A parts-separated automatic cleaning device

By designing a separate automatic cleaning device for parts, the parts are placed separately by using the container box and the pressing plate, and the water flow flow is enhanced by the agitating device, the incomplete cleaning problem caused by the stacking of parts in the cleaning device is solved, and a more efficient and thorough cleaning effect is achieved.

CN119733700BActive Publication Date: 2025-06-17SHAANXI YIZE HEAVY IND TECH CO LTD
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Patent Information

Application Number
CN202510245244.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2025-06-17
Estimated Expiration
2045-03-04

AI Technical Summary

Technical Problem

When existing cleaning devices clean parts, the parts are easily stacked in the mesh barrel, resulting in the inability to evenly contact the water flow and the detergent. The cleaning of each part is not thorough, affecting the cleaning quality.

Method used

A separate automatic cleaning device for parts is designed. By setting up a container box and a pressing plate, the parts are placed separately to avoid stacking, and the fluidity of the water flow is enhanced by agitating devices to ensure uniform distribution of the cleaning liquid.

Benefits of technology

It effectively avoids the formation of blind spots that are difficult to clean during the cleaning process, ensures that each component is thoroughly cleaned, improves the cleaning quality and efficiency, and reduces the risk of displacement collisions in the cleaning process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a component separation type automatic cleaning device, which relates to the technical field of cleaning equipment. The present invention includes a bottom plate, on one side of the top of the bottom plate, a bearing platform is fixed, on the other side of the top of the bottom plate, a cleaning chamber is fixed, an ultrasonic cleaner is fixed outside the cleaning chamber, electric push rods are fixed at the four corners of the bottom plate, a horizontal movement device is fixed at the top of the telescopic end of the electric push rod, a cleaning device is arranged on the moving end of the horizontal movement device, the cleaning device includes a driving motor, and the driving motor is fixed at the top of the moving end of the horizontal movement device. Through the setting of the cleaning device, the horizontal movement device, the first L-shaped plate, the cleaning chamber, the electric push rod, the mesh cylinder, the driving motor, the first runner, and the second runner cooperate, so that the accommodation box separates and places the components, thereby avoiding the problem that the components are stacked in the mesh cylinder to form dead corners that are difficult to clean, resulting in incomplete cleaning of some components.
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Description

Technical Field

[0001] The present invention relates to the technical field of cleaning equipment, and particularly to a component-separated automatic cleaning device. Background Art

[0002] Mechanical components are the basic elements that make up a machine, such as screws, gears, etc. After the mechanical components are processed, it is necessary to clean the impurities and dirt on their surfaces, and for this purpose, an automatic component cleaning device is used. The automatic component cleaning device realizes the efficient cleaning of mechanical components through automation technology. Its advantages lie in improving the cleaning efficiency, ensuring the cleaning quality, and reducing manual intervention, and it is suitable for cleaning precision components in mass production.

[0003] A Chinese patent with the patent announcement number CN217831042U discloses a small mechanical processing component cleaning device, which relates to the technical field of cleaning equipment and includes a cleaning tank. A lifting motor is installed on the top of the cleaning tank. The output shaft of the lifting motor is fixedly connected to the top end of a lifting lead screw. The bottom end of the lifting lead screw is rotatably connected to the inner bottom of the cleaning tank through a bearing seat. A lifting plate is helically driven and connected to the outer wall of the lifting lead screw. One end of the lifting plate is fixedly connected with a guiding slider, and the guiding slider slides in a guiding chute opened on the inner side wall of the cleaning tank. A moving plate is sleeved on the lifting plate. A net cylinder is rotatably connected to the side wall of the moving plate through a rotating seat. A fixed side plate is fixedly connected to the side wall of the lifting plate. This small mechanical processing component cleaning device, different from the prior art, can increase the contact area between the components and the cleaning liquid in the cleaning tank, reduce the cleaning time, improve the cleaning efficiency, enable the components inside the net cylinder to be turned over, and can perform a comprehensive cleaning work on the components, improving the cleaning effect.

[0004] However, the current cleaning device has the following problems: When the cleaning device cleans components, the components are prone to stacking together inside the net cylinder, which will cause the water flow and the cleaning agent to not evenly contact the surfaces of each component. In particular, the stacked components will form dead corners that are difficult to clean, resulting in incomplete cleaning of some components, and still remaining with oil stains, dust or other impurities, affecting the cleaning quality. Therefore, we have proposed a component-separated automatic cleaning device. Summary of the Invention

[0005] Aiming at the deficiencies of the prior art, the present invention provides a component-separated automatic cleaning device, which solves the problems raised in the above background art.

[0006] To achieve the above object, the present invention is realized through the following technical solutions: A component separation type automatic cleaning device, including a bottom plate, on one side of the top of the bottom plate, a bearing platform is fixed, on the other side of the top of the bottom plate, a cleaning chamber is fixed, an ultrasonic cleaner is fixed outside the cleaning chamber, electric push rods are fixed at the four corners of the bottom plate, at the top of the telescopic end of the electric push rod, a transverse movement device is fixed, on the moving end of the transverse movement device, a cleaning device is arranged, the cleaning device includes a driving motor, the driving motor is fixed on the top of the moving end of the transverse movement device, at the output end of the driving motor, a first runner is fixed, on both sides of the moving end of the transverse movement device, an L-shaped plate one and an L-shaped plate two are respectively fixed, outside the L-shaped plate one, a net cylinder is rotatably installed, at the shaft of the net cylinder, a second runner is fixed, and the second runner is connected with the first runner through a belt drive, inside the net cylinder, a number of L-shaped frames are fixed, and two of the number of L-shaped frames are in a group, between the two L-shaped frames, a containing box is slidably installed, between the tops of the two L-shaped frames, a number of U-shaped blocking rods are fixed, outside the L-shaped plate two, a round cover for blocking the opening of the net cylinder is fixed, the moving end of the transverse movement device moves the net cylinder to the cleaning chamber through the L-shaped plate one, start the electric push rod, the telescopic end of the electric push rod drives the net cylinder to move downward through the transverse movement device and the L-shaped plate one, the net cylinder enters the cleaning liquid in the cleaning chamber, start the driving motor, the driving motor drives the first runner to rotate, under the belt drive, the first runner drives the second runner to rotate through the belt, the second runner drives the net cylinder to rotate, the net cylinder drives the containing box to rotate through the L-shaped frame, and start the ultrasonic cleaner, so as to realize the cleaning of the components in the containing box.

[0007] According to the above technical solution, the transverse movement device includes a through groove plate, a screw rod, a sliding column, and a moving plate. The through groove plate is fixed at the top of the telescopic end of the electric push rod. The screw rod is rotatably installed on one side of the top of the through groove plate and is driven by a motor. The sliding column is fixed on the other side of the top of the through groove plate. One end of the moving plate is threadedly connected to the outside of the screw rod, and the other end of the moving plate is slidably installed on the outside of the sliding column. The moving plate is the moving end of the transverse movement device. When the transverse movement device is used, the screw rod is driven to rotate by the motor, and the screw rod will drive the moving plate to move on the outside of the sliding column, so that the moving plate drives the cleaning device to move.

[0008] According to the above technical solution, a U-shaped frame is fixed inside the net cylinder near one side of the L-shaped plate 1. A positioning rod is installed through and slidably on the top of the U-shaped frame. A pressing plate is fixed to the bottom of the positioning rod. The side of the pressing plate near the L-shaped plate 1 is inclined. The top of the side of the receiving box away from the round cover is semi-circular. The inclined shape of the pressing plate is located on the semi-circular movement track of the receiving box. Each time the receiving box is pulled out of the net cylinder, the semi-circular shape of the receiving box will push the inclined shape of the pressing plate to drive the pressing plate to move upward. The pressing plate drives the positioning rod to move upward along the through groove of the U-shaped frame, and the spring corresponding to the pressing plate is compressed. When the receiving box is inserted back into the net cylinder, after the semi-circular shape of the receiving box no longer pushes the inclined shape of the pressing plate, under the elastic force of the spring corresponding to the pressing plate, the pressing plate resets and moves downward, so that the pressing plate presses the parts in the receiving box. Bar-shaped openings are provided at the top of the pressing plate and the bottom of the receiving box. At the same time, through the arrangement of the bar-shaped opening of the pressing plate and the bar-shaped opening of the receiving box, the bar-shaped opening of the pressing plate and the bar-shaped opening of the receiving box can better fix the parts.

[0009] According to the above technical solution, a stirring device is arranged inside the net cylinder. The stirring device includes an L-shaped frame and a fixed disk. The L-shaped frame is fixed between the tops of the two L-shaped frames. A rotating rod is installed horizontally and rotatably on the outside of the L-shaped frame. A number of stirring blades are fixed to the outside of the rotating rod. A contact wheel is fixed to the side of the rotating rod near the L-shaped plate 2. The fixed disk is fixed at the center of the side of the round cover close to the net cylinder. The outer surfaces of the contact wheel and the fixed disk are both set to be rough surfaces, and the outer wall of the contact wheel is in contact with the outer wall of the fixed disk. When the net cylinder rotates, it will drive the L-shaped frame to rotate through the L-shaped frame. The L-shaped frame drives the contact wheel to rotate through the rotating rod. Under the frictional force between the contact wheel and the fixed disk, the fixed disk will drive the contact wheel to rotate. The contact wheel drives the stirring blades to rotate through the rotating rod, so that the stirring blades stir the water flow inside the net cylinder.

[0010] According to the above technical solution, a splash-proof device is arranged above the cleaning chamber. The splash-proof device includes two side baffles and two U-shaped inclined scraping plates. The two side baffles are respectively fixed on both sides of the top of the cleaning chamber. The two U-shaped inclined scraping plates are respectively fixed on the sides of the two side baffles close to each other, and the side of the U-shaped inclined scraping plate away from the side baffle is in contact with the outer wall of the net cylinder. After the parts are cleaned, the electric push rod is started. The telescopic end of the electric push rod drives the net cylinder to move upward through the transverse movement device and the L-shaped plate 1. At this time, the net cylinder is between the two side baffles, and the upper outer wall of the net cylinder will be in contact with the U-shaped inclined scraping plate. When the net cylinder continues to rotate, the net cylinder will throw out the water on and inside the parts. The side baffle will block the thrown water, and at the same time, the U-shaped inclined scraping plate will scrape off the water adhered to the surface of the net cylinder.

[0011] According to the above technical solution, the splash-proof device further includes a mountain-shaped frame and a chute plate. The mountain-shaped frame is fixed to the top of the cleaning chamber, and the chute plate is slidably installed on the inner wall of the mountain-shaped frame. A friction wheel is rotatably installed on one side of the middle of the mountain-shaped frame close to the mesh cylinder. A convex column disk is coaxially fixed to the friction wheel, and a convex column is fixed at the eccentric position of the convex column disk. The convex column of the convex column disk is slidably installed inside the chute plate. An I-shaped column is fixed to the top of the chute plate, and L-shaped connecting rods are fixed to both sides of the I-shaped column. A spring is provided between the L-shaped connecting rod and the I-shaped column. The bottom of the L-shaped connecting rod is fixed with a pressing plate, and a sponge plate is fixed to the bottom of the pressing plate. The pressing plate and the sponge plate are in contact with the outer wall of the mesh cylinder, and the pressing plate and the sponge plate are both located above the U-shaped inclined scraping plate. The outer surfaces of both the friction wheel and the second runner are set to be rough, and the outer wall of the friction wheel is in contact with the outer wall of the second runner. At the same time, the upper outer wall of the mesh cylinder will be in contact with the pressing plate and the sponge plate. The sponge plate will further adsorb the moisture on the surface of the mesh cylinder, thereby further improving the efficiency of removing the moisture on the surface of the mesh cylinder. At the same time, the mesh cylinder drives the second runner to contact the bottom surface of the friction wheel. Under the action of the frictional force between the second runner and the friction wheel, the second runner drives the friction wheel to rotate. The friction wheel drives the convex column disk to rotate. The convex column of the convex column disk slides along the inside of the chute plate, and the convex column of the convex column disk drives the chute plate to slide up and down reciprocally along the inner wall of the mountain-shaped frame. Each time the chute plate moves downward, the chute plate drives the pressing plate to move downward through the L-shaped connecting rod. The arc surface of the mesh cylinder will push the pressing plate to drive the L-shaped connecting rod to move away from the mesh cylinder along the outside of the I-shaped column. The corresponding spring of the L-shaped connecting rod is compressed, and when the pressing plate moves, it will drive the sponge plate to move to the U-shaped inclined scraping plate, and the pressing plate and the U-shaped inclined scraping plate will squeeze the sponge plate.

[0012] The present invention provides a component separation type automatic cleaning device. It has the following beneficial effects:

[0013] (1) Through the setting of the cleaning device of the present invention, the transverse movement device, the first L-shaped plate, the cleaning chamber, the electric push rod, the mesh cylinder, the drive motor, the first runner, and the second runner cooperate to separate and place the components in the accommodating box, thereby avoiding the problem that the components are stacked in the mesh cylinder to form dead corners that are difficult to clean, resulting in incomplete cleaning of some components; at the same time, the accommodating box, the pressing plate, the positioning rod, and the U-shaped frame cooperate to drive the pressing plate to press the components in the accommodating box, thereby avoiding the problem that the components are prone to displacement and collision during the cleaning process, resulting in damage to the components due to bumping; at the same time, the strip-shaped openings of the pressing plate and the accommodating box can better fix the components, especially when the components have certain shape characteristics or a small volume, it can play a constraining role, so that the components can be firmly clamped between the pressing plate and the accommodating box to prevent them from shifting or sliding during the pressing process.

[0014] (2) The present invention provides a stirring device so that the mesh cylinder, L-shaped frame, J-shaped frame, rotating rod, contact wheel and fixed plate cooperate to drive the stirring blades to stir the water flow inside the mesh cylinder. The stirring blades can enhance the fluidity of the water flow by stirring the water flow, so that the cleaning liquid is evenly distributed inside the mesh cylinder, thereby improving the contact efficiency between the water flow and the surface of the parts. This stirring action can effectively remove dirt and grease attached to the surface of the parts, making the cleaning process of the parts more thorough.

[0015] (3) The present invention sets a splash-proof device so that the side baffle can block the thrown water, thereby avoiding water splashing in the surrounding environment. At the same time, the U-shaped inclined scraper can scrape off the water adhering to the surface of the mesh tube, thereby effectively reducing the moisture on the surface of the mesh tube, thereby accelerating the drying process of the entire parts and mesh tube after cleaning. Reducing the amount of moisture remaining on the surface of the mesh tube can effectively shorten the drying time, thereby indirectly improving the cleaning efficiency of the parts; at the same time, the sponge board will further absorb the moisture on the surface of the mesh tube, thereby further improving the efficiency of removing moisture from the surface of the mesh tube. At the same time, the mesh tube, the second rotating wheel, the friction wheel, the convex column plate, the slide plate, the mountain frame, and the L-shaped connecting rod cooperate to drive the extrusion plate and the U-shaped inclined scraper to extrude the sponge board, and the moisture adsorbed in the sponge board is squeezed out. Every time the slide plate moves upward, the slide plate drives the extrusion plate and the sponge board through the L-shaped connecting rod, and the sponge board contacts the outer wall of the mesh tube again, thereby allowing the sponge board to continuously absorb the moisture adhering to the surface of the mesh tube. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 The present invention is schematically shown as a whole Figure 1 ;

[0017] Figure 2 The present invention is schematically shown as a whole Figure 2 ;

[0018] Figure 3 A partial cross-sectional view of the cleaning device of the present invention Figure 1 ;

[0019] Figure 4 A partial cross-sectional view of the cleaning device of the present invention Figure 2 ;

[0020] Figure 5 The partial structure diagram of the cleaning device of the present invention is shown in FIG. Figure 1 ;

[0021] Figure 6 The partial structure diagram of the cleaning device of the present invention is shown in FIG. Figure 2 ;

[0022] Figure 7 is a schematic diagram of a stirring device of the present invention;

[0023] Figure 8is a schematic diagram of the splash-proof device of the present invention;

[0024] Figure 9 It is a schematic diagram of the movement state of the receiving box after being pulled out of the present invention.

[0025] In the figure: 1, bottom plate; 2, bearing platform; 3, cleaning chamber; 4, ultrasonic cleaner; 5, electric push rod; 6, lateral movement device; 61, through-slot plate; 62, screw rod; 63, slide column; 64, moving plate; 7, cleaning device; 71, L-shaped plate 1; 72, driving motor; 73, rotating wheel 1; 74, net cylinder; 75, rotating wheel 2; 76, L-shaped plate 2; 77, round cover; 78, L-shaped frame; 79, storage box; 710, U-shaped stop Rod; 711, U-shaped frame; 712, positioning rod; 713, pressing plate; 8, stirring device; 81, L-shaped frame; 82, rotating rod; 83, stirring blade; 84, contact wheel; 85, fixed plate; 9, splash-proof device; 91, side baffle; 92, U-shaped oblique scraper; 93, mountain-shaped frame; 94, boss plate; 95, friction wheel; 96, slide plate; 97, I-shaped column; 98, L-shaped connecting rod; 99, sponge plate; 910, extrusion plate. DETAILED DESCRIPTION

[0026] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0027] See also Figure 1 - Figure 9, an embodiment of the present invention is: a component separation type automatic cleaning device, including a bottom plate 1, a carrying platform 2 is fixed on one side of the top of the bottom plate 1, a cleaning chamber 3 is fixed on the other side of the top of the bottom plate 1, an ultrasonic cleaner 4 is fixed outside the cleaning chamber 3, electric push rods 5 are fixed at the four corners of the bottom plate 1, a cross-moving device 6 is fixed at the top of the telescopic end of the electric push rod 5, a cleaning device 7 is arranged on the moving end of the cross-moving device 6, the cleaning device 7 includes a driving motor 72, the driving motor 72 is fixed on the top of the moving end of the cross-moving device 6, a first runner 73 is fixed at the output end of the driving motor 72, L-shaped plates 71 and 76 are respectively fixed on both sides of the moving end of the cross-moving device 6, a net cylinder 74 is rotatably installed outside the L-shaped plate 71, a second runner 75 is fixed at the rotating shaft of the net cylinder 74, and the second runner 75 is connected with the first runner 73 through a belt drive, a plurality of L-shaped frames 78 are fixed inside the net cylinder 74, and two of the plurality of L-shaped frames 78 are in a group, a receiving box 79 is slidably installed between the two L-shaped frames 78, a plurality of U-shaped blocking rods 710 are fixed between the tops of the two L-shaped frames 78, a circular cover 77 for blocking the opening of the net cylinder 74 is fixed outside the L-shaped plate 76, and an opening for drawing out the receiving box 79 is opened at the outer wall below the circular cover 77. Through the setting of the above structure, the receiving box 79 separates and places the components, thereby avoiding the problem that the components are stacked in the net cylinder 74 to form dead corners that are difficult to clean, resulting in incomplete cleaning of some components.

[0028] The cross-moving device 6 includes a through groove plate 61, a screw rod 62, a sliding column 63, and a moving plate 64. The through groove plate 61 is fixed at the top of the telescopic end of the electric push rod 5. The screw rod 62 is rotatably installed on one side of the top of the through groove plate 61 and is driven by a motor. The sliding column 63 is fixed on the other side of the top of the through groove plate 61. One end of the moving plate 64 is threadedly connected to the outside of the screw rod 62, and the other end of the moving plate 64 is slidably installed outside the sliding column 63. The moving plate 64 is the moving end of the cross-moving device 6. When the cross-moving device 6 is in use, the screw rod 62 is driven to rotate by the motor, and the screw rod 62 will drive the moving plate 64 to move outside the sliding column 63, so that the moving plate 64 drives the cleaning device 7 to move.

[0029] A U-shaped frame 711 is fixed inside the net cylinder 74 near the L-shaped plate 71. A positioning rod 712 is penetrated and slidably installed at the top of the U-shaped frame 711. A pressing plate 713 is fixed at the bottom of the positioning rod 712. One side of the pressing plate 713 close to the L-shaped plate 71 is inclined. The top of one side of the receiving box 79 away from the circular cover 77 is semicircular (as Figure 7As shown in the figure, the inclined shape of the pressing plate 713 is located on the semi-circular movement track of the receiving box 79. Through the above structural arrangement, the pressing plate 713 presses the components in the receiving box 79, thus avoiding the problem that the components are prone to displacement and collision during the cleaning process, resulting in the components being knocked and damaged. Bar-shaped openings are provided at the top of the pressing plate 713 and the bottom of the receiving box 79. The bar-shaped openings of the pressing plate 713 and the receiving box 79 can better fix the components, especially when the components have certain shape characteristics or a small volume, which can play a constraining role, so that the components can be firmly clamped between the pressing plate 713 and the receiving box 79 to prevent them from displacing or sliding during the pressing process.

[0030] A stirring device 8 is arranged inside the mesh cylinder 74. The stirring device 8 includes an L-shaped frame 81 and a fixed disk 85. The L-shaped frame 81 is fixed between the tops of two L-shaped frames 78. A rotating rod 82 is horizontally rotatably installed outside the L-shaped frame 81. A plurality of stirring blades 83 are fixed outside the rotating rod 82. A contact wheel 84 is fixed on one side of the rotating rod 82 close to the second L-shaped plate 76. The fixed disk 85 is fixed at the center of one side of the round cover 77 close to the mesh cylinder 74. The outer surfaces of the contact wheel 84 and the fixed disk 85 are both set as rough surfaces, and the contact wheel 84 is in contact with the outer wall of the fixed disk 85. When the mesh cylinder 74 rotates, it will drive the L-shaped frame 81 to rotate through the L-shaped frame 78. Through the above structural arrangement, the stirring blades 83 stir the water flow inside the mesh cylinder 74. By stirring the water flow, the stirring blades 83 can enhance the fluidity of the water flow, make the cleaning liquid evenly distributed inside the mesh cylinder 74, and further improve the contact efficiency between the water flow and the surface of the components. This stirring effect can effectively remove the dirt and grease attached to the surface of the components, making the component cleaning process more thorough.

[0031] During use, start the transverse movement device 6. The mobile end of the transverse movement device 6 moves the net cylinder 74 to the bearing table 2 through the first L-shaped plate 71. When the receiving box 79 is at the opening of the round cover 77, the staff pulls out the receiving box 79 from the net cylinder 74, then puts the parts into the receiving box 79 and inserts the receiving box 79 back into the net cylinder 74. Start the transverse movement device 6 again. The mobile end of the transverse movement device 6 moves the net cylinder 74 to the cleaning chamber 3 through the first L-shaped plate 71. Start the electric push rod 5. The telescopic end of the electric push rod 5 drives the net cylinder 74 to move downward through the transverse movement device 6 and the first L-shaped plate 71. The net cylinder 74 enters the cleaning liquid in the cleaning chamber 3. Start the drive motor 72. The drive motor 72 drives the first runner 73 to rotate. Under belt drive, the first runner 73 drives the second runner 75 to rotate through the belt. The second runner 75 drives the net cylinder 74 to rotate. The net cylinder 74 drives the receiving box 79 to rotate through the L-shaped frame 78. And start the ultrasonic cleaner 4, so as to realize the cleaning of the parts in the receiving box 79. The parts are separated and placed through the receiving box 79, thus avoiding the problem that the parts are stacked in the net cylinder 74 to form dead corners that are difficult to clean, resulting in incomplete cleaning of some parts; every time the receiving box 79 is pulled out of the net cylinder 74 (as Figure 9 shown, pull the receiving box 79 out to the left), the semi-circular shape of the receiving box 79 will push the inclined shape of the pressing plate 713 to drive the pressing plate 713 to move upward. The pressing plate 713 drives the positioning rod 712 to move upward along the through groove of the U-shaped frame 711, and the spring corresponding to the pressing plate 713 is compressed. When the receiving box 79 is inserted back into the net cylinder 74, after the semi-circular shape of the receiving box 79 no longer pushes the inclined shape of the pressing plate 713, under the action of the elastic force of the spring corresponding to the pressing plate 713, the pressing plate 713 resets and moves downward, so that the pressing plate 713 presses the parts in the receiving box 79, thus avoiding the problem that the parts are prone to displacement and collision during the cleaning process, resulting in the parts being knocked and damaged; at the same time, the strip-shaped opening of the pressing plate 713 and the strip-shaped opening of the receiving box 79 can better fix the parts, especially when the parts have certain shape characteristics or a small volume, it can play a constraining role, so that the parts can be firmly clamped between the pressing plate 713 and the receiving box 79 to prevent them from displacing or sliding during the pressing process.

[0032] When the net cylinder 74 rotates, it will drive the L-shaped frame 81 to rotate through the L-shaped frame 78. The L-shaped frame 81 drives the contact wheel 84 to rotate through the rotating rod 82. Under the frictional force between the contact wheel 84 and the fixed disk 85, the fixed disk 85 will drive the contact wheel 84 to rotate. The contact wheel 84 drives the stirring blade 83 to rotate through the rotating rod 82, so that the stirring blade 83 stirs the water flow inside the net cylinder 74. By stirring the water flow, the fluidity of the water flow can be enhanced, so that the cleaning liquid is evenly distributed inside the net cylinder 74, thereby improving the contact efficiency between the water flow and the surface of the parts. This stirring effect can effectively remove the dirt and grease attached to the surface of the parts, making the cleaning process of the parts more thorough.

[0033] Please refer to Figure 1 - Figure 9 , on the basis of the above embodiment, in another embodiment of the present invention, a splash-proof device 9 is provided above the cleaning chamber 3.

[0034] The splash-proof device 9 includes two side baffles 91 and two U-shaped inclined scraping plates 92. The two side baffles 91 are respectively fixed on both sides of the top of the cleaning chamber 3. The two U-shaped inclined scraping plates 92 are respectively fixed on one side of the two side baffles 91 close to each other, and the side of the U-shaped inclined scraping plate 92 away from the side baffle 91 is in contact with the outer wall of the net cylinder 74. Through the setting of the above structure, the side baffle 91 will block the splashed water, thus avoiding the water from splashing in the surrounding environment. At the same time, the U-shaped inclined scraping plate 92 will scrape off the water adhered to the surface of the net cylinder 74, so that the moisture on the surface of the net cylinder 74 can be effectively reduced, thereby accelerating the drying process of the whole parts and the net cylinder 74 after cleaning. Reducing the water staying on the surface of the net cylinder 74 can effectively shorten the drying time and indirectly improve the cleaning efficiency of the parts.

[0035] The splash-proof device 9 further includes a mountain-shaped frame 93 and a chute plate 96. The mountain-shaped frame 93 is fixed to the top of the cleaning chamber 3, and the chute plate 96 is slidably installed on the inner wall of the mountain-shaped frame 93. A friction wheel 95 is rotatably installed on one side of the middle of the mountain-shaped frame 93 close to the mesh cylinder 74. A convex column disk 94 is coaxially fixed to the friction wheel 95. A convex column is fixed at the eccentric position of the convex column disk 94. The convex column of the convex column disk 94 is slidably installed inside the chute plate 96. An I-shaped column 97 is fixed to the top of the chute plate 96. L-shaped connecting rods 98 are fixed to both sides of the I-shaped column 97, and a spring is provided between the L-shaped connecting rods 98 and the I-shaped column 97. The bottom of the L-shaped connecting rod 98 is fixed with an extrusion plate 910, and the bottom of the extrusion plate 910 is fixed with a sponge plate 99. The extrusion plate 910 and the sponge plate 99 are in contact with the outer wall of the mesh cylinder 74, and both the extrusion plate 910 and the sponge plate 99 are located above the U-shaped inclined scraper 92. The outer surfaces of both the friction wheel 95 and the second runner 75 are set to be rough, and the outer wall of the friction wheel 95 is in contact with the outer wall of the second runner 75. Through the setting of the above structure, the sponge plate 99 will further adsorb the moisture on the surface of the mesh cylinder 74, thereby further improving the efficiency of removing the moisture on the surface of the mesh cylinder 74. At the same time, through the setting of the above structure, the extrusion plate 910 and the U-shaped inclined scraper 92 will squeeze the sponge plate 99, and the moisture adsorbed in the sponge plate 99 is squeezed out. Each time the chute plate 96 moves upward, the chute plate 96 drives the extrusion plate 910 and the sponge plate 99 through the L-shaped connecting rod 98, and the sponge plate 99 comes into contact with the outer wall of the mesh cylinder 74 again, so that the sponge plate 99 can continuously adsorb the moisture adhering to the surface of the mesh cylinder 74.

[0036] During use, after the parts are cleaned, the electric push rod 5 is started. The telescopic end of the electric push rod 5 drives the net cylinder 74 to move upward through the transverse movement device 6 and the first L-shaped plate 71. At this time, the net cylinder 74 is located between the two side baffles 91, and the upper outer wall of the net cylinder 74 will contact the U-shaped inclined scraper 92. When the net cylinder 74 continues to rotate, the net cylinder 74 will throw out the water on and inside the parts. The side baffles 91 will block the thrown water, thus preventing the water from splashing in the surrounding environment. At the same time, the U-shaped inclined scraper 92 will scrape off the water adhered to the surface of the net cylinder 74, so as to effectively reduce the moisture on the surface of the net cylinder 74, thereby accelerating the drying process of the whole parts and the net cylinder 74 after cleaning. Reducing the moisture staying on the surface of the net cylinder 74 can effectively shorten the drying time and indirectly improve the cleaning efficiency of the parts. At the same time, the upper outer wall of the net cylinder 74 will contact the pressing plate 910 and the sponge plate 99. The sponge plate 99 will further adsorb the moisture on the surface of the net cylinder 74, thus further improving the efficiency of removing the moisture on the surface of the net cylinder 74. At the same time, the net cylinder 74 drives the second runner 75 to contact the bottom surface of the friction wheel 95. Under the action of the frictional force between the second runner 75 and the friction wheel 95, the second runner 75 drives the friction wheel 95 to rotate. The friction wheel 95 drives the convex column disk 94 to rotate. The convex columns of the convex column disk 94 slide along the inside of the chute plate 96, and the convex columns of the convex column disk 94 drive the chute plate 96 to slide up and down reciprocally along the inner wall of the mountain-shaped frame 93. Every time the chute plate 96 moves downward, the chute plate 96 drives the pressing plate 910 to move downward through the L-shaped connecting rod 98. The arc surface of the net cylinder 74 will push the pressing plate 910 to drive the L-shaped connecting rod 98 to move away from the net cylinder 74 along the outside of the I-shaped column 97. The spring corresponding to the L-shaped connecting rod 98 is compressed, and when the pressing plate 910 moves, it will drive the sponge plate 99 to move to the U-shaped inclined scraper 92. The pressing plate 910 and the U-shaped inclined scraper 92 will squeeze the sponge plate 99, and the moisture adsorbed in the sponge plate 99 will be squeezed out. Every time the chute plate 96 moves upward, the chute plate 96 drives the pressing plate 910 and the sponge plate 99 through the L-shaped connecting rod 98, and the sponge plate 99 contacts the outer wall of the net cylinder 74 again, so that the sponge plate 99 can continuously adsorb the moisture adhered to the surface of the net cylinder 74.

[0037] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and all should be covered within the protection scope of the present invention.

Claims

1. A component-separated automatic cleaning device, comprising a bottom plate (1), characterized in that: A support platform (2) is fixed to one side of the top of the base plate (1), a cleaning chamber (3) is fixed to the other side of the top of the base plate (1), an ultrasonic cleaner (4) is fixed to the outside of the cleaning chamber (3), electric push rods (5) are fixed to the four corners of the base plate (1), a transverse movement device (6) is fixed to the top of the telescopic end of the electric push rod (5), a cleaning device (7) is provided at the moving end of the transverse movement device (6), and the cleaning device (7) comprises a driving motor (72), the driving motor (72) is fixed to the top of the moving end of the transverse movement device (6), a rotating wheel (73) is fixed to the output end of the driving motor (72), and two rotating wheels (73) are respectively fixed to the two sides of the moving end of the transverse movement device (6). L-shaped plate 1 (71) and L-shaped plate 2 (76), a net cylinder (74) is rotatably mounted on the outside of the L-shaped plate 1 (71), a rotating wheel 2 (75) is fixed at the rotating shaft of the net cylinder (74), and the rotating wheel 2 (75) is connected to the rotating wheel 1 (73) via a belt transmission, a plurality of L-shaped frames (78) are fixed inside the net cylinder (74), and two of the plurality of L-shaped frames (78) form a group, a receiving box (79) is slidably mounted between the two L-shaped frames (78), a plurality of U-shaped blocking rods (710) are fixed between the tops of the two L-shaped frames (78), and a round cover (77) for shielding the opening of the net cylinder (74) is fixed on the outside of the L-shaped plate 2 (76); A U-shaped frame (711) is fixed inside one side of the net cylinder (74) close to the L-shaped plate (71), a positioning rod (712) is passed through and slidably mounted on the top of the U-shaped frame (711), and a pressing plate (713) is fixed at the bottom of the positioning rod (712); The pressing plate (713) is arranged in an inclined shape on a side close to the L-shaped plate (71), and the top of the side of the containing box (79) away from the round cover (77) is arranged in a semicircular shape. The inclined shape of the pressing plate (713) is located on the semicircular movement trajectory of the containing box (79).

2. The automatic cleaning device for separated parts according to claim 1, characterized in that: The transverse movement device (6) comprises a through-slot plate (61), a screw rod (62), a slide column (63), and a movable plate (64); the through-slot plate (61) is fixed to the top of the telescopic end of the electric push rod (5); the screw rod (62) is rotatably mounted on one side of the top of the through-slot plate (61), and the screw rod (62) is driven by a motor; the slide column (63) is fixed to the other side of the top of the through-slot plate (61); one end of the movable plate (64) is threadedly connected to the outside of the screw rod (62); the other end of the movable plate (64) is slidably mounted on the outside of the slide column (63); the movable plate (64) is the movable end of the transverse movement device (6).

3. The automatic cleaning device with separated parts according to claim 1, characterized in that: The top of the pressing plate (713) and the bottom of the containing box (79) are both provided with strip-shaped openings.

4. The automatic cleaning device with separated parts according to claim 1, characterized in that: A stirring device (8) is arranged inside the net cylinder (74), and the stirring device (8) comprises an L-shaped frame (81) and a fixed plate (85). The L-shaped frame (81) is fixed between the tops of the two L-shaped frames (78). A rotating rod (82) is installed on the outside of the L-shaped frame (81) for transverse rotation. A plurality of stirring blades (83) are fixed on the outside of the rotating rod (82). A contact wheel (84) is fixed on one side of the rotating rod (82) close to the second L-shaped plate (76). The fixed plate (85) is fixed at the center of one side of the round cover (77) close to the net cylinder (74).

5. The automatic cleaning device with separated parts according to claim 4, characterized in that: The exteriors of the contact wheel (84) and the fixed disk (85) are both provided with rough surfaces, and the contact wheel (84) is in contact with the outer wall of the fixed disk (85).

6. The automatic cleaning device with separated parts according to claim 1, characterized in that: A splash-proof device (9) is arranged above the cleaning chamber (3), and the splash-proof device (9) comprises two side baffles (91) and two U-shaped inclined scrapers (92). The two side baffles (91) are respectively fixed to two sides of the top of the cleaning chamber (3), and the two U-shaped inclined scrapers (92) are respectively fixed to the sides of the two side baffles (91) close to each other, and the sides of the U-shaped inclined scrapers (92) away from the side baffles (91) are in contact with the outer wall of the net cylinder (74).

7. The automatic cleaning device with separated parts according to claim 6, characterized in that: The splash-proof device (9) further comprises a mountain-shaped frame (93) and a slide plate (96), wherein the mountain-shaped frame (93) is fixed on the top of the cleaning chamber (3), and the slide plate (96) is slidably mounted on the inner wall of the mountain-shaped frame (93), and a friction wheel (95) is rotatably mounted on one side of the middle part of the mountain-shaped frame (93) close to the net cylinder (74), and a boss plate (94) is coaxially fixed to the friction wheel (95), and a boss is fixed at an eccentric position of the boss plate (94), and the boss of the boss plate (94) is slidably mounted inside the slide plate (96), An I-shaped column (97) is fixed to the top of the chute plate (96), L-shaped connecting rods (98) are fixed to both sides of the I-shaped column (97), and a spring is provided between the L-shaped connecting rod (98) and the I-shaped column (97), an extrusion plate (910) is fixed to the bottom of the L-shaped connecting rod (98), and a sponge plate (99) is fixed to the bottom of the extrusion plate (910), the extrusion plate (910) and the sponge plate (99) are in contact with the outer wall of the net cylinder (74), and the extrusion plate (910) and the sponge plate (99) are both located above the U-shaped inclined scraper plate (92).

8. The automatic cleaning device for separated parts according to claim 7, characterized in that: The exteriors of the friction wheel (95) and the second rotating wheel (75) are both provided with rough surfaces, and the friction wheel (95) is in contact with the outer wall of the second rotating wheel (75).

Citation Information

Patent Citations

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