Harsh environment detection device for reinforced liquid crystal display production

By designing a harsh environment detection device including a detection box, a circuit box, a water supply mechanism and an intelligent control system, the fault problem caused by inappropriate humidity environment in the production of reinforced liquid crystal displays is solved, and efficient detection of the moisture-proof performance of the display and precise regulation of the humidity environment are achieved.

CN120214476AInactive Publication Date: 2025-06-27西安国创防务科技有限公司
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Patent Information

Application Number
CN202510697023.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-28
Publication Date
2025-06-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the production process of reinforced liquid crystal displays, inappropriate humidity environment will cause failures such as moisture, short circuit or corrosion of electronic components, affecting product quality and stability.

Method used

A harsh environment detection device including a detection box, a circuit box, a water supply mechanism and an intelligent control system is designed. Through the coordinated work of atomized nozzles, fans and high-pressure water pumps, we simulate the humid environment and achieve precise control of humidity through the humidity sensor and system control center.

Benefits of technology

The device can efficiently and evenly simulate humid environments, comprehensively detect the moisture-proof performance of the display, improve the accuracy and reliability of the detection results, and reduce the difficulty and cost of equipment maintenance.

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Patent Text Reader

Abstract

The invention discloses a severe environment detection device for reinforced liquid crystal display production, and belongs to the technical field of liquid crystal display environment detection.The severe environment detection device comprises a base, a detection box is fixedly arranged on one side of the top of the base, a circuit box is fixedly arranged at the position, on one side of the detection box, of the top of the base, and a top plate is fixedly arranged at the tops of the detection box and the circuit box; a fixed seat is fixedly arranged at the top of the base and located below the detection box, a high-pressure water pump is fixedly arranged at the top of the fixed seat, one end of the high-pressure water pump is fixedly connected with a water suction pipe, and through cooperative work of the atomization nozzle, the first fan and the second fan, the humid environment can be efficiently and uniformly simulated. The atomization nozzle disperses water into small particles, the fan accelerates air flow, water mist is promoted to be fully diffused in the detection box, compared with a traditional spraying mode, the device is closer to the water vapor contact state of the liquid crystal display in an actual humid environment, and the humidity resistance of the display can be comprehensively detected.
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Description

Technical Field

[0001] The present invention relates to the technical field of liquid crystal display environmental detection, and more specifically, to a harsh environment detection device for the production of rugged liquid crystal displays. Background Art

[0002] In modern industrial production, rugged liquid crystal displays play a crucial role in many application scenarios under harsh environments due to their excellent stability and reliability, such as military equipment, industrial control, transportation and other fields. In these special environments, humidity, as an important environmental factor, has a non-negligible impact on the performance and service life of rugged liquid crystal displays.

[0003] For the production process of rugged liquid crystal displays, it is crucial to strictly control the humidity environment. Unsuitable humidity can lead to many problems. When the environmental humidity is too high, the electronic components inside the liquid crystal display are easily affected by moisture, which can then cause faults such as short circuits and corrosion, seriously affecting the quality and stability of the product. Therefore, in order to detect the humidity environment limit life and normal operation of functions of rugged liquid crystal displays, the existence of a harsh environment detection device for the production of rugged liquid crystal displays is crucial. Summary of the Invention

[0004] The purpose of the present invention is to provide a harsh environment detection device for the production of rugged liquid crystal displays to solve the problems raised in the above background art.

[0005] A harsh environment detection device for the production of rugged liquid crystal displays includes a base. On one side of the top of the base, a detection box is fixedly arranged. On the top of the base, a circuit box is fixedly arranged on one side of the detection box. On the top of the detection box and the circuit box, a top plate is fixedly arranged. On the top of the base, a fixing seat is fixedly arranged below the detection box. On the top of the fixing seat, a water supply mechanism is fixedly arranged. On one side of the circuit box, an operation panel is fixedly arranged. Inside the operation panel, a system control center is fixedly arranged. Inside the system control center, a data storage center and a data comparison center are fixedly arranged. On one side of the data storage center, a humidity setting unit, a water level setting unit and an impurity setting unit are fixedly connected. On the top of the detection box and below the top plate, a sealing plate is fixedly arranged. Inside the detection box, a placement table is fixedly arranged. An installation frame is snap-connected between the sealing plate and the placement table. Inside the installation frame, a liquid crystal display is fixedly clamped. On both sides of the installation frame and below the sealing plate, four atomizing nozzles are evenly arranged. The water supply mechanism is fixedly connected to the four atomizing nozzles. Inside the detection box, a fan one and a fan two are respectively fixedly arranged on both sides of the installation frame.

[0006] Preferably, the water supply mechanism includes a high-pressure water pump fixedly arranged on the top of the fixed seat. One end of the high-pressure water pump is fixedly connected with a water suction pipe, and one end of the water suction pipe extends into the inside of the water storage tank. The other end of the high-pressure water pump is fixedly provided with a water outlet pipe. One end of the water outlet pipe extends to the top of the top plate and is fixedly connected with a solenoid valve. Four water distribution pipes are fixedly connected to the outside of the solenoid valve. All four water distribution pipes penetrate through the sealing plate and the top plate and are respectively fixedly connected with four atomizing nozzles. One side of the humidity control unit is signal-connected to the solenoid valve. One side of the system control center is signal-connected to the humidity control unit, the impurity control unit, the water level control unit and the alarm control unit. One side of the alarm control unit is signal-connected to the operation panel. One side of the data storage center is signal-connected to the humidity detection unit, the water level detection unit and the impurity detection unit. The humidity detection unit is signal-connected to the humidity sensor. The humidity detection unit is signal-connected to the water level sensor. A plurality of humidity sensors are fixedly arranged on the inner wall of the detection box. A water level sensor is fixedly arranged on the inner wall of the detection box above the placement table; The humidity regulation unit internally fixedly arranges a valve control module, a water pump control module and a fan control module. The solenoid valve internally fixedly arranges a solenoid valve control switch. The high-pressure water pump internally fixedly arranges a water pump control switch. The first fan internally fixedly arranges a first fan switch. The second fan internally fixedly arranges a second fan switch. One side of the valve control module is signal-connected to the solenoid valve control switch. One side of the water pump control module is signal-connected to the water pump control switch. One side of the fan control module is signal-connected to the first fan switch and the second fan switch.

[0007] Preferably, a fifth drain pipe and a fourth drain pipe are respectively fixedly connected to both sides of the mounting frame at the bottom of the detection box. Second drain grooves and first drain grooves are respectively formed in the water level sensor above the fifth drain pipe and the operation panel. A drainage mechanism is slidably arranged on both sides of the mounting frame at the top of the placement table inside the detection box. The second drain groove is respectively communicated with the inside of the detection box and the inside of the fifth drain pipe up and down. The first drain groove is respectively communicated with the inside of the detection box and the inside of the fourth drain pipe up and down. The bottoms of the fourth drain pipe and the fifth drain pipe are fixedly connected with a third drain pipe. One side of the third drain pipe is fixedly connected with a second drain pipe. One side of the second drain pipe is fixedly provided with a squeezing control box. The other side of the second drain pipe is snap-fitted and fixedly connected with an impurity collection mechanism. The bottom of the second drain pipe is fixedly connected with a first drain pipe. The first drain pipe is fixedly arranged on one side of the top of the water storage tank and is internally communicated with the water storage tank.

[0008] Preferably, the drainage mechanism includes drainage scrapers slidably arranged on the top of the placement table and located on both sides of the mounting frame. On the side away from the mounting frame, both drainage scrapers are fixedly connected with second telescopic rods. Both second telescopic rods are fixedly arranged inside the detection box. Inside both second telescopic rods, scraper control switches are fixedly arranged. Both scraper control switches are in signal connection with the water level control unit.

[0009] Preferably, a first telescopic rod is fixedly arranged inside the extrusion control box. The output end of the first telescopic rod is fixedly connected with an extrusion plate. A first filter plate is fixedly arranged inside the second drain pipe. Below the first filter plate inside the second drain pipe, a guiding inclined plate inclined towards the first drain pipe is fixedly arranged. The extrusion plate is slidably arranged inside the second drain pipe and its bottom is in close connection with the top of the first filter plate. Above the side of the extrusion plate close to the first telescopic rod, a baffle is fixedly arranged. The baffle is slidably arranged inside the second drain pipe. Inside the first telescopic rod, a push plate control switch is fixedly arranged. The push plate control switch is in signal connection with the impurity control unit. On one side inside one side of the extrusion control box, a distance sensor is fixedly arranged. The detection end of the distance sensor is aligned with the extrusion plate. The distance sensor is in signal connection with the impurity detection unit.

[0010] Preferably, the impurity collection mechanism includes an impurity storage box snap-fitted and fixed to one side of the second drain pipe. The impurity storage box is tightly snap-fitted between the second drain pipe and the first drain pipe and is fixed to the second drain pipe by bolts. On one side of the impurity storage box, a second filter plate is fixedly arranged. One side of the second filter plate is in close fit with the first filter plate and is on the same horizontal plane.

[0011] Preferably, slide rails are fixedly arranged at the bottom of the sealing plate and the top of the placement table. The mounting frame is slidably connected between the two slide rails. Inside the mounting frame, support rods are fixedly arranged on both sides of the liquid crystal display. On one side of the two slide rails, a first rotating block and a second rotating block are respectively rotatably arranged. Inside the first rotating block and the second rotating block, a first clamping groove and a second clamping groove are respectively formed. A limiting rod is in close fit with one side of the liquid crystal display. Clamping heads are fixedly arranged above and below the limiting rod. Both clamping heads are respectively clamped and connected inside the first clamping groove and the second clamping groove.

[0012] Compared with the prior art, the advantages of the present invention are as follows: Through the collaborative work of the atomizing nozzle, fan one and fan two, a humid environment can be efficiently and evenly simulated. The atomizing nozzle disperses water into tiny particles, and the fan accelerates the air flow, promoting the full diffusion of the water mist in the detection box. Compared with the traditional spraying method, it is closer to the water vapor contact state of the liquid crystal display in the actual humid environment, and can comprehensively detect the moisture-proof performance of the display.

[0013] The humidity data inside the detection box is monitored in real time through a humidity sensor, and the data is transmitted to the system control center. The system control center combines the set values in the data storage center and the analysis results in the data comparison center, and precisely controls the solenoid valve, high-pressure water pump, and fan through the humidity control unit to ensure that the humidity is maintained within the set range, achieving precise regulation of the detection environment, improving the accuracy and reliability of the detection results. By adopting the installation method of a slide rail in cooperation with a limit rod and a clamping joint, the installation and disassembly of the liquid crystal display become simple and fast, facilitating the detection of different models of displays. In addition, the impurity storage box is fixed by clamping and bolts, which is convenient for disassembly and cleaning. The design of the drainage mechanism and the impurity treatment mechanism also makes the cleaning of accumulated water and impurities easier, reducing the maintenance difficulty and cost of the equipment.

[0014] Each control unit and sensor is signal-connected through the system control center to construct a highly intelligent control system. When the water level sensor detects that the water level reaches the set height, the water level control unit automatically starts the drainage scraper for drainage; when the distance sensor detects that impurities have accumulated to a certain extent, the impurity control unit controls the first telescopic rod to drive the extrusion plate to clean the impurities. The entire process does not require manual participation, greatly improving the detection efficiency and avoiding interference from human factors on the detection results. The filtered water is re-introduced into the water storage tank through the first drain pipe, realizing the recycling of water resources and significantly reducing the water resource consumption during the detection process. At the same time, the impurity collection mechanism centrally collects and treats the impurities generated during the detection process, avoiding environmental pollution caused by the random discharge of impurities and reflecting the concept of environmental protection and energy conservation. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the internal system module of the operation panel of the present invention; Figure 3 It is a schematic diagram of the internal structure of the detection box of the present invention; Figure 4 It is a schematic diagram of the drain pipe structure of the present invention; Figure 5 It is a schematic diagram of the drainage scraper structure of the present invention; Figure 6 It is a schematic diagram of the mounting rack structure of the present invention; Figure 7 It is a schematic cross-sectional view of the internal structure of the extrusion control box of the present invention; Figure 8 It is a schematic diagram of the overall structure of the present invention.

[0016] Description of reference numerals in the figure: 1. Base; 10. Fixed seat; 11. Detection box; 12. Circuit box; 13. Operation panel; 14. Top plate; 15. Sealing plate; 16. Placing table; 17. Humidity sensor; 18. Water level sensor; 19. Slide rail; 101. First fan; 102. Second fan; 2. Water storage tank; 20. First drain pipe; 21. Second drain pipe; 22. Third drain pipe; 23. Fourth drain pipe; 24. Fifth drain pipe; 25. First drainage trough; 26. Second drainage trough; 27. First filter plate; 28. Guide inclined plate; 3. Extrusion control box; 30. Baffle; 31. First telescopic rod; 32. Extrusion plate; 33. Distance sensor; 4. High-pressure water pump; 40. Water outlet pipe; 41. Water suction pipe; 42. Solenoid valve; 43. Water distribution pipe; 44. Atomizing nozzle; 5. Mounting rack; 50. Support rod; 51. First rotating block; 52. First clamping groove; 53. Second rotating block; 54. Second clamping groove; 55. Limit rod; 56. Clamping joint; 6. Liquid crystal display; 7. Second telescopic rod; 70. Drainage scraper; 8. Impurity storage box; 80. Second filter plate. Specific implementation mode

[0017] Example: Please refer to Figures 1-8 , a harsh environment detection device for the production of reinforced liquid crystal displays, including a base 1, a detection box 11 is fixedly arranged on one side of the top of the base 1, a circuit box 12 is fixedly arranged on the top of the base 1 on one side of the detection box 11, a top plate 14 is fixedly arranged on the tops of the detection box 11 and the circuit box 12, a fixed seat 10 is fixedly arranged on the top of the base 1 below the detection box 11, a water supply mechanism is fixedly arranged on the top of the fixed seat 10, an operation panel 13 is fixedly arranged on one side of the circuit box 12, a system control center is fixedly arranged inside the operation panel 13, a data storage center and a data comparison center are fixedly arranged inside the system control center, and a humidity setting unit, a water level setting unit and an impurity setting unit are fixedly connected to one side of the data storage center; A sealing plate 15 is fixedly arranged at the bottom of the top plate 14 of the detection box 11, a placing table 16 is fixedly arranged inside the detection box 11, a mounting rack 5 is clamped and connected between the sealing plate 15 and the placing table 16, a liquid crystal display 6 is fixedly clamped inside the mounting rack 5, four atomizing nozzles 44 are evenly arranged on both sides of the mounting rack 5 at the bottom of the sealing plate 15, the water supply mechanism is fixedly connected to the four atomizing nozzles 44, and a first fan 101 and a second fan 102 are respectively fixedly arranged on both sides of the mounting rack 5 inside the detection box 11; Through the coordinated operation of the atomizing nozzles 44, the first fan 101 and the second fan 102, a humid environment can be simulated efficiently and evenly. The atomizing nozzles disperse water into tiny particles, and the fans accelerate the air flow, promoting the full diffusion of the water mist in the detection box 11. Compared with the traditional spraying method, it is closer to the water vapor contact state of the liquid crystal display in the actual humid environment, and can comprehensively detect the moisture-proof performance of the display.

[0018] Specifically, the water supply mechanism includes a high-pressure water pump 4 fixedly arranged on the top of the fixed seat 10. One end of the high-pressure water pump 4 is fixedly connected to a water suction pipe 41, and one end of the water suction pipe 41 extends into the interior of the water storage tank 2. The other end of the high-pressure water pump 4 is fixedly provided with a water outlet pipe 40. One end of the water outlet pipe 40 extends to the top of the top plate 14 and is fixedly connected to a solenoid valve 42. Four water distribution pipes 43 are fixedly connected to the outside of the solenoid valve 42. The four water distribution pipes 43 all penetrate through the sealing plate 15 and the top plate 14 and are respectively fixedly connected to four atomizing nozzles 44. One side of the humidity control unit is signal-connected to the solenoid valve 42. One side of the system control center is signal-connected to the humidity control unit, the impurity control unit, the water level control unit, and the alarm control unit. One side of the alarm control unit is signal-connected to the operation panel 13. One side of the data storage center is signal-connected to the humidity detection unit, the water level detection unit, and the impurity detection unit. The humidity detection unit is signal-connected to the humidity sensor 17, and the humidity detection unit is signal-connected to the water level sensor 18. A plurality of humidity sensors 17 are fixedly arranged on the inner wall of the detection box 11, and a water level sensor 18 is fixedly arranged on the inner wall of the detection box 11 above the placement table 16; A valve control module, a water pump control module, and a fan control module are fixedly arranged inside the humidity regulation unit. A solenoid valve control switch is fixedly arranged inside the solenoid valve 42. A water pump control switch is fixedly arranged inside the high-pressure water pump 4. A first fan switch is fixedly arranged inside the first fan 101. A second fan switch is fixedly arranged inside the second fan 102. One side of the valve control module is signal-connected to the solenoid valve control switch. One side of the water pump control module is signal-connected to the water pump control switch. One side of the fan control module is signal-connected to the first fan switch and the second fan switch; The humidity data inside the detection box is monitored in real time by the humidity sensor 17, and the data is transmitted to the system control center. The system control center combines the set value of the data storage center and the analysis result of the data comparison center, and precisely controls the solenoid valve 42, the high-pressure water pump 4, and the fan through the humidity control unit to ensure that the humidity is maintained within the set range, achieving precise regulation of the detection environment and improving the accuracy and reliability of the detection results.

[0019] Specifically, a fifth drain pipe 24 and a fourth drain pipe 23 are fixedly connected to both sides of the mounting frame 5 at the bottom of the detection box 11. Second drain grooves 26 and first drain grooves 25 are respectively formed above the fifth drain pipe 24 and the operation panel 13 inside the water level sensor 18. Drainage mechanisms are slidably arranged on both sides of the mounting frame 5 at the top of the placement table 16 inside the detection box 11. The upper and lower parts of the second drain groove 26 are respectively communicated with the inside of the detection box 11 and the inside of the fifth drain pipe 24. The upper and lower parts of the first drain groove 25 are respectively communicated with the inside of the detection box 11 and the inside of the fourth drain pipe 23. The bottoms of the fourth drain pipe 23 and the fifth drain pipe 24 are fixedly connected to a third drain pipe 22. A second drain pipe 21 is fixedly connected to one side of the third drain pipe 22. An extrusion control box 3 is fixedly arranged on the other side of the second drain pipe 21. An impurity collection mechanism is snap-fitted and fixedly connected to the other side of the second drain pipe 21. A first drain pipe 20 is fixedly connected to the bottom of the second drain pipe 21. The first drain pipe 20 is fixedly arranged on one side of the top of the water storage tank 2 and is internally communicated with the water storage tank 2.

[0020] Specifically, the drainage mechanism includes drainage scrapers 70 slidably arranged on both sides of the mounting frame 5 at the top of the placement table 16. Second telescopic rods 7 are fixedly connected to the sides of the two drainage scrapers 70 away from the mounting frame 5. The two second telescopic rods 7 are fixedly arranged inside the detection box 11. Scraper control switches are fixedly arranged inside the two second telescopic rods 7. The two scraper control switches are both in signal connection with the water level control unit. Each control unit and sensor are connected by signals through the system control center to construct a highly intelligent control system. When the water level sensor 18 detects that the water level reaches the set height, the water level control unit automatically starts the drainage scraper 70 for drainage.

[0021] Specifically, a first telescopic rod 31 is fixedly arranged inside the extrusion control box 3. An extrusion plate 32 is fixedly connected to the output end of the first telescopic rod 31. A first filter plate 27 is fixedly arranged inside the second drain pipe 21. A guiding inclined plate 28 inclined towards the first drain pipe 20 is fixedly arranged below the first filter plate 27 inside the second drain pipe 21. The extrusion plate 32 is slidably arranged inside the second drain pipe 21 and the bottom is tightly connected to the top of the first filter plate 27. A baffle 30 is fixedly arranged above one side of the extrusion plate 32 close to the first telescopic rod 31. The baffle 30 is slidably arranged inside the second drain pipe 21. A push plate control switch is fixedly arranged inside the first telescopic rod 31. The push plate control switch is in signal connection with the impurity control unit. A distance sensor 33 is fixedly arranged on one side inside one side of the extrusion control box 3. The detection end of the distance sensor 33 is aligned with the extrusion plate 32. The distance sensor 33 is in signal connection with the impurity detection unit. When the distance sensor 33 detects that the impurities have accumulated to a certain extent, the impurity control unit controls the first telescopic rod 31 to drive the extrusion plate 32 to clean the impurities. The whole process does not require manual participation, greatly improving the detection efficiency and avoiding the interference of human factors on the detection results.

[0022] Specifically, the impurity collection mechanism includes an impurity storage box 8 fixedly connected to one side of the second drain pipe 21 in a snap-fit manner. The impurity storage box 8 is tightly snap-fitted between the second drain pipe 21 and the first drain pipe 20 and is fixedly connected to the second drain pipe 21 by bolts. A second filter plate 80 is fixedly arranged on one side of the impurity storage box 8. One side of the second filter plate 80 is closely attached to and lies on the same horizontal plane as the first filter plate 27. The filtered water is re-introduced into the water storage tank 2 through the first drain pipe 20, realizing the recycling of water resources and greatly reducing the water consumption during the detection process. At the same time, the impurity collection mechanism centrally collects and processes the impurities generated during the detection process, avoiding the pollution to the environment caused by the random discharge of impurities, and embodying the concept of environmental protection and energy conservation.

[0023] Specifically, slide rails 19 are fixedly arranged at the bottom of the sealing plate 15 and the top of the placement table 16. The mounting bracket 5 is slidably connected between the two slide rails 19. Support rods 50 are fixedly arranged on both sides of the liquid crystal display 6 inside the mounting bracket 5. A first rotating block 51 and a second rotating block 53 are respectively rotatably arranged on one side of the two slide rails 19. First clamping grooves 52 and second clamping grooves 54 are respectively formed inside the first rotating block 51 and the second rotating block 53. A limiting rod 55 is closely attached to one side of the liquid crystal display 6. Clamping heads 56 are fixedly arranged above and below the limiting rod 55. The two clamping heads 56 are respectively clamped and connected inside the first clamping groove 52 and the second clamping groove 54. By adopting the installation method of the slide rail 19 in cooperation with the limiting rod 55 and the clamping head 56, the installation and disassembly of the liquid crystal display become simple and fast, facilitating the detection of different models of displays. In addition, the impurity storage box 8 is fixed by snap-fitting and bolts, which is convenient for disassembly and cleaning. The design of the drainage mechanism and the impurity treatment mechanism also makes the cleaning of accumulated water and impurities easier, reducing the maintenance difficulty and cost of the equipment.

[0024] Working principle: Preparation work: Install the liquid crystal display 6 in the detection box 11 through the mounting bracket 5. The liquid crystal display 6 is fixedly clamped with the clamping grooves on the first rotating block 51 and the second rotating block 53 through the limiting rod 55 and the clamping heads 56. Fill the water storage tank 2 with water, and set relevant parameters such as humidity, water level, and impurities through the operation panel 13 and store them in the data storage center.

[0025] Humidity simulation detection: The system control center controls the high-pressure water pump 4 to suck water from the water storage tank 2 through the water suction pipe 41, and transports it to the atomizing nozzle 44 through the water outlet pipe 40, the solenoid valve 42 and the water distribution pipe 43. The atomizing nozzle 44 atomizes the water and sprays it into the detection box 11 to simulate a humid environment. At the same time, the first fan 101 and the second fan 102 work to make the humidity distribution in the detection box 11 uniform. The humidity sensor 17 detects the humidity data in real time and transmits it to the data storage center and the data comparison center through the humidity detection unit for comparison with the set humidity value. If the humidity exceeds the set value, the humidity control unit controls the solenoid valve 42 to close and stop spraying water; if the humidity does not reach the set value, spraying water continues.

[0026] Drainage treatment: During the detection process, the water in the detection box 11 will gradually accumulate. When the water level reaches the detection height of the water level sensor 18, the water level sensor 18 transmits a signal to the system control center through the water level detection unit, and the system control center controls the water level control unit to start the drainage mechanism. The drainage scraper 70 scrapes the water in the detection box 11 towards the first drainage groove 25 and the second drainage groove 26 under the action of the second telescopic rod 7, and the water flows into the second drainage pipe 21 through the fourth drainage pipe 23, the fifth drainage pipe 24 and the third drainage pipe 22.

[0027] Impurity treatment: When the water flows into the second drainage pipe 21, the first filter plate 27 filters the impurities in the water. The impurities accumulate on the first filter plate 27. When the distance sensor 33 detects that the distance between the extrusion plate 32 and the impurities reaches the set value, the impurity detection unit transmits a signal to the system control center, and the system control center controls the impurity control unit to start the first telescopic rod 31 to make the extrusion plate 32 extrude the impurities and squeeze the impurities into the impurity storage box 8.

[0028] Water recycling: The water filtered by the first filter plate 27 flows into the first drainage pipe 20 through the guiding inclined plate 28 and finally returns to the water storage tank 2 to realize the recycling of water.

[0029] Alarm function: When an abnormal situation occurs during the detection process, such as parameters such as humidity, water level or impurities exceeding the set safety range, the alarm control unit controls the operation panel 13 to issue an alarm to remind the operator to handle it.

[0030] The above shows and describes the basic principle, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only the preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. An environmental detection device for reinforcing the production of liquid crystal displays in harsh environments, comprising a base (1), characterized in that: On one side of the top of the base (1), a detection box (11) is fixedly arranged. On the top of the base (1), a circuit box (12) is fixedly arranged on one side of the detection box (11). On the top of the detection box (11) and the circuit box (12), a top plate (14) is fixedly arranged. On the top of the base (1) and below the detection box (11), a fixing seat (10) is fixedly arranged. On the top of the fixing seat (10), a water supply mechanism is fixedly arranged. On one side of the circuit box (12), an operation panel (13) is fixedly arranged. Inside the operation panel (13), a system control center is fixedly arranged. Inside the system control center, a data storage center and a data comparison center are fixedly arranged. On one side of the data storage center, a humidity setting unit, a water level setting unit, and an impurity setting unit are fixedly connected; On the top of the detection box (11) and at the bottom of the top plate (14), a sealing plate (15) is fixedly arranged. Inside the detection box (11), a placement table (16) is fixedly arranged. An installation frame (5) is snap-connected between the sealing plate (15) and the placement table (16). Inside the installation frame (5), a liquid crystal display (6) is fixedly clamped. At the bottom of the sealing plate (15) and on both sides of the installation frame (5), four atomizing nozzles (44) are evenly arranged. The water supply mechanism is fixedly connected to the four atomizing nozzles (44). Inside the detection box (11) and on both sides of the installation frame (5), a first fan (101) and a second fan (102) are respectively fixedly arranged.

2. The harsh environment detection device for the production of reinforced liquid crystal displays according to claim 1, characterized in that: The water supply mechanism includes a high-pressure water pump (4) fixedly arranged on the top of the fixing seat (10). One end of the high-pressure water pump (4) is fixedly connected to a water suction pipe (41). One end of the water suction pipe (41) extends into the inside of a water storage tank (2). The other end of the high-pressure water pump (4) is fixedly provided with a water outlet pipe (40). One end of the water outlet pipe (40) extends to the top of the top plate (14) and is fixedly connected to a solenoid valve (42). Four water distribution pipes (43) are fixedly connected to the outside of the solenoid valve (42). The four water distribution pipes (43) all penetrate through the sealing plate (15) and the top plate (14) and are respectively fixedly connected to the four atomizing nozzles (44). One side of the humidity control unit is in signal connection with the solenoid valve (42). One side of the system control center is in signal connection with a humidity control unit, an impurity control unit, a water level control unit, and an alarm control unit. One side of the alarm control unit is in signal connection with the operation panel (13). One side of the data storage center is in signal connection with a humidity detection unit, a water level detection unit, and an impurity detection unit. The humidity detection unit is in signal connection with a humidity sensor (17). The humidity detection unit is in signal connection with a water level sensor (18). A plurality of humidity sensors (17) are fixedly arranged on the inner wall of the detection box (11). A water level sensor (18) is fixedly arranged on the inner wall of the detection box (11) above the placement table (16); Inside the humidity control unit, a valve control module, a water pump control module, and a fan control module are fixedly arranged. Inside the solenoid valve (42), a solenoid valve control switch is fixedly arranged. Inside the high-pressure water pump (4), a water pump control switch is fixedly arranged. Inside the first fan (101), a first fan switch is fixedly arranged. Inside the second fan (102), a second fan switch is fixedly arranged. One side of the valve control module is signal-connected to the valve control switch. One side of the water pump control module is signal-connected to the water pump control switch. One side of the fan control module is signal-connected to the first fan switch and the second fan switch.

3. The harsh environment detection device for the production of reinforced liquid crystal displays according to claim 2, characterized in that: On both sides of the mounting frame (5) at the bottom of the detection box (11), a fifth drain pipe (24) and a fourth drain pipe (23) are respectively fixedly connected. Inside the water level sensor (18), a second drain groove (26) and a first drain groove (25) are respectively formed above the fifth drain pipe (24) and the operation panel (13). Inside the detection box (11), a drainage mechanism is slidably arranged on both sides of the mounting frame (5) at the top of the placement table (16). The upper and lower parts of the second drain groove (26) are respectively communicated with the inside of the detection box (11) and the inside of the fifth drain pipe (24). The upper and lower parts of the first drain groove (25) are respectively communicated with the inside of the detection box (11) and the inside of the fourth drain pipe (23). The bottoms of the fourth drain pipe (23) and the fifth drain pipe (24) are fixedly connected to a third drain pipe (22). One side of the third drain pipe (22) is fixedly connected to a second drain pipe (21). One side of the second drain pipe (21) is fixedly provided with a squeeze control box (3). The other side of the second drain pipe (21) is snap-fitted and fixedly connected with an impurity collection mechanism. The bottom of the second drain pipe (21) is fixedly connected to a first drain pipe (20). The first drain pipe (20) is fixedly arranged on one side of the top of the water storage tank (2) and is internally communicated with the water storage tank (2).

4. The harsh environment detection device for the production of reinforced liquid crystal displays according to claim 3, characterized in that: The drainage mechanism includes drainage scrapers (70) slidably arranged on both sides of the mounting frame (5) at the top of the placement table (16). On the side of both drainage scrapers (70) away from the mounting frame (5), second telescopic rods (7) are fixedly connected. Both second telescopic rods (7) are fixedly arranged inside the detection box (11). Inside both second telescopic rods (7), scraper control switches are fixedly arranged. Both scraper control switches are signal-connected to the water level control unit.

5. An adverse environment detection device for the production of a reinforced liquid crystal display according to claim 3, characterized in that: Inside the extrusion control box (3), a first telescopic rod (31) is fixedly arranged. The output end of the first telescopic rod (31) is fixedly connected to an extrusion plate (32). Inside the second drain pipe (21), a first filter plate (27) is fixedly arranged. Inside the second drain pipe (21), below the first filter plate (27), a guiding inclined plate (28) inclined towards the first drain pipe (20) is fixedly arranged. The extrusion plate (32) is slidably arranged inside the second drain pipe (21) and its bottom is in close connection with the top of the first filter plate (27). Above the top of the extrusion plate (32) and on the upper side near the first telescopic rod (31), a baffle (30) is fixedly arranged. The baffle (30) is slidably arranged inside the second drain pipe (21). Inside the first telescopic rod (31), a push plate control switch is fixedly arranged. The push plate control switch is signal-connected to the impurity control unit. Inside one side of the extrusion control box (3), a distance sensor (33) is fixedly arranged. The detection end of the distance sensor (33) is aligned with the extrusion plate (32). The distance sensor (33) is signal-connected to the impurity detection unit.

6. The harsh environment detection device for reinforced liquid crystal display production according to claim 3, wherein: The impurity collection mechanism includes an impurity storage box (8) fixedly connected by clamping to one side of the second drain pipe (21). The impurity storage box (8) is tightly clamped between the second drain pipe (21) and the first drain pipe (20) and is fixedly connected to the second drain pipe (21) by bolts. On one side of the impurity storage box (8), a second filter plate (80) is fixedly arranged. One side of the second filter plate (80) is in close fit with the first filter plate (27) and is located on the same horizontal plane.

7. An adverse environment detection device for the production of reinforced liquid crystal displays according to claim 2, characterized in that: On the bottom of the sealing plate (15) and the top of the placement table (16), slide rails (19) are fixedly arranged. The mounting frame (5) is slidably connected between the two slide rails (19). Inside the mounting frame (5), support rods (50) are fixedly arranged on both sides of the liquid crystal display (6). On one side of the two slide rails (19), a first rotating block (51) and a second rotating block (53) are respectively rotatably arranged. Inside the first rotating block (51) and the second rotating block (53), a first clamping groove (52) and a second clamping groove (54) are respectively formed. On one side of the liquid crystal display (6), a limiting rod (55) is in close fit. On the upper and lower parts of the limiting rod (55), clamping heads (56) are fixedly arranged. The two clamping heads (56) are respectively clamped and connected inside the first clamping groove (52) and the second clamping groove (54).

Citation Information

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