A dust removal control system for cold dryers based on big data

By designing a dust removal control system based on big data, using the combination of the air inlet box, partition and vacuum pipe, the centralized cleaning of dust inside the cold dryer is achieved, the ventilation and blockage problems caused by dust accumulation are solved, and the operation efficiency and cleaning convenience of the cold dryer are improved.

CN116047953BActive Publication Date: 2025-08-08YILANG INTELLIGENT TECH (NANTONG) CO LTD
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Patent Information

Application Number
CN202211639147.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-20
Publication Date
2025-08-08
Estimated Expiration
2042-12-20

AI Technical Summary

Technical Problem

After long-term use of existing cold dryers, dust accumulates inside the chassis and is difficult to clean, resulting in ventilation blockage and cooling effect reduction, manual cleaning is time-consuming and labor-intensive, and lacks effective centralized treatment solutions.

Method used

A dust removal control system based on big data is designed, including control components, dust removal components and cold-drying operating components. Through the combination of the inlet box, partition, drive section, rotor and vacuum pipe, the dust is centrally cleaned and collected, and the negative pressure and the friction of the rubber slap block are used to slap and suction dust, and dust is collected in the dust collection box.

Benefits of technology

It effectively reduces the amount of dust entering the chassis, extends the cleaning cycle of the internal components of the cold dryer, improves cleaning efficiency, reduces the time and intensity of manual cleaning, and ensures the cold drying effect.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

The present invention discloses a dust removal control system for a cold dryer based on big data, comprising a chassis, a cold dry operation component, a control component and a dust removal component, a baffle being installed on one side surface of the chassis, and side panels being installed on the other three side surfaces, a plurality of vents being provided on the surfaces of the side panels, an air inlet box being installed in the middle of the baffle surface, and the interior of the air inlet box being a hollow structure, the cold dry operation component being installed inside the chassis for completing the cold dryer's cooling and dehumidifying process for external air; the control component comprising a control panel and a processor, the control component being connected to an external power supply, a touch screen and a plurality of buttons being provided on the control panel, and a plurality of the buttons being used for controlling the start and shut down of corresponding operating processes, the processor being connected to the control panel signal and being installed inside the chassis, the device solves the current problem of dust removal introduced into the air flow in the cold dryer.
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Description

Technical Field

[0001] The present invention relates to the technical field of mechanical dust removal, and in particular to a dust removal control system for a cold dryer based on big data. Background Art

[0002] The cold dryer is mainly used to cool and dehumidify the external air. During the operation of the cold dryer, the refrigerant gas in the condenser is converted into liquid with the help of external airflow, and the subsequent refrigerant circulation is continued. However, after long-term use, the airflow will introduce a large amount of dust to accumulate inside the cold dryer chassis. At the same time, the dust will adhere to the machine inside the cold dryer under the action of oil and liquid, which is very difficult to clean. The accumulation and adhesion of a large amount of dust will cause internal ventilation blockage, thereby reducing the cold drying effect of the cold dryer. Therefore, how to clean the dust during the airflow introduction has become a problem that needs to be solved urgently by people in this field.

[0003] It should be noted that the above information disclosed in this Background section is only for understanding the background of the present inventive concept and therefore it may contain information that does not constitute the prior art. Summary of the Invention

[0004] Through research, the inventor found that: when the current cold dryer is performing internal dust removal, manual cleaning is often used, which requires the cold dryer chassis to be dismantled. After dismantling, detergents and cleaning equipment are used, such as rags, steel wool, spray guns, etc., to clean the dust-adhesive device inside the cold dryer. After long-term use, the degree of dust and oil adhesion is serious, which will consume a lot of manpower, and before and after completion, the outside of the chassis needs to be reassembled, which is time-consuming and labor-intensive. At the same time, the air flow inside the cold dryer often passes through the surfaces of various devices, so the dust contamination area of the internal device is also large, which is difficult to centrally handle. There is currently no targeted solution to the above problem.

[0005] Based on the above-mentioned problems existing in the prior art, the purpose of the embodiments of the present application is to provide a dust removal control system for a cold dryer based on big data, so as to realize the centralized treatment of dust introduced by the airflow when the cold dryer is running.

[0006] In order to solve the above technical problems, the present invention provides the following technical solutions: a dust removal control system for a cold dryer based on big data, comprising:

[0007] A chassis, wherein a baffle is installed on one side surface of the chassis, and side panels are installed on the other three side surfaces, a plurality of ventilation holes are opened on the surface of the side panels, an air inlet box is installed in the middle of the baffle surface, and the interior of the air inlet box is a hollow structure;

[0008] A cold and dry operation component, which is installed inside the chassis and is used to complete the process of cooling and dehumidifying the external air by the cold dryer;

[0009] A control component, comprising a control panel and a processor, the control component being connected to an external power supply, the control panel being provided with a touch screen and a plurality of buttons, the plurality of buttons being used to control the start and stop of corresponding operating processes, the processor being connected to the control panel signal and being installed in the chassis, the plurality of buttons comprising a cold drying button, a dust removal button, and a tapping button;

[0010] The dust removal component is used to clean the dust in the air inlet box to prevent the accumulation of dust in the air inlet box from weakening the cold drying effect. The control component is electrically connected to the dust removal component and the cold drying operation component.

[0011] The present invention further describes that a square frame plate is fixed to the outer circle of the air inlet box facing outside the chassis, the four right angles of the frame plate are fixed to the baffle by bolts, the air inlet box is snap-connected to the baffle, and a first partition is installed on the surface of the air inlet box facing outward, and a snap-fit assembly is provided at the installation position of the first partition.

[0012] The present invention further describes that a second partition is provided on the opposite side of the first partition in the air inlet box, and filter holes are provided on the surfaces of the second partition and the first partition.

[0013] The present invention further describes that the dust removal assembly includes a first slide rail, a second slide rail, a first drive unit, a second drive unit, a first rotating drum, a wire lever, a moving block, a group of cleaning parts, a support block, and a pipeline connection assembly.

[0014] The present invention further describes that the cleaning component includes a processing box, a fixing plate, a beating block, and a third slide rail. A dust collecting box is installed inside the chassis, and the internal pipeline of the dust collecting box is connected to the first pump body.

[0015] The present invention further describes that the beating block is made of rubber.

[0016] The present invention further describes that the pipe connection assembly includes a second rotating drum, a first dust suction pipe, and a plurality of second dust suction pipes.

[0017] Compared with the prior art, the beneficial effects achieved by the present invention are as follows: the present invention adopts a control component and a dust removal component. When the cold dryer is used for a long time, under the action of the fan, the air inlet continuously introduces external airflow, and the airflow then flows out from the vents of the side panels. In this way, a large amount of dust in the introduced airflow is accumulated inside the air inlet box and at the filter holes of the first partition and the second partition, thereby effectively reducing the amount of dust entering the interior of the chassis and extending the user's cleaning cycle of the cold dryer operating components inside the chassis;

[0018] The first pump body is used, and the dust removal button 1 is started. The first pump body is started, and the dust suction pipe 1 connected to the first pump body draws air to the inside of the second drum. A negative pressure phenomenon occurs inside the second drum. When the first drum rotates clockwise, the cleaning component rotates synchronously. Under the friction between the flapping block and the partition, the interior of the processing box is opened. Under the action of negative pressure, the dust flapped from the outside enters the inside of the second drum through the dust suction pipe 2 inside the processing box, and then enters the inside of the dust collecting box through the dust suction pipe 1, thereby achieving the flapping of the dust adsorbed on the partition. In the flapping process, the dust raised in the air inlet box is sucked and collected in the dust collecting box. , which is convenient for centralized processing of dust. When the beating block is not in contact with the partition and friction is generated, the beating block is affected by the rebound effect of the spring in the hole groove, so that the beating block contacts the fixed plate again and blocks the dust suction pipe 2 in the processing box to prevent the dust suction pipe 2 from being continuously connected to the external space. The dust is sucked in and falls outward during the rotation of the second drum. By intermittently opening and closing the dust suction pipe 2, the dust is ensured to effectively enter the interior of the dust collection box through the pipeline, thereby improving the cleaning efficiency and ensuring normal drainage in the air inlet box. When it is necessary to stop the dust removal mode 1 or the beating process, just turn off the dust removal button 1 and the beating button. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:

[0020] Figure 1 It is a schematic diagram of the overall front external structure of the present invention;

[0021] Figure 2 The present invention Figure 1 Schematic diagram of the explosion position of the center air inlet box;

[0022] Figure 3 The present invention Figure 2 Schematic diagram of the left side of the center air inlet box;

[0023] Figure 4 The present invention Figure 2 Schematic diagram of the right side of the center air inlet box;

[0024] Figure 5 The present invention Figure 4 A schematic top view of a partial section of the first rotating drum;

[0025] Figure 6 The present invention Figure 5 Schematic diagram of the cleaning component in the open state;

[0026] Figure 7 The present invention Figure 4 A cross-sectional diagram of the middle support block and the second rotating drum;

[0027] Figure 8 The present invention Figure 1 Schematic diagram of internal structure installation;

[0028] In the figure: 1. Chassis; 2. First partition; 3. Control panel; 4. Side panel; 5. Baffle; 6. Frame plate; 7. First slot; 8. Second slot; 9. Air inlet box; 10. First drive unit; 11. Rotating rod; 12. Second partition; 13. First rotating drum; 14. Compressor; 15. First slide rail; 16. Screw lever; 17. Moving block; 18. Fixed slot; 19. Second drive unit; 20. Second slide rail; 21. Support block; 22. Attachment plate 23. Turn buckle; 24. Cleaning parts; 241. Processing box; 242. Fixed plate; 243. Beating block; 244. Third slide rail; 25. Second rotating drum; 26. Dust suction pipe 1; 27. Third rotating drum; 28. Condenser; 29. Humidification pipe 1; 30. Dust suction pipe 2; 31. Humidification pipe 2; 32. Dust collection box; 33. Drain box; 34. First pump body; 35. Second pump body; 36. Heat exchanger; 37. Liquid separator; 38. Liquid reservoir. DETAILED DESCRIPTION

[0029] The following is a non-limiting detailed description of the technical solutions of the present invention in conjunction with preferred embodiments and the accompanying drawings. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without inventive effort are also within the scope of protection of the present invention.

[0030] Example 1

[0031] See also Figure 1-8 , the present invention provides a technical solution: a dust removal control system for a cold dryer based on big data, comprising a chassis 1, a cold dry operation component, a control component and a dust removal component;

[0032] like Figure 1 and Figure 8The cold and dry operation component is installed inside the chassis 1 and is used to complete the cooling and dehumidification process of the cold and dry machine for the external air. It includes a compressor 14, a condenser 28, a heat exchanger 36, a liquid separator 37, a liquid reservoir 38 fan, and an expansion valve. The fan is set on the side of the condenser 28 facing the inside of the chassis 1, and is used to introduce external airflow to become the air inlet. The expansion valve is used to connect the liquid reservoir 38 and the liquid separator 37, and the liquid reservoir 38 and the liquid separator 37 are connected by a through pipe, and the through pipe runs through the inside of the heat exchanger 36. The drain tank 33 is connected to the internal pipe of the heat exchanger 36. Next, the pipe on the heat exchanger 36 is connected to the air inlet and the air outlet. The heat exchanger 36 introduces external air through the air inlet, and then passes through the pipe to perform the cold drying process of the introduced air. The cold-dried gas is discharged from the air outlet. The interior of the liquid separator 37 is connected to the internal pipe of the compressor 14. After the refrigerant in the through-pipe is separated by gas and liquid inside the liquid separator 37, the gaseous refrigerant re-enters the compressor 14 and performs the circulating refrigeration process. The middle of the bottom of the heat exchanger 36 is connected to the internal pipe of the drain tank 33. The drain tank 33 is used to collect and discharge the liquefied water in the air.

[0033] The working principle of the cold-dry operation component is as follows: the cold-dry operation component is provided with an external circulation path and an internal circulation path. In the internal circulation path, the low-temperature liquid refrigerant enters the compressor 14 in a gaseous state, is compressed into a high-temperature and high-pressure refrigerant gas, flows through the condenser 28 and the air flow at the air inlet, and the refrigerant gas is condensed and cooled to become a low-temperature liquid refrigerant and stored in the liquid reservoir 38. Thereafter, the refrigerant is subjected to the pressure-reducing and temperature-reducing effects of the expansion valve and enters the through-pipe in the heat exchanger 36 to cool the air introduced into the heat exchanger 36. Thereafter, it evaporates into gas again through the pipe and enters the liquid separator 37. The liquid separator 37 separates the refrigerant into gas and liquid, and the gas is sucked into the compressor 14 to start the above-mentioned process cycle; the external circulation path is connected to an air pump at the air inlet, which introduces external air, and the through-pipe dries the air entering the heat exchanger 36 and discharges it from the exhaust port. The water molecules in the external air are cooled and liquefied under the action of the refrigerant and flow into the interior of the drain tank 33 through the bottom pipe, thereby completing the cooling and dehumidification of the external air;

[0034] The control component includes a control panel 3 and a processor. The control component is electrically connected to the dust removal component and the cold and dry operation component. The control component is connected to an external power supply.

[0035] The control panel 3 is provided with a touch screen and several buttons, through which the operating status of the cold-drying operation component can be directly monitored. The several buttons include a cold-drying button, a dust removal button 1, and a tap button. The dust removal button 1 is used to start and stop the dust removal mode 1 process. The dust removal mode 1 is the dust collection process. The tap button is used to start and stop the anti-blocking process in the dust treatment. The processor is connected to the control panel 3 by signal and is installed inside the chassis 1. The processor converts the data input on the control panel 3 to control the opening and closing of the cold-drying process and the dust removal process.

[0036] A baffle 5 is fixedly mounted on one side of the chassis 1, and side panels 4 are fixedly mounted on the other three side surfaces of the chassis 1. The arrangement of the baffle 5 and the side panels 4 realizes the external shielding effect of the cold and dry running components. The baffle 5 is installed at the air inlet of the chassis 1 and is close to the side of the condenser 28. A plurality of ventilation holes are opened on the surfaces of the three side panels 4.

[0037] The middle bolt on the surface of the baffle 5 is fixed with an air inlet box 9. The installation position of the baffle 5 and the air inlet box 9 is sequentially provided with a first slot 7 and a second slot 8 from the outside to the inside. A square frame plate 6 is fixed to the outer ring of the air inlet box 9 facing the outside of the chassis 1. The air inlet box 9 is engaged with the second slot 8, and the frame plate 6 is engaged with the first slot 7. The specific installation method is to manually move the air inlet box 9 toward the second slot 8. When the frame plate 6 is fully engaged with the first slot 7, as shown in FIG. Figure 1 , the frame plate 6 is fixed to the baffle 5 by bolts at the four right angles;

[0038] A first baffle 2 is mounted on the outward side of the air inlet box 9. A snap assembly is provided between the first baffle 2 and the inner wall of the air inlet box 9. The snap assembly is used to facilitate assembly and disassembly of the first baffle 2. Figure 2 The buckle assembly can be composed of a fixing groove 18, a rotating buckle 23, and a rotating rod 11. The internal connections between the rotating rod 11 and both sides of the first partition 2 are connected by bearings. The side of the rotating rod 11 facing the inside of the chassis 1 is fixed with the rotating buckle 23, and the rotating buckle 23 is engaged with the fixing groove 18. The fixing groove 18 is provided on both sides of the inner wall of the air inlet box 9;

[0039] The air inlet box 9 is a hollow structure, and a second partition 12 is provided on the opposite side of the first partition 2. The surfaces of the second partition 12 and the first partition 2 are both provided with filter holes, which realize the internal ventilation of the chassis 1 while blocking the external dust.

[0040] The dust removal assembly is used to clean the dust in the air inlet box 9 to prevent the accumulation of dust in the air inlet box 9 from weakening the cold drying effect. The dust removal assembly includes a first driving part 10, a first rotating drum 13, a first slide rail 15, a wire lever 16, a moving block 17, a second driving part 19, a second slide rail 20, and a support block 21, and is all arranged inside the air inlet box 9;

[0041] The first drive unit 10 and the second drive unit 19 can both be bidirectional rotating motors, and the rotation direction can be set in advance by the touch screen. The first slide rail 15 and the second slide rail 20 are respectively opened on the inner walls on both sides of the air inlet box 9, and are positioned relative to each other. The first drive unit 10 is fixed to the upper end of the first slide rail 15, and the output end of the first drive unit 10 is fixedly connected to the upper end of the wire lever 16. The lower end of the wire lever 16 is connected to the bearing at the bottom connection of the first slide rail 15. The outer surface of the wire lever 16 is threadedly connected to a moving block 17. The moving block 17 and the wire lever 16 form a ball screw nut structure. The side surface of the moving block 17 facing the second slide rail 20 is fixed to the second drive unit 19, and the moving block 17 is fixed to the first slide rail 15 is slidably connected, the output end of the second driving part 19 is fixed to the right side surface of the first rotating drum 13, and a group of cleaning components 24 are provided on the outer surface of the first rotating drum 13. The cleaning components 24 are used to implement patting and cleaning of dust in the air inlet box 9. The second slide rail 20 is slidably connected to the support block 21. At the same time, the second slide rail 20 supports the support block 21 in the sliding direction. The interior of the support block 21 is a hollow structure. Circular holes are provided on the upper and lower surfaces of the support block 21. A pipe connection assembly is provided between the side surface of the support block 21 facing the first slide rail 15 and the left side surface of the first rotating drum 13. The pipe connection assembly is used to connect and support the support block 21 and the first rotating drum 13;

[0042] like Figure 5 、 6 The cleaning component 24 includes a processing box 241, a fixed plate 242, a flapping block 243 and a third slide rail 244. The processing box 241 is fixed to the outer surface of the first rotating drum 13. The interior of the processing box 241 is a hollow structure. The third slide rail 244 is arranged on both sides of the outer wall of the processing box 241 and is slidably connected to the connection points on both sides of the flapping block 243. The fixed plate 242 is arranged below the flapping block 243 and is fixed to the outer wall of the processing box 241. A hole groove is opened inside the lower surface of the flapping block 243. The bottom of the hole groove is fixedly connected to the surface of the fixed plate 242 by a spring. The flapping block 243 is in contact with the surface of the fixed plate 242 through a spring connection without being subjected to external force. The flapping block 243 is made of rubber material to reduce the degree of damage to the flapping block 243 under subsequent flapping action;

[0043] like Figure 5 、 67. The pipe connection assembly includes a dust suction pipe 1 26, a second rotating drum 25, and a dust suction pipe 2 30. A connecting rod is fixed to the right side of the second rotating drum 25, and the other end of the connecting rod is fixed to the inner wall of the first rotating drum 13. One end of the dust suction pipe 2 30 is connected to the interior of the second rotating drum 25, and the other end of the dust suction pipe 2 30 passes through the interior of the processing box 241. The right end of the dust suction pipe 1 26 is connected to the bearing of the left end of the second rotating drum 25, and the left end of the second rotating drum 25 is connected to the left side of the first rotating drum 13, and the left end of the second rotating drum 25 is located outside the first rotating drum 13. The dust suction pipe 1 26 passes through the interior of the support block 21, and the dust suction pipe 1 26 is fixed to the connection between the right wall of the support block 21. The dust suction pipe 1 26 passes through the circular hole on the lower surface of the support block 21, and the passing part of the dust suction pipe 1 26 is set as a retractable rubber tube;

[0044] like Figure 8 A dust collecting box 32 is installed inside the chassis 1, and the internal pipeline of the dust collecting box 32 is connected to a first pump body 34, and the first pump body 34 is connected to a dust suction pipe 26;

[0045] The first pump body 34 is electrically connected to the dust removal button 1 through the processor. The first pump body 34 can be an air pump. The first drive unit 10 and the second drive unit 19 are electrically connected to the tap button through the processor. A parameter adjustment unit is provided on the touch screen. The rotation direction and operating power of the first drive unit 10 and the second drive unit 19 can be adjusted by the parameter adjustment unit. Default data is provided in the parameter adjustment unit. The default data includes a default direction and a default operating power. If no adjustment is made, the default data is directly executed. After the data is determined, the tap button or the dust removal button 1 is turned on, so that the device completes the corresponding processing process according to the set parameters.

[0046] In the specific working process of this embodiment, its working principle is as follows:

[0047] First, when the cold-drying operation component is performing the process of cooling and dehumidifying the external air, the external power supply is first connected to energize the control component, and then the cold-drying button is turned on to start the external circulation path and the internal circulation path, thus realizing the cold-drying process of the cold-dryer;

[0048] Secondly, when the cold dryer is used for a long time, the air inlet is continuously introduced by the fan, and the air flow then flows out from the vents of the side panel 4. In this way, a large amount of dust in the introduced air flow will accumulate inside the air inlet box 9 and the filter holes of the first partition 2 and the second partition 12, which effectively reduces the amount of dust entering the interior of the chassis 1 and prolongs the user's cleaning cycle of the cold dry running components inside the chassis 1.

[0049] When handling dust at the filter holes of the second partition 12, the user can directly handle the dust from the outside with a cleaning tool, such as a brush, a vacuum cleaner, etc., to prevent dust blockage from causing a reduction in the internal air flow, resulting in poor cold drying effect; the air inlet box 9 collects most of the dust in the introduced air flow, facilitating subsequent centralized dust processing;

[0050] When the user wants to process the dust in the air inlet box 9, the rotation direction and operating power of the first drive unit 10 and the second drive unit 19 are first determined by the parameter adjustment unit. If no adjustment is made, the system will automatically determine the default data and start the tap button first. The first drive unit 10 and the second drive unit 19 are started at the same time. The output end of the first drive unit 10 performs a staged two-way rotation, first driving the wire lever 16 to rotate counterclockwise, and when the wire lever 16 rotates, it drives the moving block 17 to move downward. When the moving block 17 moves to the lower end of the first slide rail 15, the output end of the first drive unit 10 drives the wire lever 16 to rotate clockwise, thereby driving the moving block 17 to move upward. When the moving block 17 moves to the upper end of the first slide rail 15, the above-mentioned operation mode is repeated to realize the up and down reciprocating movement of the moving block 17. At the same time, the moving block 17 drives the second driving part 19, the first rotating drum 13 and the supporting block 21 connected to the left side to move up and down. At the same time, the output end of the second driving part 19 drives the first rotating drum 13 and the cleaning component 24 fixed on the surface to rotate clockwise. When the cleaning component 24 rotates, the outer end surface of the slapping block 243 and the contact surface of the first partition 2 and the second partition 12 are squeezed, slapped and rubbed. As a result, the slapping block 243 can slap and clean the dust on the surface of the first partition 2 and the second partition 12, so that the dust is separated from the partition surface.

[0051] Then, the dust removal button 1 is started, the first pump body 34 is started, and the dust suction pipe 1 26 connected to the first pump body 34 draws air into the interior of the second drum 25, and a negative pressure phenomenon occurs inside the second drum 25. When the first drum 13 rotates clockwise, the first drum 13 also drives the dust suction pipe 2 30 and the second drum 25 to rotate synchronously with the cleaning component 24. The second drum 25 is connected to the dust suction pipe 1 26 through the bearing connection between the second drum 25 and the dust suction pipe 1 26. The dust suction pipe 1 26 only moves up and down following the support block 21. Under the action of the friction between the flapping block 243 and the partition, the flapping block 243 in contact with the partition surface moves away from the fixed plate 242 and slides along the third slide rail 244. The spring in the hole groove is stretched, and the interior of the processing box 241 is opened. Under the action of negative pressure, the dust beaten from the outside enters the interior of the second drum 25 through the dust suction pipe 2 30 inside the processing box 241, and then enters the dust collecting box through the dust suction pipe 1 26. 32, thereby achieving the slapping of the dust adsorbed on the partition, and in the slapping process, the dust raised in the air inlet box 9 is sucked and collected in the dust collecting box 32, which is convenient for the centralized treatment of the dust. When the slapping block 243 is not in contact with the partition and friction is generated, the slapping block 243 is affected by the rebound effect of the spring in the hole groove, so that the slapping block 243 is in contact with the fixed plate 242 again, and the dust suction pipe 2 30 in the processing box 241 is blocked to prevent the dust suction pipe 2 30 from continuously being connected to the external space and falling outward during the rotation of the second rotating drum 25. By intermittently opening and closing the dust suction pipe 2 30, it is determined that the dust effectively enters the interior of the dust collecting box 32 through the pipeline, thereby improving the cleaning efficiency and ensuring the normal drainage in the air inlet box 9. When it is necessary to stop the dust removal mode 1 or the slapping process, the dust removal button 1 and the slapping button can be directly turned off.

[0052] Finally, through the snap assembly, by rotating the rotating rod 11, the rotating rod 11 drives the rotating buckle 23 to rotate and releases the restriction on the fixed groove 18, so that the first partition 2 can be easily removed. The user can then clean the removed first partition 2 separately, and at the same time, the dust and debris with severe adsorption in the air inlet box 9 can also be cleaned separately, thereby cleaning the dust in the air inlet box 9.

[0053] Example 2

[0054] See also Figure 7 、 8 Based on Example 1, in this embodiment, the plurality of buttons further include a dust removal button 2, which is used to start and stop the process of dust removal mode 2, which is a humidification and dust reduction process;

[0055] The pipe connection assembly also includes a third drum 27, a humidifying tube 1 29, and a humidifying tube 2 31, wherein the third drum 27 is fixed inside the second drum 25, one end of the humidifying tube 2 31 is connected and fixed to the third drum 27, and the other end of the humidifying tube 2 31 passes through the interior of the dust collection tube 2 30, the left end of the third drum 27 is connected to the right end of the humidifying tube 1 29 bearing, and a connecting rod is fixed between the humidifying tube 1 29 and the inner wall of the dust collection tube 1 26, and the connecting rod is used to support the humidifying tube 1 29 located inside the dust collection tube 1 26. The connection between the humidifying tube 1 29 and the dust collection tube 1 26 is relatively stable. The humidifying tube 29 penetrates the circular hole on the upper surface of the support block 21, and the penetrating part is set as a retractable rubber tube. The other end of the humidifying tube 29 is connected to the second pump body 35. The second pump body 35 is electrically connected to the dust removal button 2 through the processor. The second pump body 35 can be a liquid pump. The interior of the second pump body 35 is connected to the drainage box 33 pipeline. The drainage box 33 is provided with a liquid level meter. The interior of the drainage box 33 is connected with a drainage pipe. The drainage pipe is used to discharge the accumulated liquid inside. A control valve is installed on the drainage pipe. The control valve is used to control the opening and closing of the drainage process.

[0056] The liquid level meter is used to detect the accumulated liquid inside the drain tank 33. When the liquid level meter detects that the liquid level is higher than a preset limit height value, the liquid level meter will transmit a liquid level warning signal to the processor. After receiving the signal, the processor controls the control valve to start, so that the drain pipe discharges the excess liquid inside the drain tank 33. When the liquid level meter detects that the liquid level is not higher than the preset limit height value, the control valve is closed. The limit height value is set based on the maximum measurement value of the liquid level meter as a parameter, usually 50% to 95% of the maximum value, and can be set through the parameter adjustment unit, thereby ensuring that there is enough liquid stored in the drain tank 33 to realize the humidification and dust reduction process in the air inlet box 9;

[0057] like Figure 4 , a receiving plate 22 is provided at the bottom of the air inlet box 9, and the receiving plate 22 is used to collect dust after humidification and dust reduction;

[0058] In the specific working process of this embodiment, its working principle is as follows:

[0059] The touch screen displays the detection data of the liquid level meter. When the user wants to select the dust removal mode 2, on the basis of starting the flapping button in the embodiment 1, the dust removal button 2 is started at the same time, the second pump body 35 is started, and the liquid inside the discharge tank 33 enters the third drum 27 through the humidifying tube 1 29. Driven by the rotation of the second drum 25, the third drum 27 drives the humidifying tube 2 31 to rotate with the second drum 25. When the flapping block 243 contacts the fixed plate 242, the liquid cannot be sprayed out through the humidifying tube 2 31. When the flapping block 243 is away from the fixed plate 242, the liquid under the action of the internal centrifugal force humidifies the dust raised by the flapping in the air inlet box 9 through the humidifying tube 2 31, and Under the action of humidification, dust settles on the receiving plate 22. The intermittent spraying of liquid can effectively prevent the liquid from being sprayed continuously, which leads to excessive discharge of internal liquid and water accumulation in the air inlet box 9. This ensures that the dust is effectively settled and accumulated on the receiving plate 22. After removing the second partition 12 with the help of the snap assembly, the user directly takes out the receiving plate 22 in the air inlet box 9 and processes the dust on the receiving plate 22. After the processing is completed, it is put back to its original installation position. In this way, the humidification and dust reduction process in the air inlet box 9 is realized by secondary utilization of the liquefied water in the cold drying process, ensuring that the amount of airflow introduced into the air inlet box 9 is normal when the cold drying process is running, thereby ensuring the cold drying effect.

[0060] In the description of the present invention, it should be understood that the terms "up", "down", "front", "back", "left", "right", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention, rather than indicating or implying that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore should not be understood as a limitation on the present invention.

[0061] Finally, it should be noted that the above embodiments are intended only to illustrate the technical solutions of the present invention and are not intended to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will appreciate that modifications may be made to the technical solutions described in the aforementioned embodiments, or that some of the technical features may be replaced with equivalents. Such modifications or replacements do not deviate from the spirit and scope of the technical solutions of the various embodiments of the present invention.

Claims

1. A dust removal control system for a cold dryer based on big data, characterized by: include: A chassis (1), wherein a baffle (5) is mounted on one side surface of the chassis (1), and side panels (4) are mounted on the other three side surfaces, a plurality of vents are provided on the surfaces of the side panels (4), an air inlet box (9) is mounted in the middle of the surface of the baffle (5), and the interior of the air inlet box (9) is a hollow structure; A cold and dry operation component, the cold and dry operation component being installed inside the chassis (1) and used to complete the process of cooling and dehumidifying the external air by the cold dryer; A control component, the control component comprising a control panel (3) and a processor, the control component being connected to an external power supply, the control panel (3) being provided with a touch screen and a plurality of buttons, the plurality of buttons being used to control the start and stop of corresponding operating processes, the processor being connected to the control panel (3) by signal and being installed in the chassis (1), the plurality of buttons comprising a cold drying button, a dust removal button, and a tapping button; A dust removal component, the dust removal component is used to clean the dust in the air inlet box (9) to prevent the accumulation of dust in the air inlet box (9) from causing the cold-drying effect to be weakened, and the control component is electrically connected to the dust removal component and the cold-drying operation component; The dust removal component includes: A first slide rail (15) and a second slide rail (20), wherein the first slide rail (15) and the second slide rail (20) are respectively arranged on the inner walls of both sides of the air inlet box (9) and are positioned opposite to each other; A first driving part (10), wherein the first driving part (10) is fixed to the upper end of the first slide rail (15), a wire lever (16) is fixed to the output end of the first driving part (10), a moving block (17) is threadedly connected to the outer surface of the wire lever (16), and the moving block (17) is slidably connected to the inside of the first slide rail (15); a second driving part (19), the second driving part (19) being fixed on the surface of the moving block (17), the first rotating drum (13) being fixed to the output end of the second driving part (19), the first driving part (10) and the second driving part (19) being electrically connected to a tapping button via a processor; A group of cleaning components (24), wherein the group of cleaning components (24) are evenly fixed to the outer surface of the first rotating drum (13), and the cleaning components (24) are used to implement a process of beating and cleaning dust in the air inlet box (9); A support block (21) is provided, wherein the interior of the support block (21) is a hollow structure, and the support block (21) is slidably connected to the interior of the second slide rail (20), a pipe connection assembly is provided between the support block (21) and the left side surface of the first rotating drum (13), and circular holes are provided on the upper and lower surfaces of the support block (21).

2. The dust removal control system for a cold dryer based on big data according to claim 1, characterized in that: A square frame plate (6) is fixed to the outer ring of the air inlet box (9) facing the outside of the chassis (1), and the four right angles of the square frame plate (6) are fixed to the baffle (5) by bolts. The air inlet box (9) is snap-connected with the baffle (5), and a first partition plate (2) is installed on the surface of the air inlet box (9) facing the outside, and a snap-fit assembly is provided at the installation position of the first partition plate (2).

3. The dust removal control system for a cold dryer based on big data according to claim 2, characterized in that: A second partition (12) is provided on the opposite side of the first partition (2) in the air inlet box (9), and filter holes are provided on the surfaces of the second partition (12) and the first partition (2).

4. The dust removal control system for a cold dryer based on big data according to claim 3, characterized in that: The cleaning component (24) comprises: a processing box (241), the interior of the processing box (241) being a hollow structure, being fixed to the outer surface of the first rotating drum (13), and being in communication with the interior of the first rotating drum (13); A fixed plate (242), the fixed plate (242) being fixed to an outer wall of the processing box (241); A beating block (243), wherein a hole groove is provided inside the lower surface of the beating block (243), and the bottom of the hole groove is fixedly connected to the surface of the fixing plate (242) via a spring; The third slide rail (244) is provided on both sides of the outer wall of the processing box (241), and the third slide rail (244) is slidably connected to both sides of the beating block (243).

5. The dust removal control system for a cold dryer based on big data according to claim 4, characterized in that: The beating block (243) is made of rubber material.

6. The dust removal control system for a cold dryer based on big data according to claim 4, characterized in that: The pipeline connection assembly includes: a second rotating drum (25), the second rotating drum (25) being fixed to the inner wall of the first rotating drum (13), and the left end surface of the second rotating drum (25) being located on the left side of the first rotating drum (13); A dust suction pipe (26), the right end of which is connected to the bearing at the left end of the second rotating drum (25), the dust suction pipe (26) is partially located inside the support block (21), and penetrates the circular hole on the lower surface of the support block (21), and is fixed to the connection with the right wall of the support block (21), a dust collecting box (32) is installed inside the chassis (1), the internal pipeline of the dust collecting box (32) is connected to the first pump body (34), the first pump body (34) is connected to the dust suction pipe (26), and the first pump body (34) is electrically connected to the dust removal button (1) through the processor; A plurality of dust suction pipes (30) are provided, one end of each of the dust suction pipes (30) is connected to the interior of the second rotating drum (25), and the other end thereof is connected to the interior of the processing box (241).

7. The dust removal control system for a cold dryer based on big data according to claim 6, characterized in that: The plurality of buttons further include a dust removal button 2, and the pipe connection assembly further includes: a third rotating drum (27), wherein the third rotating drum (27) is fixed inside the second rotating drum (25); A humidifying pipe (31) having one end connected and fixed to the interior of the third drum (27) and the other end passing through the interior of the corresponding dust collecting pipe (30). A humidifying tube (29) is fixed to the inner wall of the dust collecting tube (26) by a rod. The connection between the humidifying tube (29) and the dust collecting tube (26) is penetrated. The humidifying tube (29) is penetrated by the circular hole on the upper surface of the support block (21). The left end of the third rotating drum (27) is connected to the bearing at the right end of the humidifying tube (29). The other end of the humidifying tube (29) is connected to the second pump body (35). The second pump body (35) is electrically connected to the dust removal button 2 through the processor. A drainage box (33) is provided inside the chassis (1). The drainage box (33) is connected to the second pump body (35) through a pipeline.

8. The dust removal control system for a cold dryer based on big data according to claim 7, characterized in that: A liquid level meter is provided inside the drainage box (33), a drainage pipe is provided inside the drainage box (33), a control valve is installed on the drainage pipe, and the liquid level meter is connected to the control valve signal through a processor.

9. The dust removal control system for a cold dryer based on big data according to claim 7, characterized in that: A receiving plate (22) is provided at the bottom of the air inlet box (9), and the penetrating portions of the humidifying tube 1 (29) and the dust suction tube 1 (26) and the circular hole are all telescopic rubber tubes.

Citation Information

Patent Citations

  • Split type freezing dryer

    CN217005115U