Carbon emission data acquisition device
By designing a carbon emission data acquisition device with anti-tipping and protective components, the problems of easy damage and inaccurate detection in construction site environments were solved, and the stability and detection accuracy of the device were improved.
Patent Information
- Application Number
- CN202511121521.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-12
- Publication Date
- 2025-11-07
AI Technical Summary
Existing carbon emission data acquisition devices are susceptible to damage and have reduced accuracy in construction site environments, mainly due to the accumulation of dust and pollutants, as well as instrument damage and performance degradation caused by mechanical impacts.
A carbon emission data acquisition device was designed, which includes an anti-tipping component and a protective component. It adopts a semi-elliptical base, a lifting mechanism, a telescopic sleeve, and a protective component. By filling sand, a roly-poly structure is formed. Combined with a lifting frame and an electric slide rail, it achieves protection and quick assembly and disassembly. It is powered by a solar panel to reduce dust accumulation and improve detection accuracy.
It achieves stability and detection accuracy of the device in construction site environments, reduces the risk of damage, and improves ease of use and detection precision.
Smart Images

Figure CN120908382A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of acquisition equipment, and specifically relates to a carbon emission data acquisition device. BACKGROUND
[0002] Carbon emission data monitoring and collection is to convert collected carbon dioxide or other gases into carbon. In the process of monitoring carbon emissions, special sampling and analysis equipment is usually used to detect the carbon content of gases. These devices usually include components such as gas samplers, gas analyzers, weather stations, and data recorders, which are used to measure the concentration and distribution of carbon emission substances such as carbon dioxide, carbon monoxide, and methane in the atmosphere.
[0003] When monitoring carbon emissions in buildings, a series of complex problems are faced. First, construction sites usually have a large amount of dust and pollutants, which may affect carbon emission detection instruments. Dust and pollutants may accumulate on the surface of detection instruments, causing instrument performance to decline and even affecting detection accuracy. In addition, the environment of construction sites is usually harsh, with a large number of mechanical equipment and worker activities, which increases the risk of detection instruments being damaged by collisions. Instruments are easily damaged when not in use, which is more serious for precise detection equipment.
[0004] However, the existing carbon emission data acquisition device is placed outdoors for data collection. When the acquisition device is hit by external factors, the acquisition device will tip over to the ground instantly, causing damage to the acquisition device and affecting its use. This results in an increase in use costs. In addition, the outdoor environment is uncontrollable and contains a large amount of dust and pollutants, which may affect carbon emission detection instruments. Dust and pollutants may accumulate on the surface of detection instruments, causing instrument performance to decline and even affecting detection accuracy.
[0005] Therefore, in order to solve the above problems, the present application provides a carbon emission data acquisition device. SUMMARY
[0006] The present application aims to design a carbon emission data acquisition device that is not prone to tipping, can be quickly disassembled and assembled, and has a protection function.
[0007] In order to achieve the above technical effects, the application is realized by the following technical scheme: a carbon emission data acquisition device, comprising an anti-toppling assembly and a protection assembly installed inside the anti-toppling assembly, characterized in that: the anti-toppling assembly comprises a semi-elliptical base, an injection port and a discharge port respectively arranged on the upper side and the lower side of the semi-elliptical base, a blocking plug installed on the injection port and the discharge port, a placing box arranged at the top end of the semi-elliptical base, and a control mechanism installed on one side of the lower end of the placing box; the protection assembly comprises a lifting frame slidingly installed inside the placing box, a lifting mechanism connecting the placing box and the lifting frame, an extension sleeve connecting the top plate of the lifting frame and the placing box, a plurality of air inlet grooves arranged on the side end of the extension sleeve, an electric sliding rail arranged inside the lifting mechanism, a placing rack installed on the moving block of the electric sliding rail, a sampler body installed on the placing rack, and an access door arranged on the side end of the placing box.
[0008] Further, the semi-elliptical base is a hollow structure, and the injection port and the discharge port are both connected with the inside of the semi-elliptical base.
[0009] Further, a sliding groove is arranged on the inner wall of the placing box; a sliding block is arranged on the outer side of the lifting frame and matched with the sliding groove.
[0010] Further, the lifting mechanism comprises a driving motor and a bearing seat installed on one side of the placing box, a lead screw connecting the output shaft of the driving motor and the bearing seat, and a ball screw sleeve installed on the lead screw; the lifting frame is fixedly connected to the side end of the ball screw sleeve.
[0011] Further, a top plate is arranged on the top of the lifting frame, a solar panel is arranged on the top plate, and the solar panel is connected with the control mechanism through a spiral coiled wire; the upper end of the extension sleeve is installed on the lower surface of the top plate.
[0012] Further, the extension sleeve is a rubber corrugated protective sleeve; the air inlet grooves are arranged on the upwardly inclined corrugations of the rubber corrugated protective sleeve.
[0013] Further, the placing rack comprises a moving plate installed on the moving block of the electric sliding rail, fixed plates arranged on the upper side and the lower side of the moving plate, a guide groove arranged in the middle of the moving plate, a clamping plate slidingly installed in the guide groove, springs connecting the fixed plates and the clamping plate, wedge-shaped blocks arranged on the two ends of the clamping plate, and lever rods arranged on the side ends of the wedge-shaped blocks.
[0014] Further, the distance between the wedge-shaped blocks on the two ends of the clamping plate is matched with the length of the sampler body.
[0015] Further, the control mechanism comprises a plc controller and a storage battery; the storage battery and the electric sliding rail are electrically connected to the plc controller through wires.
[0016] The application has the following beneficial effects:
[0017] This invention features a semi-elliptical base filled with sand or other particles, creating a self-sustaining structure that prevents tipping upon impact. A lifting mechanism extends the lifting frame from the storage box during use and retracts it when not in use, allowing for height adjustment while minimizing space occupancy. A telescopic sleeve with an air inlet on the upward-sloping folds of a corrugated rubber sleeve provides ventilation while protecting the sampler body inside the lifting mechanism, preventing dust and contaminants from accumulating and degrading performance. The storage rack allows for quick assembly and disassembly of the sampler. The lifting mechanism, electric slide rail, and maintenance door facilitate easy maintenance by moving the sampler body to the door and opening it directly. Attached Figure Description
[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0020] Figure 2 This is a schematic diagram of the overall structure of the present invention from another direction;
[0021] Figure 3 This is the present invention. Figure 2 Enlarged structural diagram at point A in the middle;
[0022] Figure 4 This is a front view of the present invention;
[0023] Figure 5 This is a side view of the present invention;
[0024] Figure 6 This is a schematic diagram of the internal structure of the present invention;
[0025] Figure 7 This is a schematic diagram of the internal structure of the present invention from another perspective;
[0026] Figure 8 This is the present invention. Figure 7 Enlarged structural diagram at point B.
[0027] The attached diagram lists the components represented by each number as follows:
[0028] 1, semi-elliptical base; 11, inlet; 12, discharge port; 13, plug; 2, storage box; 21, access door; 3, control mechanism; 4, lifting frame; 41, solar panel; 5, lifting mechanism; 51, drive motor; 52, bearing seat; 53, lead screw; 54, ball screw; 6, telescopic sleeve; 61, air inlet groove; 7, electric sliding rail; 8, storage rack; 81, moving plate; 82, fixed plate; 83, guide groove; 84, clamping plate; 85, spring; 86, wedge-shaped block; 87, lever; 9, sampler body. DETAILED DESCRIPTION
[0029] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0030] Embodiment 1
[0031] Referring to Figures 1 to 8 As shown in the figure, a carbon emission data collection device comprises an anti-toppling assembly and a protection assembly installed inside the anti-toppling assembly, characterized in that: the anti-toppling assembly comprises a semi-elliptical base 1, an inlet 11 and a discharge port 12 respectively arranged on the upper side and the lower side of the semi-elliptical base 1, a plug 13 installed on the inlet 11 and the discharge port 12, a storage box 2 arranged at the top end of the semi-elliptical base 1, and a control mechanism 3 installed on one side of the lower end of the storage box 2; the protection assembly comprises a lifting frame 4 slidingly installed inside the storage box 2, a lifting mechanism 5 connecting the storage box 2 and the lifting frame 4, a telescopic sleeve 6 connecting the top plate of the lifting frame 4 and the storage box 2, a plurality of air inlet grooves 61 arranged at the side end of the telescopic sleeve 6, an electric sliding rail 7 arranged inside the lifting mechanism 5, a storage rack 8 installed on the moving block of the electric sliding rail 7, a sampler body 9 installed on the storage rack 8, and an access door 21 arranged at the side end of the storage box 2.
[0032] The inner walls of the inlet 11 and the discharge port 12 are provided with internal threads; the plug 13 is provided with external threads matched with the internal threads; the side end of the plug 13 is provided with a handle; after the plug 13 is screwed, it is completely embedded inside the inlet 11 and the discharge port 12, and the handle does not protrude from the outer surface of the semi-elliptical base 1, ensuring that it does not affect the smooth surface required for the stability of the tumbler.
[0033] The semi-elliptical base 1 is a hollow structure, and the injection port 11 and the discharge port 12 are both communicated with the inside of the semi-elliptical base 1. The semi-elliptical base 1 is filled with sand, soil or other granular substances through the injection port 11, so that the semi-elliptical base 1 meets the requirement of the center of gravity of the tumbler structure after adding a certain amount of sand, forms a tumbler structure, and makes the device not easy to fall after being hit.
[0034] By setting the injection port 11 and the discharge port 12, the filler (sand, soil or other granular substances) in the semi-elliptical base 1 can be filled and discharged, so that the filler can be separated from the device during transportation, reducing the difficulty of transportation.
[0035] The inner wall of the placing box 2 is provided with a sliding groove, and the outer side of the lifting frame 4 is provided with a sliding block matched with the sliding groove. When the lifting frame 4 is driven to lift in the placing box 2, the lifting frame 4 moves along the predetermined track (the sliding groove).
[0036] The lifting mechanism 5 includes a driving motor 51 and a bearing seat 52 installed on one side of the placing box 2, a lead screw 53 connecting the output shaft of the driving motor 51 and the bearing seat 52, a ball screw sleeve 54 installed on the lead screw 53, and the lifting frame 4 fixedly connected to the side end of the ball screw sleeve 54. The rotation of the output shaft of the driving motor 51 is converted into the movement of the ball screw sleeve 54 through the ball screw structure composed of the lead screw 53 and the ball screw sleeve 54, so as to drive the lifting frame 4 installed at the side end of the ball screw sleeve 54 to lift.
[0037] The top of the lifting frame 4 is provided with a top plate, and the top plate is provided with a solar panel 41 connected with the control mechanism 3 through spiral curled wires. The upper end of the telescopic sleeve 6 is installed on the lower surface of the top plate. The set solar panel can convert solar energy and be connected with the storage battery through the wires, so as to store electric energy and make the device still work without external power supply, improving the practicability of the device.
[0038] The telescopic sleeve 6 is a rubber corrugated protective sleeve, and the air inlet grooves 61 are all arranged on the upwardly inclined folds of the rubber corrugated protective sleeve. When the lifting frame 4 lifts, the telescopic sleeve 6 can be expanded or contracted, and the lifting frame 4 is always protected in the telescopic sleeve 6, so that the dust and pollutants are less likely to accumulate on the surface of the sampler body, reducing the possibility of instrument performance degradation.
[0039] The placing rack 8 comprises a moving plate 81 mounted on the moving block of the electric slide rail 7, fixed plates 82 arranged on the upper and lower sides of the moving plate 81, a guide groove 83 arranged in the middle of the moving plate 81, a clamping plate 84 slidingly mounted in the guide groove 83, springs 85 connecting the fixed plates 82 and the clamping plate 84, wedge-shaped blocks 86 arranged at the two ends of the clamping plate 84, and a lever 87 arranged at the side end of the wedge-shaped block 86. The distance between the wedge-shaped blocks 86 at the two ends of the clamping plate 84 is adapted to the length of the sampler body 9, and the width of the side guards is adapted to the width of the sampler body 9. The sampler body 9 can be quickly disassembled and assembled. Specifically, the upper lever 87 is manually lifted to separate the wedge-shaped blocks 86 from the edge of the sampler body 9, and then the sampler body 9 is taken out with the other hand. Similarly, when the sampler body 9 is installed, the upper lever 87 is manually lifted, the height of the wedge-shaped block 86 is adjusted to be higher than the thickness of the sampler body 9, the lower end of the sampler body 9 is placed on the lower clamping plate 84, and then the sampler body 9 is pushed in until it reaches the innermost end. At this time, the upper lever 87 is lowered, and the upper clamping plate 84 is pressed down under the action of the spring 85. At this time, the sampler body 9 is just covered inside the placing rack 8, and the installation is completed.
[0040] The control mechanism 3 comprises a plc controller and a storage battery. The storage battery and the electric slide rail 7 are electrically connected to the plc controller through wires. The device action can be controlled to realize automatic control and reduce the operation difficulty of the user.
[0041] The plc controller is a plc controller made by the prior art and capable of meeting the use requirements of the device.
[0042] Embodiment 2
[0043] Working principle: when the device is used, first, the device is moved to the site according to the requirements, and a horizontal placement platform is poured with concrete according to the requirements of the semi-elliptical base 1. Then, the semi-elliptical base 1 is placed on the poured platform, the injection port 11 on the upper side of the semi-elliptical base 1 is opened, a certain amount of sand, soil or other particulate matter prepared in advance is placed into the semi-elliptical base 1, so that the semi-elliptical base 1 constitutes the lower half of the "Tumbler" structure. At this time, the injection port 11 is closed by screwing in the plug 1. At this time, the device constitutes a Tumbler structure and will not easily fall over when subjected to impact.
[0044] Then the controller is operated to be turned on, and then the driving motor 51 is controlled to act, so that the lifting frame 4 falls to the lowest position. Then the electric slide rail 7 is controlled to act, so that the placing rack 8 is adjusted to the lowest position. At this time, the placing rack 8 is located at the position of the maintenance door 21. At this time, the worker opens the maintenance door 21, places the sampler body 9 into the placing rack 8, and then closes the maintenance door 21 after turning on the sampler body 9.
[0045] Then the operation controller 3 controls the electric sliding rail 7 to act, adjusts the placing rack 8 to the highest position, at this time, the placing rack 8 is located at the uppermost position of the lifting frame 4; then controls the driving motor 51 to act, makes the lifting frame 4 rise to a certain position, at this time, the action of the extended lifting frame 4 drives the telescopic sleeve 6 to expand synchronously, at this time, the air inlet groove 61 on the upward inclined fold of the telescopic sleeve 6 is expanded, realizes that the telescopic sleeve 6 is communicated with the outside, satisfies the air inflow demand of the sampler body 9.
[0046] The standard parts used in the application can be purchased from the market, the special-shaped parts can be ordered according to the description and the drawings, the specific connection mode of each part adopts the conventional means such as bolt, rivet and welding in the prior art, the machinery, parts and equipment adopt the conventional type in the prior art, and the circuit connection adopts the conventional connection mode in the prior art, which will not be described in detail here. The contents not described in detail in the specification belong to the prior art known to those skilled in the art.
Claims
1. A carbon emission data collection device comprising a tip over prevention assembly and a shield assembly mounted inside the tip over prevention assembly, characterized in that: The anti-toppling assembly comprises a semi-elliptical base, an injection port and a discharge port arranged on the upper side and the lower side of the semi-elliptical base respectively, a sealing plug installed on the injection port and the discharge port, a placing box arranged at the top end of the semi-elliptical base, and a control mechanism installed on one side of the lower end of the placing box; the protection assembly comprises a lifting frame slidingly installed in the placing box, a lifting mechanism connecting the placing box and the lifting frame, an extension sleeve connecting the top plate of the lifting frame and the placing box, a plurality of air inlet grooves arranged on the side end of the extension sleeve, an electric sliding rail arranged in the lifting mechanism, a placing rack installed on the moving block of the electric sliding rail, a sampler body installed on the placing rack, and an inspection door arranged on the side end of the placing box.
2. A carbon emissions data collection device according to claim 1, wherein, The semi-elliptical base is a hollow structure, and the injection port and the discharge port are in communication with the inside of the semi-elliptical base.
3. The carbon emission data collection device of claim 1, wherein, A sliding groove is arranged on the inner wall of the placing box, and a sliding block is arranged on the outer side of the lifting frame and matched with the sliding groove.
4. The carbon emission data collection device of claim 1, wherein, The lifting mechanism comprises a driving motor and a bearing seat installed on one side of the placing box, a lead screw connecting the output shaft of the driving motor and the bearing seat, and a ball screw sleeve installed on the lead screw, and the lifting frame is fixedly connected to the side end of the ball screw sleeve.
5. The carbon emission data collection device of claim 1, wherein, A top plate is arranged on the top of the lifting frame, a solar panel is arranged on the top plate, and the solar panel is connected to the control mechanism through a spiral coiled wire; the upper end of the extension sleeve is installed on the lower surface of the top plate.
6. The carbon emissions data collection device of claim 1, wherein, The extension sleeve is a rubber corrugated protective sleeve, and the air inlet grooves are arranged on the upwardly inclined corrugations of the rubber corrugated protective sleeve.
7. The carbon emissions data collection device of claim 1, wherein, The placing rack comprises a moving plate installed on the moving block of the electric sliding rail, fixed plates arranged on the upper side and the lower side of the moving plate, a guide groove arranged in the middle of the moving plate, a clamping plate slidingly installed in the guide groove, springs connecting the fixed plates and the clamping plate, wedge-shaped blocks arranged on the two ends of the clamping plate, and a lever arranged on the side end of the wedge-shaped block.
8. A carbon emissions data collection device according to claim 7, wherein, The distance between the wedge-shaped blocks on the two ends of the clamping plate is matched with the length of the sampler body.
9. The carbon emissions data collection device of claim 1, wherein, The control mechanism comprises a plc controller and a storage battery, and the storage battery and the electric sliding rail are electrically connected to the plc controller through wires.