Carbon trace detection device
Through the telescopic platform and brake mechanism combined with the roof stand and the lift stand, the problem of large space occupation of existing carbon trace detection devices is solved, flexible lifting and lowering adjustment and all-round carbon detection are realized, and efficient carbon monitoring is adapted to complex environments.
Patent Information
- Application Number
- CN202422285782.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-19
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-09-19
AI Technical Summary
The existing carbon trace detection device occupies a large space and is inconvenient to install, especially in buildings with low indoor space.
A telescopic expansion platform combining a roof stand and a hanging stand is adopted, combined with a brake mechanism and a telescopic screw, to achieve lifting and lowering adjustment of the hanging stand, and is equipped with a carbon monitoring mechanism and air duct system to conduct all-round carbon testing.
It realizes flexible regulation and efficient carbon detection in complex and changeable field environments, reduces space occupancy and adapts to different heights of detection requirements.
Smart Images

Figure CN223229581U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of gas detection, in particular to a carbon trace detection device. Background Art
[0002] As shown in a greenhouse gas-based product carbon footprint measurement device disclosed on the China Patent Network (publication announcement number CN219608887U), during use, this type of device can be installed on the ceiling of the room through the provided installation assembly and second bolt. By starting the provided servo motor, the threaded column can be driven to rotate, and at this time, the carbon dioxide concentration detector can be driven to move up and down, thereby meeting the carbon footprint measurement needs at different heights.
[0003] However, the aforementioned patents and existing carbon footprint detection devices still have some shortcomings: existing lifting components occupy a large vertical space and have significant installation limitations. This is particularly true for buildings with limited interior space, where they easily take up additional space and are inconvenient to install and use. Therefore, those skilled in the art have proposed a carbon footprint detection device to address the issues raised in the background art. Utility Model Content
[0004] In view of the deficiencies of the prior art, the present invention provides a carbon trace detection device, which solves the problem of the prior art carbon trace detection device mentioned above, which occupies a large space and is inconvenient to install.
[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions: A carbon trace detection device includes a top support platform and a hanging support platform that are horizontally opposite to each other;
[0006] The top support platform and the hanging support platform are connected by symmetrically arranged telescopic gallows, and the middle part of the gallows of the two sets of telescopic gallows is provided with a guide slide, and a telescopic screw rod is installed through the inside of the guide slide, and a brake mechanism for driving the telescopic screw rod is installed between the top support platform and the hanging support platform;
[0007] A carbon monitoring mechanism is installed in the middle of the base frame of the suspension support platform;
[0008] The carbon monitoring mechanism includes a rotating motor installed in the middle of the suspension platform bracket, a detection box is installed at the output end of the rotating motor, air ducts are symmetrically installed on both sides of the detection box, and a carbon concentration detector is installed inside the detection box.
[0009] As a further technical solution of the present invention: the braking mechanism includes two groups of arm frames horizontally opposite to each other, one side of the arm frame bracket is slidably connected to a first arm guide rod fixedly connected to the top support platform, and the other side of the arm frame bracket is slidably connected to a second arm guide rod fixedly connected to the suspension support platform, a brake truss is provided in the middle part of the arm frame bracket and is ringed on the telescopic screw rod, and a brake motor for driving the telescopic screw rod is provided at the upper end of the brake truss bracket.
[0010] As a further technical solution of the present invention: a bevel gear A is provided at the output end of the brake motor, and a bevel gear B meshing with the bevel gear A is provided at the middle part of the shaft of the telescopic screw.
[0011] As a further technical solution of the present invention: the telescopic screw rod is bounded by a center line, and positive and negative thread teeth that are compatible with two groups of guide slides are symmetrically arranged on both sides of the center line.
[0012] As a further technical solution of the present invention: a ventilation fan is installed inside the box body of the detection box along the ventilation opening of the air duct.
[0013] As a further technical solution of the present invention: the vent of the air duct is covered with a dust cover, and the inside of the cover of the dust cover is padded with a dust net.
[0014] The present invention provides a carbon trace detection device, which has the following advantages compared with the prior art:
[0015] 1. The carbon trace detection device of this design is based on the combination of a top support platform and a hanging support platform as a telescopic expansion platform. Under the braking combination of the braking mechanism and the telescopic screw, the hanging support platform is driven to move up and down relative to the top support platform, and the carbon monitoring mechanism below it is adjusted to move up and down to adapt to the complex and changeable monitoring environment on site. It has good flexible control and usability, and has a low space occupancy rate. It does not generate additional telescopic expansion space and is better adapted to the on-site environment.
[0016] 2. The carbon trace detection device of this design is based on the rotational calibration of the carbon monitoring mechanism and is driven by the wind pumping of the internal ventilation fan. It can form a circumferential form of carbon detection work, conduct all-round carbon detection work on the on-site environment, and have higher detection efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a structural diagram of a carbon trace detection device;
[0018] Figure 2 It is a structural schematic diagram of a braking mechanism in a carbon trace detection device;
[0019] Figure 3A schematic diagram of the structure of a carbon monitoring mechanism in a carbon trace detection device;
[0020] Figure 4 This is a schematic diagram of the expansion of a carbon monitoring mechanism in a carbon trace detection device.
[0021] In the figure: 1. Top support platform; 2. Hanging support platform; 3. Telescopic gallows; 4. Telescopic screw; 5. Guide slide; 6. Braking mechanism; 61. Arm frame; 62. First arm guide rod; 63. Second arm guide rod; 64. Braking truss; 65. Braking motor; 66. Bevel gear A; 67. Bevel gear B; 7. Rotating motor; 8. Detection box; 9. Air duct; 10. Dust cover; 11. Ventilation fan; 12. Carbon concentration detector; 13. Dust net. DETAILED DESCRIPTION
[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present invention 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 the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0023] See also Figure 1-4 The utility model provides a technical solution for a carbon trace detection device: a carbon trace detection device, comprising a horizontally opposite top support platform 1 and a hanging support platform 2, the top support platform 1 and the hanging support platform 2 are connected by a telescopic gallows 3 arranged in a symmetrical manner, and a guide slide 5 is provided in the middle of the gallows of the two sets of telescopic gallows 3, a telescopic screw rod 4 is installed through the inside of the guide slide 5, and a brake mechanism 6 for driving the telescopic screw rod 4 is installed between the top support platform 1 and the hanging support platform 2, the brake mechanism 6 comprises two horizontally opposite groups of arm force frames 61, one side of the arm force frame 61 is slidably connected to a first arm force guide rod 62 fixedly connected to the top support platform 1, and the other side of the arm force frame 61 is slidably connected to a second arm force guide rod fixedly connected to the hanging support platform 2 Rod 63, the middle part of the bracket of the arm frame 61 is provided with a brake truss 64 which is looped on the telescopic screw rod 4. Since the first arm guide rod 62 and the second arm guide rod 63 are fixedly connected to the top support platform 1 and the hanging support platform 2 respectively, they can play a role of arm force limiting in the vertical direction, and since the brake truss 64 is looped on the telescopic screw rod 4, it can play a role of arm force limiting in the horizontal direction. Then, when the first arm guide rod 62 and the second arm guide rod 63 slide along the arm frame 61, the combination of the arm frame 61 and the brake truss 64 can always be looped on the telescopic screw rod 4 to form a horizontal and vertical limiting state, so that the brake motor 65 can always drive the telescopic screw rod 4 to form an integrated linkage operation state.
[0024] A brake motor 65 for driving the telescopic screw 4 is provided at the upper end of the bracket of the brake truss 64, and a bevel gear A66 is provided at the output end of the brake motor 65. A bevel gear B67 meshing with the bevel gear A66 is provided in the middle of the shaft of the telescopic screw 4. The telescopic screw 4 is bounded by the center line, and positive and negative threads matching the two sets of guide slides 5 are symmetrically provided on both sides of the center line. By controlling the operation of the brake motor 65, the bevel gear A66 is driven to rotate, and the meshing transmission of the bevel gear A66 and the bevel gear B67 is utilized to drive the telescopic screw 4 to rotate. The positive and negative threads on the telescopic screw 4 are used to push the two sets of guide slides 5 to slide symmetrically along the direction of the shaft of the telescopic screw 4, and then push the telescopic gallows 3 to rotate and retract, converting the horizontal thrust into a lifting thrust, pushing the suspension platform 2 to lift and slide relative to the top support platform 1, and calibrating the height and orientation of the carbon monitoring mechanism.
[0025] A carbon monitoring mechanism is installed in the middle of the base frame of the hanging support platform 2. The carbon monitoring mechanism includes a rotating motor 7 installed in the middle of the bracket of the hanging support platform 2. A detection box 8 is installed at the output end of the rotating motor 7. Air ducts 9 are symmetrically installed on both sides of the box body of the detection box 8, and a carbon concentration detector 12 is installed inside the box body of the detection box 8. A ventilation fan 11 is installed along the ventilation port of the air duct 9 inside the box body of the detection box 8. By controlling the operation of the rotating motor 7, the detection box 8 is driven to rotate, and its detection position is circumferentially adjusted and calibrated. At the same time, by controlling the operation of the ventilation fan 11, the combination of the air duct 9 and the detection box 8 forms a ventilation state, and the external air is circumferentially sucked and pumped into the detection box 8, and the carbon concentration detector 12 is used to perform real-time detection of carbon concentration.
[0026] The ventilation port of the air duct 9 is covered with a dust cover 10, and the inside of the cover body of the dust cover 10 is padded with a dust net 13. By using the dust cover with the dust net 13, dust, impurities, etc. in the air can be filtered and isolated to prevent dust and impurities from entering the detection box 8 and adhering to the carbon concentration detector 12. By opening the dust cover 10 later, the dust net 13 can be cleaned and replaced regularly.
[0027] The working principle of the present invention is as follows: when using the carbon trace detection device to carry out carbon detection work in the on-site environment, based on the top support of the top support platform 1, it is hung in the on-site environment in the form of a ceiling, and then after installation, based on the brake mechanism 6, it is vertically connected with the top support platform 1 and the hanging support platform 2, and horizontally connected with the telescopic screw rod 4, to form a horizontal and vertical limited support state, and then by controlling the operation of the brake motor 65, the bevel gear A66 is driven to rotate, and the meshing transmission of the bevel gear A66 and the bevel gear B67 is used to drive the telescopic screw rod 4 to rotate, and the positive and negative threads on the telescopic screw rod 4 are used to push the two groups of guide slides 5 to slide symmetrically along the axis direction of the telescopic screw rod 4, and then push the telescopic gallows 3 to rotate and telescope, and convert the horizontal thrust into a lifting thrust, and push the hanging support platform 2 to lift and slide relative to the top support platform 1, and calibrate the height and orientation of the carbon monitoring mechanism to adapt to the on-site detection environment;
[0028] During the on-site environmental detection process, the rotating motor 7 is controlled to drive the detection box 8 to rotate, and its detection position is circumferentially adjusted and calibrated. While the circumferential adjustment and calibration is performed, the ventilation fan 11 is controlled to operate so that the combination of the air duct 9 and the detection box 8 forms a ventilation state, and the external air is circumferentially sucked and pumped into the detection box 8. The carbon concentration detector 12 is used to perform circumferential and real-time detection of the carbon concentration to improve the accuracy of the detection data.
[0029] The above description is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art may make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications should be considered within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described or explained in this invention shall, unless otherwise specified or limited, be implemented in accordance with conventional means in the art.
Claims
1. A carbon trace detection device, characterized in that: It comprises a top support platform (1) and a hanging support platform (2) that are horizontally opposite to each other; The supporting platform (1) and the hanging supporting platform (2) are connected via telescopic gallows (3) arranged in a symmetrical arrangement, and a guide slide (5) is provided in the middle of the gallows of the two sets of telescopic gallows (3), a telescopic screw rod (4) is installed through the inside of the guide slide (5), and a brake mechanism (6) for driving the telescopic screw rod (4) is installed between the supporting platform (1) and the hanging supporting platform (2); A carbon monitoring mechanism is installed in the middle of the base frame of the suspension support platform (2); The carbon monitoring mechanism comprises a rotating motor (7) installed in the middle of a support bracket (2), a detection box (8) is installed at the output end of the rotating motor (7), air ducts (9) are symmetrically installed on both sides of the detection box (8), and a carbon concentration detector (12) is installed inside the detection box (8).
2. A carbon trace detection device according to claim 1, characterized in that: The braking mechanism (6) comprises two sets of arm force frames (61) facing each other horizontally, wherein one side of the bracket of the arm force frame (61) is slidably connected to a first arm force guide rod (62) fixedly connected to the top support platform (1), and the other side of the bracket of the arm force frame (61) is slidably connected to a second arm force guide rod (63) fixedly connected to the hanging support platform (2), a braking truss (64) which is ring-shaped on the telescopic screw rod (4) is provided in the middle of the bracket of the arm force frame (61), and a braking motor (65) which drives the telescopic screw rod (4) is provided at the upper end of the bracket of the braking truss (64).
3. A carbon trace detection device according to claim 2, characterized in that: The output end of the brake motor (65) is provided with a bevel gear A (66), and the middle part of the shaft of the telescopic screw rod (4) is provided with a bevel gear B (67) meshing with the bevel gear A (66).
4. The carbon trace detection device according to claim 1, characterized in that: The telescopic screw rod (4) is bounded by a midline, and positive and negative thread teeth adapted to the two sets of guide slides (5) are symmetrically arranged on both sides of the midline.
5. The carbon trace detection device according to claim 1, characterized in that: A ventilation fan (11) is installed inside the detection box (8) along the ventilation opening of the air duct (9).
6. The carbon trace detection device according to claim 1, characterized in that: The ventilation opening of the air duct (9) is covered with a dust cover (10), and the inside of the cover of the dust cover (10) is padded with a dust net (13).
Citation Information
Patent Citations
Product carbon footprint measuring device based on greenhouse gas
CN219608887U