High performance hot die surface coating processing equipment
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-14
- Publication Date
- 2026-08-11
AI Technical Summary
[0004]如上述申请相同的,在现有的清洗设备中,其模具基本都是固定放置在一个清洗的设备内、或放置在随输送装置上,跟随输送装置移动,但是这样的清洗设备存在问题,就是模具的底部或者其他的部分大多是与设备接触,这些接触的部分中是清洗的死角,在清洗的过程中,往往存在清洗不彻底的情况,并且由于清洗时的模具本身相对固定,因此清洗的效率以及效果也相对较差
[0028] As a further description of the above technical solution: the spray washing assembly includes a spray washing frame and spray heads, wherein the side of the spray washing frame near the housing cage has an arc-shaped structure, and multiple spray heads are provided, which are arranged in a ring array on the arc-shaped side of the spray washing frame. This structural arrangement makes the rinsing angle more comprehensive when the housing cage rotates, thus resulting in a better rinsing effect.
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Figure CN119926877B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of hot work die coating processing, and more particularly to a high-performance hot work die surface coating processing equipment. Background Technology
[0002] As is generally known, hot work dies are tools used in hot working processes (such as forging, hot extrusion, hot casting, etc.) to manufacture parts. Hot work dies operate at high temperatures, therefore they need to have good heat resistance, wear resistance, and strength to ensure that they can maintain their shape and function under extreme conditions. High-performance hot work die surface coating processing equipment is a type of equipment for cleaning the surface coating of high-performance hot work dies.
[0003] For example, the authorization announcement number is CN109967678B, the authorization announcement date is October 20, 2023, and the name is "A Forging Die Cleaning System". It includes a frame, a die conveying device, a hot air blower unit, an upper high-pressure cleaning device, a lower high-pressure cleaning device, a high-pressure spray cleaning chamber, and a lower filter device. A horizontal circulating trolley track is set up. The die is circulated and transported on a plane by the die conveying device for cleaning, reducing the labor intensity of workers. The upper high-pressure cleaning device, the lower high-pressure cleaning device, and the high-pressure spray cleaning chamber achieve die cleaning. The lower filter device filters out large impurities in the cleaning fluid, allowing the cleaning fluid to be recycled and reused. The hot air generated by the hot air blower unit can quickly dry the residual cleaning fluid on the die surface...
[0004] As with the above application, in existing cleaning equipment, the molds are basically fixed inside a cleaning device or placed on a conveyor and move with the conveyor. However, such cleaning equipment has a problem: the bottom or other parts of the mold are mostly in contact with the equipment, and these contact parts are cleaning dead corners. During the cleaning process, there is often a situation where the cleaning is not thorough. Moreover, since the mold itself is relatively fixed during cleaning, the cleaning efficiency and effect are relatively poor. Summary of the Invention
[0005] (I) Purpose of the Invention
[0006] In view of this, the purpose of this invention is to provide a high-performance hot work die surface coating processing equipment. This device designs the control structure of the housing cage so that when the housing cage moves to the first position, the linkage control mechanism can control the housing cage to rotate and move horizontally reciprocatingly, so that the spray washing component can fully, thoroughly and comprehensively wash the hot work die in the housing cage, thereby improving the cleaning efficiency and effect.
[0007] (II) Technical Solution
[0008] To achieve the above-mentioned technical objectives, the present invention provides a high-performance hot work die surface coating processing equipment for rinsing the surface coating of hot work dies, comprising:
[0009] The equipment housing contains a cage for holding hot work molds.
[0010] A spray washing assembly, installed inside the equipment housing, is used to rinse the hot work mold in the housing cage;
[0011] A lifting control component, which is disposed inside the equipment housing, is used to control and adjust the position of the housing cage;
[0012] The linkage control mechanism is located inside the equipment housing and at both ends of the housing cage. It is used to control the rotation and horizontal reciprocating motion of the housing cage, thereby improving the comprehensiveness and thoroughness of the washing of the hot work mold in the housing cage.
[0013] The lifting control component can control the container cage to move to a first position and a second position. The first position is the rinsing position where the container cage is at its lowest point, and the second position is the pick-up and put-down position where the container cage is at its highest point.
[0014] As a further description of the above technical solution: the lifting control component includes:
[0015] An end plate is installed in the linkage control mechanism. A lead screw nut is embedded inside the end plate, and a control screw is screwed into the lead screw nut.
[0016] A lifting control motor is located on the top of the equipment housing. The output shaft of the lifting control motor is connected to the top of the control screw. When the lifting control motor is running, it drives the control screw to rotate. Under the action of the lead screw and nut, it drives the linkage control mechanism to move vertically, thereby driving the housing cage to move and switch between the first position and the second position.
[0017] As a further description of the above technical solution: the linkage control mechanism at each end of the housing cage is provided with at least two end plates, a transmission box is provided on the upper part of the inside of the equipment housing, a first gear and a second gear are installed in the transmission box, wherein the second gear is installed on the top of the control screw, the second gear is connected to the meshing transmission of all the first gears, and the output shaft of the lifting control motor is connected to the central shaft of one of the first gears.
[0018] As a further description of the above technical solution: a main shaft is rotatably mounted at both ends inside the equipment housing, and a drive motor is mounted at one end of the equipment housing, with the output shaft of the drive motor being connected to the main shaft for transmission.
[0019] The main shaft has a slot at one end, and the linkage control mechanism is detachably engaged with the main shaft through the slot. Therefore, when the lifting control component controls the housing cage to move to the first position, the linkage control mechanism and the main shaft are engaged and coaxially connected. At this time, the drive motor runs, and the main shaft can drive the linkage control mechanism and the housing cage to rotate synchronously, thereby realizing the overall rotation of the housing cage. When it is necessary to control the housing cage to move to the second position, the main shaft is controlled to rotate to a predetermined angle. At this time, the opening of the slot is upward, and the lifting control component can control the housing cage to move upward until it reaches the second position.
[0020] As a further description of the above technical solution: a rotation stop monitoring component is installed inside the equipment housing. The rotation stop monitoring component includes an infrared generator and an infrared receiver, wherein the infrared generator and the infrared receiver are matched and are on the same horizontal line. A fixing plate is provided at the bottom of the main shaft, and a through hole is opened in the middle of the fixing plate. By adopting the above technical solution: when the housing needs to be moved to the second position, during the process of the main shaft stopping rotation, the infrared generator and the infrared receiver are activated. At this time, the infrared generator emits infrared rays. Only when the through hole in the middle of the fixing plate is at the same horizontal position as the infrared generator can the infrared receiver receive the infrared rays. This indicates that the main shaft has reached the predetermined angle, thereby realizing the monitoring of the rotation angle of the main shaft.
[0021] As a further description of the above technical solution: the linkage control mechanism includes:
[0022] A circular plate is disposed at one end of the housing cage and connected to the housing cage;
[0023] An outer ring frame is fitted around the outside of the circular plate and is rotatably connected to the circular plate via a bushing.
[0024] A shaft head is installed at the center of one side of the circular plate, and a clamp is provided at one end of the shaft head. When the housing cage reaches the first position, the clamp engages in the clamping groove, making the shaft head coaxial with the main shaft. At this time, when the main shaft rotates, the clamp drives the circular plate to rotate, thereby making the entire housing cage rotate, realizing the rotation of the housing cage after reaching the first position, and improving the multi-directional comprehensive cleaning of the housing cage hot work mold.
[0025] As a further description of the above technical solution: movable plates are fixedly installed at both ends of the accommodating cage, and a control cylinder is installed on the outer side of the circular plate. The free end of the piston rod of the control cylinder is fixedly connected to the movable plate, so that when the control cylinder is started, it can drive the movable plate to reciprocate in the horizontal direction, thereby making the accommodating cage move synchronously and making the hot work mold inside the accommodating cage more thoroughly cleaned.
[0026] As a further description of the above technical solution: the housing cage and the movable plate are fixedly connected by a sleeve, the control cylinder is eccentrically installed, and a support rod is installed at the center of one side of the circular plate. One end of the support rod is movably inserted into the sleeve. Therefore, when the control cylinder pushes the movable plate and the housing cage to reciprocate in the horizontal direction, the support rod and the sleeve can provide support force, avoiding deformation and damage to the piston rod of the control cylinder due to lateral shear force, thereby ensuring the service life of the device.
[0027] As a further description of the above technical solution: An ultrasonic generator is installed inside the lower part of the equipment housing. When the container cage is in the first rinsing position, the bottom part of the container cage is immersed in the cleaning liquid inside the equipment housing. At this time, the ultrasonic generator operates and can realize ultrasonic cleaning. In conjunction with the rotation of the container cage, the hot work mold is brought out of the water surface for rinsing. The combination of the two makes the cleaning effect on the hot work mold better and faster.
[0028] As a further description of the above technical solution: the spray washing assembly includes a spray washing frame and spray heads, wherein the side of the spray washing frame near the housing cage has an arc-shaped structure, and multiple spray heads are provided, which are arranged in a ring array on the arc-shaped side of the spray washing frame. This structural arrangement makes the rinsing angle more comprehensive when the housing cage rotates, thus resulting in a better rinsing effect.
[0029] In the above technical solution, the present invention provides a high-performance hot work die surface coating processing equipment. The device, through the setting of a lifting control component, enables the housing cage to move to a first position and a second position under the control of the lifting control component. This facilitates the loading and unloading of the hot work die in the housing cage. At the same time, the control structure of the housing cage is designed so that when the housing cage moves to the first position, the linkage control mechanism can control the housing cage to rotate and move horizontally reciprocatingly. This allows the spraying and washing component to fully, thoroughly and comprehensively wash the hot work die in the housing cage, thereby improving the cleaning efficiency and effect. Attached Figure Description
[0030] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the provided drawings without creative effort.
[0031] Figure 1 This is a schematic diagram of the overall structure of a high-performance hot work die surface coating processing equipment provided by the present invention;
[0032] Figure 2 This invention provides a schematic diagram of the internal structure of a high-performance hot work die surface coating processing equipment.
[0033] Figure 3 This is a schematic diagram of the structure of the housing cage in the first position in a high-performance hot work die surface coating processing equipment provided by the present invention;
[0034] Figure 4 This is a schematic diagram of the structure of the housing cage in the second position in a high-performance hot work die surface coating processing equipment provided by the present invention;
[0035] Figure 5 This is a schematic diagram of the structure of a high-performance hot work die surface coating processing equipment when the protective cover is opened;
[0036] Figure 6 A partial cross-sectional view of a high-performance hot work die surface coating processing equipment provided by the present invention;
[0037] Figure 7 A schematic diagram of the linkage control mechanism installation in a high-performance hot work die surface coating processing equipment provided by the present invention;
[0038] Figure 8 A schematic diagram of the housing cage structure in a high-performance hot work die surface coating processing equipment provided by the present invention;
[0039] Figure 9 This invention provides a detailed structural diagram of the linkage control mechanism in a high-performance hot work die surface coating processing equipment.
[0040] Attached Figure Descriptions: 1. Equipment Housing; 100. Base; 101. Controller; 102. Chassis; 103. Protective Cover; 2. Drive Motor; 200. Main Shaft; 201. Slot; 3. Spray Washing Assembly; 300. Spray Washing Frame; 301. Spray Nozzle; 4. Containing Cage; 400. Cage Door; 5. Lifting Control Assembly; 500. Lifting Control Motor; 501. Transmission Box; 502. First Gear; 503. Second Gear; 504. Control... 505. Screw; 506. End plate; 507. Lead screw nut; 6. Linkage control mechanism; 600. Control cylinder; 601. Sleeve; 602. Support rod; 603. Outer ring frame; 604. Bushing; 605. Round plate; 606. Clamp; 607. Shaft head; 608. Movable plate; 7. Rotation stop monitoring component; 700. Infrared receiver; 701. Fixed plate; 702. Through hole; 703. Infrared generator; 8. Ultrasonic generator. Detailed Implementation
[0041] The following description is exemplary in nature and is not intended to limit the scope, application, or use of this disclosure. It should be understood that in all these figures, the same or similar reference numerals indicate the same or similar parts and features. The figures are merely schematic representations of the concept and principles of embodiments of this disclosure and do not necessarily show the specific dimensions and scale of the various embodiments of this disclosure. Certain parts of particular figures may be exaggerated to illustrate relevant details or structures of embodiments of this disclosure.
[0042] Example 1
[0043] Reference Figure 1-9 This embodiment provides a technical solution: a high-performance hot work die surface coating processing equipment for rinsing the surface coating of hot work dies. It includes a housing 1, a spraying and washing assembly 3, a lifting control assembly 5, and a linkage control mechanism 6. The housing 1 houses a housing 4 for holding the hot work die. The spraying and washing assembly 3 is installed inside the housing 1 to rinse the hot work die in the housing 4. The lifting control assembly 5 is located inside the housing 1 to control and adjust the position of the housing 4. The linkage control mechanism 6 is located inside the housing 1 and positioned within the housing 4. The two ends of the cage 4 are used to control the rotation and horizontal reciprocating motion of the cage 4, so as to improve the comprehensiveness and thoroughness of the cleaning of the hot work mold in the cage 4. The lifting control component 5 can control the cage 4 to move to the first position and the second position. The first position is the cleaning position where the cage 4 is at the lowest point, and the second position is the pick-up and put-down position where the cage 4 is at the highest point. The top of the equipment housing 1 is provided with a protective cover 103 to prevent cleaning liquid from splashing out. The controller 101 is installed on the front side of the equipment housing 1. The top of the cage 4 is provided with a cage door 400 by a hinge buckle. The bottom of the equipment housing 1 is provided with a base 100.
[0044] When using the device, the lifting control component 5 first controls the housing cage 4 to move to the second position for picking up and placing. At this time, the operator places the hot work mold to be rinsed into the housing cage 4. Then, the lifting control component 5 controls the housing cage 4 to move to the first position for rinsing. At this time, the spray washing component 3 rinses the hot work mold in the housing cage 4. At the same time, the linkage control mechanism 6 controls the housing cage 4 to rotate and move horizontally reciprocating, so that the spray washing component 3 can thoroughly rinse the hot work mold in the housing cage 4.
[0045] Example 2
[0046] Reference Figure 3This embodiment provides a technical solution: Based on embodiment 1, in order to realize the lifting control component 5 to lift and lower the housing cage 4, so that it can move and switch between the first position and the second position, in this embodiment, the lifting control component 5 includes an end plate 505 and a lifting control motor 500. The end plate 505 is installed in the linkage control mechanism 6, and a lead screw nut 506 is embedded inside the end plate 505. A control screw 504 is screwed and sleeved in the lead screw nut 506. The lifting control motor 500 is located on the top of the equipment housing 1. A housing 102 is provided outside the lifting control motor 500. The output shaft of the lifting control motor 500 is connected to the top of the control screw 504. When the lifting control motor 500 is running, it drives the control screw 504 to rotate. Under the action of the lead screw nut 506, it drives the linkage control mechanism 6 to move vertically, thereby driving the housing cage 4 to lift and lower, so that it can move and switch between the first position and the second position.
[0047] Specifically, such as Figure 3 As shown, in order to ensure that the lifting control component 5 can stably and synchronously control the lifting of the housing cage 4, in this embodiment, the linkage control mechanism 6 at each end of the housing cage 4 is provided with at least two end plates 505. A transmission box 501 is provided on the upper part of the inside of the equipment housing 1. A first gear 502 and a second gear 503 are installed in the transmission box 501. The second gear 503 is installed on the top of the control screw 504. The second gear 503 is connected to the meshing transmission of all the first gears 502. The output shaft of the lifting control motor 500 is connected to the central shaft of one of the first gears 502.
[0048] Example 3
[0049] Reference Figure 3 This embodiment provides a technical solution: based on embodiment 1, as follows: Figure 6 - Figure 9 As shown, in order to enable the housing cage 4 to both lift and rotate after reaching the first position, in this embodiment, a main shaft 200 is rotatably installed at both ends inside the equipment housing 1, and a drive motor 2 is installed at one end of the equipment housing 1. The output shaft of the drive motor 2 is connected to the main shaft 200 for transmission.
[0050] The main shaft 200 has a slot 201 at one end. The linkage control mechanism 6 is detachably engaged with the main shaft 200 through the slot 201. Based on this, when the lifting control component 5 controls the housing cage 4 to move to the first position, the linkage control mechanism 6 is engaged with the main shaft 200 and coaxially connected. At this time, the drive motor 2 runs and can drive the linkage control mechanism 6 and the housing cage 4 to rotate synchronously through the main shaft 200, thereby realizing the overall rotation of the housing cage 4. When it is necessary to control the housing cage 4 to move to the second position, the main shaft 200 is controlled to rotate to a predetermined angle. At this time, the opening of the slot 201 is upward, and the lifting control component 5 can control the housing cage 4 to move upward until it reaches the second position.
[0051] Specifically, such as Figure 4 As shown, in order to ensure that the main shaft 200 can rotate to a predetermined angle when the housing 4 needs to be moved to the second position, in this embodiment, a rotation stop monitoring component 7 is installed inside the equipment housing 1. The rotation stop monitoring component 7 includes an infrared generator 703 and an infrared receiver 700. The infrared generator 703 and the infrared receiver 700 are matched and are on the same horizontal line. A fixing plate 701 is provided at the bottom of the main shaft 200. A through hole 702 is opened in the middle of the fixing plate 701. By adopting the above technical solution: when the housing 4 needs to be moved to the second position, during the process of the main shaft 200 stopping rotation, the infrared generator 703 and the infrared receiver 700 are activated. At this time, the infrared generator 703 emits infrared rays. Only when the through hole 702 in the middle of the fixing plate 701 is on the same horizontal position as the infrared generator 703 can the infrared receiver 700 receive the infrared rays. This indicates that the main shaft 200 has reached the predetermined angle, thereby realizing the monitoring of the rotation angle of the main shaft 200.
[0052] Specifically, such as Figure 1 - Figure 9 As shown, in order to enable the housing cage 4 to rotate after reaching the first position, in this embodiment, the linkage control mechanism 6 includes a circular plate 605 and an outer ring frame 603. The circular plate 605 is disposed at one end of the housing cage 4 and connected to the housing cage 4. The outer ring frame 603 is sleeved on the outside of the circular plate 605 and is rotatably connected to the circular plate 605 through a bushing 604. A shaft head 607 is installed at the center of one side of the circular plate 605. A locking head 606 is provided at one end of the shaft head 607. When the housing cage 4 reaches the first position, the locking head 606 engages in the locking groove 201, making the shaft head 607 coaxial with the main shaft 200. At this time, when the main shaft 200 rotates, the locking head 606 drives the circular plate 605 to rotate, thereby causing the entire housing cage 4 to rotate, so that the housing cage 4 rotates after reaching the first position, thereby improving the multi-directional comprehensive washing of the hot work mold of the housing cage 4. Specifically, the end plate 505 is fixed on the outer ring frame 603.
[0053] Specifically, such as Figure 9As shown, in order to enable the housing cage 4 to reciprocate horizontally after reaching the first position and further improve the rinsing effect, in this embodiment, movable plates 608 are fixedly installed at both ends of the housing cage 4, and a control cylinder 600 is installed on the outer side of the circular plate 605. The free end of the piston rod of the control cylinder 600 is fixedly connected to the movable plate 608, so that when the control cylinder 600 is started, it can drive the movable plate 608 to reciprocate horizontally, thereby making the housing cage 4 move synchronously and making the hot work mold in the housing cage 4 more thoroughly rinsed.
[0054] Specifically, such as Figure 9 As shown, to prevent the piston rod of the control cylinder 600 from being deformed and damaged by lateral shear force, in this embodiment, the housing cage 4 and the movable plate 608 are fixedly connected by a sleeve 601. The control cylinder 600 is eccentrically mounted, and a support rod 602 is installed at the center of one side of the circular plate 605. One end of the support rod 602 is movably inserted into the sleeve 601. Therefore, when the control cylinder 600 pushes the movable plate 608 and the housing cage 4 to reciprocate in the horizontal direction, the support rod 602 and the sleeve 601 can provide support force, preventing the piston rod of the control cylinder 600 from being deformed and damaged by lateral shear force, thereby ensuring the service life of the device.
[0055] Specifically, such as Figure 4 As shown, in order to further improve the rinsing effect of the hot work mold inside the housing 4, in this embodiment, an ultrasonic generator 8 is installed at the lower part of the inside of the equipment housing 1. When the housing 4 is in the first rinsing position, the bottom part of the housing 4 is immersed in the cleaning liquid inside the equipment housing 1. At this time, the ultrasonic generator 8 is running and can realize ultrasonic cleaning. Combined with the rotation of the housing 4, it brings the hot work mold out of the water surface for rinsing. The combination of the two makes the cleaning effect of the hot work mold better and faster.
[0056] Specifically, such as Figure 1 - Figure 4 As shown, in order to achieve comprehensive and efficient rinsing of the spray washing assembly 3, in this embodiment, the spray washing assembly 3 includes a spray washing frame 300 and a nozzle 301. The side of the spray washing frame 300 near the housing cage 4 has an arc-shaped structure. Multiple nozzles 301 are provided, and the multiple nozzles 301 are arranged in a ring array on the arc-shaped side of the spray washing frame 300. This structural arrangement makes the rinsing angle more comprehensive when the housing cage 4 rotates, thus resulting in a better rinsing effect.
[0057] The exemplary implementation of the solution proposed in this disclosure has been described in detail above with reference to preferred embodiments. However, those skilled in the art will understand that various modifications and alterations can be made to the above specific embodiments without departing from the spirit of this disclosure, and various combinations can be made to the various technical features and structures proposed in this disclosure without exceeding the protection scope of this disclosure, which is determined by the appended claims.
Claims
1. A high-performance hot work die surface coating processing equipment, used for rinsing the surface coating of hot work dies, characterized in that, It includes: The equipment housing (1) has a housing cage (4) for placing hot work molds installed inside; The spray washing assembly (3), which is installed inside the equipment housing (1), is used to wash the hot work mold in the housing (4); A lifting control assembly (5) is disposed inside the equipment housing (1) and is used to control and adjust the position of the housing cage (4); The linkage control mechanism (6) is located inside the equipment housing (1) and at both ends of the accommodating cage (4). It is used to control the rotation and horizontal reciprocating motion of the accommodating cage (4) to improve the comprehensiveness and thoroughness of the washing of the hot work mold in the accommodating cage (4). The lifting control component (5) can control the container cage (4) to move to a first position and a second position. The first position is the rinsing position where the container cage (4) is at its lowest point, and the second position is the pick-up and put-down position where the container cage (4) is at its highest point. A main shaft (200) is rotatably mounted at both ends inside the equipment housing (1). A drive motor (2) is mounted at one end of the equipment housing (1). The output shaft of the drive motor (2) is connected to the main shaft (200) in a transmission connection. The main shaft (200) has a slot (201) on one end, and the linkage control mechanism (6) is detachably engaged with the main shaft (200) through the slot (201). The linkage control mechanism (6) includes: A circular plate (605) is disposed at one end of the housing cage (4) and connected to the housing cage (4); The outer ring frame (603) is sleeved on the outside of the circular plate (605) and is rotatably connected to the circular plate (605) via a bushing (604); Among them, a shaft head (607) is installed at the center of one side of the circular plate (605), and a clamp head (606) is provided at one end of the shaft head (607). When the accommodating cage (4) reaches the first position, the clamp head (606) is engaged in the clamping groove (201), so that the shaft head (607) is coaxial with the main shaft (200). Movable plates (608) are fixedly installed at both ends of the accommodating cage (4), and a control cylinder (600) is installed on the outer side of the circular plate (605). The free end of the piston rod of the control cylinder (600) is fixedly connected to the movable plate (608). The housing cage (4) and the movable plate (608) are fixedly connected by a sleeve (601). The control cylinder (600) is eccentrically installed. A support rod (602) is installed at the center of one side of the circular plate (605). One end of the support rod (602) is movably inserted into the sleeve (601).
2. The high-performance hot work die surface coating processing equipment according to claim 1, characterized in that, The lifting control component (5) includes: An end plate (505) is installed in the linkage control mechanism (6). A lead screw nut (506) is embedded inside the end plate (505). A control screw (504) is screwed into the lead screw nut (506). A lifting control motor (500) is disposed on the top of the equipment housing (1), and the output shaft of the lifting control motor (500) is connected to the top of the control screw (504) for transmission.
3. The high-performance hot work die surface coating processing equipment according to claim 2, characterized in that, Each end of the housing cage (4) has a linkage control mechanism (6) with at least two end plates (505). The equipment housing (1) has a transmission box (501) on the upper part inside. The transmission box (501) is equipped with a first gear (502) and a second gear (503). The second gear (503) is installed on the top of the control screw (504). The second gear (503) is connected to the meshing transmission of all the first gears (502). The output shaft of the lifting control motor (500) is connected to the central shaft of one of the first gears (502).
4. The high-performance hot work die surface coating processing equipment according to claim 1, characterized in that, The device housing (1) is equipped with a stop monitoring component (7). The stop monitoring component (7) includes an infrared generator (703) and an infrared receiver (700). The infrared generator (703) and the infrared receiver (700) are matched and are on the same horizontal line. A fixing plate (701) is provided at the bottom of the main shaft (200). A through hole (702) is provided in the middle of the fixing plate (701).
5. The high-performance hot work die surface coating processing equipment according to claim 1, characterized in that, An ultrasonic generator (8) is installed inside the lower part of the device housing (1). When the container cage (4) is in the first flushing position, the bottom part of the container cage (4) is immersed in the cleaning liquid inside the device housing (1).
6. A high-performance hot work die surface coating processing equipment according to any one of claims 1-5, characterized in that, The spray washing assembly (3) includes a spray washing frame (300) and a nozzle (301). The spray washing frame (300) has an arc-shaped structure on the side near the housing cage (4). A plurality of nozzles (301) are provided, and the plurality of nozzles (301) are arranged in a ring array on the arc-shaped structure side of the spray washing frame (300).
Citation Information
Patent Citations
A forging die cleaning system
CN109967678B
Small machining part cleaning equipment
CN217831042U