Concrete compressive strength detection device

The concrete compressive strength testing device, which integrates components such as detection sensors, positioning modules, and remote transmission modules, solves the problem of data falsification caused by workers not conducting tests at designated locations, and achieves efficient and accurate test results and a convenient operating experience.

CN224231457UActive Publication Date: 2026-05-12BEIJING ZHONGJIAN CONSTR RES INST CO LTD +3
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
BEIJING ZHONGJIAN CONSTR RES INST CO LTD
Filing Date
2025-04-03
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

In current concrete compressive strength testing, staff may not conduct tests at designated locations, leading to data falsification and affecting the accuracy and reliability of the test results.

Method used

The concrete compressive strength testing device includes a detection sensor, a positioning module, a remote transmission module, an inclination detection module, an alarm module, a voice input module, a touch screen, and a wireless transmission module. The positioning module ensures the accuracy of the detection location, the remote transmission module ensures real-time data uploading and sharing, the inclination detection module and the alarm module ensure the stability of the detection process, the voice input module improves the ease of operation, and the wireless transmission module enhances the flexibility of data transmission.

Benefits of technology

It enables efficient and accurate testing of concrete compressive strength, ensures the authenticity of the testing location, improves the reliability of the test results and the convenience of management, avoids data fraud, and enhances the stability and ease of operation of the testing process.

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Patent Text Reader

Abstract

The utility model relates to the field of concrete detection equipment, in particular to a concrete compressive strength detection device which comprises a body, a control module, a positioning module and a remote transmission module, the body comprises a detection sensor for detecting the restoring force of instantaneous elastic deformation generated on the surface of concrete, and the control module is connected with the positioning module. The detection sensor is connected with the control module, the positioning module and the remote transmission module are both connected to the control module, and the control module, the positioning module and the remote transmission module are all installed in the body. The method and the device have the effect of determining the detection position of the worker to ensure the validity of the data.
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Description

Technical Field

[0001] This application relates to the field of concrete testing equipment, and in particular to a device for testing the compressive strength of concrete. Background Technology

[0002] Concrete compressive strength testing is a crucial step in building construction and engineering quality assessment. Accurate measurement of concrete component performance ensures the safety and durability of buildings. Currently, commonly used methods for testing concrete compressive strength in practical engineering include rebound hammer testing, ultrasonic testing, and penetration testing. Among these, the rebound hammer method indirectly reflects the compressive strength of concrete by measuring its surface hardness.

[0003] In related technologies, sensors within a testing device are used to detect the restoring force of instantaneous elastic deformation on the surface of concrete components, thus reflecting the performance of the concrete components. However, in actual testing processes, there is a possibility that personnel may not be conducting tests at designated locations, leading to data falsification. Therefore, how to ensure that personnel are conducting tests at designated locations to guarantee the validity of the data remains a problem to be solved. Utility Model Content

[0004] In order to determine the location of the testing personnel and ensure the validity of the data, this application provides a concrete compressive strength testing device.

[0005] The concrete compressive strength testing device provided in this application adopts the following technical solution:

[0006] A concrete compressive strength testing device includes a body, which includes a detection sensor for detecting the restoring force of instantaneous elastic deformation generated on the concrete surface, and also includes a control module, a positioning module, and a remote transmission module. The detection sensor is connected to the control module, and the positioning module and the remote transmission module are both connected to the control module. The control module, the positioning module, and the remote transmission module are all installed inside the body.

[0007] By adopting the above technical solution, efficient testing of concrete compressive strength is achieved. Specifically, the detection sensor can accurately acquire data on the restoring force of instantaneous elastic deformation of the concrete surface. Simultaneously, the positioning module accurately records the detection location information, and the remote transmission module supports real-time data upload and sharing, effectively improving testing efficiency and management convenience. This avoids data falsification due to staff not testing at designated locations, thus improving the accuracy and reliability of the test results.

[0008] Optionally, the positioning module includes a GPS positioning module and a BeiDou positioning module, both of which are connected to the control module.

[0009] By adopting the above technical solution, high-precision geographic location positioning is achieved. Specifically, integrating GPS and BeiDou positioning modules provides dual positioning assurance, improving the success rate and accuracy of positioning under different environmental conditions, thereby ensuring more reliable location information from the detection data.

[0010] Optionally, it also includes a tilt detection module and an alarm module, both of which are connected to the control module and are installed inside the main body.

[0011] By adopting the above technical solution, the addition of a tilt detection module can monitor the tilt status of the equipment in real time, ensuring the stability and accuracy of the detection process and ensuring that the detection results meet the requirements; at the same time, an alarm module can be set up to alert staff when the tilt angle is abnormal.

[0012] Optionally, the alarm module is an audible and visual alarm module.

[0013] Optionally, it also includes a voice input module, which is connected to the control module. The voice input module is installed inside the main body, and a through hole is provided on the main body corresponding to the installation position of the voice input module.

[0014] By adopting the above technical solution, commands or data can be input via voice, improving operational convenience, especially when hands are occupied or manual operation is not suitable. The design of installing a voice input module within the main body and creating a through-hole at the corresponding location ensures effective acquisition of voice signals.

[0015] Optionally, a touch screen is also included, which is connected to the control module and mounted on the main body.

[0016] By adopting the above technical solution, the touch screen is connected to the control module and installed on the main body, which enables users to operate and view the test data intuitively, improves the human-computer interaction experience, and makes the operation of the equipment more convenient and efficient.

[0017] Optionally, it may also include a wireless transmission module, which is connected to the control module.

[0018] By adopting the above technical solution, the wireless transmission module can wirelessly transmit data with terminals such as mobile phones, improving the convenience and flexibility of data transmission, avoiding the limitations of traditional wired connections, and enhancing the device's adaptability to actual application scenarios.

[0019] Optionally, the wireless transmission module includes a Bluetooth module and a WIFI module, both of which are connected to the control module.

[0020] In summary, this application includes at least one of the following beneficial technical effects:

[0021] 1. This technology enables highly efficient testing of concrete compressive strength. Specifically, the detection sensor accurately acquires data on the restoring force of instantaneous elastic deformation on the concrete surface. Simultaneously, the positioning module precisely records the detection location information, while the remote transmission module supports real-time data upload and sharing, effectively improving testing efficiency and management convenience. It also prevents data falsification due to staff not testing at designated locations, thus improving the accuracy and reliability of test results.

[0022] 2. High-precision geolocation positioning is achieved. Specifically, integrating GPS and BeiDou positioning modules provides dual positioning assurance, improving the success rate and accuracy of positioning under different environmental conditions, thereby ensuring more reliable location information from the detection data. Attached Figure Description

[0023] Figure 1 This is the overall connection block diagram of this embodiment.

[0024] Explanation of reference numerals in the attached diagram: 1. Control module; 2. Positioning module; 3. Remote transmission module; 4. Tilt detection module; 5. Alarm module; 6. Voice input module; 7. Touch screen; 8. Wireless transmission module. Detailed Implementation

[0025] The following is in conjunction with the appendix Figure 1 This application will be described in further detail.

[0026] A concrete compressive strength testing device, in related technologies, this device is the main body, which is equipped with a detection sensor for detecting the restoring force of instantaneous elastic deformation generated on the concrete surface. The rebound data is obtained by using the detection sensor to detect the concrete surface.

[0027] This application discloses a device for testing the compressive strength of concrete. (Refer to...) Figure 1 A concrete compressive strength testing device includes a control module 1, a positioning module 2, and a remote transmission module 3. The detection sensor is connected to the control module 1, and the positioning module 2 and the remote transmission module 3 are both connected to the control module 1. The control module 1, the positioning module 2, and the remote transmission module 3 are all installed in the main body.

[0028] After the detection sensor detects data, it transmits it to the control module 1. The control module 1 then sends the detected data to the cloud server via the remote transmission module 3. This allows for real-time data transmission to the cloud, avoiding the risk of data being altered midway and mitigating the risk of data loss to some extent. Simultaneously, the positioning module 2 performs real-time positioning and transmits the results to the control module 1. The control module 1 then sends the positioning results to the cloud via the remote transmission module 3. This ensures that the location data of the detected position is accurate and not a substitute location, guaranteeing the authenticity of the data.

[0029] The control module 1 includes a processor for processing signals; in this embodiment, a microcontroller can be used. The positioning module 2 includes a GPS positioning module and a BeiDou positioning module, combining the two positioning methods to ensure accurate location detection. It also provides redundancy, ensuring that if one module fails, the other can still perform positioning.

[0030] The control module 1 is also connected to a tilt angle detection module 4 and an alarm module 5. Both the tilt angle detection module 4 and the alarm module 5 are installed inside the main body. The tilt angle detection module 4 can detect the tilt angle of the entire detection device, and when the tilt angle does not meet the preset requirements, the control module 1 controls the alarm module 5 to sound an alarm, thus providing timely information to the personnel. For example, if the detection device is perpendicular to the horizontal concrete structure, it needs to be perpendicular to the horizontal plane. In this case, the tilt angle detection module 4 detects the tilt angle in real time. If the control module 1 determines that the tilt angle does not meet the preset requirements, it will control the alarm module 5 to sound an alarm, and the personnel will then be informed that the detection result is inaccurate and needs to be re-detected.

[0031] Among them, alarm module 5 is an audible and visual alarm module, which has a better alarm effect and can provide multi-sensory prompts to staff.

[0032] The control module 1 is also connected to a voice input module 6, which is installed inside the main body, and a through hole is provided on the main body corresponding to the position of the voice input module 6. This through hole allows the operator's voice to be transmitted to the voice input module 6. Upon receiving a voice command, the voice input module 6 converts it into an electrical control signal and transmits it to the control module 1, enabling the control module 1 to perform the corresponding control. This improves convenience, allowing operators to use voice control when their hands are unable to operate the device.

[0033] The control module 1 is also connected to a touch screen 7, which is mounted on the main body. The control module 1 controls the touch screen 7 to display various data for staff to view. Furthermore, the touch screen 7 is designed to be easy for staff to operate, allowing them to directly select data by touch.

[0034] The control module 1 is also connected to a wireless transmission module 8, which is installed inside the main body. Specifically, the wireless transmission module 8 includes a Bluetooth module and a WIFI module. Staff can connect to the wireless transmission module 8 through mobile phones or other terminals to obtain the data obtained by the detection device, making it convenient for staff to view the data.

[0035] The installation method and structure described above are not specifically limited, as long as they can be fixed in place. Furthermore, this embodiment only protects the hardware connection; the program can use existing programs and is not protected.

[0036] The implementation principle of the concrete compressive strength testing device in this application embodiment is as follows: by installing the positioning module 2, the main body can be positioned to obtain position data, which can prevent the staff from falsifying data by testing at random locations and ensure the validity of the data. At the same time, the detected data can also be directly uploaded to the cloud server through the remote transmission module 3, which can prevent the staff from modifying the data after the test is completed, thus ensuring the accuracy of the data.

[0037] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A concrete compressive strength testing device, comprising a body, wherein the body includes a detection sensor for detecting the restoring force of instantaneous elastic deformation generated on the concrete surface, characterized in that: It also includes a control module (1), a positioning module (2) and a remote transmission module (3). The detection sensor is connected to the control module (1). The positioning module (2) and the remote transmission module (3) are both connected to the control module (1). The control module (1), the positioning module (2) and the remote transmission module (3) are all installed inside the main body.

2. The concrete compressive strength testing device according to claim 1, characterized in that: The positioning module (2) includes a GPS positioning module and a Beidou positioning module, both of which are connected to the control module (1).

3. The concrete compressive strength testing device according to claim 1, characterized in that: It also includes a tilt detection module (4) and an alarm module (5), both of which are connected to the control module (1) and are installed inside the main body.

4. The concrete compressive strength testing device according to claim 3, characterized in that: The alarm module (5) is an audible and visual alarm module.

5. The concrete compressive strength testing device according to claim 1, characterized in that: It also includes a voice input module (6), which is connected to the control module (1). The voice input module (6) is installed inside the main body, and a through hole is opened on the main body corresponding to the installation position of the voice input module (6).

6. The concrete compressive strength testing device according to claim 1, characterized in that: It also includes a touch screen (7), which is connected to the control module (1) and is mounted on the main body.

7. The concrete compressive strength testing device according to claim 1, characterized in that: It also includes a wireless transmission module (8), which is connected to the control module (1).

8. The concrete compressive strength testing device according to claim 7, characterized in that: The wireless transmission module (8) includes a Bluetooth module and a WIFI module, both of which are connected to the control module (1).