Automobile part machining and cleaning equipment
By using spoiler components and synchronously rotating spoiler blades in automotive parts processing and cleaning equipment, the problem of low cleaning efficiency in the prior art is solved, and a faster and even cleaning effect is achieved.
Patent Information
- Application Number
- CN202510616303.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2025-06-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The cleaning efficiency of existing automotive parts cleaning equipment is low, resulting in a long cleaning time.
An automobile parts processing and cleaning equipment is designed, and a cleaning case with a spoiler assembly is used. The first spoiler blade and the second spoiler blade are driven to rotate simultaneously through a spoiler motor to form a strong disturbing flow to ensure that the cleaning liquid fully contacts the workpiece.
Through the synergistic spoiler blades and spoiler discs, they effectively cover every corner of the cleaning workpiece, greatly shortening the cleaning time, improving the cleaning efficiency, and improving the surface cleanliness of the parts.
Smart Images

Figure CN120115460A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of workpiece cleaning, and particularly to a cleaning device for processing automotive parts. Background Art
[0002] In the automotive manufacturing industry, the cleaning of automotive parts is an indispensable part of the production process. A large amount of oil stains, metal chips, dust, and other impurities are generated during the processing and assembly of automotive parts. If these pollutants are not removed in time, they will not only affect the assembly accuracy of the parts, but also have an adverse impact on subsequent processes such as painting and electroplating, ultimately affecting the performance and service life of the entire vehicle. Therefore, the efficient cleaning of parts is particularly important.
[0003] In the prior art, automotive parts are immersed in the cleaning liquid of the cleaning device and cleaned through chemical action. This cleaning device has a good effect on removing oil stains and is suitable for parts with complex shapes. However, limited by the specific structure of the cleaning device, the cleaning time of automotive parts is relatively long, resulting in low cleaning efficiency. Summary of the Invention
[0004] The purpose of the present invention is to provide a cleaning device for processing automotive parts, which solves the technical problem of low cleaning efficiency of automotive parts in the prior art.
[0005] To achieve this purpose, the present invention adopts the following technical solutions: A cleaning device for processing automotive parts, comprising: a cleaning housing having a cavity, a cleaning cover and a flow disturbing component are installed on the cleaning housing, the cavity of the cleaning housing accommodates the workpiece to be cleaned and the cleaning liquid, and the flow disturbing component is used to disturb the cleaning liquid in the cleaning housing; The flow disturbing component includes a mounting plate, a first flow disturbing blade, a second flow disturbing blade and a flow disturbing motor. A first flow disturbing shaft arranged along a first direction and a second flow disturbing shaft arranged along a second direction are distributed in the cleaning housing. The first flow disturbing blade is installed on the first flow disturbing shaft, and the second flow disturbing blade is installed on the second flow disturbing shaft; Wherein, the first direction and the second direction are perpendicular to each other. The mounting plate is fixedly installed on the cleaning housing. The second flow disturbing shaft is rotatably connected to the cleaning housing. The flow disturbing motor is connected to the mounting plate, and the flow disturbing motor is used to drive the first flow disturbing blade and the second flow disturbing blade to rotate synchronously.
[0006] Optionally, a first bevel gear is fixedly installed at one end of the first flow disturbing shaft away from the mounting plate, and a second bevel gear meshing with the first bevel gear is sleeved on the second flow disturbing shaft; The first bevel gear is vertically arranged with the second bevel gear. The axes of the first bevel gear and the first spoiler shaft are on the same straight line, and the axes of the second bevel gear and the second spoiler shaft are on the same straight line.
[0007] Optionally, the second spoiler blade is arranged at an interval from the inner side wall of the cleaning housing, and the second spoiler blade is fixedly sleeved on the second spoiler shaft; A spoiler disc is slidably sleeved on the second spoiler shaft. The axis of the spoiler disc is offset from the axis of the second spoiler blade, and a spoiler spring is connected between the second spoiler blade and the spoiler disc.
[0008] Optionally, the spoiler disc includes a spoiler body arranged in a conical shape. The end face area of the spoiler body close to the second spoiler blade is larger than the end face area of the spoiler body far from the second spoiler blade; A plurality of spaced spoiler sawteeth are distributed on the outer wall of the spoiler body, and the spoiler body and the spoiler sawteeth are of an integrally formed structure.
[0009] Optionally, a first spoiler groove and a second spoiler groove that are in communication with each other are sequentially arranged on the spoiler body along the direction away from the second spoiler blade. The first spoiler groove is arranged in a spiral shape, and the cross section of the second spoiler groove is arranged in a trapezoidal shape; The first spoiler groove communicates with the end face of the spoiler body close to the second spoiler blade, and the second spoiler groove communicates with the end face of the spoiler body far from the second spoiler blade.
[0010] Optionally, the spoiler body is provided with a third spoiler groove. One end of the third spoiler groove communicates with the end face of the spoiler body close to the second spoiler blade, and the other end of the third spoiler groove communicates with the outer wall of the spoiler body.
[0011] Optionally, the numbers of the second spoiler blades and the spoiler discs are both set to two. The two second spoiler blades are correspondingly distributed at both ends of the second spoiler shaft, the two spoiler discs are located between the two second spoiler blades, and the spoiler discs and the second spoiler blades correspond to each other one by one.
[0012] Optionally, a first through hole is formed through the first bevel gear. The first spoiler shaft is provided with a first through groove communicated with the first through hole, and second through holes and third through holes communicated with the first through groove are respectively formed in the side wall of the first spoiler shaft; The second through hole and the third through hole are distributed in a layered manner and are respectively located on opposite sides of the first spoiler shaft.
[0013] Optionally, a second through groove is formed in the second spoiler shaft, and a fourth through hole and a fifth through hole are formed in the outer wall of the second spoiler shaft and communicate with the second through groove respectively; The fourth through hole and the fifth through hole are respectively located on opposite sides of the second spoiler shaft, and the height of the inner bottom surface of the second through groove in the first direction gradually decreases along the direction from the fourth through hole to the fifth through hole.
[0014] Optionally, the number of the cleaning covers is set to two, the mounting plate is located between the two cleaning covers, and the cleaning covers are hinged or lapped with the cleaning housing; A cleaning bottom frame is fixedly installed at the bottom of the cleaning housing, and pulleys are installed at the four corners of the cleaning bottom frame.
[0015] Compared with the prior art, the present invention has the following beneficial effects: A cleaning device for processing automotive parts provided by the present invention specifically includes a cleaning housing, a cleaning cover and a spoiler assembly. By driving the first spoiler blade and the second spoiler blade to rotate synchronously through a spoiler motor, strong turbulent flow is formed in the cleaning housing, ensuring that the cleaning liquid can fully contact the workpiece and clean each part of the workpiece. Since the first direction and the second direction are perpendicular to each other, the synergistic effect of the first spoiler blade and the second spoiler blade can effectively cover all corners inside the cleaned workpiece, thereby greatly shortening the cleaning time and improving the cleaning efficiency. In addition, the first spoiler blade and the second spoiler blade rotate synchronously, making the entire cleaning process more uniform and efficient. It can not only effectively remove oil stains, metal chips and other impurities on the surface of the parts, improve the surface cleanliness of the parts, reduce the influence of residues, but also avoid the non-uniformity caused by single-direction perturbation, further enhancing the comprehensiveness and consistency of the cleaned workpiece. Therefore, the present invention solves the technical problem of low cleaning efficiency of automotive parts in the prior art. Description of the Drawings
[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0017] The structures, proportions, sizes, etc. shown in the accompanying drawings of this specification are only used to cooperate with the content disclosed in the specification for those familiar with this technology to understand and read, and are not used to limit the implementation conditions of the present invention. Therefore, they do not have substantial technical significance. Any modification of the structure, change in the proportional relationship, or adjustment of the size, without affecting the effects that the present invention can produce and the purposes that can be achieved, should still fall within the scope covered by the technical content disclosed in the present invention.
[0018] Figure 1 It is a three-dimensional structural schematic diagram of a processing and cleaning device for automobile parts disclosed in an embodiment of the present invention; Figure 2 It is a partial front view of a processing and cleaning device for automobile parts disclosed in an embodiment of the present invention; Figure 3 It is a three-dimensional structural schematic diagram of a flow disturbance component in a processing and cleaning device for automobile parts disclosed in an embodiment of the present invention; Figure 4 It is a three-dimensional structural schematic diagram of a flow disturbance disk in a processing and cleaning device for automobile parts disclosed in an embodiment of the present invention; Figure 5 It is a half-sectional structural schematic diagram of a flow disturbance disk in a processing and cleaning device for automobile parts disclosed in an embodiment of the present invention; Figure 6 It is a sectional structural schematic diagram of a first flow disturbance shaft and a first bevel gear in a processing and cleaning device for automobile parts disclosed in an embodiment of the present invention; Figure 7 It is a sectional structural schematic diagram of a second flow disturbance shaft in a processing and cleaning device for automobile parts disclosed in an embodiment of the present invention; Figure 8 It is a structural schematic diagram of a cleaning housing in a processing and cleaning device for automobile parts disclosed in an embodiment of the present invention.
[0019] Illustration: 10. Cleaning housing; 11. Cavity; 12. Drain port; 13. Drain pipe; 14. Drain switch; 20. Cleaning cover; 30. Flow disturbance component; 31. Mounting plate; 32. First flow disturbance blade; 33. Second flow disturbance blade; 34. Flow disturbance motor; 35. First flow disturbance shaft; 351. First through groove; 352. Second through hole; 353. Third through hole; 36. Second flow disturbance shaft; 361. Second through groove; 362. Fourth through hole; 363. Fifth through hole; 37. First bevel gear; 371. First through hole; 38. Second bevel gear; 39. Flow disturbance disk; 391. Flow disturbance main body; 3911. First flow disturbance groove; 3912. Second flow disturbance groove; 3913. Third flow disturbance groove; 392. Flow disturbance sawtooth; 310. Flow disturbance spring; 40. Cleaning bottom frame; 50. Pulley. Detailed implementation manner
[0020] In order to make the invention purpose, features, and advantages of the present invention more obvious and understandable, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the embodiments described below are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0021] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "upper", "lower", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component present at the same time.
[0022] The technical solution of the present invention will be further described below in conjunction with the accompanying drawings and through specific implementation manners.
[0023] The embodiment of the present invention provides an automobile part processing and cleaning device, as Figures 1 to 8 shown, including: a cleaning housing 10 having a cavity 11, a cleaning cover 20 and a flow disturbing component 30 are installed on the cleaning housing 10, the cavity 11 of the cleaning housing 10 contains the workpiece to be cleaned and the cleaning liquid, and the flow disturbing component 30 is used to disturb the cleaning liquid in the cleaning housing 10; The flow disturbing component 30 includes a mounting plate 31, a first flow disturbing blade 32, a second flow disturbing blade 33 and a flow disturbing motor 34. A first flow disturbing shaft 35 arranged along a first direction and a second flow disturbing shaft 36 arranged along a second direction are distributed in the cleaning housing 10. The first flow disturbing blade 32 is installed on the first flow disturbing shaft 35, and the second flow disturbing blade 33 is installed on the second flow disturbing shaft 36; Wherein, the first direction and the second direction are perpendicular to each other, the mounting plate 31 is fixedly installed on the cleaning housing 10, the second flow disturbing shaft 36 is rotatably connected to the cleaning housing 10, and the flow disturbing motor 34 is connected to the mounting plate 31. The flow disturbing motor 34 is used to drive the first flow disturbing blade 32 and the second flow disturbing blade 33 to rotate synchronously.
[0024] It should be noted that for an automotive part processing and cleaning device provided by the present invention, a spoiler motor 34 drives a first spoiler blade 32 and a second spoiler blade 33 to rotate synchronously, causing the cleaning liquid to form a strong turbulent flow within a cleaning housing 10, ensuring that the cleaning liquid can fully contact the workpiece and clean each part of the workpiece. Since the first direction and the second direction are perpendicular to each other, the synergistic effect of the first spoiler blade 32 and the second spoiler blade 33 can effectively cover all corners within the workpiece being cleaned, thereby significantly shortening the cleaning time and improving the cleaning efficiency. In addition, the synchronous rotation of the first spoiler blade 32 and the second spoiler blade 33 makes the entire cleaning process more uniform and efficient. It can not only effectively remove oil stains, metal chips, and other impurities on the surface of the parts, improve the surface cleanliness of the parts, reduce the influence of residues, but also avoid the non-uniformity caused by single-direction perturbation, further enhancing the comprehensiveness and consistency of cleaning the workpiece. Therefore, the present invention solves the technical problem of low cleaning efficiency of automotive parts in the prior art.
[0025] As Figure 1 and Figure 3 shown, a first bevel gear 37 is fixedly installed at one end of a first spoiler shaft 35 away from a mounting plate 31, and a second bevel gear 38 meshingly connected with the first bevel gear 37 is sleeved on a second spoiler shaft 36; The first bevel gear 37 and the second bevel gear 38 are perpendicularly arranged. The axis of the first bevel gear 37 and the axis of the first spoiler shaft 35 are on the same straight line, and the axis of the second bevel gear 38 and the axis of the second spoiler shaft 36 are on the same straight line. In the specific implementation process, the first bevel gear 37 and the first spoiler shaft 35 are fixedly connected by screws, and the second bevel gear 38 and the second spoiler shaft 36 are fixedly connected by screws. The number of teeth of the first bevel gear 37 and the second bevel gear 38 is different. According to the cleaning requirements of the workpiece, different transmission ratios can be set to achieve different rotational speeds of the first spoiler blade 32 and the second spoiler blade 33.
[0026] It should be noted that through the meshing connection between the first bevel gear 37 and the second bevel gear 38, the coordinated movement between the first spoiler blade 32 and the second spoiler blade 33 is ensured, causing the cleaning liquid to form a uniform and strong turbulent flow within the cleaning cavity, effectively increasing the flow velocity and uniformity of the cleaning liquid, contributing to more thoroughly cleaning the surface of the parts and improving the cleaning efficiency. Since the axes of the first bevel gear 37 and the second bevel gear 38 are respectively on the same straight line as the axes of the corresponding spoiler shafts, the relative positions and rotational synchronism of the two are guaranteed, avoiding wear and abnormal noise caused by gear asymmetry during the cleaning process, and further improving the stability and service life of the device.
[0027] Specifically, the number of teeth of the first bevel gear 37 is different from that of the second bevel gear 38. According to the cleaning requirements of the workpiece, different transmission ratios can be set to achieve different rotational speeds of the first spoiler blade 32 and the second spoiler blade 33. The different rotational speeds of the first spoiler blade 32 and the second spoiler blade 33 will result in different disturbed flow fields in the cleaning cavity. Since their rotational speeds are different, they respectively push the cleaning liquid to flow in different directions, forming staggered and uneven liquid flows. This complex liquid flow pattern can ensure that the cleaning liquid more effectively covers and cleans each surface of the parts, especially areas with complex shapes or difficult-to-reach interiors. Due to the inconsistent rotational speeds of the first spoiler blade 32 and the second spoiler blade 33, a more diverse flow pattern can be formed within the cleaning housing 10, which not only increases the frequency of contact between the cleaning liquid and the workpiece but also effectively improves the cleaning effect. The spoiler blades with different rotational speeds will cause the cleaning liquid to form vortices and rotational flows within the cleaning housing 10, avoiding the formation of stationary areas or dead corners during the cleaning process.
[0028] As Figure 1 and Figure 3 shown, the second spoiler blade 33 is spaced from the inner side wall of the cleaning housing 10, and the second spoiler blade 33 is fixedly sleeved with the second spoiler shaft 36; A spoiler disc 39 is slidably sleeved on the second spoiler shaft 36. The axis of the spoiler disc 39 is offset from the axis of the second spoiler blade 33. A spoiler spring 310 is connected between the second spoiler blade 33 and the spoiler disc 39. When the second spoiler shaft 36 rotates, it drives the second spoiler blade 33 and the spoiler disc 39 to rotate. In the specific implementation process, due to the relative offset between the spoiler disc 39 and the second spoiler blade 33, the flow of the cleaning liquid in the cleaning housing 10 is no longer single, generating multi-directional spoilers, which not only enhances the fluidity of the cleaning liquid but also avoids the stagnation or dead corners of the liquid in certain areas during the cleaning process, thus ensuring uniform cleaning of each workpiece surface.
[0029] It should be noted that through the offset setting of the spoiler disk 39 and the second spoiler blade 33, during the cleaning process, the movement of the spoiler disk 39 can affect the flow trajectory of the second spoiler blade 33. Since the axes of the spoiler disk 39 and the second spoiler blade 33 are not on the same straight line, this offset will cause the cleaning liquid to generate a more complex flow pattern. Through this asymmetric movement, the disturbance of the cleaning liquid in the cleaning housing 10 is more diversified, which helps to thoroughly clean all surfaces of the workpiece, especially parts with complex shapes. Connecting the second spoiler blade 33 and the spoiler disk 39 through the spoiler spring 310 provides a certain amount of elastic support, ensuring an appropriate gap between the two during movement and buffering the vibration and impact caused by the rotational movement, which can reduce wear and improve the stability and durability of the equipment. In addition, the spoiler spring 310 can achieve the reciprocating telescopic movement of the spoiler disk 39, further increasing the disturbance effect of the spoiler disk 39, strengthening the fluidity of the cleaning liquid at the corners of the cleaning housing 10, and thus improving the cleaning effect.
[0030] As Figures 3 to 5 shown, the spoiler disk 39 includes a spoiler main body 391 arranged in a conical shape, and the end face area of the spoiler main body 391 close to the second spoiler blade 33 is larger than the end face area of the spoiler main body 391 far from the second spoiler blade 33; A number of spaced spoiler serrations 392 are distributed on the outer wall of the spoiler main body 391, and the spoiler main body 391 and the spoiler serrations 392 are of an integrally formed structure.
[0031] It should be noted that due to the design that the end face area of the conical spoiler main body 391 close to the second spoiler blade 33 is larger than the end face far from the second spoiler blade 33, it can effectively strengthen the disturbance of the cleaning liquid in the area close to the second spoiler blade 33. This not only increases the flow velocity and flow rate of the cleaning liquid in this area, but also ensures that the cleaning liquid flows more evenly in the area far from the second spoiler blade 33, thereby improving the overall cleaning effect. Through the setting of the spoiler serrations 392, a more complex liquid disturbance can be formed, enhancing the turbulent characteristics of the cleaning liquid. The spoiler serrations 392 cause more local shear forces to be generated in the cleaning liquid during the cleaning process, enhancing the contact area and contact strength between the cleaning liquid and the workpiece to be cleaned, which can effectively improve the cleaning efficiency, reduce the cleaning time, and ensure that the surface of the workpiece is fully cleaned.
[0032] As Figures 3 to 5 shown, the spoiler main body 391 is successively provided with a first spoiler groove 3911 and a second spoiler groove 3912 that are connected through in the direction away from the second spoiler blade 33. The first spoiler groove 3911 is arranged in a spiral shape, and the cross-section of the second spoiler groove 3912 is arranged in a trapezoidal shape; The first spoiler groove 3911 communicates with the end face of the spoiler body 391 near one end of the second spoiler blade 33, and the second spoiler groove 3912 communicates with the end face of the spoiler body 391 far from one end of the second spoiler blade 33. In the specific implementation process, the number of the first spoiler grooves 3911 is set to be multiple, and the multiple first spoiler grooves 3911 are distributed along the circumferential direction of the spoiler body 391 and all communicate with the second spoiler groove 3912. Since the cross section of the second spoiler groove 3912 is trapezoidal, when the cleaning liquid passes through the second spoiler groove 3912, a Venturi effect is formed, increasing the flow rate of the cleaning liquid.
[0033] It should be noted that the spiral first spoiler groove 3911 can guide the cleaning liquid to flow along a spiral path, thereby generating a rotational flow during the cleaning process. The rotational flow increases the turbulence and impact force of the liquid, which helps to better remove the dirt on the surface of the workpiece, especially for parts with complex shapes and irregular surfaces. The trapezoidal second spoiler groove 3912 can help the liquid generate a stronger disturbance effect during the flow process. The spoiler grooves continuously form pressure changes and flow direction changes during the flow of the cleaning liquid, forming a multi-level flow pattern, effectively enhancing the disturbance effect. Through the synergistic effect of two spoiler grooves with different shapes and positions, it helps to avoid the dead corners of the cleaning liquid flow, thereby improving the cleaning effect.
[0034] As Figures 3 to 5 shown, the spoiler body 391 is provided with a third spoiler groove 3913. One end of the third spoiler groove 3913 communicates with the end face of the spoiler body 391 near one end of the second spoiler blade 33, and the other end of the third spoiler groove 3913 communicates with the outer wall of the spoiler body 391. In the specific implementation process, the third spoiler groove 3913 is L-shaped.
[0035] It should be noted that the introduction of the third spoiler groove 3913 enhances the disturbance ability of the spoiler disc 39 to the cleaning liquid, and the flow path of the cleaning liquid becomes more complex and diversified. The third spoiler groove 3913 can further increase the flow rate and disturbance intensity of the liquid, especially in the area far from the second spoiler blade 33, which helps to avoid the dead corners of the liquid and ensure the uniform distribution of the cleaning liquid in the entire cavity. The third spoiler groove 3913 provides an additional channel for the liquid flow, enabling the liquid to more effectively reach and clean each part of the surface of the part, especially those areas that are difficult to reach. Through three spoiler grooves with different shapes and directions, the cleaning liquid can be disturbed in different directions, increasing the comprehensiveness of cleaning the surface of the workpiece.
[0036] Since the third spoiler groove 3913 communicates with the outer wall of the spoiler body 391 and is connected to the end face near one end of the second spoiler blade 33, when the spoiler disc 39 rotates, the cleaning liquid can form upward and downward liquid flows, enabling the cleaning liquid to form more alternating disturbances during the flow process, reducing the dead corners that may occur in traditional cleaning equipment, ensuring that the liquid can penetrate the complex surface structure of the parts, and further optimizing the cleaning effect.
[0037] As Figure 1 and Figure 3 shown, the numbers of the second spoiler blades 33 and the spoiler discs 39 are both set to two. The two second spoiler blades 33 are correspondingly distributed at both ends of the second spoiler shaft 36. The two spoiler discs 39 are located between the two second spoiler blades 33, and the spoiler discs 39 correspond to the second spoiler blades 33 one by one.
[0038] It should be noted that each second spoiler blade 33 is matched with a spoiler disc 39, ensuring the synchronous movement between the spoiler disc 39 and the spoiler blade. When the spoiler disc 39 and the spoiler blade rotate together, strong disturbances and flows can be generated in the cleaning liquid, thereby enhancing the fluidity of the liquid and increasing the disturbance range of the liquid, which is helpful for the comprehensiveness during the cleaning process.
[0039] As Figure 3 and Figure 6 shown, the first bevel gear 37 is provided with a first through hole 371 in a penetrating manner. The first spoiler shaft 35 is provided with a first through groove 351 communicating with the first through hole 371. The side wall of the first spoiler shaft 35 is provided with a second through hole 352 and a third through hole 353 that respectively communicate with the first through groove 351; The second through hole 352 and the third through hole 353 are distributed in a layered manner and are respectively located on opposite sides of the first spoiler shaft 35. In the specific implementation process, the first through hole 371, the second through hole 352, and the third through hole 353 are all provided as round holes. The first spoiler blade 32 is located between the second through hole 352 and the third through hole 353. The height of the second through hole 352 in the first direction is higher than the height of the third through hole 353 in the first direction.
[0040] It should be noted that the second through hole 352 and the third through hole 353 provided on the side wall of the first spoiler shaft 35 respectively communicate with the first through groove 351, enabling the liquid to flow from the first through groove 351 to the second through hole 352 and the third through hole 353, further improving the flow and distribution of the liquid in the system. The reasonable layout of the first through hole 371, the second through hole 352, and the third through hole 353 enhances the synergistic effect between different structures in the spoiler assembly 30, further generating disturbance flows and improving the cleaning effect.
[0041] As Figure 3 and Figure 7As shown, a second through groove 361 is formed in the second spoiler shaft 36, and fourth through holes 362 and fifth through holes 363 that communicate with the second through groove 361 are formed in the outer wall of the second spoiler shaft 36; The fourth through holes 362 and the fifth through holes 363 are respectively located on opposite sides of the second spoiler shaft 36, and the height of the inner bottom surface of the second through groove 361 in the first direction gradually decreases along the direction from the fourth through holes 362 to the fifth through holes 363. In a specific implementation process, both the fourth through holes 362 and the fifth through holes 363 are circular holes.
[0042] It should be noted that the second through groove 361, the fourth through holes 362, and the fifth through holes 363 provide additional channels for liquid flow, enabling the cleaning liquid to flow freely within the second spoiler shaft 36; through the setting where the height of the inner bottom surface of the second through groove 361 gradually decreases, the flow path is gradually adjusted along the axis, which can better control the speed and direction of liquid flow, thereby optimizing the distribution of the cleaning liquid within the device and avoiding liquid accumulation or retention. By allowing the cleaning liquid to flow within the first spoiler shaft 35 and the second spoiler shaft 36, it helps to provide auxiliary power transmission for the rotational movement of the second spoiler blades 33 and the spoiler disc 39, and enhances the coordination of the spoiler assembly 30 through the flow of the liquid.
[0043] As Figures 1 to 8 shown, the number of cleaning covers 20 is set to two, the mounting plate 31 is located between the two cleaning covers 20, and the cleaning covers 20 are hinged or lapped with the cleaning housing 10; a cleaning bottom frame 40 is fixedly installed at the bottom of the cleaning housing 10, and pulleys 50 are installed at the four corners of the cleaning bottom frame 40.
[0044] Specifically, a drain port 12 that communicates with the cavity 11 is provided at the bottom of the cleaning housing 10, a drain pipe 13 is installed at the drain port 12, and a drain switch 14 for controlling the on / off of the drain pipe 13 is installed on the drain pipe 13.
[0045] It should be noted that by providing two cleaning covers 20 on the cleaning housing 10, the sealing performance and operation flexibility of the device are enhanced, facilitating the placement and removal of workpieces, while ensuring that the liquid does not leak during the cleaning process, improving the safety and cleanliness of the working environment. Since the cleaning bottom frame 40 is fixed to the bottom of the cleaning housing 10 and pulleys 50 are installed at the four corners, the entire cleaning device has higher mobility. Through the setting of the pulleys 50, it is convenient to move and position the cleaning device, adapting to the layout requirements of different workshop environments, and further improving the practicality and flexibility of the device. Through the use and cooperation of the drain port 12 and the drain pipe 13, the cleaning liquid can be discharged in a timely manner, avoiding pollution problems caused by liquid overflow or accumulation. At the same time, through the control of the drain switch 14, the draining process is more accurate, effectively controlling the liquid discharge volume, avoiding liquid waste, and ensuring the efficiency of the cleaning process.
[0046]
[0046] Working principle: Open the cleaning cover 20, place the automotive parts to be cleaned into the cleaning housing 10 filled with cleaning liquid, and then close the cleaning cover 20; the turbulence motor 34 starts to move, driving the first turbulence shaft 35 to rotate, and the first turbulence shaft 35 drives the first turbulence blade 32 to rotate; since the first bevel gear 37 and the second bevel gear 38 are meshed and connected, it further drives the second turbulence blade 33 and the turbulence disk 39 on the second turbulence shaft 36 to rotate, and the turbulence disk 39 makes a reciprocating telescopic motion under the elastic action of the turbulence spring 310; through the turbulence motions of the first turbulence blade 32, the second turbulence blade 33 and the turbulence disk 39, the flow of the cleaning liquid in the cleaning housing 10 is enhanced, the automotive parts are fully contacted, the cleaning time is shortened, and the cleaning efficiency is improved.
[0047] A negative pressure area is formed between the second turbulence blade 33 and the inner side wall of the cleaning housing 10, which can promote the flow of the cleaning liquid at the edge of the cleaning housing 10. Through the rotational motion of the first turbulence blade 32, the rotational motion of the second turbulence blade 33 and the turbulence motion of the turbulence disk 39, the flow of the cleaning liquid at the edge of the cleaning housing 10 is further enhanced; part of the cleaning liquid flows through the first turbulence groove 3911 and the second turbulence groove 3912 in sequence, and part of the cleaning liquid flows through the third turbulence groove 3913, so that the cleaning liquid in the cleaning housing 10 forms a multi-directional and multi-level turbulence.
[0048]
[0048] As described above, the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. An automobile parts processing and cleaning equipment, characterized in that: include: A cleaning shell (10) having a cavity (11), wherein a cleaning cover (20) and a spoiler assembly (30) are mounted on the cleaning shell (10), wherein the cavity (11) of the cleaning shell (10) contains a workpiece to be cleaned and a cleaning liquid, and the spoiler assembly (30) is used to spoil the cleaning liquid in the cleaning shell (10); The spoiler assembly (30) comprises a mounting plate (31), a first spoiler blade (32), a second spoiler blade (33) and a spoiler motor (34); a first spoiler shaft (35) arranged along a first direction and a second spoiler shaft (36) arranged along a second direction are distributed in the cleaning housing (10); the first spoiler blade (32) is mounted on the first spoiler shaft (35), and the second spoiler blade (33) is mounted on the second spoiler shaft (36); The first direction and the second direction are perpendicular to each other, the mounting plate (31) is fixedly mounted on the cleaning shell (10), the second spoiler shaft (36) is rotatably connected to the cleaning shell (10), the spoiler motor (34) is connected to the mounting plate (31), and the spoiler motor (34) is used to drive the first spoiler blade (32) and the second spoiler blade (33) to rotate synchronously.
2. The automobile parts processing and cleaning equipment according to claim 1, characterized in that: A first bevel gear (37) is fixedly mounted on one end of the first spoiler shaft (35) away from the mounting plate (31), and a second bevel gear (38) meshingly connected to the first bevel gear (37) is sleeved on the second spoiler shaft (36); The first bevel gear (37) and the second bevel gear (38) are arranged vertically; the first bevel gear (37) and the axis of the first spoiler shaft (35) are on the same straight line; and the second bevel gear (38) and the axis of the second spoiler shaft (36) are on the same straight line.
3. The automobile parts processing and cleaning equipment according to claim 2, characterized in that: The second spoiler blade (33) is spaced apart from the inner wall of the cleaning shell (10), and the second spoiler blade (33) is fixedly sleeved with the second spoiler shaft (36); A spoiler disk (39) is slidably sleeved on the second spoiler shaft (36), the spoiler disk (39) and the axis of the second spoiler blade (33) are offset, and a spoiler spring (310) is connected between the second spoiler blade (33) and the spoiler disk (39).
4. The automobile parts processing and cleaning equipment according to claim 3, characterized in that: The spoiler disk (39) comprises a spoiler body (391) arranged in a conical shape, wherein an end surface area of the spoiler body (391) close to the second spoiler blade (33) is larger than an end surface area of the spoiler body (391) away from the second spoiler blade (33); The outer wall of the spoiler body (391) is provided with a plurality of spoiler serrations (392) arranged at intervals, and the spoiler body (391) and the spoiler serrations (392) are an integrally formed structure.
5. The automobile parts processing and cleaning equipment according to claim 4, characterized in that: The spoiler body (391) is provided with a first spoiler groove (3911) and a second spoiler groove (3912) which are interconnected in sequence along a direction away from the second spoiler blade (33); the first spoiler groove (3911) is arranged in a spiral shape, and the cross-section of the second spoiler groove (3912) is arranged in a trapezoidal shape; The first spoiler groove (3911) is in communication with an end surface of the spoiler body (391) close to the second spoiler blade (33), and the second spoiler groove (3912) is in communication with an end surface of the spoiler body (391) away from the second spoiler blade (33).
6. The automobile parts processing and cleaning equipment according to claim 5, characterized in that: The spoiler body (391) is provided with a third spoiler groove (3913), one end of the third spoiler groove (3913) is connected to an end surface of the spoiler body (391) close to the second spoiler blade (33), and the other end of the third spoiler groove (3913) is connected to the outer wall of the spoiler body (391).
7. The automobile parts processing and cleaning equipment according to any one of claims 3 to 6, characterized in that: The number of the second spoiler blades (33) and the number of the spoiler disks (39) are both set to two, the two second spoiler blades (33) are correspondingly distributed at two ends of the second spoiler axis (36), the two spoiler disks (39) are located between the two second spoiler blades (33), and the spoiler disks (39) correspond one to one with the second spoiler blades (33).
8. The automobile parts processing and cleaning equipment according to claim 2, characterized in that: The first bevel gear (37) is provided with a first through hole (371), the first spoiler shaft (35) is provided with a first through slot (351) communicating with the first through hole (371), and the side wall of the first spoiler shaft (35) is provided with a second through hole (352) and a third through hole (353) respectively communicating with the first through slot (351); The second through holes (352) and the third through holes (353) are distributed in layers and are respectively located on two opposite sides of the first spoiler axis (35).
9. The automobile parts processing and cleaning equipment according to claim 1, 2 or 8, characterized in that: A second through slot (361) is formed in the second spoiler shaft (36), and a fourth through hole (362) and a fifth through hole (363) are formed on the outer wall of the second spoiler shaft (36), the fourth through hole (362) and the fifth through hole (363) being respectively connected to the second through slot (361); The fourth through hole (362) and the fifth through hole (363) are respectively located on opposite sides of the second spoiler axis (36), and the height of the inner bottom surface of the second through groove (361) in the first direction gradually decreases along the direction from the fourth through hole (362) to the fifth through hole (363).
10. The automobile parts processing and cleaning equipment according to any one of claims 1 to 6, characterized in that: The number of the cleaning covers (20) is set to two, the mounting plate (31) is located between the two cleaning covers (20), and the cleaning cover (20) is hinged or overlapped with the cleaning housing (10); A cleaning bottom frame (40) is fixedly mounted on the bottom of the cleaning shell (10), and pulleys (50) are mounted on the four corners of the cleaning bottom frame (40).
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New energy cooling system water pipe connector cleaning equipment
CN120618939A