Bionic butterfly for monitoring air quality
By designing bionic butterflies for air quality monitoring, including main chassis, maintenance support equipment and monitoring support devices, the problems of cumbersome maintenance and detection and monitoring blind spots of existing equipment are solved, rapid maintenance and extensive monitoring are achieved, and efficiency and quality are improved.
Patent Information
- Application Number
- CN202421451960.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-25
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2034-06-25
AI Technical Summary
The maintenance and testing procedures for existing air quality monitoring equipment are cumbersome during use, and there are disadvantages in the placement of monitoring instruments, which is not conducive to the rapid detection of air quality and the rapid maintenance of equipment.
A bionic butterfly for air quality monitoring was designed, including the main chassis, maintenance support equipment and monitoring support devices. These devices allow maintenance personnel to quickly repair damaged parts inside the main chassis, broaden the maintenance space, improve the monitoring range, and avoid monitoring blind spots.
It realizes rapid maintenance and extensive monitoring, improves maintenance efficiency and monitoring quality, and avoids safety hazards and monitoring blind spots during equipment maintenance.
Smart Images

Figure CN222896144U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of monitoring equipment, in particular to a bionic butterfly for air quality monitoring. Background Art
[0002] Air quality testing refers to the testing of air quality. The quality of air quality reflects the concentration of pollutants in the air. Air pollution is a complex phenomenon. The concentration of air pollutants at a specific time and place is affected by many factors. The emission of man-made pollutants from fixed and mobile pollution sources is one of the most important factors affecting air quality, including exhaust from vehicles, ships, aircraft, industrial production emissions, residents' lives and heating, garbage incineration, etc. The development density of the city, topography and meteorology are also important factors affecting air quality.
[0003] However, it still has some shortcomings. For example, the maintenance and inspection procedures of the currently used air quality monitoring equipment are cumbersome during use, which is not conducive to rapid maintenance by maintenance personnel. In addition, the placement of the monitoring instrument of the currently used air quality monitoring equipment during use has many disadvantages, which is not conducive to air quality detection.
[0004] In order to solve the above problems, this application proposes a bionic butterfly for air quality monitoring. Utility Model Content
[0005] The utility model aims to provide a bionic butterfly for air quality monitoring, so as to solve the problems in the prior art proposed in the above background technology that rapid monitoring is impossible and the equipment cannot be quickly repaired after being damaged.
[0006] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a bionic butterfly for air quality monitoring, comprising a main body chassis, the upper outer surface of the main body chassis is movably connected to a chassis cover, the outer surface of one side of the main body chassis is detachably connected to a fender, the front end outer surface of the main body chassis is fixedly connected to a front end base, the lower end outer surface of the main body chassis is slidably connected to a monitoring support device, the front end outer surface of the front end base is detachably connected to a front end top seat, and the upper end outer surface of the chassis cover is fixedly connected to an information sign.
[0007] Preferably, a rear end heat dissipation window is provided on the rear end outer surface of the main chassis, a maintenance support device is embedded on the upper end outer surface of the main chassis, a power motor is threadedly connected to the lower end inner surface of the front end base, an auxiliary camera is detachably connected to the lower end inner surface of the front end base, a front end outer surface of the monitoring support device is fixedly connected to a front heat dissipation net, and a signal transmission column is electrically connected to the upper end outer surface of the monitoring support device.
[0008] Preferably, the maintenance support equipment includes a first support rod, a second support rod, a No. 1 auxiliary rod, a No. 2 auxiliary rod, an auxiliary rod adjustment ring and a support rod brake cart. The lower end outer surface of the first support rod is embeddedly connected to the upper end outer surface of the main chassis through the lower end outer surface of the support rod brake cart. The lower end outer surface of the first support rod is detachably connected to the support rod brake cart.
[0009] Preferably, the second support rod is hinged on the outer surface of the upper end of the first support rod, the outer surface of the rear end of the first support rod is detachably connected to the first auxiliary rod, one end of the first auxiliary rod is movably connected to the second auxiliary rod, and the outer wall of the first auxiliary rod is rotatably connected to the auxiliary rod adjustment ring.
[0010] Preferably, the monitoring support device includes a square base, a square bottom pulley, an external fixed plate, a primary telescopic rod, a secondary telescopic rod, a telescopic rod controller and a quality detection device; the upper outer surface of the square base is slidingly connected to the outer surface of one side of the main chassis through the outer wall of the square bottom pulley; the upper outer surface of the square base is rotatably connected to the square bottom pulley.
[0011] Preferably, an external fixing plate is fixedly connected to an outer surface of one side of the square base, a first-level telescopic rod is hingedly connected to an outer surface of the front end of the external fixing plate, a second-level telescopic rod is slidably connected to an outer surface of the lower end of the first-level telescopic rod, a telescopic rod controller is rotatably connected to an outer surface of one side of the first-level telescopic rod, and a quality detection device is detachably connected to an outer surface of the lower end of the second-level telescopic rod.
[0012] Compared with the prior art, the beneficial effects of the utility model are:
[0013] The utility model can facilitate maintenance personnel to quickly repair damaged parts inside the main chassis through the maintenance support equipment, and avoid safety accidents caused by the chassis cover falling off during the maintenance process. The arrangement of the maintenance support equipment can also widen the maintenance space to the greatest extent, facilitate maintenance personnel to quickly repair, and improve the work efficiency of maintenance personnel.
[0014] The utility model can facilitate installers to quickly install the quality inspection device by setting up a monitoring support device, so that the quality inspection device can detect a wider range during use, avoiding the occurrence of monitoring blind spots as much as possible, improving the monitoring quality, and also giving the first-level telescopic rod and the second-level telescopic rod a new supporting function. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 This is a schematic diagram of the overall structure of a bionic butterfly for air quality monitoring according to the utility model;
[0016] Figure 2This is a schematic diagram of the internal structure of the main chassis of a bionic butterfly for air quality monitoring in the utility model;
[0017] Figure 3 This is a structural schematic diagram of a bionic butterfly maintenance support device for air quality monitoring in the utility model;
[0018] Figure 4 This is a schematic diagram of the structure of a monitoring support device in a bionic butterfly for air quality monitoring according to the utility model;
[0019] In the figure: 1. Main chassis; 2. Chassis cover; 3. Fender; 4. Front base; 5. Monitoring support device; 6. Front top seat; 7. Information signboard; 8. Rear heat dissipation window; 9. Maintenance support equipment; 10. Power motor; 11. Auxiliary camera; 12. Front heat dissipation net; 13. Signal transmission column; 14. First support rod; 15. Second support rod; 16. Auxiliary rod No. 1; 17. Auxiliary rod No. 2; 18. Auxiliary rod adjustment ring; 19. Support rod brake car; 20. Square base; 21. Square bottom pulley; 22. External fixing plate; 23. First telescopic rod; 24. Second telescopic rod; 25. Telescopic rod controller; 26. Quality detection device. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments.
[0021] See also Figure 1-Figure 4 The utility model provides a technical solution: a bionic butterfly for air quality monitoring, comprising a main chassis 1, the upper outer surface of the main chassis 1 is movably connected to a chassis cover 2, the outer surface of one side of the main chassis 1 is detachably connected to a leaf plate 3, the front end outer surface of the main chassis 1 is fixedly connected to a front end base 4, the lower end outer surface of the main chassis 1 is slidably connected to a monitoring support device 5, the front end outer surface of the front end base 4 is detachably connected to a front end top seat 6, and the upper end outer surface of the chassis cover 2 is fixedly connected to an information indicator board 7.
[0022] In this embodiment, Figure 2-3As shown, a rear end heat dissipation window 8 is provided on the rear end outer surface of the main chassis 1, a maintenance support device 9 is embeddedly connected to the upper end outer surface of the main chassis 1, a power motor 10 is threadedly connected to the lower end inner surface of the front base 4, an auxiliary camera 11 is detachably connected to the lower end inner surface of the front base 4, a front heat dissipation net 12 is fixedly connected to the front end outer surface of the monitoring support device 5, a signal transmission column 13 is electrically connected to the upper end outer surface of the monitoring support device 5, the maintenance support device 9 includes a first support rod 14, a second support rod 15, a first auxiliary rod 16, a second auxiliary rod 17, an auxiliary rod adjustment ring 18 and a support rod brake car 19, and the lower end outer surface of the first support rod 14 is connected to the support rod brake car 19. The lower end outer surface and the upper end outer surface of the main chassis 1 are embedded in each other, the lower end outer surface of the first support rod 14 is detachably connected with a support rod brake car 19, the upper end outer surface of the first support rod 14 is hinged with a second support rod 15, the rear end outer surface of the first support rod 14 is detachably connected with a No. 1 auxiliary rod 16, one end of the No. 1 auxiliary rod 16 is movably connected with a No. 2 auxiliary rod 17, and the outer wall of the No. 1 auxiliary rod 16 is rotatably connected with an auxiliary rod adjustment ring 18, by providing the first support rod 14 and the second support rod 15, the main chassis 1 can be quickly separated from the chassis cover 2 and the chassis cover 2 can be supported, thereby broadening the maintenance space for maintenance personnel to repair the equipment and facilitating rapid disassembly and maintenance by maintenance personnel.
[0023] In this embodiment, Figure 4 As shown, the monitoring support device 5 includes a square base 20, a square bottom pulley 21, an external fixed plate 22, a primary telescopic rod 23, a secondary telescopic rod 24, a telescopic rod controller 25 and a quality detection device 26. The upper outer surface of the square base 20 is slidably connected to the outer wall of the square bottom pulley 21 and the outer surface of one side of the main chassis 1. The upper outer surface of the square base 20 is rotatably connected with the square bottom pulley 21, and the outer surface of one side of the square base 20 is fixedly connected with the external fixed plate 22. The front end outer surface of the external fixed plate 22 is hinged with a primary telescopic rod 23, the lower end outer surface of the primary telescopic rod 23 is slidably connected with the secondary telescopic rod 24, and the outer surface of one side of the primary telescopic rod 23 is rotatably connected with the telescopic rod controller 25. The lower end outer surface of the secondary telescopic rod 24 is detachably connected with the quality detection device 26. The primary telescopic rod 23 and the secondary telescopic rod 24 can firstly provide sufficient supporting force for the main chassis 1, and can provide a strong position for the installation of the quality detection device 26.
[0024] Working principle:
[0025] First, the user puts the square base 20 into one side surface of the main chassis 1, and fixes the position of the square base 20 on the main chassis 1 through the square bottom pulley 21, which can avoid the occurrence of monitoring blind spots to the greatest extent, and adjusts the position relationship between the primary telescopic rod 23 and the secondary telescopic rod 24 by rotating the telescopic rod controller 25, so that the primary telescopic rod 23 and the secondary telescopic rod 24 can support the main chassis 1, and at the same time, the quality detection device 26 is sleeved on the lower end of the secondary telescopic rod 24, so that the quality detection device 26 can detect the quality in the air to the greatest extent, and at the same time, the quality detection device 26 is set at the lower end of the secondary telescopic rod 24 to prevent the soda in the air from damaging the quality detection device through the protection of the fender 3. The erosion of the device 26 is prevented, and the service life of the quality detection device 26 is improved. After the monitoring support device 5 is installed, the power motor 10 controls the fender 3 to drive the main chassis 1 to enter the designated area for air quality detection, and the auxiliary camera 11 is used to identify the direction of travel. When the information results monitored by the quality detection device 26 are transmitted to the detection terminal through the signal transmission column 13, it is convenient for the monitoring personnel to quickly analyze. When the internal equipment of the main chassis 1 is damaged and needs maintenance, the maintenance personnel separate the chassis cover 2 from the main chassis 1 and pull out the first support rod 14 and the second support rod 15 from the main chassis 1 to support the chassis cover 2, thereby widening the maintenance space to the greatest extent and improving the work efficiency of the maintenance personnel.
[0026] Based on the embodiments of the present utility model, all other embodiments obtained by ordinary technicians in the field without making any creative work shall fall within the scope of protection of the present utility model.
Claims
1. A bionic butterfly for air quality monitoring, comprising a main chassis (1), characterized in that: The upper outer surface of the main chassis (1) is movably connected to a chassis cover (2); a side outer surface of the main chassis (1) is detachably connected to a leaf plate (3); the front outer surface of the main chassis (1) is fixedly connected to a front base (4); the lower outer surface of the main chassis (1) is slidably connected to a monitoring support device (5); the front outer surface of the front base (4) is detachably connected to a front top seat (6); and the upper outer surface of the chassis cover (2) is fixedly connected to an information indicator plate (7).
2. The bionic butterfly for air quality monitoring according to claim 1, characterized in that: The rear end outer surface of the main chassis (1) is provided with a rear end heat dissipation window (8), the upper end outer surface of the main chassis (1) is embedded with a maintenance support device (9), the lower end inner surface of the front base (4) is threadedly connected to a power motor (10), the lower end inner surface of the front base (4) is detachably connected to an auxiliary camera (11), the front end outer surface of the monitoring support device (5) is fixedly connected to a front heat dissipation net (12), and the upper end outer surface of the monitoring support device (5) is electrically connected to a signal transmission column (13).
3. The bionic butterfly for air quality monitoring according to claim 2, characterized in that: The maintenance support device (9) comprises a first support rod (14), a second support rod (15), a first auxiliary rod (16), a second auxiliary rod (17), an auxiliary rod adjustment ring (18) and a support rod brake trolley (19); the lower end outer surface of the first support rod (14) is embeddedly connected to the upper end outer surface of the main chassis (1) through the lower end outer surface of the support rod brake trolley (19); the lower end outer surface of the first support rod (14) is detachably connected to the support rod brake trolley (19).
4. The bionic butterfly for air quality monitoring according to claim 3, characterized in that: The upper end outer surface of the first support rod (14) is hinged with a second support rod (15); the rear end outer surface of the first support rod (14) is detachably connected to a first auxiliary rod (16); one end of the first auxiliary rod (16) is movably connected to a second auxiliary rod (17); and the outer wall of the first auxiliary rod (16) is rotatably connected to an auxiliary rod adjustment ring (18).
5. The bionic butterfly for air quality monitoring according to claim 1, characterized in that: The monitoring support device (5) comprises a square base (20), a square bottom pulley (21), an external fixing plate (22), a primary telescopic rod (23), a secondary telescopic rod (24), a telescopic rod controller (25) and a quality detection device (26); the upper outer surface of the square base (20) is slidably connected to the outer surface of one side of the main chassis (1) via the outer wall of the square bottom pulley (21); and the upper outer surface of the square base (20) is rotatably connected to the square bottom pulley (21).
6. The bionic butterfly for air quality monitoring according to claim 5, characterized in that: An external fixing plate (22) is fixedly connected to an outer surface of one side of the square base (20); a first-stage telescopic rod (23) is hingedly connected to an outer surface of the front end of the external fixing plate (22); a second-stage telescopic rod (24) is slidably connected to an outer surface of the lower end of the first-stage telescopic rod (23); a telescopic rod controller (25) is rotatably connected to an outer surface of one side of the first-stage telescopic rod (23); and a quality detection device (26) is detachably connected to an outer surface of the lower end of the second-stage telescopic rod (24).