A highway construction carbon emission detection device

By using a motor-driven rotating plate and a hydraulic telescopic rod design, the problem of data loss when the carbon emission detection device is damaged is solved, enabling continuous detection and convenient maintenance, and reducing the complexity of manual operation.

CN120741786BActive Publication Date: 2025-11-21CCCC SOUTHEAST CONSTR CO LTD
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Patent Information

Application Number
CN202511220109.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2025-11-21
Estimated Expiration
2045-08-29

AI Technical Summary

Technical Problem

Existing carbon emission monitoring devices cannot continue monitoring when the detector is damaged, and maintenance is inconvenient, resulting in data loss and increased workload for staff.

Method used

A carbon emission detection device for highway construction was designed. It uses a motor-driven rotating plate to move the carbon emission detectors, enabling alternating operation. Damaged detectors can be easily disassembled via a hydraulic telescopic rod. Combined with a support frame and lifting frame structure, it facilitates position adjustment and installation/disassembly.

Benefits of technology

It enables continuous detection even when the detector is damaged, reduces missed data, simplifies the maintenance process, and reduces the workload of staff.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of carbon emission detection devices for highway construction, belong to carbon emission detection technical field, including support seat and the lifting assembly of installation on support seat, rotationally installed on lifting assembly there is rotating plate, motor is provided on support seat, the output end of motor is connected rotating plate by rotating rod, rotating plate is installed with slide bar, hydraulic telescopic rod is slidably installed on slide bar, support rod is installed on hydraulic telescopic rod, one end of support rod is installed with extrusion block, mounting bracket is installed on hydraulic telescopic rod, limit plate is installed on mounting bracket, mounting block is installed on limit plate, slot that is mutually cooperated with mounting block is set in mounting bracket.The application is set by motor, motor starts in turn can drive rotating plate rotation, rotating plate rotates in turn can drive carbon emission detector moves, in turn can adjust the position of two carbon emission detectors, can make two carbon emission detectors alternate work.
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Description

Technical Field

[0001] This invention relates to a carbon emission detection device, and more particularly to a carbon emission detection device for highway construction, belonging to the field of carbon emission detection technology. Background Technology

[0002] Carbon emission monitoring equipment is used in natural and industrial environments, primarily to monitor and measure the concentration and emissions of greenhouse gases (such as carbon dioxide and methane). It calculates the carbon dioxide concentration by measuring the absorption of infrared light by carbon dioxide molecules in the air, enabling continuous automated industrial gas monitoring. This equipment can detect changes in greenhouse gas concentrations, providing timely data support. It boasts advantages such as high detection accuracy, stability, and remote monitoring. Carbon emission monitoring equipment is widely used in industry, transportation, agriculture, and other fields. With increasing global attention and regulation of carbon emissions, the technological level and market demand for carbon emission monitoring equipment are constantly improving. Future carbon emission monitoring equipment will place greater emphasis on accuracy, stability, and intelligence, while reducing installation and maintenance costs and improving ease of use and portability. Furthermore, carbon emission monitoring equipment will be widely applied in more fields and scenarios, such as cities, forests, and oceans, providing greater support for developing effective emission reduction measures and promoting low-carbon development.

[0003] According to invention application number 202510510948.X, a green construction carbon emission device for highway electromechanical installation is disclosed, including a box body. A support plate is horizontally fixed at the center of the box body, and a fixed bracket is fixed at the upper end of the support plate. The storage box is equipped with a storage tank for storing compressed gas. An infrared detection device for detecting carbon dioxide concentration in compressed gas is installed at the center of the top of the storage tank. A light source emitter for detection is installed at the bottom of the infrared detection device. Rotatable air inlet pipes for air intake are installed at both ends of the top of the storage tank near the infrared detection device. The air inlet pipes can extend into the storage tank, and several air outlet pipes are equidistantly arranged on the outside of the air inlet pipes. A driven gear is fixed on the outside of the air inlet pipes near the top. In actual use, when the detector is damaged, staff need to rush to the site for repair. During the time that the staff rush to the site, the detector cannot continue to detect, resulting in the inability to record carbon emission data during this period, affecting the detection effect. Moreover, after the staff arrives at the site, they need to manually disassemble the detector for repair, which is inconvenient. Summary of the Invention

[0004] The main objective of this invention is to solve the problems of inconvenient continuous carbon emission detection and inconvenient disassembly and maintenance of the detector, and to provide a carbon emission detection device for highway construction.

[0005] The objective of this invention can be achieved by adopting the following technical solution:

[0006] A carbon emission detection device for highway construction includes a support base and a lifting assembly mounted on the support base. A rotating plate is rotatably mounted on the lifting assembly. A motor is mounted on the support base, and the output end of the motor is connected to the rotating plate via a rotating rod. A sliding rod is mounted on the rotating plate, and a hydraulic telescopic rod is slidably mounted on the sliding rod. A support rod is mounted on the hydraulic telescopic rod, and a pressing block is mounted at one end of the support rod. A mounting frame is mounted on the hydraulic telescopic rod, and a limit plate is mounted on the mounting frame. A mounting block is mounted on the limit plate, and a slot that mates with the mounting block is provided on the mounting frame. A carbon emission detector is mounted on the limit plate. The hydraulic telescopic rod is connected to the rotating plate via a second spring. A support assembly is mounted on the support base, and a pushing assembly is mounted on the support assembly. A pressing strip that mates with the pressing block is mounted on the pushing assembly.

[0007] Preferably, the support base includes a base plate, a support plate, and a connecting rod, wherein the connecting rod is mounted on the base plate, and the support plate is mounted on one end of the connecting rod.

[0008] Preferably, the lifting assembly includes a lifting frame, a connecting block, a support frame, and a rotating block. The support frame is mounted on the base plate, the connecting block is mounted on the support frame, and the lifting frame is mounted on the connecting block.

[0009] Preferably, a rotating block is installed on the rotating plate, and a rotating groove that cooperates with the rotating block is opened on the lifting frame.

[0010] Preferably, a second connecting post is installed on the limiting plate, and one end of the second connecting post is connected to the carbon emission detector.

[0011] Preferably, the support assembly includes a support leg and a second support ring. The support leg is mounted on the base plate, and the second support ring is mounted on one end of the support leg. The rotating rod is rotatably connected to the second support ring through a bearing.

[0012] Preferably, the pushing assembly includes a hydraulic telescopic rod, a support frame, a support column, and a first support ring. The first support ring is installed on the support leg, the support column is installed on the first support ring, the support frame is installed at one end of the support column, the hydraulic telescopic rod is installed on the support frame, and the output end of the hydraulic telescopic rod is connected to the extrusion strip.

[0013] Preferably, a base leg is mounted on the base plate, an outer frame is mounted on one end of the base leg, and the motor is mounted on the outer frame.

[0014] Preferably, a base frame is mounted on the pallet, a slide plate is mounted on the base frame, and a limit strip is mounted on the slide plate.

[0015] Preferably, a storage box is slidably mounted on the base plate, a slider is mounted on the storage box, a groove is formed on the base plate that cooperates with the slider, a receiving plate is slidably mounted on the storage box, a guide block is mounted on the receiving plate, a guide groove is formed on the storage box that cooperates with the guide block, the receiving plate is connected to the storage box by a first spring, a first connecting post is mounted on the guide block, a side block is mounted on one end of the first connecting post, and a cover plate is mounted on the side block.

[0016] Beneficial technical effects of the present invention:

[0017] The carbon emission detection device for highway construction according to the present invention includes a motor that, when started, drives a rotating plate to rotate. The rotating plate then moves the carbon emission detectors, allowing for adjustment of their positions. This enables the two detectors to work alternately, and if one detector fails, the other continues to operate. This allows for continuous recording of carbon emissions while personnel arrive, reducing missed data. Furthermore, the motor and rotating plate work together to easily adjust the detector positions, allowing for carbon emission detection at different locations.

[0018] Furthermore, when the motor starts and drives the rotating plate to rotate, it moves the damaged carbon emission detector to the front of the extrusion bar. The hydraulic telescopic rod is activated, which in turn drives the extrusion bar to move. The extrusion bar squeezes the extrusion block, and the second spring shortens, which in turn drives the mounting bracket to move and slide the mounting block out of the slot. This makes it easy to disassemble the carbon emission detector without the need for manual disassembly by the staff, thus reducing the workload of the staff. Attached Figure Description

[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 motor structure of the present invention;

[0021] Figure 3 This is a schematic diagram of the cover plate structure of the present invention;

[0022] Figure 4 This is a schematic diagram of the carbon emission detector structure of the present invention;

[0023] Figure 5 This is a schematic diagram of the block structure of the present invention;

[0024] Figure 6This is a schematic diagram of the extrusion block structure of the present invention;

[0025] Figure 7 This is a schematic diagram of the extrusion strip structure of the present invention;

[0026] Figure 8 This is a schematic diagram of the storage box structure of the present invention;

[0027] Figure 9 This is a schematic diagram of the first spring structure of the present invention;

[0028] Figure 10 This is a schematic diagram of the skateboard structure of the present invention;

[0029] Figure 11 This is a schematic diagram of the mounting block structure of the present invention.

[0030] In the diagram: 1. Base plate; 11. Support plate; 12. Connecting rod; 2. Base frame; 21. Slide plate; 22. Limiting strip; 3. Storage box; 31. Slider; 32. Cover plate; 33. Side block; 34. First connecting column; 35. Receiving plate; 36. Guide block; 37. First spring; 4. Lifting frame; 41. Connecting block; 42. Support frame; 43. Rotating plate; 44. Rotating rod; 45. Rotating block; 5. Mounting frame; 51. Carbon emission detector; 52. Limiting plate; 53. Mounting block; 54. Second connecting column; 6. Slide rod; 61. Second spring; 62. Extrusion block; 63. Support rod; 64. Hydraulic telescopic rod; 65. Extrusion strip; 66. Support frame; 67. Support column; 68. First support ring; 7. Support leg; 71. Second support ring; 8. Outer frame; 81. Motor; 82. Base leg. Detailed Implementation

[0031] To enable those skilled in the art to understand the technical solution of the present invention more clearly, the present invention will be further described in detail below with reference to the embodiments and accompanying drawings, but the embodiments of the present invention are not limited thereto.

[0032] like Figures 1-11As shown, the carbon emission detection device for highway construction provided in this embodiment includes a support base and a lifting assembly mounted on the support base. A rotating plate 43 is rotatably mounted on the lifting assembly. A motor 81 is provided on the support base. The output end of the motor 81 is connected to the rotating plate 43 via a rotating rod 44. A sliding rod 6 is mounted on the rotating plate 43. A hydraulic telescopic rod 64 is slidably mounted on the sliding rod 6. A support rod 63 is mounted on the hydraulic telescopic rod 64. A pressing block 62 is mounted on one end of the support rod 63. A mounting frame 5 is mounted on the hydraulic telescopic rod 64. A limiting plate 52 is mounted on the mounting frame 5. An mounting block 53 is mounted on the limiting plate 52. A slot that cooperates with the mounting block 53 is provided on the mounting frame 5. A carbon emission detector 51 is mounted on the limiting plate 52. The hydraulic telescopic rod 64 passes through... The second spring 61 connects to the rotating plate 43. A support assembly is installed on the support base, and a pushing assembly is installed on the support assembly. An extrusion strip 65 that cooperates with the extrusion block 62 is installed on the pushing assembly. The support base includes a base plate 1, a support plate 11, and a connecting rod 12. The connecting rod 12 is installed on the base plate 1, and the support plate 11 is installed at one end of the connecting rod 12. The lifting assembly includes a lifting frame 4, a connecting block 41, a support frame 42, and a rotating block 45. The support frame 42 is installed on the base plate 1, and the connecting block 41 is installed on the support frame 42. The lifting frame 4 is installed on the connecting block 41. The rotating block 45 is installed on the rotating plate 43. A rotating groove that cooperates with the rotating block 45 is opened on the lifting frame 4. A second connecting post 54 is installed on the limiting plate 52, and one end of the second connecting post 54 is connected to the carbon emission detector. 51 connection, the support assembly includes a support leg 7 and a second support ring 71. The support leg 7 is installed on the base plate 1, and the second support ring 71 is installed at one end of the support leg 7. The rotating rod 44 is rotatably connected to the second support ring 71 through a bearing. The pushing assembly includes a hydraulic telescopic rod 64, a support frame 66, a support column 67, and a first support ring 68. The first support ring 68 is installed on the support leg 7, and the support column 67 is installed on the first support ring 68. The support frame 66 is installed at one end of the support column 67, and the hydraulic telescopic rod 64 is installed on the support frame 66. The output end of the hydraulic telescopic rod 64 is connected to the extrusion strip 65. The base plate 1 is equipped with a bottom leg 82, and an outer frame 8 is installed at one end of the bottom leg 82. A motor 81 is installed on the outer frame 8. By setting the motor 81, the motor 81 is started and then... The rotating plate 43 can be driven to rotate, which in turn drives the carbon emission detector 51 to move, thereby adjusting the position of the two carbon emission detectors 51. This allows the two carbon emission detectors 51 to work alternately. When one carbon emission detector 51 fails, the other carbon emission detector 51 continues to work, continuously recording carbon emissions while personnel arrive, thus reducing missed data. Furthermore, by setting the motor 81 and the rotating plate 43 to cooperate, the detection position of the carbon emission detector 51 can be easily adjusted, allowing the carbon emission detector 51 to detect carbon emissions from different positions. When the motor 81 starts and drives the rotating plate 43 to rotate, it moves the damaged carbon emission detector 51 to the front of the extrusion strip 65.The hydraulic telescopic rod 64 is activated, which in turn moves the extrusion bar 65. The extrusion bar 65 compresses the extrusion block 62, causing the second spring 61 to shorten. This, in turn, moves the mounting bracket 5, allowing the mounting block 53 to slide out of the slot, thus facilitating the removal of the carbon emission detector 51 without requiring manual removal by staff, reducing their workload. The support frame 42, connecting block 41, and lifting frame 4 work together to support the rotating plate 43. The rotating block 45 is rotatably connected to the rotating groove, facilitating the rotation of the plate 43. The mounting frame 51 can be easily installed by rotating on the support frame 4 and engaging with the slot via the mounting block 53. The hydraulic telescopic rod 64 and slide rod 6 provide guidance and positioning for the mounting frame 5. The first support ring 68, support column 67, and support frame 66 work together to support the hydraulic telescopic rod 64. The support leg 7 and second support ring 71 work together to support the rotating rod 44. The outer frame 8 and bottom leg 82 work together to support the motor 81.

[0033] In this embodiment, as Figure 1 , Figure 3 , Figure 8 , Figure 9 and Figure 10 As shown, a base frame 2 is mounted on the support plate 11, a slide plate 21 is mounted on the base frame 2, and a limit strip 22 is mounted on the slide plate 21. A storage box 3 is slidably mounted on the base plate 1, and a slider 31 is mounted on the storage box 3. A groove is provided on the base plate 1 to cooperate with the slider 31. A receiving plate 35 is slidably mounted on the storage box 3, and a guide block 36 is mounted on the receiving plate 35. A guide groove is provided on the storage box 3 to cooperate with the guide block 36. The receiving plate 35 is connected to the storage box 3 by a first spring 37. A first connecting post 34 is mounted on the guide block 36, and a side block 33 is mounted on one end of the first connecting post 34. A cover plate 32 is mounted on the side block 33. By setting the base plate 1, support plate 11, connecting rod 12, and base frame 2 to cooperate with each other, the slide plate 21 can be easily moved. When the mounting bracket 5 moves away from the limiting plate 52, the carbon emission detector 51 falls onto the sliding plate 21 and slides on it into the storage box 3. Due to its weight, the carbon emission detector 51 presses against the receiving plate 35, causing the first spring 37 to shorten and thus drive the guide block 36 to slide on the storage box 3. Through the first connecting column 34, the cover plate 32 is lowered to cover the storage box 3, which facilitates the storage and protection of the disassembled carbon emission detector 51 and prevents it from being damaged again. By setting the slider 31 to slide in the groove, the storage box 3 can be easily disassembled. By setting the guide block 36 to slide in the guide groove, the receiving plate 35 can be easily guided and limited.

[0034] In this embodiment, as Figures 1-11 As shown in the figure, the working process of the carbon emission detection device for highway construction provided in this embodiment is as follows:

[0035] Step 1: When carbon emission detector 51 is damaged, motor 81 starts and drives the rotating plate 43 to rotate, thereby adjusting the position of the two carbon emission detectors 51, moving the damaged carbon emission detector 51 to the front of the extrusion bar 65, and moving the normal carbon emission detector 51 to the working position.

[0036] Step 2: The hydraulic telescopic rod 64 is activated, which in turn drives the extrusion bar 65 to move. The extrusion bar 65 extrudes the extrusion block 62, and the second spring 61 shortens, which in turn drives the hydraulic telescopic rod 64 to move, which in turn drives the mounting bracket 5 to move, and slides the mounting block 53 out of the slot.

[0037] Step 3: At this time, the carbon emission detector 51 falls onto the base frame 2 and slides down onto the receiving plate 35 in the storage box 3. The carbon emission detector 51 squeezes the receiving plate 35, the first spring 37 shortens, and then drives the cover plate 32 to cover the storage box 3.

[0038] Step 4: When the staff arrives, pull the storage box 3, and the slider 31 slides in the groove. Disassemble the storage box 3 and move the carbon emission detector 51 to the maintenance station for repair.

[0039] In summary, in this embodiment, the carbon emission detection device for highway construction, by incorporating a motor 81, drives the rotating plate 43 to rotate. The rotation of the rotating plate 43, in turn, moves the carbon emission detectors 51, allowing for adjustment of their positions. This enables the two carbon emission detectors 51 to work alternately. When one carbon emission detector 51 fails, the other continues to operate, continuously recording carbon emissions while personnel arrive, thus reducing missed data. Furthermore, the coordination between the motor 81 and the rotating plate 43 facilitates adjustment of the detection position of the carbon emission detectors 51, ensuring accurate carbon emission detection. The device 51 detects carbon emissions at different positions. When the motor 81 starts and drives the rotating plate 43 to rotate, the damaged carbon emission detector 51 is moved to the front of the extrusion bar 65. The hydraulic telescopic rod 64 is activated, which in turn drives the extrusion bar 65 to move. The extrusion bar 65 extrudes the extrusion block 62, and the second spring 61 shortens, which in turn drives the mounting frame 5 to move, sliding the mounting block 53 out of the slot. This facilitates the removal of the carbon emission detector 51 without the need for manual removal by staff, reducing their workload. The support frame 42, connecting block 41, and lifting frame 4 work together to support the rotating plate 43. The rotating block 45 is rotatably connected to the rotating groove, which allows for... To facilitate the rotation of the rotating plate 43 on the support frame 4, the mounting block 53 is engaged with the slot to facilitate the installation of the carbon emission detector 51. The hydraulic telescopic rod 64 is slidably connected to the slide rod 6 to facilitate guiding and limiting the mounting frame 5. The first support ring 68, support column 67, and support frame 66 cooperate to support the hydraulic telescopic rod 64. The support leg 7 cooperates with the second support ring 71 to support the rotating rod 44. The outer frame 8 cooperates with the bottom leg 82 to support the motor 81. The base plate 1, support plate 11, connecting rod 12, and base frame 2 cooperate to support the sliding plate 21. When the mounting frame 5... When the carbon emission detector 51 moves away from the limiting plate 52, it falls onto the sliding plate 21 and slides on the sliding plate 21 into the storage box 3. Due to the weight of the carbon emission detector 51, it presses against the receiving plate 35, causing the first spring 37 to shorten. This, in turn, causes the guide block 36 to slide on the storage box 3. Through the first connecting post 34, the cover plate 32 is lowered to cover the storage box 3, which facilitates the storage and protection of the disassembled carbon emission detector 51 and prevents it from being damaged again. By setting the slider 31 to slide in the groove, the storage box 3 can be easily disassembled. By setting the guide block 36 to slide in the guide groove, the receiving plate 35 can be easily guided and limited.

[0040] If certain terms are used in the specification and claims to refer to specific components, those skilled in the art will understand that hardware manufacturers may use different names to refer to the same component. This specification and claims do not distinguish components based on differences in name, but rather on differences in function. The term "comprising" as used throughout the specification and claims is an open-ended term and should be interpreted as "comprising but not limited to." "Approximately" means that within an acceptable margin of error, those skilled in the art can solve the technical problem and substantially achieve the technical effect within a certain margin of error.

[0041] It should be noted that the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a product or system comprising a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a product or system. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the product or system that includes that element.

[0042] The foregoing description illustrates and describes several preferred embodiments of the present invention. However, as previously stated, it should be understood that the present invention is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the inventive concept described herein through the foregoing teachings or techniques or knowledge in related fields. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of the present invention should be within the protection scope of the appended claims.

Claims

1. A carbon emission detection device for highway construction, characterized in that, The system includes a support base and a lifting assembly mounted on the support base. A rotating plate (43) is rotatably mounted on the lifting assembly. A motor (81) is mounted on the support base. The output end of the motor (81) is connected to the rotating plate (43) via a rotating rod (44). A sliding rod (6) is mounted on the rotating plate (43). A hydraulic telescopic rod (64) is slidably mounted on the sliding rod (6). A support rod (63) is mounted on the hydraulic telescopic rod (64). A pressing block (62) is mounted on one end of the support rod (63). A mounting frame (5) is mounted on the hydraulic telescopic rod (64). A limit plate (52) is mounted on the mounting frame (5). A mounting block (53) is mounted on the limit plate (52). The mounting bracket (5) has a slot that cooperates with the mounting block (53). A carbon emission detector (51) is installed on the limiting plate (52). The hydraulic telescopic rod (64) is connected to the rotating plate (43) through a second spring (61). A support assembly is installed on the support base. A pushing assembly is installed on the support assembly. An extrusion strip (65) that cooperates with the extrusion block (62) is installed on the pushing assembly. The support base includes a base plate (1), a support plate (11), and a connecting rod (12). The connecting rod (12) is installed on the base plate (1). The support plate (11) is installed at one end of the connecting rod (12). The support assembly includes a support leg (7) and a second support ring. (71) A support leg (7) is installed on the base plate (1). A second support ring (71) is installed at one end of the support leg (7). The rotating rod (44) is rotatably connected to the second support ring (71) through a bearing. The pushing assembly includes a hydraulic telescopic rod (64), a support frame (66), a support column (67), and a first support ring (68). A first support ring (68) is installed on the support leg (7). A support column (67) is installed on the first support ring (68). A support frame (66) is installed at one end of the support column (67). A hydraulic telescopic rod (64) is installed on the support frame (66). The output end of the hydraulic telescopic rod (64) is connected to the extrusion strip (65). A storage box (3) is slidably mounted on the base plate (1). A slider (31) is mounted on the storage box (3). A groove is provided on the base plate (1) that cooperates with the slider (31). A receiving plate (35) is slidably mounted on the storage box (3). A guide block (36) is mounted on the receiving plate (35). A guide groove is provided on the storage box (3) that cooperates with the guide block (36). The receiving plate (35) is connected to the storage box (3) by a first spring (37). A first connecting post (34) is mounted on the guide block (36). A side block (33) is mounted on one end of the first connecting post (34). A cover plate (32) is mounted on the side block (33).

2. The carbon emission detection device for highway construction according to claim 1, characterized in that, The lifting assembly includes a lifting frame (4), a connecting block (41), a support frame (42), and a rotating block (45). The support frame (42) is installed on the base plate (1), the connecting block (41) is installed on the support frame (42), and the lifting frame (4) is installed on the connecting block (41).

3. The carbon emission detection device for highway construction according to claim 2, characterized in that, A rotating block (45) is installed on the rotating plate (43), and a rotating groove that cooperates with the rotating block (45) is opened on the lifting frame (4).

4. The carbon emission detection device for highway construction according to claim 3, characterized in that, A second connecting post (54) is installed on the limiting plate (52), and one end of the second connecting post (54) is connected to the carbon emission detector (51).

5. A carbon emission detection device for highway construction according to claim 4, characterized in that, A base leg (82) is installed on the base plate (1), and an outer frame (8) is installed at one end of the base leg (82). The motor (81) is installed on the outer frame (8).

6. A carbon emission detection device for highway construction according to claim 5, characterized in that, A base frame (2) is installed on the pallet (11), a slide plate (21) is installed on the base frame (2), and a limit strip (22) is installed on the slide plate (21).

Citation Information

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