Mounting structure of underground carbon reserve detector

The design of the support and cleaning mechanisms solved the problem of unstable support frames, enabling stable installation and disassembly of the underground carbon storage detector in complex terrain, thus improving detection accuracy and equipment reliability.

CN224137456UActive Publication Date: 2026-04-17INST OF GEOGRAPHICAL SCI & NATURAL RESOURCE RES CAS
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
INST OF GEOGRAPHICAL SCI & NATURAL RESOURCE RES CAS
Filing Date
2025-05-21
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

The existing support frame design of underground carbon storage detectors cannot provide stable support, causing the detectors to tilt or fall over in complex terrain, affecting the accuracy of the detection results and the safety of the equipment.

Method used

The design incorporates a support mechanism and a cleaning mechanism, including a sliding block, a rotating column, a fixed frame, a prying assembly, and a scraper. Through the linkage of the support column and the rotating frame, the fixed block can be flexibly adjusted in height and debris can be removed, ensuring the stable installation and disassembly of the detector and preventing debris from interfering with the vibration effect.

Benefits of technology

It improves the stability and operational accuracy of the detector in complex terrain, ensures the accuracy of detection results and the safety of the equipment, enhances maintenance efficiency, and is suitable for long-term operation in complex environments.

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Abstract

The utility model relates to the technical field of carbon reserve detection, and discloses a mounting structure of an underground carbon reserve detector, which comprises a machine body, a vibration mechanism is arranged at the top of the machine body, support plates are fixedly connected to two sides of the bottom of the machine body, and a support mechanism is arranged outside the two support plates. Two vertical plates are fixedly connected to the bottom of the machine body, a cleaning mechanism is arranged on the adjacent sides of the two vertical plates, the supporting mechanism comprises two sliding blocks, the exteriors of the two sliding blocks are slidably connected to the exteriors of the supporting plates, and a plurality of sliding grooves are formed in the exteriors of the two supporting plates; the exteriors of the two sliding blocks are slidably connected to the interiors of the sliding grooves. According to the utility model, the flexible height adjustment of the fixing block ensures that the detector is stably supported in a complex terrain, so that the mounting and dismounting efficiency of the detector is remarkably improved, the device can be quickly stabilized and supported, and shaking during use is prevented.
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Description

Technical Field

[0001] This utility model relates to the field of carbon storage detection technology, and in particular to an installation structure for an underground carbon storage detector. Background Technology

[0002] Simulated natural earthquake detection technology has been widely used in geological exploration, especially in seismic exploration. By analyzing the propagation characteristics of seismic waves in strata, information on underground structures and resource distribution can be effectively obtained. Similarly, underground carbon storage detectors have emerged, drawing on the principles of seismic detection. By utilizing the propagation and reflection characteristics of seismic waves in the underground medium and analyzing the reflected signal characteristics, they can achieve non-destructive detection and quantitative assessment of underground carbon storage.

[0003] A typical underground carbon storage detector consists of a hydraulic cylinder, a sensor, and a support frame. During operation, the hydraulic cylinder generates a powerful impact force, driving a vibrating column to impact the ground, thereby stimulating the underground medium to generate reflected signals. The sensor is responsible for receiving these reflected signals and converting them into electrical signals. By analyzing the propagation speed, amplitude, and reflection characteristics through the data processing system, the distribution and storage information of underground carbon storage can be calculated. The support frame provides stable support for the entire detector.

[0004] However, in existing technologies, the support frame design of some devices often fails to provide stable support. Once some support devices fail or cannot adapt to changes in terrain, the entire detector may tilt or even fall over, leading to inaccurate detection results or even damage to the detection equipment. Therefore, an installation structure for an underground carbon storage detector is proposed to solve the above problems. Utility Model Content

[0005] To overcome the above deficiencies, this utility model provides an installation structure for an underground carbon storage detector, aiming to improve the problem of providing stable support when some devices in the prior art can no longer be used.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] An installation structure for an underground carbon storage detector includes a body, a vibration mechanism on the top of the body, support plates fixedly connected to both sides of the bottom of the body, a support mechanism on the outside of the two support plates, two upright plates fixedly connected to the bottom of the body, and a cleaning mechanism on the adjacent side of the two upright plates.

[0008] The support mechanism includes two sliding blocks, which are slidably connected to the outside of the support plate. Multiple sliding grooves are provided on the outside of the two support plates. The two sliding blocks are slidably connected to the inside of the sliding grooves. Rotating columns are fixedly connected to the inside of the two sliding blocks. Fixed frames are rotatably connected to the outside of the two rotating columns. Two fixed blocks are fixedly connected to the bottom of the two fixed frames. A prying component is fixedly connected to the top of the two fixed blocks.

[0009] As a further description of the above technical solution:

[0010] The prying assembly includes a support frame, the bottom of which is fixedly connected to the top of the fixed block. Support columns are rotatably connected to the outside of the two support plates. Rotating frames are fixedly connected to the outside of the support columns. The outer side of the rotating frames is rotatably connected to the inside of the support frame.

[0011] As a further description of the above technical solution:

[0012] The vibration mechanism includes multiple hydraulic rods, the output ends of which are fixedly connected to the top of the machine body, and a support plate is fixedly connected to the outside of the multiple hydraulic rods.

[0013] As a further description of the above technical solution:

[0014] A vibration column is fixedly connected inside the support plate, and the outside of the vibration column penetrates through the top of the machine body;

[0015] As a further description of the above technical solution:

[0016] The cleaning mechanism includes two slide rails, which are externally fixedly connected to the bottom sides of the two upright plates, and guide columns are internally fixedly connected to the two slide rails.

[0017] As a further description of the above technical solution:

[0018] Springs are fitted around the two guide posts, and sliders are fixedly connected to the outside of the two springs.

[0019] As a further description of the above technical solution:

[0020] A bracket is fixedly connected to one side of each of the two sliders, and a scraper plate is fixedly connected inside the bracket.

[0021] This utility model has the following beneficial effects:

[0022] 1. In this utility model, the flexible height adjustment of the fixing block ensures stable support of the detector in complex terrain. The linkage design of the support column and the rotating frame enables the fixing block to be quickly separated from or fixed to the ground, which significantly improves the installation and disassembly efficiency of the detector and provides rapid stability and support for the device, preventing shaking during use.

[0023] 2. In this utility model, the sliding ability of the slider in the slide rail can flexibly remove ground debris generated during vibration, preventing debris accumulation from interfering with the impact effect of the vibration column. The guiding role of the guide column ensures the sliding stability of the slider, further improving the operating accuracy and reliability of the detector. This design not only improves the maintenance efficiency of the detector, but also makes it more suitable for long-term stable operation in complex environments, effectively ensuring the accurate detection of underground carbon reserves. Attached Figure Description

[0024] Figure 1 This is a three-dimensional schematic diagram of the installation structure of an underground carbon storage detector proposed in this utility model.

[0025] Figure 2 This is a schematic diagram of the slide rail structure of the installation structure of the underground carbon storage detector proposed in this utility model;

[0026] Figure 3 This is a schematic diagram of the fixing block of the installation structure of an underground carbon storage detector proposed in this utility model;

[0027] Figure 4 This is a schematic diagram of the guide column of the installation structure of the underground carbon storage detector proposed in this utility model.

[0028] Legend:

[0029] 1. Body; 2. Vibration mechanism; 21. Hydraulic rod; 22. Support plate; 23. Vibration column; 3. Support plate; 4. Support mechanism; 41. Sliding groove; 42. Sliding block; 43. Rotating column; 44. Fixed frame; 45. Fixed block; 46. Rotating frame; 47. Support column; 48. Support frame; 5. Cleaning mechanism; 51. Slide rail; 52. Spring; 53. Guide column; 54. Slider; 55. Bracket; 56. Scraper; 6. Vertical plate. Detailed Implementation

[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0031] Reference Figure 1 and Figure 3 This utility model provides an embodiment of an installation structure for an underground carbon storage detector, comprising a body 1, a vibration mechanism 2 on the top of the body 1, the vibration mechanism 2 including multiple hydraulic rods 21, which can impact the ground, the output ends of the multiple hydraulic rods 21 being fixedly connected to the top of the body 1, a support plate 22 being fixedly connected to the outside of the multiple hydraulic rods 21, which is designed to provide good support capacity, a vibration column 23 being fixedly connected inside the support plate 22, the vibration column 23 being designed to impact the ground through the hydraulic rods 21, and the outside of the vibration column 23 penetrating the top of the body 1, support plates 3 being fixedly connected to both sides of the bottom of the body 1, which can provide good support capacity through the support of the body 1, a support mechanism 4 being provided outside the two support plates 3, and two upright plates 6 being fixedly connected to the bottom of the body 1, which can provide good support capacity through the support of the body 1 and are designed to be placed on the side adjacent to the support plates 3, and a cleaning mechanism 5 being provided on the side adjacent to the two upright plates 6;

[0032] The support mechanism 4 includes two sliding blocks 42, designed to provide good sliding ability, allowing smooth sliding on the outside of the support plate 3. The two sliding blocks 42 are slidably connected to the outside of the support plate 3. Multiple sliding grooves 41 are provided on the outside of the two support plates 3, designed to provide good sliding space so that each sliding block 42 can slide smoothly inside. Each support plate 3 has two sliding grooves 41 on its outside, and the two sliding blocks 42 are slidably connected to the inside of the sliding grooves 41. Rotating columns 43 are fixedly connected inside the two sliding blocks 42, designed to provide good support. Fixed frames 44 are rotatably connected to the outside of the two rotating columns 43, allowing the fixed frames 44 to slide and rotate smoothly through the support of the rotating columns 43. The bottoms of the two fixed frames 44 are fixedly connected to... There are two fixed blocks 45. The rotation of the fixed frame 44 can drive the fixed blocks 45 to be fixed to the ground, so as to maintain stable support for the body 1. The top of the two fixed blocks 45 is fixedly connected to a prying assembly, which includes a support frame 48. Its design can provide good support capacity. The bottom of the support frame 48 is fixedly connected to the top of the fixed blocks 45. The two support plates 3 are rotatably connected to the outside of the support column 47. Its design can provide good rotation capacity. The outside of the support column 47 is fixedly connected to a rotating frame 46. The rotation of the support column 47 can drive the rotating frame 46 to rotate. The outer side of the rotating frame 46 is rotatably connected to the inside of the support frame 48, so that when the rotating frame 46 rotates upward, it can drive the support frame 48 to pry upward, which can quickly separate the fixed blocks 45 from the ground.

[0033] Reference Figure 2 and Figure 4The cleaning mechanism 5 includes two slide rails 51, designed to provide good sliding ability. The two slide rails 51 are externally fixedly connected to the bottom sides of two upright plates 6. The two slide rails 51 are internally fixedly connected to guide posts 53, designed to provide good guiding ability. Springs 52 are sleeved on the outside of the two guide posts 53. The springs 52 are designed to extend and retract on their own. At the same time, the guide posts 53 can prevent the springs 52 from shifting during extension and retraction. The two springs 52 are externally fixedly connected to sliders 54, designed to provide good sliding ability, so that they can slide smoothly inside the slide rails 51. The adjacent sides of the two sliders 54 are fixedly connected to brackets 55, designed to provide good support. The sliding ability of the sliders 54 can drive the brackets 55 to slide. The brackets 55 are internally fixedly connected to scrapers 56. When the brackets 55 slide, they can drive the scrapers 56 to slide on the vibrating ground, so as to push the debris to one side and prevent errors.

[0034] Working Principle: In use, the detector is first placed on the ground in the area to be detected. When the sliding block 42 drives the rotating column 43 to slide within the sliding groove 41, it allows the fixed frame 44 to move at different heights, thus moving the fixed block 45. When fixing is required, the fixed block 45 contacts and secures to the ground, providing stable support for the detector. The rotation of the support column 47 drives the rotating frame 46 to rotate, causing the support frame 48 to pry upwards, separating the fixed block 45 from the ground, thus enabling quick installation and disassembly of the detector. After installation, the hydraulic rod 21, through its telescopic movement, drives the vibrating column 23 on the support plate 22 to impact the ground, exciting the underground medium to generate reflected signals. These signals propagate through the ground and are received and processed by the sensors inside the detector, thereby enabling the detection of underground carbon reserves.

[0035] During the operation of the underground carbon storage detector, when the hydraulic rod 21 of the vibration mechanism 2 drives the vibration column 23 to impact the ground, the ground vibrates. At this time, the slider 54 of the cleaning mechanism 5 slides within the slide rail 51, and its sliding ability allows the slider 54 to move. The movement of the slider 54 is transmitted to the scraper plate 56 through the bracket 55, and the scraper plate 56 slides on the ground accordingly. Since the spring 52 is sleeved outside the guide column 53, the extension and retraction function of the spring 52 allows the slider 54 to automatically reset during vibration. At the same time, the guide column 53 prevents the spring 52 from deviating during extension and retraction, ensuring that the slider 54 always stays on the correct track. As a key component connecting the slider 54 and the scraper plate 56, the bracket 55 provides support so that the scraper plate 56 can maintain stable contact with the ground. When the scraper plate 56 slides on the ground, it pushes the debris generated during vibration to one side, preventing these debris from accumulating near the detector, thereby avoiding interference with the impact effect of the vibration column 23 and ensuring that the detector can accurately generate signals and detect underground carbon storage.

[0036] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. An installation structure of an underground carbon stock explorer comprising a machine body (1), characterized in that: The top of the machine body (1) is provided with a vibration mechanism (2), the bottom sides of the machine body (1) are fixedly connected with support plates (3), the outside of the two support plates (3) is provided with a support mechanism (4), the bottom of the machine body (1) is fixedly connected with two upright plates (6), and a cleaning mechanism (5) is provided on the adjacent side of the two upright plates (6). The support mechanism (4) includes two sliding blocks (42). The two sliding blocks (42) are slidably connected to the outside of the support plate (3). Multiple sliding grooves (41) are provided on the outside of the two support plates (3). The two sliding blocks (42) are slidably connected to the inside of the sliding grooves (41). Rotating columns (43) are fixedly connected to the inside of the two sliding blocks (42). Fixed frames (44) are rotatably connected to the outside of the two rotating columns (43). Two fixed blocks (45) are fixedly connected to the bottom of the two fixed frames (44). A prying assembly is fixedly connected to the top of the two fixed blocks (45).

2. The installation structure of a ground carbon storage explorer according to claim 1, characterized by: The prying assembly includes a support frame (48), the bottom of which is fixedly connected to the top of the fixed block (45). Support columns (47) are rotatably connected to the outside of the two support plates (3). Rotating frames (46) are fixedly connected to the outside of the support columns (47). The outside side of the rotating frames (46) is rotatably connected to the inside of the support frame (48).

3. The installation structure of a ground carbon storage explorer according to claim 1, characterized by: The vibration mechanism (2) includes multiple hydraulic rods (21), the output ends of the multiple hydraulic rods (21) are fixedly connected to the top of the machine body (1), and a support plate (22) is fixedly connected to the outside of the multiple hydraulic rods (21).

4. The installation structure of a ground carbon storage explorer according to claim 3, characterized by: The support plate (22) is internally fixedly connected to a vibration column (23), and the outside of the vibration column (23) penetrates the top of the body (1).

5. The installation structure of a ground carbon storage explorer according to claim 1, characterized by: The cleaning mechanism (5) includes two slide rails (51), the two slide rails (51) are externally fixedly connected to the bottom sides of the two upright plates (6), and guide columns (53) are internally fixedly connected to the two slide rails (51).

6. The installation structure of a ground carbon storage explorer according to claim 5, characterized by: Springs (52) are sleeved on the outside of the two guide posts (53), and sliders (54) are fixedly connected to the outside of the two springs (52).

7. The installation structure of an underground carbon storage detector according to claim 6, characterized in that: A bracket (55) is fixedly connected to one side of each of the two sliders (54), and a scraper plate (56) is fixedly connected inside the bracket (55).