and flipping devices on both sides cooperate with the corresponding forging tables to form a plurality of forging stations, the clamping and flipping devices include a drive shaft, the drive shaft is rotatably connected to the transmission box, one end of the drive shaft extends into the transmission box as an extension end, the extension end is connected to a driven gear, and one end is connected to a clamping claw, a rotating shaft is rotatably connected in the transmission box, the rotating shaft is connected to a drive motor, the drive motor is used to drive the rotating shaft to rotate, worms are provided on the outer periphery of both sides of the rotating shaft, a worm wheel coupled to the worm is provided inside the transmission box, a clutch mechanism is provided between the rotating shaft and the drive shaft, and the clutch mechanism is used to connect or disconnect the power transmission between the rotating shaft and the drive shaft so that the drive shafts on both sides can rotate independently.

[0007] The present invention is further configured as follows: the clutch mechanism includes a sliding rod that can slide horizontally, the sliding rod is located at one end facing the driven gear as a connecting end, the connecting end is provided with a driving gear, and the driving gear slides with the sliding rod to engage or disengage with the driven gear through the sliding rod, the sliding rod is located at one end facing away from the driven gear and is provided with a return spring, one end of the return spring is fixed to the inner wall of the transmission case, the top of the transmission case is provided with an operating pin and a reset pin that are spaced apart from each other, and the operating pin and the reset pin are both provided with a pushing part, the sliding rod is provided with a first trapezoidal groove and a second trapezoidal groove corresponding to the operating pin and the reset pin, and a locking groove extending in the horizontal direction and connected to the first trapezoidal groove is provided below the first trapezoidal groove, the pushing part of the operating pin and the pushing part of the reset pin slide along the inclined surfaces of the first trapezoidal groove and the second trapezoidal groove respectively to push the sliding rod to slide.

[0008] The present invention is further configured as follows: the connecting end is a columnar structure, a coupling seat is provided on the outer periphery of the connecting end, a through hole is provided in the coupling seat, a pressure spring is provided in the through hole, steel balls are fixed at both ends of the pressure spring, a wedge-shaped block is provided on the inner wall of the worm gear, the wedge-shaped blocks are multiple and evenly distributed around the circumference, coupling grooves for coupling steel balls are formed between adjacent wedge-shaped blocks, and the steel balls slide through the sliding rod to enter or exit the coupling grooves.

[0009] The present invention is further configured as follows: the drive motor is installed on the top of the transmission case, the output end of the drive motor extends into the transmission case and is connected to a driving bevel gear, a driven bevel gear is sleeved on the outer periphery of the rotating shaft, and the driven bevel gear can mesh with the driving bevel gear.

[0010] The present invention is further configured as follows: the forging table includes a frame, the frame is connected to a retractable lifting column, the bottom end of the lifting column is connected to a forging body, the bottom of the forging body is connected to a hammer, a support seat opposite to the hammer is provided below the hammer, the outer periphery of the forging body is connected to a guide column, and the guide columns are multiple and evenly distributed around the forging body.

[0011] The present invention is further configured as follows: a slide is provided at the bottom of the forging table, the bottom end of the guide column and the support seat are respectively fixed to the slide, and slide rails are symmetrically provided on the base plate. The slide is coupled to the slide rails and can slide along the slide rails. A through-hole is provided on the slide, and the support seat is adapted to the hole and passes through the hole. A downwardly concave slide groove is provided on the base plate, and a pulley is connected to the bottom of the support seat. The pulley is coupled to the groove and can form a sliding fit between the two.

[0012] The present invention also provides a processing method for heat-treating and casting martensitic stainless steel, which uses the above-mentioned casting equipment and includes the following steps:

[0013] S1: heating the blank to forging temperature;

[0014] S2: placing the heated blank on the support seats in the forging stations on both sides and supporting them;

[0015] S3: The forging table is driven by the slide in each forging station to move toward the corresponding clamping and turning device, and the clamping claws in the clamping and turning device clamp and limit the blank;

[0016] S4: Forging the blank supported by the support seat by reciprocating the hammers in each forging station;

[0017] S5: driving the forging table away from the corresponding clamping and turning device through the slide, so that there is a sufficient distance between the forging table and the clamping and turning device;

[0018] S6: Press the operating pin to drive the blank to flip;

[0019] S7: Press the reset pin to maintain the forging surface of the blank and cycle to S3.

[0020] Compared with the prior art, the present invention has the following beneficial effects:

[0021] Since independent clamping and turning devices are provided on both sides of the transmission box, based on this design, forging tables can be provided on both sides of the base plate, so that the clamping and turning devices on both sides can cooperate with the corresponding forging tables respectively to form multiple forging stations. Therefore, the technical problem that the forging efficiency of the billet at a single forging station in the prior art is limited to a certain extent can be solved, thereby improving the forging efficiency of the billet, and the clamping and turning devices on both sides are independent of each other, so that the billet can be clamped and turned separately according to the forging conditions of the billet in each forging station to adjust the forging surface of the billet. Therefore, the clamping and turning devices on both sides do not need to rotate synchronously, so that they can better adapt to the forging rhythm of the billet in each forging station, thereby improving the forging efficiency of the billet while ensuring the forging quality of the billet. BRIEF DESCRIPTION OF THE DRAWINGS

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

[0023] Figure 2 Schematic diagram of the relationship between the clamping jaws and the forging table in the present invention;

[0024] Figure 3 It is a schematic diagram of the partial internal structure of the transmission housing in the present invention;

[0025] Figure 4 It is a partial enlarged structural schematic diagram of the forging table in the present invention;

[0026] Figure 5 Schematic diagram of the matching relationship when the driving gear is not meshing with the driven gear in the present invention;

[0027] Figure 6 Schematic diagram of the matching relationship between the driving gear and the driven gear when they are meshing in the present invention;

[0028] Figure 7 Schematic diagram of the structural relationship when the steel ball is pressed against the coupling groove in the present invention;

[0029] Figure 8 It is a schematic diagram of the connection relationship between the return spring and the transmission housing in the present invention.

[0030] In the figure: base plate 1, slide 101, frame 21, lifting column 22, forging body 23, hammer 24, support base 25, guide column 26, transmission box 3, through slot 31, drive shaft 41, driven gear 42, clamping claw 43, worm 44, worm wheel 45, mounting end 451, drive motor 5, rotating shaft 6, slide rod 471, connecting end 471a, first trapezoidal groove 471b, second trapezoidal groove 471c, Locking groove 471d, driving gear 472, return spring 473, operating pin 474, return pin 475, pushing part 476, coupling seat 477, top pressure spring 478, steel ball 479, wedge block 480, driving bevel gear 7, driven bevel gear 8, slide 9, clearance opening 91, slide rail 10, pulley 11, connecting seat 12, opening 121, return spring 122, forging station 100. DETAILED DESCRIPTION

[0031] The technical solution of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0032] In the description of the present invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the present invention. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0033] like Figure 1 and Figure 2As shown, the present invention discloses a martensitic stainless steel heat treatment casting equipment, including a base plate 1, which is a horizontal bearing platform. Forging tables are symmetrically arranged on both sides of the base plate 1, and the forging table includes a frame 21. The frame 21 is connected to a retractable lifting column 22, which is driven by hydraulic or electric means and is vertically installed on the frame 21. The bottom end of the lifting column 22 is connected to a forging body 23, and the bottom of the forging body 23 is connected to a hammer 24 for applying pressure to the billet. A support seat 25 opposite to the hammer 24 is provided below the hammer 24. The forging body 23 is driven to rise and fall by the lifting column 22, so that the hammer 24 can be driven to repeatedly forge the billet supported by the support seat 25. During the repeated forging process of the hammer 24, a guide column 26 arranged on the outer periphery of the forging body 23 can guide the lifting and lowering of the lifting column 22 to ensure the stability of vertical movement. The above-mentioned forging tables are all existing technologies, so they will not be described in detail.

[0034] In this embodiment, a transmission box 3 is provided between the forging tables on both sides, and clamping and turning devices independent of each other are provided on both sides of the transmission box 3. The clamping and turning devices on both sides cooperate with the corresponding forging tables to form multiple forging stations 100, thereby improving the forging efficiency of the billet, and the clamping and turning devices on both sides are independent of each other. In this way, the billet can be clamped and turned separately according to the forging conditions of the billet in each forging station 100 to adjust the forging surface of the billet. Therefore, the clamping and turning devices on both sides do not need to rotate synchronously, so that they can better adapt to the forging rhythm of the billet in each forging station 100, thereby improving the forging efficiency of the billet while ensuring the forging quality of the billet.

[0035] like Figure 3 and Figure 4 as well as Figure 5As shown, the clamping and flipping device includes a drive shaft 41, a bearing seat is installed on the transmission box 3, and a bearing is installed in the bearing seat, so that the drive shaft 41 can be rotatably connected to the transmission box 3 through the bearing, and one end of the drive shaft 41 extends into the transmission box 3 as an extension end, and the extension end is connected to a driven gear 42 that cooperates with the driving gear 472 described below, and the other end of the extension end is connected to a clamping claw 43 for clamping the blank, that is, the connecting rods on both sides are driven to move by the extension and retraction of the output end of the cylinder, thereby driving the clamping blocks on both sides to move toward or away from each other, thereby achieving clamping or releasing of the object, and the clamping claw can adopt the existing structure. Similarly, the rotating shaft 6 is rotatably connected to the transmission housing 3 via a bearing, and the drive motor 5 is used to drive the rotating shaft 6 to rotate. A worm 44 is provided on the outer periphery of both sides of the rotating shaft 6, and a worm wheel 45 coupled to the worm 44 is provided on the inner side of the transmission housing 3. A clutch mechanism is provided between the rotating shaft 6 and the drive shaft 41, and the clutch mechanism is used to connect or disconnect the power transmission between the rotating shaft 6 and the drive shaft 41 so that the drive shafts 41 on both sides can rotate independently. It should be noted that the clamping jaws adopt conventional forging-specific clamping jaws in the forging field to adapt to the high temperature generated during forging and ensure stable clamping of the object. That is, a high-temperature resistant material with low thermal conductivity (such as ceramic fiber, graphite, zirconia, etc.) can be used as a heat insulation layer on the surface of the clamping block in contact with the object or inside the clamping jaw to directly reduce the conduction of heat to the cylinder body and protect the internal structure.

[0036] Specifically, protruding mounting ends 451 are provided on both sides of the worm gear 45, and a connecting seat 12 is provided in the transmission housing 3. The inner wall of the connecting seat 12 is provided with an embedding groove, which is used to nest the corresponding bearing, so that the mounting end 451 can be nested in the bearing to realize the rotational connection of the worm gear 45 and ensure the stability of the installation of the worm gear 45. In addition, an opening 121 is provided on the connecting seat 12 for partially extending the worm gear 45, so as to facilitate the engagement of the worm gear 45 with the worm 44.

[0037] like Figures 4 to 8 As shown, the clutch mechanism includes a horizontally slidable slide rod 471, which is horizontally arranged in the transmission housing 3. The slide rod 471 is located at one end facing the driven gear 42 as a connecting end 471a. The connecting end 471a is fixed with a driving gear 472. The driving gear 472 can be engaged or disengaged with the driven gear 42 by the horizontal sliding of the slide rod 471.

[0038] A return spring 473 is provided between the other end of the slide rod 471 located at the connection end 471a and the inner wall of the transmission case 3, wherein one end of the return spring 473 is fixed to the end face of the slide rod 471, and the other end is fixed to the inner wall of the transmission case 3. Specifically, a corresponding through groove 31 is provided on the inner wall of the transmission case 3, and one end of the return spring 473 is fixed to the bottom of the through groove 31. Such a design can provide a longer expansion and contraction space for the return spring 473, ensuring that the return spring 473 can generate sufficient elastic force when compressed, so as to drive the slide rod 471 to reset;

[0039] An operating pin 474 and a reset pin 475 are provided on the top of the transmission housing 3 and are spaced apart from each other and extend into the transmission housing 3. A pushing portion 476 is provided on each of the operating pin 474 and the reset pin 475. Switches for easy pressing are fixed to the tops of the operating pin 474 and the reset pin 475, and a return spring 122 is fixed between the corresponding switches and the transmission housing 3. A first trapezoidal groove 471b and a second trapezoidal groove 471c corresponding to the operating pin 474 and the reset pin 475 are provided on the slide bar 471. A locking groove 471d is provided below 471b, which extends horizontally and is connected to the first trapezoidal groove 471b. The pushing portion 476 of the operating pin 474 and the pushing portion 476 of the reset pin 475 slide along the inclined surfaces of the first trapezoidal groove 471b and the second trapezoidal groove 471c respectively to push the slide bar 471 to slide. In this way, when it is necessary to transmit the power of the drive motor 5 from the rotating shaft 6 to the drive shaft 41, the operating pin 474 is pressed to move downward. During the downward movement of the operating pin 474, The pushing portion 476 can slide along the inclined surface of the first trapezoidal groove 471b until the operating pin 474 is pressed down into place, so that the sliding rod 471 can be pushed to move in the direction close to the worm gear 45, so that the driving gear 472 can mesh with the driven gear 42. In this way, the worm gear 45 rotating with the worm 44 can transmit power to the sliding rod 471 to drive the sliding rod 471 to rotate, thereby enabling the driving gear 472 to rotate, and then driving the transmission gear to rotate, realizing the rotation of the drive shaft 41. When the sliding rod 471 moves close to the worm gear 45, the driving gear 472 can be rotated, thereby driving the transmission gear to rotate, realizing the rotation of the drive shaft 41. When the gear 471 is moved in the direction of rotation, the return spring 473 is stretched. At this time, when the operating pin 474 is released, the return spring 473 can drive the slide bar 471 to slide toward the pushing portion 476 of the operating pin 474, so that the pushing portion 476 of the operating pin 474 can be stuck in the locking groove 471d to lock the operating pin 474, thereby limiting the horizontal sliding of the slide bar 471 and preventing the slide bar 471 from malfunctioning, thereby ensuring the stability of the meshing of the driving gear 472 and the driven gear 42, so as to facilitate stable power transmission;

[0040] When the cam 471 is in the unlock state, the locking cam 471d is released and the locking cam 471d is released, so that the cam 471d is released and the locking cam 471d is released. The reset pin 475 limits the horizontal sliding of the slide bar 471, so that under the action of the previously stretched reset spring 473, the slide bar 471 can be reset, so that the driving gear 472 and the driven gear 42 can be disengaged to achieve power cut-off. In summary, it is only necessary to manipulate the operating pin 474 and the reset pin 475 in each clamping and flipping device to enable each clamping and flipping device to rotate independently. Therefore, in this solution, only a transmission structure needs to be set up, so that a single drive motor 5 can control the two clamping and flipping devices to rotate independently, and there is no need to equip the clamping and flipping devices with a drive motor 5 respectively. This can effectively reduce the overall manufacturing cost, and the above-mentioned transmission structure is a mechanical structure, which can reduce the debugging cost required for independent control using electrical components such as sensors.

[0041] In addition, the connecting end 471a is a columnar structure, one end of the connecting end 471a is also rotatably connected to the end of the slide rod 471 through a bearing, and a coupling seat 477 is provided on the outer periphery of the connecting end 471a. A through hole is provided in the coupling seat 477, and a top pressure spring 478 is nested in the through hole. Steel balls 479 are fixed at both ends of the top pressure spring 478, and the steel balls 479 can extend from the through hole. A wedge-shaped block 480 is provided on the inner wall of the worm gear 45. There are multiple wedge-shaped blocks 480 and they are evenly distributed around the circumference. A coupling groove for coupling the steel balls 479 is formed between adjacent wedge-shaped blocks 480. When the slide rod 471 slides toward the worm gear 45, the active When gear 472 is engaged with driven gear 42, coupling seat 477 can follow slide bar 471 to slide toward worm gear 45. In the process of coupling seat 477 sliding in, steel ball 479 can contact the inner wall of the center of worm gear 45 to push compression spring 478. The force generated by deformation of compression spring 478 can make steel ball 479 press tightly against coupling groove. The friction force generated between steel ball 479 and the inner wall of worm gear 45 can drive connecting end 471a to rotate when worm gear 45 rotates, so that worm gear 45 can transmit power to slide bar 471 to drive slide bar 471 to rotate.

[0042] In this embodiment, the drive motor 5 is further mounted on the top of the transmission housing 3. This prevents the drive motor 5 and the drive shaft 41 from being arranged in the same plane, thereby preventing interference with the blank clamped by the clamping jaws 43 during flipping. Specifically, the output end of the drive motor 5 extends into the transmission housing 3 and is connected to the driving bevel gear 7. The outer periphery of the rotating shaft 6 is provided with a driven bevel gear 8, which can mesh with the driving bevel gear 7. In this way, the driven bevel gear 8 and the driving bevel gear 7 can be meshed with each other, thereby converting vertical rotation into horizontal rotation. Therefore, the drive motor 5 can be mounted on the top of the transmission housing 3, avoiding interference while still being able to drive the rotating shaft 6 normally.

[0043] In this embodiment, a slide 9 is provided at the bottom of the forging table. The slide 9 is of existing technology and is driven, for example, by a lead screw or a linear motor. Slide rails 10 are symmetrically provided on the base plate 1. The slide 9 is coupled to the slide rails 10 and can slide along the slide rails 10. The bottom ends of the guide columns 26 and the support seats 25 are respectively fixed to the slide 9, so that the forging table can follow the sliding of the slide 9 and move closer to or away from the corresponding clamping and turning device, thereby changing the forging position of the hammer 24 to fully forge the clamped blank. When the blank needs to be turned over, the forging table can be moved away from the clamping and turning device, so that sufficient space can be left between the forging table and the clamping and turning device to facilitate turning over the blank.

[0044] like Figure 4 As shown, the support seat 25 is not fixed to the slide 9. During the forging process, the support seat 25 is repeatedly hammered mainly by the hammer 24. This can avoid the generated force directly acting on the slide 9, causing the slide 9 to deform and affect the sliding stability of the slide 9. Specifically, a through-hole 91 is provided on the slide 9, and the support seat 25 is adapted to the through-hole 91 and passes through the through-hole 91. Through the setting of the through-hole 91, the support seat 25 can contact with the base plate 1, and the base plate 1 supports the support seat 25 to avoid the generated force directly acting on the slide 9. In the process of movement of the slide 9, the through-hole 91 adapted to the support seat 25 can push the support seat 25 to slide, thereby ensuring that the support seat 25 and the hammer 24 slide at the same time. In addition, in the process of sliding of the support seat 25, the pulley 11 under the support seat 25 can slide along the slide groove 101 formed in the depression on the base plate 1 to guide the sliding of the support seat 25 and ensure that the support seat 25 slides stably. The pulley 11 is rotatably connected to the base fixed at the bottom of the support seat 25.

[0045] The operating principle of the present invention is as follows:

[0046] First, the martensitic stainless steel billet is placed on the support seats 25 on both sides by an external manipulator through an external heating device (such as a heating furnace), and then the slide 9 drives the forging table to slide toward the corresponding clamping and turning device. After the clamping claw 43 clamps one end of the billet, the billet is forged by the reciprocating lifting and lowering of the hammer 24. When it is necessary to turn the billet in any forging station 100 to adjust the forging surface of the billet, the slide 9 in the corresponding forging station 100 first drives the forging table away from the corresponding clamping and turning device, so that there is sufficient space between the forging table and the clamping and turning device. , and then press the corresponding operating pin 474 in the corresponding clamping and flipping device to transmit the power of the drive motor 5 to the clamping and flipping device that needs to be rotated, so that the drive shaft 41 in the corresponding clamping and flipping device can be rotated, thereby driving the clamping claw 43 connected to the drive shaft 41 to rotate, so as to flip the clamped blank. After the blank is flipped to the appropriate angle, press the reset pin 475 to cut off the power between the drive shaft 41 and the rotating shaft 6, and then drive the forging table to slide toward the corresponding clamping and flipping device through the slide 9. Repeat this process to complete the forging of each side of the blank.

[0047] The present invention also discloses a processing method for heat-treated casting of martensitic stainless steel, which uses the above-mentioned casting equipment and includes the following steps:

[0048] S1: heating the blank to forging temperature;

[0049] S2: The heated blanks are placed on the support bases 25 in the forging stations 100 on both sides, and supported by the support bases 25;

[0050] S3: The slide 9 in each forging station 100 drives the forging table to move toward the corresponding clamping and flipping device, and the clamping claws 43 in the clamping and flipping device clamp and limit the blank;

[0051] S4: The hammers 24 in each forging station 100 are raised and lowered reciprocally to forge the blank supported by the support seat 25;

[0052] S5: driving the forging table away from the corresponding clamping and flipping device through the slide 9, so that there is a sufficient distance between the forging table and the clamping and flipping device;

[0053] S6: Press the operating pin 474 to turn the blank over;

[0054] S7: Press the reset pin 475 to maintain the forging surface of the blank and cycle to S3.

[0055] Through this processing method, multiple billets can be forged simultaneously to improve the overall forging efficiency of the billets, and the corresponding operating switches and reset switches can be controlled according to the forging rhythm of the billets in each forging station 100 to achieve the connection and disconnection of power between the rotating shaft 6 and the drive shaft 41, ensuring that the billets in each forging station 100 can adjust the forging surfaces of their respective billets according to their respective forging rhythms to adapt to their respective forging rhythms and ensure the forging quality of the billets.

[0056] This specific embodiment is merely an explanation of the present invention and is not intended to limit the present invention. After reading this specification, those skilled in the art may make non-creative modifications to this embodiment as needed. However, as long as such modifications are within the scope of the claims of the present invention, they are protected by patent law.

Claims

1. A martensitic stainless steel heat treatment casting equipment, characterized in that, The transmission box body is provided with a worm gear and a worm gear coupled to the worm gear. A clutch mechanism is provided between the rotating shaft and the driving shaft, and the clutch mechanism is used to connect or disconnect the rotating shaft and the driving shaft so that the driving shafts on both sides can rotate independently. The clutch mechanism includes a sliding rod that can slide horizontally, and the sliding rod is located at one end facing the driven gear as a connecting end, and the connecting end is provided with a driving gear, and the driving gear slides with the sliding rod to engage or disengage with the driven gear through the sliding rod, and the sliding rod is located at one end facing away from the driven gear and is provided with a return spring, and one end of the return spring is fixed to the inner wall of the transmission case, and the top of the transmission case is provided with an operating pin and a reset pin that are spaced apart from each other, and the operating pin and the reset pin are both provided with a pushing portion, and the sliding rod is provided with a first trapezoidal groove and a second trapezoidal groove corresponding to the operating pin and the reset pin, and a locking groove extending in the horizontal direction and connected to the first trapezoidal groove is provided below the first trapezoidal groove, and the pushing portion of the operating pin and the pushing portion of the reset pin slide along the inclined surfaces of the first trapezoidal groove and the second trapezoidal groove respectively to push the sliding rod to slide.

2. The martensitic stainless steel heat treatment casting equipment according to claim 1, characterized in that: The connecting end is a columnar structure, and a coupling seat is provided on the outer periphery of the connecting end. A through hole is provided in the coupling seat, and a pressure spring is provided in the through hole. Steel balls are fixed at both ends of the pressure spring. A wedge-shaped block is provided on the inner wall of the worm gear. There are multiple wedge-shaped blocks and they are evenly distributed around the circumference. Coupling grooves for coupling steel balls are formed between adjacent wedge-shaped blocks. The steel balls slide through the sliding rod to enter or exit the coupling grooves.

3. The martensitic stainless steel heat treatment casting equipment according to claim 2, characterized in that: The drive motor is installed on the top of the transmission box. The output end of the drive motor extends into the transmission box and is connected to the driving bevel gear. The outer periphery of the rotating shaft is sleeved with a driven bevel gear, and the driven bevel gear can mesh with the driving bevel gear.

4. The martensitic stainless steel heat treatment casting equipment according to claim 3, characterized in that: The forging table includes a frame, the frame is connected to a retractable lifting column, the bottom end of the lifting column is connected to a forging body, the bottom of the forging body is connected to a hammer, a support seat opposite to the hammer is provided below the hammer, the periphery of the forging body is connected to a guide column, and the guide columns are multiple and evenly distributed around the forging body.

5. The martensitic stainless steel heat treatment casting equipment according to claim 4, characterized in that: A slide is provided at the bottom of the forging table, the bottom end of the guide column and the support seat are respectively fixed to the slide, and slide rails are symmetrically provided on the base plate. The slide is coupled to the slide rails and can slide along the slide rails. A through-hole is provided on the slide, and the support seat is adapted to the hole and passes through the hole. A downwardly concave slide groove is provided on the base plate, and a pulley is connected to the bottom of the support seat. The pulley is coupled to the slide groove and can form a sliding fit between the two.

6. A processing method for heat treatment casting of martensitic stainless steel, characterized in that: The casting device according to claim 5 comprises the following steps: S1: heating the blank to forging temperature; S2: placing the heated blank on the support seats in the forging stations on both sides and supporting them; S3: The slides in each forging station drive the forging table toward the corresponding clamping and turning device, and the pneumatic clamps in the clamping and turning device clamp and limit the blank; S4: Forging the blank supported by the support seat by reciprocating the hammers in each forging station; S5: driving the forging table away from the corresponding clamping and turning device through the slide, so that there is a sufficient distance between the forging table and the clamping and turning device; S6: Press the operating pin to drive the blank to flip; S7: Press the reset pin to maintain the forging surface of the blank and cycle to S3.

Citation Information

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