Carbon fiber concrete mechanical property monitoring device
By introducing an electric telescopic rod-driven scraper and movable plate folding structure into the carbon fiber concrete mechanical property monitoring device, the problem of residue splashing was solved, automated cleaning and centralized collection were achieved, and work efficiency was improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG JOINT CONSTR ENG GENERAL CONTRACTING CO LTD
- Filing Date
- 2025-05-20
- Publication Date
- 2026-04-28
AI Technical Summary
Existing carbon fiber concrete mechanical property monitoring devices cause residue to splatter onto the workbench surface during testing. The lack of an automated cleaning mechanism necessitates manual cleaning, which is time-consuming, labor-intensive, and affects work efficiency.
A device for monitoring the mechanical properties of carbon fiber concrete is designed. It adopts an electric telescopic rod to drive a scraper structure and combines it with a movable plate folding mechanism to realize the automated cleaning and centralized collection of residues. The residues are then guided into a collection box through a leak.
It enables automated cleaning and centralized collection of residues, reducing manual cleaning time and improving work efficiency and convenience.
Smart Images

Figure CN224176266U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of carbon fiber concrete mechanical property monitoring technology, and in particular to a carbon fiber concrete mechanical property monitoring device. Background Technology
[0002] Carbon fiber reinforced concrete (CFRC) is a composite material that integrates multiple functions and structural properties. Asphalt concrete pavement is a flexible pavement with poor resistance to deformation and is prone to aging, cracking, and rutting. Concrete pavement has a higher grade and can withstand high temperatures, maintaining its smoothness even after short-term immersion in water. However, to prevent cracking, steel mesh is often added to the concrete, which significantly reduces the economic efficiency of concrete pavement.
[0003] Regarding the existing patent CN208520682U, which discloses a carbon fiber concrete mechanical property monitoring device, the device includes a detector, an adjustment device on the detector, a support plate on the adjustment device, a steering device on the support plate, a monitoring device on the steering device, a threaded rod penetrating the support plate, a fixed plate threadedly sleeved on the threaded rod, an opening on the fixed plate, a sliding plate slidably sleeved within the opening, a clamping plate fixed to one side of the sliding plate, and one end of the threaded rod rotatably connected to one side of the clamping plate. A baffle is provided on the sliding plate, located between the fixed plate and the clamping plate. The monitoring device corresponds to the baffle. This invention utilizes the monitoring device and the threaded rod... The combination of the first spring and the clamping plate can stably hold the baffle and effectively buffer it, solving the problem of residue splashing and damage, thus achieving the goal of safe monitoring. The monitor can replace manual labor, preventing injury to personnel. The baffle effectively protects the monitor from damage caused by residue, improving monitoring safety. However, while it blocks residue splashing, it does not clean the surface of the monitoring device's workbench. Splashed residue remains on the surface of the monitoring device, requiring manual cleaning and wiping for subsequent testing. This process is time-consuming and labor-intensive, affecting the efficiency of subsequent testing. Furthermore, the inability to centrally collect and process residue presents certain drawbacks.
[0004] Therefore, to address the problem that existing monitoring devices, when residue splashes onto the workbench surface during testing, lack an automated cleaning mechanism to remove it, requiring manual cleaning which is time-consuming, labor-intensive, and affects subsequent work efficiency, a carbon fiber concrete mechanical property monitoring device can be designed. This device uses an automated cleaning mechanism with a scraper structure to remove surface residue and collect it centrally for subsequent processing. This process is highly automated, saves time and labor, and improves subsequent work efficiency. Utility Model Content
[0005] To overcome the problem that existing monitoring devices splatter residue onto the workbench surface during testing, and there is no automated cleaning mechanism to remove it, manual cleaning is required, which is time-consuming, labor-intensive, and affects the efficiency of subsequent work.
[0006] The technical solution of this utility model is as follows: a carbon fiber concrete mechanical property monitoring device, comprising a monitoring device body, a workbench inside the monitoring device body, a plurality of evenly arranged perforations on the surface of the workbench, a collection box inside the workbench, support blocks fixedly mounted on the left and right sides of the upper end face of the monitoring device body, an electric telescopic rod mounted on the side of each support block near the workbench, a scraper mounted on one side of the electric telescopic rod, a U-shaped movable connecting plate mounted at the front end of the scraper, a first movable shaft movably passing through the left and right sides of the U-shaped movable connecting plate and the scraper, a first movable plate fixedly mounted at the front end of the U-shaped movable connecting plate, a second movable plate mounted at the front end of the first movable plate, and a second movable shaft movably passing through the left and right sides of the second movable plate and the first movable plate.
[0007] Preferably, the operation of the electric telescopic rod drives a scraper on one side to move across the surface of the workbench, cleaning the residue on the surface. The residue falls through the drain hole into the collection box for centralized processing. For larger residues, the first movable plate can be folded by the folding motion of the first movable shaft, and the second movable plate can be folded by the second movable shaft, so that it is located on the surface of the workbench, allowing for the removal of larger residues and facilitating subsequent cleaning work.
[0008] Preferably, the front end of the monitoring device body is equipped with a control button, and the four feet at the bottom of the monitoring device body are all fixedly equipped with support feet, and the outside of the support feet is covered with anti-slip rubber.
[0009] Preferably, the front end of the monitoring device body is equipped with a control button, and the four feet at the bottom of the monitoring device body are all fixedly equipped with support feet, and the outside of the support feet is covered with anti-slip rubber.
[0010] Preferably, a detection head is provided above the connecting block, and a detection unit is provided above the worktable.
[0011] Preferably, the scraper has a locking groove inside, into which the U-shaped movable connecting plate is locked.
[0012] Preferably, slots are provided on both the left and right sides of the upper surface of the scraper, and rods are fixedly provided on both the left and right sides of the upper surface of the second movable plate, with the rods inserted into the slots.
[0013] Preferably, one end of the second movable plate has an angled structure, and both the left and right sides of the lower end face of the scraper are beveled.
[0014] The beneficial effects of this utility model are:
[0015] This carbon fiber concrete mechanical property monitoring device uses an electric telescopic rod to drive a scraper on one side to move across the surface of the workbench, cleaning the surface residue. The residue falls through a drain hole into a collection box for centralized processing. For larger residues, the first movable plate can be folded by the first movable shaft, and the second movable plate can be folded by the second movable shaft, so that it is located on the surface of the workbench, allowing for the removal of larger residues and facilitating subsequent cleaning. Attached Figure Description
[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of the monitoring device of this utility model;
[0017] Figure 2 The image shown is a side view of the three-dimensional structure of the monitoring device of this utility model;
[0018] Figure 3 The diagram shown is a three-dimensional structural schematic of the scraper cleaning structure of this utility model.
[0019] Figure 4 This utility model is shown. Figure 3 A magnified schematic diagram of the three-dimensional structure at point A;
[0020] Figure 5 The image shown is a top view of the three-dimensional structure of the scraper cleaning structure of this utility model.
[0021] Explanation of reference numerals in the attached drawings: 1. Monitoring device body; 2. Support block; 3. Connecting block; 4. Threaded slider; 5. Electric telescopic rod; 6. Scraper; 7. Detection section; 8. Workbench; 9. Collection box; 10. Slide groove; 11. Lead screw; 12. Leakage hole; 13. Snap-fit groove; 14. U-shaped movable connecting plate; 15. First movable shaft; 16. First movable plate; 17. Second movable plate; 18. Insert rod; 19. Slot; 20. Second movable shaft. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] Please see Figures 1-5This utility model provides an embodiment: a carbon fiber concrete mechanical property monitoring device, including a monitoring device body 1, a workbench 8 inside the monitoring device body 1, a plurality of evenly arranged perforations 12 on the surface of the workbench 8, a collection box 9 inside the workbench 8, support blocks 2 fixedly installed on both the left and right sides of the upper surface of the monitoring device body 1, an electric telescopic rod 5 installed on the side of each support block 2 near the workbench 8, a scraper 6 installed on one side of the electric telescopic rod 5, a U-shaped movable connecting plate 14 installed at the front end of the scraper 6, and the left and right sides of the U-shaped movable connecting plate 14... A first movable shaft 15 is movably connected between the scraper 6 and the scraper 6. A first movable plate 16 is fixedly installed at the front end of the U-shaped movable connecting plate 14. A second movable plate 17 is installed at the front end of the first movable plate 16. A second movable shaft 20 is movably connected between the second movable plate 17 and the left and right sides of the first movable plate 16. For larger residues, the first movable plate 16 can be folded by the folding motion of the first movable shaft 15, and the second movable plate 17 can be folded by the second movable shaft 20, so that it is located on the surface of the worktable 8, which can remove larger residues and facilitate subsequent cleaning work.
[0024] Please see Figures 1-2 In this embodiment, the front end of the monitoring device body 1 is provided with a control button. The four end feet of the monitoring device body 1 are all fixedly provided with support feet. The support feet are covered with anti-slip rubber. The interior of the two support blocks 2 is provided with a sliding groove 10. The interior of the two sliding grooves 10 is provided with a lead screw 11. The exterior of the two lead screws 11 is engaged with a threaded slider 4. A connecting block 3 is fixedly provided between the two threaded sliders 4. A detection head is provided above the connecting block 3. A detection part 7 is provided above the workbench 8. Carbon fiber concrete is placed in the detection part 7 for detection. During the detection process, residue will splash onto the surface of the workbench 8. The operation of the electric telescopic rod 5 drives the scraper 6 on one side to move on the surface of the workbench 8 to clean the residue. The residue falls into the collection box 9 through the drain hole 12 for centralized processing. At the same time, for larger residues...
[0025] Please see Figures 3-5In this embodiment, the scraper 6 has a snap-fit groove 13 inside, and the U-shaped movable connecting plate 14 snaps into the snap-fit groove 13. Slots 19 are provided on both the left and right sides of the upper end face of the scraper 6. Insert rods 18 are fixedly provided on both the left and right sides of the upper end face of the second movable plate 17. The insert rods 18 are inserted into the slots 19. One end of the second movable plate 17 is a beveled structure, and both the left and right sides of the lower end face of the scraper 6 are beveled. The carbon fiber concrete is placed in the detection section 7 for detection. During the detection process, some residue will splash onto the surface of the workbench 8. The operation of the electric telescopic rod 5 drives one side of the scraper 6 to move on the surface of the workbench 8 to clean the residue on the surface. The residue falls into the collection box 9 through the drain hole 12 for centralized processing. At the same time, for larger residues...
[0026] During operation, carbon fiber concrete is placed in the testing section 7 for testing. During the testing process, some residue will splash onto the surface of the workbench 8. The operation of the electric telescopic rod 5 drives the scraper 6 on one side to move on the surface of the workbench 8 to clean the residue. The residue falls into the collection box 9 through the drain hole 12 for centralized treatment. For larger residue, the first movable plate 16 can be folded by the folding movement of the first movable shaft 15, and the second movable plate 17 can be folded by the second movable shaft 20, so that it is located on the surface of the workbench 8, which can remove the larger residue and facilitate subsequent cleaning work.
[0027] Through the above steps, the operation of the electric telescopic rod 5 drives the scraper 6 on one side to move on the surface of the workbench 8 to clean the residue on the surface. The residue falls into the collection box 9 through the drain hole 12 for centralized treatment. This solves the problem that when the existing monitoring device detects residue, it splashes onto the surface of the workbench 8 and there is no automatic cleaning mechanism to clean it. Manual cleaning is required, which is time-consuming and labor-intensive and affects the efficiency of subsequent work.
Claims
1. A device for monitoring the mechanical properties of carbon fiber concrete, comprising a monitoring device body (1), characterized in that: The monitoring device body (1) is equipped with a workbench (8) inside. The surface of the workbench (8) is provided with a number of evenly arranged holes (12). The workbench (8) is equipped with a collection box (9). Support blocks (2) are fixedly installed on the left and right sides of the upper end face of the monitoring device body (1). Electric telescopic rods (5) are installed on the side of the two support blocks (2) near the workbench (8). A scraper (6) is installed on one side of the electric telescopic rod (5). A U-shaped movable connecting plate (14) is installed at the front end of the scraper (6). A first movable shaft (15) is movably connected between the left and right sides of the U-shaped movable connecting plate (14) and the scraper (6). A first movable plate (16) is fixedly installed at the front end of the U-shaped movable connecting plate (14). A second movable plate (17) is installed at the front end of the first movable plate (16). A second movable shaft (20) is movably connected between the second movable plate (17) and the left and right sides of the first movable plate (16).
2. The carbon fiber concrete mechanical property monitoring device according to claim 1, characterized in that: The front end of the monitoring device body (1) is equipped with control buttons, and the four feet at the bottom of the monitoring device body (1) are all fixedly equipped with support feet, and the outside of the support feet is covered with anti-slip rubber.
3. The carbon fiber concrete mechanical property monitoring device according to claim 1, characterized in that: The interior of each of the two support blocks (2) is provided with a sliding groove (10), and the interior of each of the two sliding grooves (10) is provided with a lead screw (11). The exterior of each of the two lead screws (11) is engaged with a threaded slider (4), and a connecting block (3) is fixedly provided between the two threaded sliders (4).
4. The carbon fiber concrete mechanical property monitoring device according to claim 3, characterized in that: A detection head is provided above the connecting block (3), and a detection unit (7) is provided above the worktable (8).
5. The carbon fiber concrete mechanical property monitoring device according to claim 1, characterized in that: The scraper (6) has a snap-fit groove (13) inside, and the U-shaped movable connecting plate (14) snaps into the snap-fit groove (13).
6. The carbon fiber concrete mechanical property monitoring device according to claim 1, characterized in that: Slots (19) are provided on both the left and right sides of the upper surface of the scraper (6), and rods (18) are fixedly provided on both the left and right sides of the upper surface of the second movable plate (17). The rods (18) are inserted into the slots (19).
7. The carbon fiber concrete mechanical property monitoring device according to claim 1, characterized in that: One end of the second movable plate (17) has an angled structure, and the left and right sides of the lower end face of the scraper (6) are both beveled.
Citation Information
Patent Citations
Carbon fiber concrete mechanical properties monitoring devices
CN208520682U