High-performance hot-working die surface coating processing equipment
By setting up a linkage control mechanism on the housing cage of the thermal mold cleaning equipment, it realizes its rotation and lateral movement, the problem of cleaning dead corners in the existing equipment is solved, and the cleaning efficiency and effect are significantly improved.
Patent Information
- Application Number
- CN202510300732.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-14
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2045-03-14
AI Technical Summary
The existing hot-work mold cleaning equipment has cleaning dead corners where the bottom of the mold and other parts come into contact with the equipment, resulting in incomplete cleaning and poor efficiency and effect.
A high-performance thermal mold surface coating processing equipment is designed, and by providing a linkage control mechanism on the housing cage, it can rotate and reciprocate horizontally when moved to the first position, ensuring that the spray and wash assembly can flush the mold thoroughly and thoroughly.
Through the design of rotation and lateral movement, the efficiency and effect of mold surface cleaning is significantly improved, cleaning dead corners are avoided, and the complete flushing of the mold is ensured.
Smart Images

Figure CN119926877A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of hot working die coating processing, and in particular to high-performance hot working die surface coating processing equipment. Background Art
[0002] As is known, hot working dies are tools used to manufacture parts in hot working processes (such as forging, hot extrusion, hot casting, etc.). Hot working dies work at high temperatures, so 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 working die surface coating processing equipment is a kind of equipment for cleaning the surface coating of high-performance hot working dies;
[0003] For example, the authorization announcement number is CN109967678B, the authorization announcement date is 2023.10.20, and the name is a forging die cleaning system, which 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 filtering device. A horizontal circulating trolley track is set, and the die conveying device is used to circulate and transport the die on a plane for cleaning, thereby reducing the labor intensity of workers; the die is cleaned by the upper high-pressure cleaning device, the lower high-pressure cleaning device, and the high-pressure spray cleaning chamber, and the large impurities in the cleaning liquid are filtered by the lower filtering device, so that the cleaning liquid can be recycled and reused, and the hot air generated by the hot air blower unit can quickly dry the cleaning liquid remaining on the surface of the die...;
[0004] As in the above application, in the existing cleaning equipment, the molds are basically fixed in a cleaning device or placed on a conveying device and move with the conveying device. However, there is a problem with such cleaning equipment, that is, the bottom or other parts of the mold are mostly in contact with the equipment, and these contact parts are dead corners for cleaning. During the cleaning process, the cleaning is often incomplete, and because 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 the present invention is to propose a high-performance hot working mold surface coating processing equipment. The device designs the control structure of the containing cage so that when the containing cage moves to the first position, the containing cage can be controlled to rotate and reciprocate horizontally through the linkage control mechanism, so that the spray cleaning component can fully, thoroughly and comprehensively rinse the hot working mold in the containing cage, thereby improving the cleaning efficiency and effect.
[0007] (II) Technical solution
[0008] In order to achieve the above technical purpose, the present invention provides a high-performance hot working die surface coating processing equipment, which is used for flushing the hot working die surface coating, and comprises:
[0009] The equipment housing has a housing cage for placing the hot working mold installed inside;
[0010] A spray cleaning assembly, which is installed inside the equipment housing and is used to rinse the hot working mold in the accommodating cage;
[0011] A lifting control assembly, which is arranged inside the device housing and is used to control and adjust the position of the containing cage;
[0012] A linkage control mechanism is arranged inside the housing of the device and located at both ends of the containing cage, and is used to control the rotation and horizontal reciprocating motion of the containing cage, so as to improve the comprehensive and thorough flushing of the hot working mold in the containing cage;
[0013] The lifting control assembly can control the cage to move to a first position and a second position, wherein the first position is a flushing position where the cage is at its lowest position, and the second position is a taking and placing position where the cage is at its highest position.
[0014] As a further description of the above technical solution: the lifting control assembly includes:
[0015] An end plate is installed in the linkage control mechanism, a lead screw nut is embedded in the end plate, and a control screw is screwed into the lead screw nut;
[0016] A lifting control motor is arranged at the top of the device housing, and the output shaft of the lifting control motor is transmission-connected to the top of the control screw. When the lifting control motor is in operation, it drives the control screw to rotate, and with the cooperation of the lead screw nut, it drives the linkage control mechanism to move up and down in the vertical direction, thereby driving the containing cage to lift and lower, so that it can move and convert 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 accommodating cage is provided with at least two end plates, and a transmission box is provided on the upper part of the interior of the equipment housing, and 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, and the second gear connects the meshing transmission of all the first gears, and the output shaft of the lifting control motor is connected to the central axis of one of the first gears.
[0018] As a further description of the above technical solution: a main shaft is rotatably installed at both ends of the device housing, a driving motor is installed at one end of the device housing, and an output shaft of the driving motor is drivingly connected to the main shaft;
[0019] Among them, a card slot is opened above one end of the main shaft, and the linkage control mechanism is detachably engaged with the main shaft through the card slot. Based on this, when the lifting control component controls the accommodating cage to move to the first position, the linkage control mechanism is engaged with the main shaft and is coaxially connected. At this time, the driving motor is running, and the linkage control mechanism and the accommodating cage can be driven to rotate synchronously through the main shaft, thereby realizing the overall rotation of the accommodating cage. When it is necessary to control the accommodating 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 card slot is upward, and the accommodating cage can be controlled to move upward by the lifting control component 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 device shell, and 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, and 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 containing cage needs to be moved to the second position, the main shaft stops rotating, and the infrared generator and the infrared receiver are started. At this time, the infrared generator emits infrared rays, and only when the through hole in the middle of the fixing plate is at the same horizontal position as the infrared generator, the infrared receiver can receive the infrared rays, which indicates that the main shaft has reached a predetermined angle, thereby realizing the monitoring of the main shaft rotation angle.
[0021] As a further description of the above technical solution: the linkage control mechanism includes:
[0022] A circular plate, which is disposed at one end of the containing cage and connected to the containing cage;
[0023] An outer ring frame, which is sleeved on the outside of the circular plate and is rotatably connected to the circular plate via a shaft sleeve;
[0024] Among them, an axis head is installed at the center of one side of the circular plate, and a clamp is provided at one end of the axis head. When the containing cage reaches the first position, the clamp is engaged in the clamping groove, so that the axis head is coaxial with the main shaft. At this time, when the main shaft rotates, the clamp drives the circular plate to rotate, thereby rotating the entire containing cage, realizing the rotation of the containing cage after reaching the first position, thereby improving the multi-directional and comprehensive flushing of the containing cage hot working mold.
[0025] As a further description of the above technical solution: movable plates are fixedly installed at both ends of the containing 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 causing the containing cage to move synchronously, so that the hot working mold in the containing cage can be flushed more thoroughly.
[0026] As a further description of the above technical solution: the containing cage and the movable plate are fixedly connected by a sleeve, the control cylinder is eccentrically installed, a support rod is installed at the center position of one side of the circular plate, and one end of the support rod is movably inserted in the sleeve. Therefore, when the control cylinder pushes the movable plate and the containing cage to reciprocate in the horizontal direction, the support rod and the sleeve can provide supporting force to prevent the piston rod of the control cylinder from being deformed and damaged due to the lateral shear force, thereby ensuring the service life of the device.
[0027] As a further description of the above technical solution: an ultrasonic generating device is installed at the lower part of the interior of the equipment shell. When the containing cage is in the flushing position of the first position, the bottom part of the containing cage is immersed in the cleaning liquid inside the equipment shell. At this time, the ultrasonic generating device is in operation to achieve ultrasonic cleaning, and the hot working mold is brought out of the water surface for flushing in conjunction with the rotation of the containing cage. The combination of the two makes the cleaning effect of the hot working mold better and faster.
[0028] As a further description of the above technical solution: the spray washing assembly includes a spray washing frame and a spray head, wherein the spray washing frame has an arc-shaped structure on one side close to the containing cage, and a plurality of the spray heads are arranged in a circular array on the arc-shaped structure side of the spray washing frame. Such a structural arrangement allows the flushing angle to be more comprehensive when the containing cage is rotating, thereby achieving a better flushing effect.
[0029] In the above technical scheme, the present invention provides a high-performance hot working mold surface coating processing equipment. The device enables the accommodating cage to move to the first position and the second position under the control of the lifting control component through the setting of the lifting control component, so that it is convenient to take and put the hot working mold in the accommodating cage. At the same time, the control structure of the accommodating cage is designed so that when the accommodating cage moves to the first position, the accommodating cage can be controlled to rotate and reciprocate horizontally through the linkage control mechanism, so that the spray cleaning component can fully, thoroughly and comprehensively rinse the hot working mold in the accommodating cage, thereby improving the cleaning efficiency and effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without paying creative work.
[0031] Figure 1 A schematic diagram of the overall structure of a high-performance hot working die surface coating processing equipment provided by the present invention;
[0032] Figure 2 A schematic diagram of the internal structure of a high-performance hot working die surface coating processing equipment provided by the present invention;
[0033] Figure 3 A schematic diagram of the structure of a high-performance hot-working die surface coating processing device provided by the present invention when the accommodating cage is in a first position;
[0034] Figure 4 A schematic diagram of the structure of a high-performance hot-working die surface coating processing device provided by the present invention when the accommodating cage is in the second position;
[0035] Figure 5 A schematic diagram of the structure of a high-performance hot-working die surface coating processing device provided by the present invention when the protective cover is opened;
[0036] Figure 6 A partial cross-sectional structural schematic diagram of a high-performance hot working die surface coating processing equipment provided by the present invention;
[0037] Figure 7 A schematic diagram of the installation of a linkage control mechanism in a high-performance hot-working die surface coating processing equipment provided by the present invention;
[0038] Figure 8 A schematic diagram of a cage structure in a high-performance hot-working die surface coating processing device provided by the present invention;
[0039] Fig. 9 A detailed structural schematic diagram of a linkage control mechanism in a high-performance hot working die surface coating processing equipment provided by the present invention.
[0040] Description of the drawings: 1. Equipment housing; 100. Base; 101. Controller; 102. Chassis; 103. Protective cover; 2. Drive motor; 200. Spindle; 201. Card slot; 3. Spraying assembly; 300. Spraying rack; 301. Spray head; 4. Accommodating cage; 400. Cage door; 5. Lifting control assembly; 500. Lifting control motor; 501. Transmission box; 502. First gear; 503. Second gear; 504. Control Screw rod; 505, end plate; 506, lead screw nut; 6, linkage control mechanism; 600, control cylinder; 601, sleeve; 602, support rod; 603, outer ring frame; 604, sleeve; 605, round plate; 606, chuck; 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 generating device. DETAILED DESCRIPTION
[0041] The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, and use. It should be understood that in all of these figures, the same or similar reference numerals indicate the same or similar parts and features. The various drawings only schematically represent the concepts and principles of the embodiments of the present disclosure, and do not necessarily show the specific dimensions and proportions of the various embodiments of the present disclosure. Specific parts in specific drawings may be exaggerated to illustrate the relevant details or structures of the embodiments of the present disclosure.
[0042] Example 1
[0043] Reference Figure 1-9 :This embodiment provides a technical solution: a high-performance hot working mold surface coating processing equipment, which is used for flushing the surface coating of the hot working mold, and includes an equipment shell 1, a spray cleaning component 3, a lifting control component 5 and a linkage control mechanism 6, wherein a accommodating cage 4 for placing the hot working mold is installed inside the equipment shell 1, the spray cleaning component 3 is installed inside the equipment shell 1, and is used to flush the hot working mold in the accommodating cage 4, the lifting control component 5 is arranged inside the equipment shell 1, and is used to control and adjust the position of the accommodating cage 4, and the linkage control mechanism 6 is arranged inside the equipment shell 1 and is located at the accommodating cage 4. The two end positions of the cage 4 are used to control the rotation and horizontal reciprocating motion of the cage 4, so as to improve the comprehensive and thorough flushing of the hot working 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 flushing position where the cage 4 is at the lowest position, and the second position is the placement position where the cage 4 is at the highest position. A protective cover 103 is provided on the top of the equipment housing 1 to prevent the cleaning liquid from splashing out. A controller 101 is installed on the front side of the equipment housing 1. A cage door 400 is installed on the top of the cage 4 through a hinge buckle, and a base 100 is provided on the bottom of the equipment housing 1.
[0044] When the device is in use, first, the lifting control component 5 controls the accommodating cage 4 to move to the second position of the pick-up and placement position. At this time, the staff places the hot working mold to be washed in the accommodating cage 4, and then controls the accommodating cage 4 to move to the first position of the washing position through the lifting control component 5. At this time, the hot working mold located in the accommodating cage 4 is washed through the spray washing component 3, and at the same time, the accommodating cage 4 is controlled to rotate and reciprocate horizontally through the linkage control mechanism 6, so that the spray washing component 3 can fully wash the hot working mold in the accommodating cage 4.
[0045] Example 2
[0046] Reference Figure 3:This embodiment provides a technical solution: On the basis of Embodiment 1, in order to realize the lifting control of the containing cage 4 by the lifting control component 5 so that it can move and convert 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, wherein the end plate 505 is installed in the linkage control mechanism 6, and a screw nut 506 is embedded and installed inside the end plate 505, and a control screw 504 is screwed in the screw nut 506, and the lifting control motor 500 is arranged on the top of the equipment housing 1, and a chassis 102 is arranged outside the lifting control motor 500, and the output shaft of the lifting control motor 500 is connected to the top of the control screw 504 in a transmission manner. When the lifting control motor 500 is running, it drives the control screw 504 to rotate, and under the cooperation of the screw nut 506, it drives the linkage control mechanism 6 to move up and down in the vertical direction, thereby driving the containing cage 4 to rise and fall, so that it can move and convert between the first position and the second position.
[0047] Specifically, Figure 3 As shown, in order to enable the lifting control assembly 5 to stably synchronize when controlling the lifting of the accommodating cage 4, in this embodiment, the linkage control mechanism 6 at each end of the accommodating cage 4 is provided with at least two end plates 505, and a transmission box 501 is provided on the upper part of the interior of the equipment housing 1, and a first gear 502 and a second gear 503 are installed in the transmission box 501, wherein the second gear 503 is installed on the top of the control screw 504, and the second gear 503 is meshed and driven to connect all the first gears 502, and the output shaft of the lifting control motor 500 is connected to the central axis of one of the first gears 502.
[0048] Example 3
[0049] Reference Figure 3 :This embodiment provides a technical solution: on the basis of embodiment 1 Figure 6 - Fig. 9 As shown, in order to realize that the accommodating cage 4 can be lifted and lowered and can be rotated after reaching the first position, in this embodiment, the main shaft 200 is rotatably installed at both ends of the device housing 1, and a driving motor 2 is installed at one end of the device housing 1, and the output shaft of the driving motor 2 is drivingly connected to the main shaft 200;
[0050] Among them, a slot 201 is opened above one end of the main shaft 200, and 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 accommodating cage 4 to move to the first position, the linkage control mechanism 6 is engaged and coaxially connected with the main shaft 200. At this time, the driving motor 2 is running, and the linkage control mechanism 6 and the accommodating cage 4 can be driven to rotate synchronously through the main shaft 200, thereby realizing the overall rotation of the accommodating cage 4. When it is necessary to control the accommodating 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 accommodating cage 4 can be controlled to move upward through the lifting control component 5 until it reaches the second position.
[0051] Specifically, Figure 4 As shown, in order to ensure that the main shaft 200 can rotate to a predetermined angle when the accommodating cage 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, and the rotation stop monitoring component 7 includes an infrared generator 703 and an infrared receiver 700, wherein the infrared generator 703 and the infrared receiver 700 are matched and are on the same horizontal line, and a fixing plate 701 is provided at the bottom of the main shaft 200, and a through hole 702 is opened in the middle of the fixing plate 701. By adopting the above technical solution: when the accommodating cage 4 needs to be moved to the second position, the main shaft 200 stops rotating, and the infrared generator 703 and the infrared receiver 700 are started. At this time, the infrared generator 703 emits infrared rays. Only when the through hole 702 in the middle of the fixing plate 701 and the infrared generator 703 are at the same horizontal position, the infrared receiver 700 can receive the infrared rays. At this time, it indicates that the main shaft 200 has reached the predetermined angle, and the monitoring of the rotation angle of the main shaft 200 is realized.
[0052] Specifically, Figure 1 - Fig. 9 As shown, in order to realize the rotation of the accommodating cage 4 after reaching the first position, in this embodiment, the linkage control mechanism 6 includes a circular plate 605 and an outer ring frame 603, wherein the circular plate 605 is arranged at one end of the accommodating cage 4 and is connected to the accommodating 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 shaft sleeve 604, a shaft head 607 is installed at the center of one side of the circular plate 605, and a clamping head 606 is provided at one end of the shaft head 607. When the accommodating cage 4 reaches the first position, the clamping head 606 is engaged in the clamping groove 201, so that the shaft head 607 is coaxial with the main shaft 200. At this time, when the main shaft 200 rotates, the clamping head 606 drives the circular plate 605 to rotate, thereby rotating the entire accommodating cage 4, realizing the rotation of the accommodating cage 4 after reaching the first position, and promoting the multi-directional and comprehensive flushing of the hot working mold of the accommodating cage 4. Specifically, the end plate 505 is fixed on the outer ring frame 603.
[0053] Specifically, Fig. 9As shown, in order to enable the accommodating cage 4 to reciprocate in the horizontal direction after reaching the first position and further improve the flushing effect, in this embodiment, 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, so that when the control cylinder 600 is started, it can drive the movable plate 608 to reciprocate in the horizontal direction, thereby allowing the accommodating cage 4 to move synchronously, so that the hot working mold in the accommodating cage 4 can be flushed more thoroughly.
[0054] Specifically, Fig. 9 As shown, in order to prevent the piston rod of the control cylinder 600 from being affected by the lateral shear force and causing deformation and damage, in this embodiment, the containing cage 4 and the movable plate 608 are fixedly connected by the sleeve 601, and the control cylinder 600 is eccentrically installed. A support rod 602 is installed at the center position of one side of the circular plate 605, and one end of the support rod 602 is movably inserted in the sleeve 601. Therefore, when the control cylinder 600 pushes the movable plate 608 and the containing cage 4 to reciprocate in the horizontal direction, the support rod 602 and the sleeve 601 can provide supporting force to prevent the piston rod of the control cylinder 600 from being affected by the lateral shear force and causing deformation and damage, thereby ensuring the service life of the device.
[0055] Specifically, Figure 4 As shown, in order to further improve the flushing effect of the hot working mold inside the containing cage 4, in this embodiment, an ultrasonic generating device 8 is installed at the lower part of the interior of the equipment shell 1. When the containing cage 4 is in the flushing position of the first position, the bottom part of the containing cage 4 is immersed in the cleaning liquid inside the equipment shell 1. At this time, the ultrasonic generating device 8 is running to achieve ultrasonic cleaning, and the hot working mold is brought out of the water surface for flushing in conjunction with the rotation of the containing cage 4. The combination of the two makes it have a better cleaning effect on the hot working mold and a faster speed.
[0056] Specifically, Figure 1 - Figure 4 As shown, in order to achieve comprehensive and efficient flushing of the spray assembly 3, in this embodiment, the spray assembly 3 includes a spray frame 300 and a spray head 301, wherein the spray frame 300 is in an arc-shaped structure on one side close to the containing cage 4, and a plurality of spray heads 301 are arranged, and the plurality of spray heads 301 are arranged in a circular array on the arc-shaped structure side of the spray frame 300. Such a structural arrangement makes the flushing angle more comprehensive when the containing cage 4 is rotating, so the flushing effect is better.
[0057] The exemplary implementation scheme of the present disclosure is described in detail above with reference to the preferred embodiments. However, it can be understood by those skilled in the art that, without departing from the concept of the present disclosure, various modifications and variations can be made to the above-mentioned specific embodiments, and various technical features and structures proposed in the present disclosure can be combined in various ways without exceeding the protection scope of the present disclosure, which is determined by the attached claims.
Claims
1. A high-performance hot working die surface coating processing equipment, used for flushing the hot working die surface coating, characterized in that: It includes: An equipment housing (1) is provided with a housing cage (4) for placing a hot working mold; A spray cleaning assembly (3) installed inside the equipment housing (1) and used for flushing the hot working mold in the containing cage (4); A lifting control assembly (5), which is arranged inside the device housing (1) and is used to control and adjust the position of the containing cage (4); A linkage control mechanism (6) is arranged inside the equipment housing (1) and located at both ends of the containing cage (4), and is used to control the rotation and horizontal reciprocating motion of the containing cage (4), thereby improving the comprehensive and thorough flushing of the hot working mold in the containing cage (4); The lifting control assembly (5) is capable of controlling the accommodating cage (4) to move to a first position and a second position, wherein the first position is a flushing position where the accommodating cage (4) is at its lowest position, and the second position is a taking and placing position where the accommodating cage (4) is at its highest position.
2. A high-performance hot working die surface coating processing equipment according to claim 1, characterized in that: The lifting control component (5) comprises: An end plate (505) is installed in the linkage control mechanism (6), a lead screw nut (506) is embedded in the end plate (505), and a control screw (504) is screwed into the lead screw nut (506); A lifting control motor (500) is arranged at the top of the device housing (1), and an output shaft of the lifting control motor (500) is drivingly connected to the top of the control screw (504).
3. The high-performance hot working die surface coating processing equipment according to claim 2 is characterized in that: The linkage control mechanism (6) at each end of the accommodating cage (4) is provided with at least two end plates (505), and a transmission box (501) is provided on the upper part of the interior of the equipment housing (1), and a first gear (502) and a second gear (503) are installed in the transmission box (501), wherein the second gear (503) is installed on the top of the control screw (504), and the second gear (503) meshes and transmits all the first gears (502), and the output shaft of the lifting control motor (500) is connected to the central axis of one of the first gears (502).
4. The high-performance hot working die surface coating processing equipment according to claim 1 is characterized in that: A main shaft (200) is rotatably mounted at both ends of the device housing (1); a drive motor (2) is mounted at one end of the device housing (1); and an output shaft of the drive motor (2) is drivingly connected to the main shaft (200); A slot (201) is provided above one end of the main shaft (200), and the linkage control mechanism (6) is detachably engaged with the main shaft (200) via the slot (201).
5. The high-performance hot working die surface coating processing equipment according to claim 4 is characterized in that: A rotation stop monitoring component (7) is installed inside the device housing (1), and the rotation stop monitoring component (7) includes an infrared generator (703) and an infrared receiver (700), wherein the infrared generator (703) and the infrared receiver (700) are matched and are located on the same horizontal line, and a fixing plate (701) is provided at the bottom of the main shaft (200), and a through hole (702) is opened in the middle of the fixing plate (701).
6. The high-performance hot working die surface coating processing equipment according to claim 4 is characterized in that: The linkage control mechanism (6) comprises: A circular plate (605) is disposed at one end of the containing cage (4) and is connected to the containing cage (4); An 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 shaft sleeve (604); A shaft head (607) is installed at the center of one side of the circular plate (605), and a clamping head (606) is provided at one end of the shaft head (607). When the accommodating cage (4) reaches the first position, the clamping head (606) is engaged in the clamping groove (201), so that the shaft head (607) is coaxial with the main shaft (200).
7. The high-performance hot working die surface coating processing equipment according to claim 6 is characterized in that: Movable plates (608) are fixedly mounted on both ends of the containing cage (4), a control cylinder (600) is mounted on the outer side of the circular plate (605), and the free end of the piston rod of the control cylinder (600) is fixedly connected to the movable plate (608).
8. The high-performance hot working die surface coating processing equipment according to claim 7 is characterized in that: The containing cage (4) and the movable plate (608) are fixedly connected via a sleeve (601), the control cylinder (600) is eccentrically mounted, a support rod (602) is mounted at the center of one side of the circular plate (605), and one end of the support rod (602) is movably inserted into the sleeve (601).
9. The high-performance hot working die surface coating processing equipment according to claim 1, characterized in that: An ultrasonic generating device (8) is installed at the lower part of the interior of the equipment housing (1); when the accommodating cage (4) is in the first flushing position, the bottom part of the accommodating cage (4) is immersed in the cleaning liquid inside the equipment housing (1).
10. A high-performance hot working die surface coating processing equipment according to any one of claims 1 to 9, characterized in that: The spray cleaning assembly (3) comprises a spray cleaning frame (300) and a spray head (301), wherein the spray cleaning frame (300) has an arc-shaped structure on one side close to the containing cage (4), and a plurality of the spray heads (301) are provided, and the plurality of the spray heads (301) are arranged in a ring array on the arc-shaped structure side of the spray cleaning frame (300).
Citation Information
Patent Citations
A forging die cleaning system
CN109967678B
Throwing washing assisting device of full-automatic cleaning machine
CN112452917A
Toilet sewage treatment and recycling device
CN112709315A
Machine part machining and cleaning machine
CN116174376A
Part washing and drying treatment device for electromechanical engineering
CN118831893A