Building detection equipment based on communication technology
By using communication control components and linear modules to automatically move the rebound instrument in building inspection equipment, the problem of low error and safety during detection of handheld rebound instruments is solved, and higher detection accuracy and safety is achieved.
Patent Information
- Application Number
- CN202510279778.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-11
- Publication Date
- 2025-06-03
AI Technical Summary
During the compression resistance detection process of building walls, the handheld rebound meter is prone to tilt, causing detection errors, and the detector may be injured by the elastic collision of the rebound meter during operation, which is low in safety.
The building inspection equipment based on communication technology is adopted, and the mounting plate is supported by the bracket and the linear module is controlled to drive the rebound instrument movement through the communication control component to achieve automatic detection.
It effectively reduces detection errors, eliminates the risk of detectors being injured by collision of rebound force of rebound meter, and significantly improves the accuracy and safety of detection.
Smart Images

Figure CN120084673A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building detection equipment, and more specifically to building detection equipment based on communication technology. Background Art
[0002] Building detection refers to the activity of using various technical means and methods to inspect, test, and evaluate each link and element of a building project to ensure that the quality, safety, function, and performance of the building meet relevant standards and requirements. For example, the detection of the compressive performance of building walls to ensure that the quality of building wall materials meets the design and specification requirements.
[0003] Currently, a rebound hammer is used in the process of detecting the compressive strength of building walls. The rebound hammer measures the rebound value by hitting the surface of the concrete, and estimates the strength of the concrete based on the correlation between the rebound value and the concrete strength. For example, a rebound hammer for detecting the strength of building concrete disclosed in the prior art with the publication number CN222318709U can facilitate the storage of the rebound hammer and at the same time make the rebound hammer more stable to hold during detection, and can quickly obtain detection results on-site, and is widely used in the detection of the strength of concrete structures in various building projects.
[0004] However, the above-mentioned prior art still has the following problems when in use: When the detector holds the rebound hammer to detect the compressive strength of the building wall, the rebound hammer is prone to tilt, resulting in detection errors. At the same time, during the operation process, the detector will also be injured by the elastic collision of the rebound hammer, and the safety of the detection work is low. Summary of the Invention
[0005] In order to overcome the above-mentioned defects of the prior art, the present invention provides a building detection equipment based on communication technology. The installation plate is supported by a bracket and closely adheres to the building wall for detection. At the same time, the communication control component is used to control the linear module to drive the rebound hammer to move, automatically detecting the compressive strength of the building wall, so as to avoid large errors when the detector holds the rebound hammer for detection, and can also eliminate the potential risk of the detector being injured by the elastic collision of the rebound hammer during the operation process, greatly improving the accuracy and safety of the detection work, and solving the problems appearing in the above-mentioned background art.
[0006] To achieve the above object, the present invention provides the following technical solution: A building detection equipment based on communication technology, including an installation plate. A rebound hammer for monitoring the building strength is provided on the top of the installation plate. The rebound hammer is installed on the installation plate through a moving component. The moving component includes a linear module. A connecting plate is fixedly provided on the top of the linear module. Two lower clamping plates are fixedly provided on the top of the connecting plate. Upper clamping plates are connected to the tops of the two lower clamping plates. The rebound hammer is arranged between the upper clamping plate and the lower clamping plate. A bracket is fixedly provided at the bottom of the installation plate. A communication control component and a printing device are detachably connected to the front end of the bracket.
[0007] In a preferred embodiment, a fixing groove is machined at the top of the mounting plate, and the linear module is detachably installed in the fixing groove, facilitating the disassembly of the linear module by the tester for replacement.
[0008] In a preferred embodiment, the communication control component includes a controller, which is equipped with a display screen and a communication element. Both the rebound hammer and the linear module are connected to the input end of the controller.
[0009] In a preferred embodiment, the printing device includes a micro printer provided at the bottom of the controller, and the micro printer is detachably connected to the bracket. The micro printer is connected to the output end of the controller.
[0010] In a preferred embodiment, a storage groove is machined at the bottom of the bracket, an electric push rod is fixedly provided in the storage groove, a base is fixedly provided at the bottom end of the electric push rod, and the electric push rod is connected to the input end of the controller, facilitating the automatic adjustment of the height of the rebound hammer by means of the electric push rod.
[0011] In a preferred embodiment, handles are fixedly provided on one side of the mounting plate and one side of the bracket, and a plurality of uniformly distributed anti-slip grooves are machined on the outer walls of both handles. The provision of a plurality of anti-slip grooves can improve the anti-slip property of the handles.
[0012] In a preferred embodiment, a battery box is fixedly provided at the front end of the bracket, and a rechargeable lithium battery for supplying power to the linear module, the controller, the micro printer and the electric push rod is provided inside the battery box, facilitating the flexible use of this device by the tester when carrying it.
[0013] The technical effects and advantages of the present invention: 1. The present invention supports the mounting plate to closely adhere to the building wall surface for detection through the bracket, and at the same time controls the linear module to drive the rebound hammer to move through the communication control component to automatically detect the compressive strength of the building wall surface, so as to avoid large errors when the tester holds the rebound hammer for detection, and can also eliminate the potential risk of the tester being injured by the rebound force collision of the rebound hammer during the operation process, greatly improving the accuracy and safety of the detection work.
[0014] 2. The height of the mounting plate and the rebound hammer is automatically adjusted by the electric push rod to adapt to the detection of the compressive strength at different positions on the building wall surface, making it more flexible to use. The detection data of the rebound hammer is transmitted to the remote terminal and the printer through the controller, which is convenient for the staff to remotely view and manage, and can also print paper data sheets, facilitating the storage and management by the tester. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 Schematic diagram of the use of the rebound instrument of the present invention; Figure 3 Schematic diagram of the height adjustment of the bracket of the present invention; Figure 4 Top view of the overall structure of the present invention; Figure 5 Structural diagram of the mounting plate and the moving component of the present invention.
[0016] Reference numerals in the drawings are: 1, mounting plate; 2, rebound instrument; 3, moving component; 4, bracket; 5, communication control component; 51, controller; 6, printing device; 61, micro printer; 7, fixed groove; 8, storage groove; 9, electric push rod; 10, base; 11, handle; 12, battery box; 31, linear module; 32, connecting plate; 33, lower clamping plate; 34, upper clamping plate. Detailed implementation manners
[0017] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without making creative efforts belong to the scope of protection of the present invention.
[0018] Referring to the accompanying drawings of the specification Figures 1 - 5 , the present invention provides a building detection device based on communication technology, including a mounting plate 1. A rebound instrument 2 for monitoring the strength of a building is provided on the top of the mounting plate 1. The rebound instrument 2 is selected as HT225. The rebound instrument 2 uses a spring to drive a striker, and through a striker rod, it strikes the concrete surface to generate a restoring force of instantaneous elastic deformation. The striker drives the pointer to rebound and indicates the rebounding distance, that is, the rebound value. Through the rebound value, the compressive data of the building wall can be obtained.
[0019] The rebound instrument 2 is installed on the mounting plate 1 through a moving component 3. The moving component 3 includes a linear module 31. The linear module 31 is selected as FUYU-FSK40J. A fixed groove 7 is processed on the top of the mounting plate 1. The linear module 31 is detachably installed in the fixed groove 7. A connecting plate 32 is fixedly provided on the top of the linear module 31. Two lower clamping plates 33 are fixedly provided on the top of the connecting plate 32. Upper clamping plates 34 are connected to the tops of the two lower clamping plates 33. The rebound instrument 2 is arranged between the upper clamping plate 34 and the lower clamping plate 33.
[0020] A bracket 4 is fixedly provided at the bottom of the mounting plate 1. Handles 11 are fixedly provided on one side of the mounting plate 1 and one side of the bracket 4. A plurality of uniformly distributed anti-slip grooves are processed on the outer walls of the two handles 11. A communication control component 5 and a printing device 6 are detachably connected to the front end of the bracket 4.
[0021] During actual use, the tester will first carry this device to the side of the building to be tested. After reaching the designated position, the tester firmly holds the handle 11 of the device and closely attaches the bracket 4 to the building wall surface. Compared with the traditional tester holding the rebound hammer 2, this device controls the linear module 31 to drive the rebound hammer 2 to move through the communication control component 5, automatically performing the compressive strength test of the building wall surface, so as to avoid large errors when the tester holds the rebound hammer 2 for testing, and at the same time, it can also eliminate the potential risk that the tester is injured by the rebound force collision of the rebound hammer 2 during the operation process, greatly improving the accuracy and safety of the testing work.
[0022] In this embodiment, referring to the accompanying drawings of the specification Figures 1 - 5 , the communication control component 5 includes a controller 51. The controller 51 is selected as UDC1700. The controller 51 is equipped with a display screen for displaying data and a communication element for remote communication. Both the rebound hammer 2 and the linear module 31 are connected to the input end of the controller 51. By setting a large-size display on the controller 51, the data detected by the rebound hammer 2 is displayed using the large-size display, which is convenient for the tester to quickly view. At the same time, the controller 51 can transmit the data detected by the rebound hammer 2 to the remote terminal through the communication element, facilitating the staff to remotely view using a remote terminal such as a computer or a mobile phone.
[0023] The printing device 6 includes a micro printer 61 provided at the bottom of the controller 51. The micro printer 61 is selected as XinYe XP-58IIH, and the micro printer 61 is detachably connected to the bracket 4. The micro printer 61 is connected to the output end of the controller 51. The controller 51 transmits the data detected by the rebound hammer 2 to the printer through the communication element, and uses the printer to print out a paper data sheet, which is convenient for the tester to collect and manage.
[0024] Moreover, a battery box 12 is fixedly provided at the front end of the bracket 4. A rechargeable lithium battery for supplying power to the linear module 31, the controller 51, the micro printer 61, and the electric push rod 9 is provided inside the battery box 12. The rechargeable lithium battery is provided to supply electrical energy, so as to facilitate the tester to carry this device and improve the flexibility of the device.
[0025] As Figure 3 shown, a storage groove 8 is also processed at the bottom of the bracket 4. An electric push rod 9 is fixedly provided in the storage groove 8. A base 10 is fixedly provided at the bottom end of the electric push rod 9. The electric push rod 9 is connected to the input end of the controller 51. The base 10 is provided to support the placement and use of the rebound hammer 2, and the height of the rebound hammer 2 can be automatically adjusted through the electric push rod 9, which is suitable for testing the compressive strength at different positions on the building wall surface.
[0026] Finally, the above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A building detection device based on communication technology, comprising a mounting plate (1), characterized in that: A rebound hammer (2) for monitoring the strength of a building is provided on the top of the mounting plate (1); the rebound hammer (2) is mounted on the mounting plate (1) via a moving component (3); The moving assembly (3) comprises a linear module (31), a connecting plate (32) is fixedly provided on the top of the linear module (31), two lower clamping plates (33) are fixedly provided on the top of the connecting plate (32), the tops of the two lower clamping plates (33) are both connected to an upper clamping plate (34), and the rebound tester (2) is arranged between the upper clamping plate (34) and the lower clamping plate (33); A bracket (4) is fixedly provided at the bottom of the mounting plate (1), and a communication control component (5) and a printing device (6) are detachably connected to the front end of the bracket (4).
2. The building detection device based on communication technology according to claim 1, characterized in that: A fixing groove (7) is machined on the top of the mounting plate (1), and the linear module (31) is detachably mounted in the fixing groove (7).
3. The building detection device based on communication technology according to claim 1, characterized in that: The communication control component (5) comprises a controller (51), the controller (51) having a display screen and a communication element, and the rebound tester (2) and the linear module (31) are both connected to the input end of the controller (51).
4. The building detection device based on communication technology according to claim 3 is characterized in that: The printing device (6) comprises a micro printer (61) arranged at the bottom of the controller (51), and the micro printer (61) is detachably connected to the bracket (4), and the micro printer (61) is connected to the output end of the controller (51).
5. The building detection device based on communication technology according to claim 3 is characterized in that: The bottom of the bracket (4) is processed with a storage groove (8), an electric push rod (9) is fixedly provided in the storage groove (8), a base (10) is fixedly provided at the bottom end of the electric push rod (9), and the electric push rod (9) is connected to the input end of the controller (51).
6. The building detection device based on communication technology according to claim 1, characterized in that: One side of the mounting plate (1) and one side of the bracket (4) are both fixedly provided with handles (11), and the outer walls of the two handles (11) are processed with a plurality of evenly distributed anti-slip grooves.
7. The building detection device based on communication technology according to claim 5 is characterized in that: A battery box (12) is fixedly provided at the front end of the bracket (4), and a rechargeable lithium battery is provided inside the battery box (12) for supplying power to the linear module (31), the controller (51), the micro printer (61) and the electric push rod (9).
Citation Information
Patent Citations
Resiliometer for detecting strength of building concrete
CN222318709U