Ultrasonic detection equipment
By setting RFID tags and readers on the cables, combined with Bluetooth transmission and LED displays, the problem of multiple people working together in ultrasonic testing is solved, enabling a single person to quickly locate and control the position of the cable, thus reducing time and labor costs.
Patent Information
- Application Number
- CN202520501345.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-03-20
AI Technical Summary
During construction testing, ultrasonic testing using full-length acoustic logging tubes requires the cooperation of multiple people, resulting in high time and labor costs.
By combining RFID tags and RFID readers with Bluetooth transmission technology, precise digital control of cable location is achieved. The cable position is displayed on an LED screen, allowing a single person to complete the cable winding, unwinding, and positioning.
It enables single-person operation, shortens preparation time, reduces labor costs, and improves efficiency.
Smart Images

Figure CN223954885U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to construction detection equipment field, concretely relates to an ultrasonic detection equipment. BACKGROUND
[0002] In the construction detection link, ultrasonic detection is generally used for the cast-in-place pile with the full pile length sound measuring pipe buried.In this process, one person usually needs to collect and release the cable line height at the pipe opening, and one person needs to tighten the cable line one by one at the depth control device according to the prompt of the former person at the tripod, sometimes the pile to be detected is far away from the instrument placement position, and usually 3 persons need to cooperate to complete this preparation work.It can be seen that the time and labor cost are very high.
[0003] In order to solve the above problems, we have made a series of improvements. CONTENT OF THE UTILITY MODEL
[0004] The utility model aims at providing an ultrasonic detection equipment to overcome the above-mentioned shortcomings and deficiencies existing in the prior art.
[0005] An ultrasonic detection equipment, comprising: ultrasonic instrument, cable line, triangular support, depth recording device, pipe opening pulley, probe, RFID tag, RFID card reader and LED display, one end of the ultrasonic instrument is connected with the cable line, the other end of the cable line is connected with the probe, the cable line is connected with the depth recording device and the pipe opening pulley, the RFID tag is arranged on the cable line, the depth recording device is arranged on the triangular support, the RFID card reader is arranged on the pipe opening pulley, and the LED display is arranged on the depth recording device.
[0006] Further, the RFID tag is a plurality of sheet type structures, and the RFID tag is fixed on the position display of the cable line by waterproof adhesive tape.
[0007] Further, the pipe opening pulley is provided with a mounting groove, and the RFID card reader is arranged on the mounting groove.
[0008] The utility model has the advantages of:
[0009] Compared with the prior art, the utility model realizes that a person controls the position of the wire according to the depth displayed by the LED display, not only shortens the preparation time, but also greatly reduces the time and labor cost. DRAWINGS
[0010] Figure 1 It is a structural schematic view of the utility model.
[0011] Figure 2 It is a structural schematic view of the pipe opening pulley.
[0012] Reference signs:
[0013] An ultrasonic instrument 100, a cable wire 200, a triangular support 300, a depth recording device 400, a pipe mouth pulley 500 and a mounting groove 510.
[0014] A probe 600, an RFID tag 700, an RFID card reader 800 and an LED display 900. DETAILED DESCRIPTION
[0015] The utility model will be further explained in connection with specific embodiments. It should be understood that the following embodiments are only used to illustrate the utility model and are not used to limit the scope of the utility model.
[0016] Embodiment 1
[0017] Figure 1 It is a structural schematic view of the utility model. Figure 2 It is a structural schematic view of the pipe mouth pulley.
[0018] As shown in Figure 1 An ultrasonic detection device, comprising: an ultrasonic instrument 100, a cable wire 200, a triangular support 300, a depth recording device 400, a pipe mouth pulley 500, a probe 600, an RFID tag 700, an RFID card reader 800 and an LED display 900, the ultrasonic instrument 100 is connected with one end of the cable wire 200, the other end of the cable wire 200 is connected with the probe 600, the cable wire 200 is connected with the depth recording device 400 and the pipe mouth pulley 500, the RFID tag 700 is arranged on the cable wire 200, the depth recording device 400 is arranged on the triangular support 300, the RFID card reader 800 is arranged on the pipe mouth pulley 500, and the LED display 900 is arranged on the depth recording device 400.
[0019] The RFID tag 700 is a plurality of sheet type structures, and the RFID tag 700 is fixed on the position display of the cable wire 200 by waterproof adhesive tape.
[0020] As shown in Figure 2 The pipe mouth pulley 500 is provided with a mounting groove 510, and the RFID card reader 800 is arranged on the mounting groove 510.
[0021] The traditional ultrasonic detection procedure is as follows: the pipe mouth pulley is placed at the pipe mouth, the probe is lowered to the bottom of the sounding pipe through the pipe mouth pulley, the cable 200 is connected to the ultrasonic instrument 100 at the other end, the triangular support 300 is erected, the depth recording device 400 is placed on the triangular support 300, the cable 200 is placed on the depth recording device 400, and three groups of cables are pulled to the same height at the pipe mouth position according to the depth marks on the cable 200, and the on-site arrangement is completed. Finally, after setting the parameters of the ultrasonic instrument 100, the cable 200 is pulled for detection. The step in the background art is to pull the cable 200 to the same height mark at the pipe mouth, which is time-consuming and laborious. Therefore, the utility model improves the structure for this step.
[0022] Firstly, the marks at each depth of the cable are read. An RFID tag 700 in the form of a sheet is attached to the cable 200 at each depth display, and is firmly fixed on the cable with waterproof tape. The cable 200 originally has depth display, so we only need to set the RFID tag 700 at the original position to complete positioning. The RFID reader 800 is arranged on the installation groove 510 of the pipe mouth pulley 500, and when the RFID tag 700 on the cable passes through the RFID reader 800, the RFID reader 800 reads the corresponding position information. The embedded high-frequency RFID reader module on the market has a size of 25.4mm*3mm (1 inch*0.11 inch) and a weight of only 0.0015kg (0.0033 pounds), which can fully realize the utility model. Through such a design, the accurate digitization of the descending position of the cable 200 can be realized.
[0023] Then we need to transmit the data. After the data is read by the RFID reader 800, the Bluetooth module built-in can transmit the data at a short distance. Therefore, the LED display 900 is also added. The LED display 900 is arranged at the depth recording device 400 for easy observation.
[0024] In summary, the utility model replaces the worker who needs to collect the height of the cable at the pipe mouth with the RFID tag 700 and the RFID reader 800. After collecting the position data, the data is transmitted to the LED display 900 through Bluetooth, and the worker at the original triangular support 300 can directly read the numbers displayed on the display and tighten the cable at the depth control device one by one. In this way, even if the detection pile is far away from the instrument placement position, Bluetooth can also realize long-distance transmission, thereby saving the additional labor cost due to the distance.
[0025] Compared with the prior art, the utility model discloses a single person according to the depth of LED display to control the position of the wire, not only shorten the preparation time, and greatly reduce time and labor cost.
[0026] The specific embodiments of the utility model are described above, but the utility model is not limited to this, as long as the purpose of the utility model is not deviated, the utility model can also have various changes.
Claims
1. An ultrasonic testing apparatus characterized by comprising: The application relates to an ultrasonic instrument (100), a cable wire (200), a triangular support (300), a depth recording device (400), a pipe mouth pulley (500), a probe (600), an RFID tag (700), an RFID card reader (800) and an LED display (900), one end of the ultrasonic instrument (100) is connected with the cable wire (200), the other end of the cable wire (200) is connected with the probe (600), the cable wire (200) is connected with the depth recording device (400) and the pipe mouth pulley (500), the RFID tag (700) is arranged on the cable wire (200), the depth recording device (400) is arranged on the triangular support (300), the RFID card reader (800) is arranged on the pipe mouth pulley (500), and the LED display (900) is arranged on the depth recording device (400). The RFID tag (700) is in a plurality of sheet type structures, and the RFID tag (700) is fixed on the position display of the cable wire (200) through a waterproof adhesive tape.
2. An ultrasonic testing apparatus according to claim 1, wherein: The pipe mouth pulley (500) is provided with a mounting groove (510), and the RFID card reader (800) is arranged on the mounting groove (510).
3. An ultrasonic testing apparatus according to claim 1, wherein: