Artificial Intelligence-Based Interactive Intelligent Environmental Quality Sensor and Its System
By designing the temperature adaptation mechanism and heat dissipation adjustment mechanism in the intelligent environmental quality sensor, the problem of poor temperature adjustment and heat dissipation effect of the sensor is solved, and higher detection accuracy and heat dissipation efficiency are achieved.
Patent Information
- Application Number
- CN202411647699.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2044-11-18
AI Technical Summary
When used, it is difficult to quickly adjust the internal temperature of the sensor when existing intelligent environmental quality sensors are used, resulting in low detection accuracy and poor heat dissipation effect.
An interactive intelligent environmental quality sensor system based on artificial intelligence is designed, using a temperature adapter mechanism and a heat dissipation adjustment mechanism, including a heating wire, a telescopic baffle and a telescopic column. The temperature is quickly adjusted through the fan and heating wire, and the heat dissipation port size is adjusted through the telescopic baffle and a telescopic column.
It realizes that the sensing equipment works within a suitable temperature range, improves detection accuracy and heat dissipation efficiency, and enhances the convenience and stability of the sensor.
Smart Images

Figure CN119509584B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of environmental detection, and specifically to an interactive intelligent environmental quality sensor and its system based on artificial intelligence. Background Technique
[0002] A sensor is a detection device that can sense the information to be measured and transform the sensed information into an electrical signal or other required forms of information output according to certain rules to meet the requirements of information transmission, processing, storage, display, recording, and control. Intelligent environmental quality sensors play an important role in environmental monitoring, protecting human health, and various production activities. With the continuous development of technology, their monitoring accuracy, intelligence level, etc. will also be continuously improved. They are used in the home environment to monitor indoor air quality and protect the health of family members. In industrial production, they can ensure that the production environment meets the standards and avoid product quality problems or production equipment failures caused by environmental factors.
[0003] When common intelligent environmental quality sensors are in use, they cannot quickly bring the temperature inside the sensor to the temperature range suitable for the use of the sensor, resulting in low detection accuracy of the sensor. And when in use, it is inconvenient to adjust the size of the heat dissipation port, resulting in low heat dissipation effect. For this reason, we propose an interactive intelligent environmental quality sensor and its system based on artificial intelligence. Summary of the Invention
[0004] The purpose of the present invention is to provide an interactive intelligent environmental quality sensor and its system based on artificial intelligence.
[0005] To achieve the above purpose, the present invention provides the following technical solution: An interactive intelligent environmental quality sensor based on artificial intelligence, including a sensor main body. The sensor main body includes a stable base, a sensing box fixedly connected to the upper end of the stable base, and a temperature adaptation mechanism connected to the upper end of the sensing box. The temperature adaptation mechanism includes a temperature adaptation cover, a positive clamping plate, an attached clamping plate, a sensing device, a heating wire, a telescopic baffle, and a telescopic column. The upper end of the sensing box is connected to the lower end of the temperature adaptation cover. A temperature control port is penetrated and opened at the upper end of the temperature adaptation cover. A temperature adaptation chamber is penetrated and opened at the upper end of the sensing box, and the temperature control port is communicated with the temperature adaptation chamber. The rear wall of the temperature adaptation chamber is connected to the positive clamping plate and the attached clamping plate through a clamping mechanism. The sensing device is fixedly connected between the positive clamping plate and the attached clamping plate. A guiding mechanism is connected to the upper end of the temperature adaptation cover. The upper end of the stable base is fixedly connected to the heating wire. The front end of the telescopic baffle is connected to the inside of the temperature control port through a heat dissipation adjustment mechanism. A telescopic hole is opened at the rear end of the telescopic baffle, and the outer wall of the telescopic column is slidably connected to the inner wall of the telescopic hole.
[0006] As a further solution of the present invention: The guiding mechanism includes a guiding plate, a threaded column and a fixing frame. A plugging hole is formed in the middle of the upper end of the temperature-adaptive cover. The inner wall of the plugging hole is slidably connected to the outer wall of the guiding plate, and the upper end of the guiding plate extends to the outside of the plugging hole.
[0007] As a further solution of the present invention: A threaded hole is formed in the front side of the upper end of the sensing box. A through hole matching with the threaded hole is formed through the upper end of the temperature-adaptive cover. The threaded column is screwed to the threaded hole through the through hole. Connecting holes are formed through the left and right ends of the fixing frame, and the inner walls of the two connecting holes are slidably connected to the outer wall of the threaded column.
[0008] As a further solution of the present invention: The clamping mechanism includes a clamping frame, a limiting plate and a rubber strip. A downward sliding groove is formed in the rear end of the temperature-adaptive bin. The inner wall of the downward sliding groove is slidably connected to the outer walls of the front clamping plate and the attached clamping plate. Embedded grooves are formed on the sides of the front clamping plate and the attached clamping plate close to each other, and one side of the rubber strip is fixedly connected to the inner walls of the two embedded grooves. One side of the two rubber strips close to each other is fixedly connected to the front and rear sides of the sensing device.
[0009] As a further solution of the present invention: Two clamping grooves are formed at the upper and lower ends of the front clamping plate and the attached clamping plate. Limiting holes are formed in the inner walls of the eight clamping grooves. The inner walls of the eight clamping grooves are fixedly connected to the inner rings of the four clamping frames, and one side of the clamping frame close to the clamping groove is fixedly connected to the limiting plate, and the limiting plate cooperates with the limiting hole.
[0010] As a further solution of the present invention: An installation bin is formed in the upper end of the stable base. A fan is fixedly connected to the bottom wall of the installation bin, and the upper side of the inner wall of the installation bin is fixedly connected to the outer wall of the heating wire.
[0011] As a further solution of the present invention: The heat dissipation adjustment mechanism includes a U-shaped plate, a connecting shaft, an installation block, a rotating shaft, a sealing plate, a telescopic pump, a plugging plate and an L-shaped frame. A lifting bin is formed in the rear wall of the temperature control port. The inner wall of the lifting bin is slidably connected to the outer wall of the U-shaped plate. The left and right ends of the front side of the U-shaped plate are rotatably connected to the connecting shaft, and a rotating hole is formed in the rear end of the telescopic column, and the inner wall of the rotating hole is rotatably connected to the outer wall of the connecting shaft. The front wall of the temperature control port is fixedly connected to the front ends of the two installation blocks. The left and right ends of the rotating shaft are rotatably connected between the two installation blocks. The outer wall of the rotating shaft is rotatably connected to the front end of the telescopic baffle. The bottom wall of the lifting bin is rotatably connected to the bottom wall of the reciprocating screw rod, and a threaded hole is formed in the lower end of the U-shaped plate. The inner wall of the threaded hole is screwed to the outer wall of the reciprocating screw rod, and the upper end of the reciprocating screw rod extends to the outside of the temperature-adaptive cover.
[0012] As a further solution of the present invention: a sealing chamber is provided at the front end of the temperature control port, and the sealing chamber is located below the mounting block. The inner wall of the sealing chamber is slidably connected to the outer wall of the sealing plate. The front end of the sealing plate is fixedly connected to the rear end of the plugging plate. The inner wall of the plugging plate is fixedly connected to the outer wall of the L-shaped frame. An installation groove is provided at the upper end of the temperature adaption cover. The inner wall of the installation groove is fixedly connected to the outer wall of the telescopic pump. The front end of the telescopic pump is fixedly connected to the rear end of the L-shaped frame, and the upper end of the telescopic pump contacts the lower end of the fixing frame. A temperature sensor is fixedly connected to the front end of the attached clamping plate.
[0013] In addition, an interactive intelligent environmental quality sensing system based on artificial intelligence is also provided, including a heat dissipation module, a temperature adaption module, and a control platform;
[0014] The heat dissipation module includes a fan and a telescopic pump, which can dissipate heat from the sensing device and reduce the temperature of the sensing device;
[0015] The temperature adaption module includes a heating wire, which can generate heat to quickly reach the temperature suitable for the sensing device to work inside the temperature adaption chamber;
[0016] The control platform can obtain information of the fan, the heating wire, the telescopic pump, and the temperature sensor and control them. At the same time, the control platform is electrically connected to the sensing device, and a voice recognition unit is installed inside the control platform to recognize the instructions issued by the user.
[0017] Adopting the above technical solutions, compared with the prior art, the beneficial effects of the present invention are as follows:
[0018] 1. The present invention can generate heat through the heating wire and transfer the heat to the inside of the temperature adaption chamber. The temperature adaption chamber can store heat and use the heat to keep the sensing device within the suitable temperature range for use, increasing the sensing effect of the sensing device and improving the accuracy of environmental quality detection. Through the setting of the positive clamping plate and the attached clamping plate, the convenience of installing the sensing device can be increased. The telescopic baffle and the telescopic column can adjust the size of the heat dissipation port in a more novel way, improving the heat dissipation efficiency;
[0019] 2. Through the setting of the clamping frame and the limiting plate, the present invention can cooperate with the clamping groove and the limiting hole to further improve the fixing effect of the positive clamping plate and the attached clamping plate on the sensing device, making the sensing device more stable during installation. The embedded groove facilitates the installation of the sensing device. The rubber strip can further increase the stability of the sensing device during installation and use. The fan can quickly transfer the heat to the inside of the temperature adaption chamber, and when the heating wire is turned off, the fan can also play a role in improving heat dissipation. At the same time, the guiding plate can guide the direction of the air outlet;
[0020] 3. Through the lifting of the U-shaped plate, the telescopic baffle and the telescopic column can be pulled to expand and contract. At this time, the telescopic baffle and the telescopic column can be in an inclined state, thereby increasing the size of the heat dissipation port and improving the heat dissipation efficiency. The sealing plate can better control the state of the temperature control port, making it more convenient to control the temperature inside the temperature adaptation bin. Moreover, there are multiple temperature adaptation bins, making each sensing device independent. In this way, each sensing device can be within a suitable temperature range during use, improving the accuracy of the sensing device detection.
[0021] Other advantages, objectives, and features of the present invention will be described to some extent in the subsequent specification, and to some extent, will be obvious to those skilled in the art based on the study of the following text, or can be learned from the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a schematic perspective view of the whole in the embodiment of the present invention;
[0023] Figure 2 It is a schematic perspective view of the temperature adaptation cover in the embodiment of the present invention;
[0024] Figure 3 It is a schematic perspective view of the sensing box in the embodiment of the present invention;
[0025] Figure 4 It is a schematic perspective view of the stable base in the embodiment of the present invention;
[0026] Figure 5 It is a schematic perspective view of the positive clamping plate in the embodiment of the present invention;
[0027] Figure 6 It is a schematic perspective view of the clamping and fixing frame in the embodiment of the present invention;
[0028] Figure 7 It is a schematic perspective view of the fixing frame in the embodiment of the present invention;
[0029] Figure 8 It is a schematic perspective view of the U-shaped plate in the embodiment of the present invention;
[0030] Figure 9 It is a schematic perspective view of the telescopic baffle in the embodiment of the present invention.
[0031] In the figure: 1. Sensor main body; 11. Stable base; 12. Sensing box; 2. Temperature adaptation mechanism; 21. Temperature adaptation cover; 22. Temperature control port; 23. Temperature adaptation chamber; 24. Positive clamping plate; 25. Auxiliary clamping plate; 26. Sensing device; 27. Heating wire; 28. Telescopic baffle; 29. Telescopic column; 3. Guiding mechanism; 31. Guiding plate; 32. Insertion hole; 33. Threaded column; 34. Fixed frame; 4. Clamping mechanism; 41. Lower chute; 43. Clamping groove; 44. Limiting hole; 45. Clamping frame; 46. Limiting plate; 47. Embedded groove; 48. Rubber strip; 5. Installation chamber; 6. Heat dissipation adjustment mechanism; 61. Lifting chamber; 62. U-shaped plate; 63. Connecting shaft; 64. Installation block; 65. Rotating shaft; 66. Sealing plate; 67. Telescopic pump; 68. Insertion plate; 69. L-shaped frame; 7. Reciprocating lead screw; 8. Temperature sensor. Detailed implementation manners
[0032] The following further describes the detailed implementation manners of the present invention with reference to the accompanying drawings. It should be noted here that the description of these implementation manners is used to help understand the present invention, but does not constitute a limitation to the present invention.
[0033] In addition, the technical features involved in the various implementation manners of the present invention described below can be combined with each other as long as they do not conflict with each other.
[0034] Please refer to the attached Figure 1 - attached Figure 9 , the artificial intelligence-based interactive intelligent environmental quality sensor and its system of the present invention include a sensor main body 1. The sensor main body 1 includes a stable base 11, a sensing box 12 fixedly connected to the upper end of the stable base 11, and a temperature adaptation mechanism 2 connected to the upper end of the sensing box 12. The temperature adaptation mechanism 2 includes a temperature adaptation cover 21, a positive clamping plate 24, an auxiliary clamping plate 25, a sensing device 26, a heating wire 27, a telescopic baffle 28, and a telescopic column 29. The upper end of the sensing box 12 is connected to the lower end of the temperature adaptation cover 21. A temperature control port 22 is opened through the upper end of the temperature adaptation cover 21. A temperature adaptation chamber 23 is opened through the upper end of the sensing box 12, and the temperature control port 22 is communicated with the temperature adaptation chamber 23. The rear wall of the temperature adaptation chamber 23 is connected to the positive clamping plate 24 and the auxiliary clamping plate 25 through a clamping mechanism 4. The sensing device 26 is fixedly connected between the positive clamping plate 24 and the auxiliary clamping plate 25. A guiding mechanism 3 is connected to the upper end of the temperature adaptation cover 21. The upper end of the stable base 11 is fixedly connected to the heating wire 27. The inside of the temperature control port 22 is connected to the front end of the telescopic baffle 28 through a heat dissipation adjustment mechanism 6. A telescopic hole is opened at the rear end of the telescopic baffle 28, and the outer wall of the telescopic column 29 slides on the inner wall of the telescopic hole.
[0035] Embodiment 1. The guiding mechanism 3 includes a guiding plate 31, a threaded column 33, and a fixing frame 34. A plugging hole 32 is formed in the middle of the upper end of the temperature-adaptive cover 21. The inner wall of the plugging hole 32 is slidably connected to the outer wall of the guiding plate 31, and the upper end of the guiding plate 31 extends to the outside of the plugging hole 32.
[0036] A threaded hole is formed in the front side of the upper end of the sensing box 12. A through hole that mates with the threaded hole is formed through the upper end of the temperature-adaptive cover 21. The threaded column 33 is screwed to the threaded hole through the through hole. Connecting holes are formed through the left and right ends of the fixing frame 34, and the inner walls of the two connecting holes are slidably connected to the outer wall of the threaded column 33.
[0037] A threaded hole is formed in the front side of the upper end of the sensing box 12. A through hole that mates with the threaded hole is formed through the upper end of the temperature-adaptive cover 21. The threaded column 33 is screwed to the threaded hole through the through hole. Connecting holes are formed through the left and right ends of the fixing frame 34, and the inner walls of the two connecting holes are slidably connected to the outer wall of the threaded column 33.
[0038] Specifically, the temperature-adaptive cover 21 is connected to the upper end of the sensing box 12 through a hinge, so that the temperature-adaptive cover 21 can be flipped along the position where it is connected by the hinge. Then, a buckle is installed on the side of the temperature-adaptive cover 21 away from the hinge connection, and a card slot is installed at the front end of the sensing box 12. When the temperature-adaptive cover 21 is fixed to the upper end of the sensing box 12, the position of the temperature-adaptive cover 21 can be fixed by the clamping of the buckle and the card slot.
[0039] Embodiment 2. The clamping mechanism 4 includes a clamping frame 45, a limiting plate 46, and a rubber strip 48. A downward chute 41 is formed in the rear end of the temperature-adaptive bin 23. The inner wall of the downward chute 41 is slidably connected to the outer walls of the positive clamping plate 24 and the attached clamping plate 25. Embedded grooves 47 are formed on the sides of the positive clamping plate 24 and the attached clamping plate 25 that are close to each other, and the inner walls of the two embedded grooves 47 are fixedly connected to one side of the rubber strip 48. The sides of the two rubber strips 48 that are close to each other are fixedly connected to the front and rear sides of the sensing device 26.
[0040] Two clamping grooves 43 are formed at the upper and lower ends of the positive clamping plate 24 and the attached clamping plate 25. Limiting holes 44 are formed in the inner walls of the eight clamping grooves 43. The inner walls of the eight clamping grooves 43 are fixedly connected to the inner circles of the four clamping frames 45, and the sides of the clamping frames 45 close to the clamping grooves 43 are fixedly connected to the limiting plates 46, and the limiting plates 46 cooperate with the limiting holes 44.
[0041] An installation bin 5 is formed in the upper end of the stable base 11. A fan is fixedly connected to the bottom wall of the installation bin 5, and the upper side of the inner wall of the installation bin 5 is fixedly connected to the outer wall of the heating wire 27.
[0042] Specifically, ball bearings are added to the left and right sides of the main clamping plate 24 and the auxiliary clamping plate 25 to make the lifting of the main clamping plate 24 and the auxiliary clamping plate 25 smoother. At the same time, bumps can be fixedly connected to the lower ends of the left and right sides of the main clamping plate 24 and the auxiliary clamping plate 25, and sliding grooves are opened on the inner wall of the lower sliding groove 41 so that the bumps extend into the interior of the sliding grooves, and the sliding grooves do not penetrate the lower sliding groove 41, thereby limiting the positions of the main clamping plate 24 and the auxiliary clamping plate 25 to prevent the main clamping plate 24 and the auxiliary clamping plate 25 from protruding and causing the main clamping plate 24 and the auxiliary clamping plate 25 to fall or be lost. Rubber plates are added to the upper and lower ends of the main clamping plate 24 and the auxiliary clamping plate 25, and when installing the temperature adaptor cover 21, the rubber plates can be used to form a squeezing effect on the main clamping plate 24 and the auxiliary clamping plate 25, improving the stability of the main clamping plate 24 and the auxiliary clamping plate 25 after installation.
[0043] Embodiment 3: The heat dissipation adjustment mechanism 6 includes a U-shaped plate 62, a connecting shaft 63, a mounting block 64, a rotating shaft 65, a sealing plate 66, a telescopic pump 67, a plug-in plate 68, and an L-shaped frame 69. A lifting chamber 61 is opened on the rear wall of the temperature control port 22. The inner wall of the lifting chamber 61 is slidably connected to the outer wall of the U-shaped plate 62. The left and right ends of the front side of the U-shaped plate 62 close to each other are rotatably connected to the left and right ends of the connecting shaft 63. A rotating hole is opened at the rear end of the telescopic column 29, and the inner wall of the rotating hole is rotatably connected to the outer wall of the connecting shaft 63. The front wall of the temperature control port 22 is fixedly connected to the front ends of two mounting blocks 64. The left and right ends of a rotating shaft 65 are rotatably connected between the two mounting blocks 64. The outer wall of the rotating shaft 65 is rotatably connected to the front end of the telescopic baffle 28. The bottom wall of the lifting chamber 61 is rotatably connected to the bottom wall of the reciprocating lead screw 7. A threaded hole is opened at the lower end of the U-shaped plate 62, and the inner wall of the threaded hole is helically connected to the outer wall of the reciprocating lead screw 7. The upper end of the reciprocating lead screw 7 extends to the outside of the temperature adaptor cover 21;
[0044] A sealing chamber is opened on the front wall of the temperature control port 22, and the sealing chamber is located below the mounting block 64. The inner wall of the sealing chamber is slidably connected to the outer wall of the sealing plate 66. The front end of the sealing plate 66 is fixedly connected to the rear end of the plug-in plate 68. The inner wall of the plug-in plate 68 is fixedly connected to the outer wall of the L-shaped frame 69. An installation groove is opened on the upper end of the temperature adaptor cover 21, and the inner wall of the installation groove is fixedly connected to the outer wall of the telescopic pump 67. The front end of the telescopic pump 67 is fixedly connected to the rear end of the L-shaped frame 69, and the upper end of the telescopic pump 67 contacts the lower end of the fixing frame 34. A temperature sensor 8 is fixedly connected to the front end of the auxiliary clamping plate 25;
[0045] Specifically, the telescopic baffle 28 and the telescopic column 29 can be replaced with electric telescopic rods, and then the electric telescopic rods are placed obliquely. At this time, the reciprocating lead screw 7 can be cancelled, and pulleys are installed at the rear end of the U-shaped plate 62. At the same time, sliders are installed on the left and right sides of the U-shaped plate 62, and chutes are opened on the left and right inner walls of the lifting bin 61, so that the sliders extend into the interior of the chutes. When the electric telescopic rod pushes the U-shaped plate 62 to lift and lower, the U-shaped plate 62 can lift and lower more smoothly, and the U-shaped plate 62 can be restricted so that the U-shaped plate 62 can always be in a horizontal state during lifting and lowering.
[0046] Embodiment 4 includes a heat dissipation module, a temperature adaptation module, and a control platform;
[0047] The heat dissipation module includes a fan and a telescopic pump 67, which can dissipate heat from the sensing device 26 and reduce the temperature of the sensing device 26;
[0048] The temperature adaptation module includes a heating wire 27, which can generate heat to quickly reach the temperature suitable for the sensing device 26 to work inside the temperature adaptation bin 23;
[0049] The control platform can obtain the information of the fan, the heating wire 27, the telescopic pump 67, and the temperature sensor 8, and control them. At the same time, the control platform is electrically connected to the sensing device 26, and a voice recognition unit is installed inside the control platform to recognize the instructions issued by the user;
[0050] Specifically, after receiving the environmental quality sensing information, the control platform will first sense the temperature on the sensing device 26 through the temperature sensor 8. When the temperature on the sensing device 26 is higher than 25 °C, it will directly control the telescopic pump 67 and the sealing plate 66 to open the temperature control port 22 and start the fan for heat dissipation. When the temperature on the sensing device 26 is lower than 15 °C, the fan and the heating wire 27 will be started at the same time. The heat generated by the fan is transferred to the sensing device 26, and the temperature of the sensing device 26 is sensed through the temperature sensor 8 until the temperature of the sensing device 26 is higher than 25 °C, and then the heating wire 27 is turned off. When the temperature of the sensing device 26 continues to rise, the telescopic pump 67 and the sealing plate 66 will be controlled to open the temperature control port 22, and the heat is transferred to the outside by the wind generated by the fan to cool the sensing device 26.
[0051] Working principle:
[0052] First, install the sensing device 26 to be used between the front splint 24 and the attached splint 25. Then, fasten the clamping frame 45 and the limiting plate 46 into the inside of the clamping groove 43 and the limiting hole 44 to fix the front splint 24 and the attached splint 25 together. Then, install the front splint 24 and the attached splint 25 along the sliding chute 41 to the rear side of the temperature adaptation chamber 23, and install the temperature adaptation cover 21 on the top of the sensing box 12 through the threaded column 33 and the fixing frame 34, which can further fix the positions of the front splint 24 and the attached splint 25. When it is necessary to start the sensing device 26 to detect the surrounding environment, the fan and the heating wire 27 will be immediately started. The heat energy is transferred to the inside of the temperature adaptation chamber 23 by the fan and the heating wire 27, and then the sensing device 26 is heated to make the sensing device 26 in a suitable temperature range. When the temperature of the sensing device 26 exceeds 25°C, the heating wire 27 will be immediately turned off, and the temperature change of the sensing device 26 will be monitored in real time. When the temperature of the sensing device 26 exceeds 25°C, the telescopic pump 67 will be started to pull the sealing plate 66 to expand and contract, thereby opening the temperature control port 22. At this time, the heat energy can be blown out by the fan to reduce the temperature inside the temperature adaptation chamber 23. At the same time, after opening the temperature control port 22, the reciprocating lead screw 7 can be rotated. The rotation of the reciprocating lead screw 7 makes the U-shaped plate 62 move upward. At this time, the U-shaped plate 62 will drive the telescopic baffle 28 and the telescopic column 29 to rotate along the rotating shaft 65, and the telescopic column 29 will extend out of the inside of the telescopic baffle 28, thereby increasing the area of the air outlet and improving the heat dissipation speed. Thus, the entire working process ends.
[0053] The above front, rear, left, right, up, and down are all based on the Figure 1 description in the attached drawings of the specification. Taking the perspective of the observer as the standard, the side of the device facing the observer is defined as the front, and the left side of the observer is defined as the left, and so on.
[0054] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "lateral", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as limiting the protection scope of the present invention.
[0055] The above describes the embodiments of the present invention in detail with reference to the drawings, but the present invention is not limited to the described embodiments.
[0056] For those skilled in the art, without departing from the principle and spirit of the present invention, various changes, modifications, substitutions, and variations made to these embodiments still fall within the protection scope of the present invention.
Claims
1. An interactive intelligent environmental quality sensor based on artificial intelligence, comprising a sensor body (1), wherein the sensor body (1) comprises a stable base (11), a sensor box (12) fixedly connected to the upper end of the stable base (11), and a temperature adaptation mechanism (2) connected to the upper end of the sensor box (12), characterized in that: The temperature adaptation mechanism (2) comprises a temperature adaptation cover (21), a main clamping plate (24), an auxiliary clamping plate (25), a sensing device (26), a heating wire (27), a telescopic baffle (28) and a telescopic column (29); the upper end of the sensing box (12) is connected to the lower end of the temperature adaptation cover (21); a temperature control port (22) is provided through the upper end of the temperature adaptation cover (21); a temperature adaptation chamber (23) is provided through the upper end of the sensing box (12); the temperature control port (22) is communicated with the temperature adaptation chamber (23); the rear wall of the temperature adaptation chamber (23) is connected via a clamping mechanism (4 ) is connected to the main clamping plate (24) and the auxiliary clamping plate (25), the sensing device (26) is fixedly connected between the main clamping plate (24) and the auxiliary clamping plate (25), the upper end of the temperature-adaptable cover (21) is connected to the guiding mechanism (3), the upper end of the stable base (11) is fixedly connected to the heating wire (27), the interior of the temperature control port (22) is connected to the front end of the telescopic baffle (28) through the heat dissipation adjustment mechanism (6), the rear end of the telescopic baffle (28) is provided with a telescopic hole, and the inner wall of the telescopic hole is slidably connected to the outer wall of the telescopic column (29); The clamping mechanism (4) comprises a clamping frame (45), a limit plate (46) and a rubber strip (48); a lower sliding groove (41) is provided at the rear end of the temperature-adapting chamber (23); the inner wall of the lower sliding groove (41) is slidably connected to the outer walls of the main clamping plate (24) and the auxiliary clamping plate (25); the sides of the main clamping plate (24) and the auxiliary clamping plate (25) close to each other are provided with an embedded groove (47); the inner walls of the two embedded grooves (47) are fixedly connected to one side of the rubber strip (48); the sides of the two rubber strips (48) close to each other are fixedly connected to the front and rear sides of the sensor device (26); The heat dissipation adjustment mechanism (6) comprises a U-shaped plate (62), a connecting shaft (63), a mounting block (64), a rotating shaft (65), a sealing plate (66), a telescopic pump (67), a plug-in plate (68) and an L-shaped frame (69); a lifting chamber (61) is provided on the rear wall of the temperature control port (22); the inner wall of the lifting chamber (61) is slidably connected to the outer wall of the U-shaped plate (62); the front end of the U-shaped plate (62) is rotatably connected to the left and right ends of the connecting shaft (63); a rotating hole is provided on the rear end of the telescopic column (29); and the inner wall of the rotating hole is connected to the connecting shaft ( The outer wall of the temperature control port (22) is rotatably connected to the front end of the two mounting blocks (64), the front wall of the temperature control port (22) is fixedly connected to the front ends of the two mounting blocks (64), the two mounting blocks (64) are rotatably connected to the left and right ends of the rotating shaft (65), the outer wall of the rotating shaft (65) is rotatably connected to the front end of the telescopic baffle (28), the bottom wall of the lifting bin (61) is rotatably connected to the bottom wall of the reciprocating screw (7), and a threaded hole is formed at the lower end of the U-shaped plate (62), the inner wall of the threaded hole is spirally connected to the outer wall of the reciprocating screw (7), and the upper end of the reciprocating screw (7) extends to the outside of the temperature suitable cover (21).
2. The interactive intelligent environmental quality sensor based on artificial intelligence according to claim 1 is characterized in that: The guide mechanism (3) comprises a guide plate (31), a threaded column (33) and a fixing frame (34); a plug hole (32) is provided in the middle of the upper end of the temperature-adaptable cover (21); an inner wall of the plug hole (32) is slidably connected to an outer wall of the guide plate (31), and the upper end of the guide plate (31) extends to the outside of the plug hole (32).
3. The interactive intelligent environmental quality sensor based on artificial intelligence according to claim 2 is characterized in that: A threaded hole is formed at the front side of the upper end of the sensor box (12); a through hole cooperating with the threaded hole is formed through the upper end of the temperature-adaptable cover (21); the threaded column (33) is screwedly connected to the threaded hole through the through hole; connection holes are formed at both left and right ends of the fixing frame (34); and the inner walls of the two connection holes are slidably connected to the outer wall of the threaded column (33).
4. The interactive intelligent environmental quality sensor based on artificial intelligence according to claim 1 is characterized in that: The upper and lower ends of the main clamping plate (24) and the auxiliary clamping plate (25) are each provided with two fixing grooves (43), and the inner walls of the eight fixing grooves (43) are each provided with a limiting hole (44). The inner walls of the eight fixing grooves (43) are fixedly connected to the inner rings of four fixing frames (45), and the sides of the fixing frames (45) close to the fixing grooves (43) are fixedly connected to the limiting plates (46), and the limiting plates (46) and the limiting holes (44) cooperate with each other.
5. The interactive intelligent environmental quality sensor based on artificial intelligence according to claim 1 is characterized in that: An installation chamber (5) is provided at the upper end of the stable base (11), a fan is fixedly connected to the bottom wall of the installation chamber (5), and the upper side of the inner wall of the installation chamber (5) is fixedly connected to the outer wall of the heating wire (27).
6. The interactive intelligent environmental quality sensor based on artificial intelligence according to claim 1 is characterized in that: A sealing chamber is provided at the front end of the temperature control port (22), and the sealing chamber is located below the mounting block (64); the inner wall of the sealing chamber is slidably connected to the outer wall of the sealing plate (66); the front end of the sealing plate (66) is fixedly connected to the rear end of the plug-in board (68); the inner wall of the plug-in board (68) is fixedly connected to the outer wall of the L-shaped frame (69); a mounting groove is provided at the upper end of the temperature-adaptable cover (21); the inner wall of the mounting groove is fixedly connected to the outer wall of the telescopic pump (67); the front end of the telescopic pump (67) is fixedly connected to the rear end of the L-shaped frame (69); the upper end of the telescopic pump (67) is in contact with the lower end of the fixed frame (34); and the front end of the attached clamping plate (25) is fixedly connected to a temperature sensor (8).
7. An interactive intelligent environmental quality sensing system based on artificial intelligence applicable to any one of the interactive intelligent environmental quality sensors based on artificial intelligence according to claims 1 to 6, characterized in that: Including heat dissipation module, temperature adjustment module and control platform; A heat dissipation module, including a fan and a telescopic pump (67), capable of dissipating heat from the sensor device (26) to reduce the temperature of the sensor device (26); The temperature adaptation module includes a heating wire (27) capable of generating heat so that the temperature inside the temperature adaptation chamber (23) quickly reaches a temperature suitable for the operation of the sensing device (26); The control platform is capable of acquiring information from the fan, the heating wire (27), the telescopic pump (67) and the temperature sensor (8), and controlling the same. The control platform is electrically connected to the sensor device (26), and a voice recognition unit is installed inside the control platform to recognize commands issued by a user.
Citation Information
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