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Spring-type acoustic emission sensor mounting device

A technology for acoustic emission sensors and installation devices, which is applied in the direction of measuring devices, instruments, scientific instruments, etc., can solve the problems of acoustic emission detection limitations, extension of construction period, extension of project progress, etc., to achieve effective installation and coupling, and the overall size can be adjusted The effect of controlling and saving labor costs

Active Publication Date: 2017-10-17
BEIJING RES INST OF URANIUM GEOLOGY
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  • Summary
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  • Description
  • Claims
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AI Technical Summary

Problems solved by technology

[0005] (1) At the engineering site, the acoustic emission probe is directly placed in the borehole, relying on the residual liquid medium (such as water) in the borehole as the medium for signal transmission between the rock mass and the acoustic emission probe, the acoustic emission probe will receive The detection signal is transmitted to the ground monitoring system through cables; however, this method has the following disadvantages: ① This implementation is only suitable for drilling holes with a downward direction, and for drilling holes that are completely horizontal or upward at a certain angle, it is difficult to store Even for the downward drilling, the rock mass around the drilling still needs to be relatively intact, so as to avoid the loss or seepage of the transmission medium from the borehole cracks, and ensure that the AE probe is always in the transmission medium, but the actual site However, it is difficult to meet this requirement, which affects the monitoring effect; ②Although the liquid between the rock mass and the acoustic emission probe can be used as the coupling medium for signal transmission, the density of the liquid is generally relatively low, and its signal transmission effect is not as good as that of the acoustic emission probe directly. The detection signal received by the transmitter probe in effective contact with the rock wall
[0006] (2) In order to ensure effective coupling between the acoustic emission probe placed in the borehole and the borehole wall, cement can also be poured into the borehole at the engineering site so that the acoustic emission probe and the rock wall are poured as a whole. Although this method It can solve the problem of effective transmission of detection signals, but there are still the following defects: ①The acoustic emission probe after casting is not recyclable, resulting in high monitoring costs; adjustment, only to re-drill and install new acoustic emission probes, which not only leads to high monitoring costs, but also leads to prolongation of the project progress and even delays in the construction period; The grouting effect of the installation part of the acoustic emission probe is difficult to guarantee, and there may be situations where the installation part of the acoustic emission probe cannot be effectively grouted, resulting in no effective coupling between the acoustic emission probe and the rock wall and no monitoring signal; Deeper, the greater the total shrinkage and deformation of the poured cement after solidification, the signal transmission cable of the acoustic emission probe bonded to the cement will bear tension due to the shrinkage and deformation of the cement, resulting in ineffective signal transmission; ④ During the excavation process Explosive blasting may cause the grouting surface and the rock wall surface to relax, resulting in a decrease in the effectiveness of monitoring signal transmission; ⑤The inside of the borehole is usually relatively humid, and it takes a long period for the grout to solidify after pouring, which will prolong the construction period; and the installation The process is time-consuming and laborious, requiring a series of professional grouting equipment and grouting personnel, which further increases the cost of monitoring
[0007] (3) Another implementation method is to use a simple fixed installation device to fix the acoustic emission probe inside the device, and then use a rigid non-movable metal transmission rod to send the fixing device to the installation site, and use pressure to push the acoustic emission probe to the top of the device. After it comes out, it is in contact with the rock wall of the borehole to achieve fixation. Its advantage is that it realizes the contact between the acoustic emission probe and the rock wall in the case of non-grouting, but there are still the following disadvantages: The distance between the walls is very close, so the fixed installation device and the drilling hole must have a concentric structure, and the hole wall needs to be smooth, but these requirements are difficult to guarantee in actual construction; ② Due to the large size of the fixed installation device, it is only suitable for Large drilling holes lead to higher drilling costs; ③The entire transmission rod and installation device are inserted into the drilling hole through force and rigidity, which not only has high friction, it is easy to wear out the cable or the acoustic emission probe, and it is easy to It is stuck in the drill hole and cannot be sent to the place where it needs to be installed; ④ Since the fixed installation device is rigidly inserted into the drill hole through external force, the installation process is not only time-consuming and laborious, but also the work efficiency is extremely low; ⑤ Due to the The hole wall is a cylindrical surface, while the end face of the acoustic emission probe is a plane. How to ensure that the end face of the acoustic emission probe is effectively coupled with the borehole wall is also a difficult problem to be solved in practical applications
[0008] Based on the disadvantages and defects in the above-mentioned various implementation methods, the application and promotion of acoustic emission detection in the monitoring of rock (body) stability and rockburst dynamic disasters is limited to a certain extent.
[0009] Therefore, how to install the acoustic emission probe in the borehole conveniently and effectively, and how to effectively couple the installed acoustic emission probe with the hole wall is still a difficult point in field monitoring and research at present, and there is a lack of relevant testing methods and technical support

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Embodiment 1

[0040] The spring-type acoustic emission sensor mounting device provided in this embodiment, such as figure 1 and figure 2 As shown, it includes a sleeve assembly 1, a guide assembly 2, an end cap 3, a spring 4, a limit pin 5 and a connection assembly for combining with a transmission device.

[0041] Such as Figure 1 to Figure 3 As shown, the above-mentioned sleeve assembly 1 includes a probe sleeve 1-1 and a spring sleeve 1-2; the probe sleeve 1-1 is a cylindrical body with a closed lower end and an open upper end, and the inner hole of the probe sleeve and the acoustic emission probe 9 For clearance fit, the lower end surface is a circular arc surface matching the borehole radian of the monitored rock mass, and the upper end wall is provided with a U-shaped notch 1-4 for the cable joint 9-1 of the acoustic emission probe to protrude from; The spring sleeve 1-2 is a cylindrical body with a closed lower end and an open upper end, and the number is two. The two spring slee...

Embodiment 2

[0050] Compared with Embodiment 1, the spring-type acoustic emission sensor installation device provided in this embodiment has improved the structure of the sleeve assembly 1, the guide assembly 2 and the end cover 3. The specific structure is as follows Figure 7 to Figure 9shown. The end cap 3 is composed of a cover plate 3-1 and a connector 3-2 arranged on the top surface of the cover plate, the cover plate 3-1 matches the shape and size of the upper end surface of the probe sleeve 1-1, and the connector 3-2 There is a via hole 3-3 through which the limit pin 5 passes; the support plate 2-1 of the guide assembly is a circular arc surface whose top surface matches the borehole radian of the rock mass to be monitored, and the bottom surface is a flat structure, and The central part of the support plate 2-1 is provided with a central hole 2-1-1 matching the shape and size of the end cover connector 3-2, and the hole wall of the central hole is provided with a third pin hole 2...

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Abstract

The invention discloses a spring-type acoustic emission sensor mounting device comprising a sleeve assembly, a guide assembly, an end cover and a spring. The guide assembly and the sleeve assembly or the end cover are in pluggable connection. The spring is arranged in a spring sleeve of the sleeve assembly and is in a compression state. According to the invention, on the basis of pluggable connection between the guide assembly and the sleeve assembly or the end cover, controlling of moving directions of the guide assembly and the sleeve assembly is realized by using the elastic restoring force of the spring installed in the spring sleeve, so that the overall dimension of the combined body of the acoustic emission probe and the mounting device can be controlled and thus problems of effective mounting and coupling of the acoustic emission probe can be solved.

Description

technical field [0001] The invention belongs to the technical field of rock (body) engineering safety monitoring in engineering construction, and relates to a spring-type acoustic emission sensor installation device. Background technique [0002] The deformation and damage of mine rock (body) during engineering construction, especially the rockburst dynamic disaster, will directly endanger the safe construction of the project, and even cause catastrophic effects. Therefore, effective monitoring of rock (body) stability and rockburst dynamic disaster And forecasting is one of the important contents of engineering safety construction. At present, as an important means of non-destructive monitoring, acoustic emission is used in the monitoring and forecasting of rock (body) stability and rockburst dynamic disasters in engineering construction. [0003] During the excavation and construction of surrounding rocks in underground engineering, in order to accurately predict the poss...

Claims

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Application Information

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IPC IPC(8): G01B17/04G01N29/22
CPCG01B17/04G01N29/223
Inventor 陈亮刘建锋王春萍刘健满轲王驹
Owner BEIJING RES INST OF URANIUM GEOLOGY
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