Cleaning and drying equipment for optical parts of electronic equipment
By designing an optical parts cleaning and drying equipment for electronic equipment with hydraulic telescopic rod and infrared drying functions, the problems of long drying time of existing equipment and friction of parts accumulation are solved, and the effects of rapid drying and efficient cleaning are achieved.
Patent Information
- Application Number
- CN202421636143.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-11
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2034-07-11
AI Technical Summary
After the cleaning of existing electronic equipment optical parts cleaning and drying equipment, the drying time is too long, and the optical parts are prone to pile up and friction during cleaning, affecting precision.
An optical parts cleaning and drying equipment for electronic equipment including machine base, cleaning mechanism, drying box, cabinet door, mechanical board, etc. is designed. The pallet is driven by hydraulic telescopic rod, combined with an ultrasonic emitter for excitation cleaning, and an infrared emitter is used in the drying box for ray drying, while preventing the components from piled up and friction through the limit rod and the barrier rod.
It realizes rapid drying after cleaning, avoids friction accumulation of optical parts during cleaning, and ensures the precision of parts and efficient cleaning and drying process.
Smart Images

Figure CN222944085U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cleaning and drying equipment, in particular to a cleaning and drying equipment for optical parts of electronic equipment. Background Art
[0002] Optical components are relatively sophisticated electronic equipment parts, and are mainly used in imaging equipment such as cameras and projectors. Optical components are easily affected by pollutants such as dust, which can easily damage the optical radiation channels of the optical components. Therefore, the optical components need to be cleaned regularly after a certain period of use. After cleaning, they need to be dried at a certain temperature to achieve lossless cleaning and drying of the optical components and prevent damage to the precision of the optical components. During cleaning, an ultrasonic transmitter is used to emit certain sound waves to form an agitated vibration state in the water liquid, thereby achieving an agitated cleaning effect on the optical components.
[0003] There is currently a patent publication number CN216026582U for an electronic equipment optical component cleaning and drying equipment. By providing a hydraulic cylinder and a drain frame, the operation of the hydraulic cylinder can push the support plate to move upward, and the connecting part slides upward along the guide rail, so that the drain frame drives the optical components that have been cleaned and disinfected to leave the cleaning tank for draining. The equipment has strong automation and does not require manual transfer, which saves time and effort and effectively improves work efficiency.
[0004] The cleaning and drying are carried out in the same box. After cleaning, the cleaning pool needs to be drained to remove a certain amount of water, which takes too long. The optical components need too long to proceed to the next drying operation, which is not convenient for quick drying operations. In addition, the optical components are piled up on a tray during cleaning. During agitation cleaning, the tray needs to move up and down to generate water flow to disperse the pollutants. The agitation activity can easily cause movement between the optical components, and can easily cause the optical components piled together to collide and rub against each other, which can easily cause damage and affect the precision of the optical components. Utility Model Content
[0005] In view of the deficiencies in the prior art, the utility model is achieved through the following technical solutions: an electronic equipment optical component cleaning and drying device, the structure of which includes a machine base, a cleaning mechanism, a drying box, a cabinet door, and a mechanical board, the cabinet door is embedded in the side of the cleaning mechanism, the machine base is embedded in the side of the cleaning mechanism, the drying box is installed at the upper end of the machine base, the mechanical board is embedded in the side of the cleaning mechanism, the cleaning mechanism is provided with a connecting rod, an ultrasonic transmitter, a tray, a chassis, and a machine holding barrel, the tray is limited and slidably matched on the side of the lower end of the connecting rod, the machine holding barrel is installed inside the upper end of the chassis, the ultrasonic transmitter is embedded in the upper end of the chassis, the ultrasonic transmitter is installed in the middle of the lower end of the machine holding barrel, the left side of the upper end of the connecting rod is embedded in the mechanical board, the machine base is embedded in the side of the chassis, the interior of the mechanical board is connected to the internal circuit of the machine base, the bottom end of the drying box is provided with an infrared transmitter, which has the effect of ray heating and drying, the connection of the connecting rod inside the mechanical board is a hydraulic telescopic rod, which has the effect of driving the connecting rod to rise and fall, and a controller is provided on the outside of the drying box, and the controller is connected to the internal circuit of the machine base.
[0006] As a further optimization of the present technical solution, the pallet is provided with a gap groove, a sliding rod and a limit rod. The gap groove is located on the side of the limit rod, the limit rod is embedded in the inner side of the sliding rod, the outer side of the sliding rod is slidably matched with the lower end side of the connecting rod, the gap grooves have different sizes between the limit rods, and are unevenly arranged between the limit rods, thereby increasing the diversity of the gap grooves.
[0007] As a further optimization of the present technical solution, the limit rod is provided with a support block, a hollow groove, a metal rod and a blocking rod. The blocking rod is embedded in the inner side of the metal rod, the support block is attached to the side of the metal rod, the hollow groove is located on the side of the support block, the metal rod is embedded in the inner side of the sliding rod, and the support block is made of rubber, is relatively soft, and has a certain deformation effect.
[0008] As a further optimization of the present technical solution, the blocking rod is provided with a square block, a round rod, a cylindrical block, and a circular groove. The round rod is embedded in the outside of the cylindrical block, the circular groove is located inside the square block, the cylindrical block and the circular groove are gap-matched, the square block is embedded in the inside of the metal rod, the cylindrical block and the square block are made of magnet material and have a mutual attraction effect, the round rod is made of rubber and has a relatively soft characteristic, and the square blocks are evenly arranged and distributed on the inside of the metal rod.
[0009] As a further optimization of the technical solution, a track rod is provided inside the drying box, and a ball is provided inside the track rod to guide sliding. Two track rods are provided, which are horizontally symmetrical with each other, and the width of the track rod is slightly larger than the width of the sliding rod, and they are movable with mutual clearance. When the connecting rod is raised to the highest position, the horizontal position of the sliding rod is at the same level as the track rod. Beneficial Effects
[0010] Compared with the prior art, the utility model of an electronic equipment optical component cleaning and drying device has the following advantages:
[0011] In the utility model, a controller controls the lifting and lowering activities of the hydraulic telescopic rod inside the mechanical plate, so that the connecting rod drives the tray to lift and lower in the machine receiving barrel, thereby performing active cleaning on the optical components placed on the tray. During cleaning, the receiving barrel is filled with water liquid, and shock waves are emitted by the ultrasonic transmitter to cause the liquid in the machine receiving barrel to generate agitation to perform agitation cleaning on the optical components. After the cleaning is completed, the connecting rod is controlled to rise to the highest point to drain the water, thereby manually pushing the tray, so that the sliding rod is separated from the sliding of the connecting rod and slides into the inner side of the track rod, and then the tray enters the drying box for ray drying, so that it can be quickly transferred and dried after the water is cleaned.
[0012] In the utility model, both ends of the optical component are placed on the surface of the adjacent support block, and the round rod is manually taken to adjust the position of the columnar block on the square block so that the round rod contacts the two sides of the component, thereby forming a barrier for the adjacently placed optical components and separating each optical component, so that the optical components are fixed by the limit rod for cleaning, and the sliding rod is prevented from following the lifting and lowering activities of the connecting rod during cleaning to cause accumulation and friction, thereby avoiding collision damage caused by cleaning and affecting the precision of the optical components. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Other features, objects and advantages of the present invention will become more apparent by reading the detailed description of non-limiting embodiments with reference to the following drawings:
[0014] Figure 1 The utility model is a structural schematic diagram of an electronic equipment optical component cleaning and drying device.
[0015] Figure 2 It is a side structural schematic diagram of a cleaning mechanism of the utility model.
[0016] Figure 3 The utility model is a schematic diagram of the planar structure of a tray.
[0017] Figure 4 It is a three-dimensional structural schematic diagram of a limiting rod of the utility model.
[0018] Figure 5 The utility model is a three-dimensional structural schematic diagram of a blocking rod.
[0019] In the figure: machine base-1, cleaning mechanism-2, drying box-3, cabinet door-4, mechanical plate-5, connecting rod-21, ultrasonic transmitter-22, tray-23, chassis-24, machine loading barrel-25, gap groove-w1, sliding rod-w2, limiting rod-w3, supporting block-w31, hollow groove-w32, metal rod-w33, blocking rod-w34, square block-t1, round rod-t2, cylindrical block-t3, circular groove-t4, track rod-s. DETAILED DESCRIPTION
[0020] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the preferred implementation scheme of the present invention is further described below in conjunction with specific implementation schemes and accompanying drawings. Example
[0021] See also Figure 1-Figure 5 The utility model provides an electronic equipment optical component cleaning and drying device, the structure of which includes a machine base 1, a cleaning mechanism 2, a drying box 3, a cabinet door 4, and a mechanical board 5. The cabinet door 4 is embedded in the side of the cleaning mechanism 2, the machine base 1 is embedded in the side of the cleaning mechanism 2, the drying box 3 is installed at the upper end of the machine base 1, and the mechanical board 5 is embedded in the side of the cleaning mechanism 2. The cleaning mechanism 2 is provided with a connecting rod 21, an ultrasonic transmitter 22, a tray 23, a chassis 24, and a machine holding barrel 25. The tray 23 is limited and slidably matched at the side of the lower end of the connecting rod 21, the machine holding barrel 25 is installed inside the upper end of the chassis 24, the ultrasonic transmitter 22 is embedded in the upper end of the chassis 24, and the ultrasonic transmitter 22 is installed in the middle of the lower end of the machine holding barrel 25. The upper left side of the connecting rod 21 is embedded in the mechanical board 5, the machine base 1 is embedded in the side of the chassis 24, and the inside of the mechanical board 5 is connected to the machine The base 1 is connected with internal circuits, an infrared emitter is provided at the bottom of the drying box 3, which has the effect of ray heating and drying, the connection of the connecting rod 21 inside the mechanical plate 5 is a hydraulic telescopic rod, which has the effect of driving the connecting rod 21 to rise and fall, and a controller is provided on the outside of the drying box 3, and the controller is connected to the internal circuits of the base 1, so that the controller controls the lifting and falling activities of the hydraulic telescopic rod inside the mechanical plate 5, so that the connecting rod 21 drives the tray 23 to lift and fall in the machine-carrying barrel 25, and then the optical components placed on the tray 23 are cleaned. When cleaning, the holding barrel 25 is filled with water liquid, and the ultrasonic emitter 22 emits shock waves to make the liquid in the machine-carrying barrel 25 agitated to clean the optical components. After cleaning, the connecting rod 21 is controlled to rise to the highest point to drain the water, thereby pushing the tray 23 into the drying box 3 for ray drying.
[0022] The tray 23 is provided with a gap groove w1, a sliding rod w2, and a limit rod w3. The gap groove w1 is located on the side of the limit rod w3, the limit rod w3 is embedded in the inner side of the sliding rod w2, and the outer side of the sliding rod w2 is slidably matched with the lower end side of the connecting rod 21. The sizes of the gap grooves w1 are different between the limit rods w3, and the limit rods w3 are unevenly arranged, which increases the diversity of the gap grooves w1. Therefore, the different sizes of the gap grooves w1 make the distances between the limit rods w3 different. Optical components of different specifications and sizes can be placed and fixed on the limit rod w3, so that the optical components are fixed and cleaned by the limit rod w3, which prevents the sliding rod w2 from following the lifting and lowering activities of the connecting rod 21 during cleaning to cause accumulation and friction.
[0023] The limiting rod w3 is provided with a supporting block w31, a hollow groove w32, a metal rod w33 and a blocking rod w34. The blocking rod w34 is embedded in the inner side of the metal rod w33. The supporting block w31 is attached to the side of the metal rod w33. The hollow groove w32 is located on the side of the supporting block w31. The metal rod w33 is embedded in the inner side of the sliding rod w2. The supporting block w31 is made of rubber and is relatively soft and has a certain deformation effect, so that the two ends of the optical component are placed on the adjacent surfaces of the supporting blocks w31. By adjusting the position of the blocking rod w34 in the metal rod w33, the blocking rod w34 can fix and block the side of the optical component, so that each optical component is separated, and then the pollutants are discharged downward from the hollow groove w32 during cleaning. By separating the optical components, it is prevented from piling up and causing vibration and friction during cleaning.
[0024] The blocking rod w34 is provided with a square block t1, a round rod t2, a cylindrical block t3, and a circular groove t4. The round rod t2 is embedded in the outer side of the cylindrical block t3, and the circular groove t4 is located inside the square block t1. The cylindrical block t3 and the circular groove t4 are clearance-matched, and the square block t1 is embedded in the inner side of the metal rod w33. The cylindrical block t3 and the square block t1 are made of magnets and have a mutual attraction effect. The round rod t2 is made of rubber and has a relatively soft characteristic. The square blocks t1 are evenly arranged and distributed on the inner side of the metal rod w33. After the optical component is placed on the supporting block w31, the round rod t2 is manually taken, and the position of the cylindrical block t3 on the square block t1 is adjusted, so that the cylindrical block t3 is re-adsorbed in the circular groove t4 for limiting, and then the round rod t2 contacts both sides of the component to form a barrier for adjacently placed optical components to prevent the components from colliding and rubbing against each other during agitation cleaning.
[0025] A track rod s is provided inside the drying box 3, and a ball bearing is provided inside the track rod s to guide sliding. Two track rods s are provided, which are horizontally symmetrical with each other, and the width of the track rod s is slightly larger than the width of the sliding rod w2, and they are movable with mutual clearance. When the connecting rod 21 is raised to the highest position, the horizontal position of the sliding rod w2 is in the same horizontal state as the track rod s, so that the sliding rod w2 stays at the highest lifting position of the connecting rod 21 for a certain period of time to drain water, and then the sliding rod w2 is manually pushed to move horizontally into the drying box 3, so that the sliding rod w2 breaks away from the sliding of the connecting rod 21 and slides into the inner side of the track rod s, thereby achieving the effect of rapid transfer to the inside of the drying box 3.
[0026] Working principle: In the utility model, the controller controls the lifting and lowering of the hydraulic telescopic rod inside the mechanical plate 5, so that the connecting rod 21 drives the tray 23 to lift and lower in the machine receiving barrel 25, and then the optical components placed on the tray 23 are cleaned. During cleaning, the receiving barrel 25 is filled with water liquid, and the ultrasonic transmitter 22 emits shock waves to make the liquid in the machine receiving barrel 25 agitated to clean the optical components. After cleaning, the connecting rod 21 is controlled to rise to the highest point to drain the water, so as to manually push the tray 23, so that the sliding rod w2 is separated from the sliding of the connecting rod 21 and slides into the inner side of the track rod s, and then the tray 23 enters the drying box 3 for ray drying, so that it can be quickly transferred and dried after cleaning the water.
[0027] In the utility model, optical components of different sizes are placed on the limiting rod w3 and fixed, and then the two ends of the optical components are placed on the surface of the adjacent support block w31, and the round rod t2 is manually taken to adjust the position of the columnar block t3 on the square block t1, and then the columnar block t3 is adsorbed in the circular groove t4 again for limiting, and by adjusting the position of the blocking rod w34 in the metal rod w33, the round rod t2 contacts the two sides of the component, forming a barrier for the adjacently placed optical components, so that each optical component is separated, and then during cleaning, the pollutants are discharged downward from the hollow groove w32, and the optical components are separated, so that the optical components are fixed and cleaned by the limiting rod w3, so as to prevent the sliding rod w2 from following the lifting and lowering activities of the connecting rod 21 during cleaning to cause accumulation friction, and avoid collision damage caused by cleaning to affect the precision of the optical components.
[0028] The above shows and describes the basic principles, main features and advantages of the utility model. Those skilled in the art should understand that the utility model is not limited to the above embodiments. The above embodiments and descriptions are only for explaining the principles of the utility model. Without departing from the spirit or basic features of the utility model, the utility model can be implemented in other specific forms and various changes and improvements can be made. These changes and improvements all fall within the scope of the utility model to be protected. Therefore, the scope of protection of the utility model is defined by the attached claims and their equivalents, rather than the above description.
[0029] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.
Claims
1. An electronic equipment optical component cleaning and drying device, the structure of which comprises a base (1), a cleaning mechanism (2), a drying box (3), a cabinet door (4), and a mechanical plate (5), characterized in that: The cabinet door (4) is embedded in the side of the cleaning mechanism (2), the machine base (1) is embedded in the side of the cleaning mechanism (2), the drying box (3) is installed on the upper end of the machine base (1), and the mechanical plate (5) is embedded in the side of the cleaning mechanism (2); The cleaning mechanism (2) is provided with a connecting rod (21), an ultrasonic transmitter (22), a tray (23), a chassis (24), and a machine receiving barrel (25); the tray (23) is limitedly slidably matched on the side of the lower end of the connecting rod (21); the machine receiving barrel (25) is installed inside the upper end of the chassis (24); the ultrasonic transmitter (22) is embedded in the upper end of the chassis (24); the ultrasonic transmitter (22) is installed in the middle of the lower end of the machine receiving barrel (25); the left side of the upper end of the connecting rod (21) is embedded in the inside of the mechanical plate (5); the machine base (1) is embedded in the side of the chassis (24); and the inside of the mechanical plate (5) is connected to the internal circuit of the machine base (1).
2. The cleaning and drying equipment for optical parts of electronic equipment according to claim 1, characterized in that: The tray (23) is provided with a clearance groove (w1), a sliding rod (w2), and a limiting rod (w3); the clearance groove (w1) is located on the side of the limiting rod (w3); the limiting rod (w3) is embedded in the inner side of the sliding rod (w2); and the outer side of the sliding rod (w2) is slidably matched with the side of the lower end of the connecting rod (21).
3. The cleaning and drying device for optical components of electronic equipment according to claim 2, characterized in that: The limiting rod (w3) is provided with a supporting block (w31), a hollow groove (w32), a metal rod (w33), and a blocking rod (w34); the blocking rod (w34) is embedded in the inner side of the metal rod (w33); the supporting block (w31) is attached to the side of the metal rod (w33); the hollow groove (w32) is located on the side of the supporting block (w31); and the metal rod (w33) is embedded in the inner side of the sliding rod (w2).
4. The cleaning and drying equipment for optical parts of electronic equipment according to claim 3, characterized in that: The blocking rod (w34) is provided with a square block (t1), a round rod (t2), a columnar block (t3), and a circular groove (t4); the round rod (t2) is embedded on the outside of the columnar block (t3); the circular groove (t4) is located inside the square block (t1); the columnar block (t3) and the circular groove (t4) are clearance-matched; and the square block (t1) is embedded on the inside of the metal rod (w33).
5. The cleaning and drying equipment for optical parts of electronic equipment according to claim 1, characterized in that: A track rod (s) is provided inside the drying box (3), and a ball bearing is provided inside the track rod (s) to guide sliding. Two track rods (s) are provided, which are horizontally symmetrical with each other, and the width of the track rod (s) is slightly larger than the width of the sliding rod (w2), and the two track rods (s) are movable in coordination with each other.
Citation Information
Patent Citations
Cleaning and drying equipment for optical parts of electronic equipment
CN216026582U