Displacement measurement system and displacement measurement method
The ultrasonic-based displacement measurement system addresses the inefficiencies of laser methods by using ultrasonic waves and a position estimation algorithm to simplify installation and reduce time and labor in mountain tunnels.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-30
- Publication Date
- 2026-03-25
AI Technical Summary
Conventional laser-based displacement measurement methods in mountain tunnels require significant time and effort due to the need for ensuring horizontality and repeated installation and verification work, which is complicated by tunnel obstacles.
A displacement measurement system using ultrasonic waves transmitted by a transmitting unit and received by a receiving unit composed of microphones, employing a position estimation algorithm to determine the position of the transmitting unit based on time differences, allowing for easy installation and reduced labor and time requirements.
The system reduces labor and time needed for displacement measurement by eliminating the need for horizontality and simplifying installation, even in the presence of tunnel obstacles, while maintaining high measurement accuracy.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This invention relates to a displacement measurement system and a displacement measurement method for measuring displacement in mountain tunnels. [Background technology]
[0002] During construction of mountain tunnels, "Type A measurements" are performed. Examples of Type A measurements include "internal displacement measurement," "crown settlement measurement," "leg settlement measurement," and "ground surface settlement measurement." Even for small displacements, the standard measurement frequency is "1-2 times per day," requiring considerable effort and time. Previously, displacement measurements were performed using lasers (for example, using optical distance meters). Regarding displacement measurement, techniques described in, for example, Patent Documents 1 and 2 are known. The technology described in Patent Document 1 is a method for measuring the internal displacement of a tunnel. In the measurement method of Patent Document 1, several measurement points are set up within the same cross-section of the tunnel, and the set up measurement points are sighted using an optical measuring instrument (optical distance meter). The position data of the sighted measurement points is acquired in a three-dimensional coordinate system, and the distance between measurement points is determined by coordinate calculation. Here, each measurement point is set up by embedding bolts in the ground, sprayed concrete surface, or steel support surface surrounding the tunnel, and fastening a measuring reflector plate with a reflective sheet attached to the bolt with a nut. The technology described in Patent Document 2 is a system for measuring tunnels under construction. The system in Patent Document 2 comprises a plurality of measuring devices for measuring predetermined control dimensions inside the tunnel, and communication means for transmitting the measurement data from these measuring devices to a predetermined control center. For example, assuming the measurement of internal displacement, the measuring device consists of a laser transmitter / receiver equipped with the function of transmitting and receiving a laser horizontally from the inner wall of the tunnel, and a laser reflector equipped with the function of reflecting the laser light transmitted by the laser transmitter / receiver back towards the laser transmitter / receiver. [Prior art documents] [Patent Documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 5-99670 [Patent Document 2] Japanese Patent Publication No. 2000-304531 [Overview of the project] [Problems that the invention aims to solve]
[0004] Conventional laser-based measurements have the problem of requiring a lot of time and effort. For example, optical distance meters and laser transmitters / receivers must be kept level, and installation and verification work takes time. In particular, there are various obstacles inside tunnels, and if these obstacles interfere with laser measurements, the optical distance meters and laser transmitters / receivers must be moved and the installation and verification work must be repeated, which is a great deal of trouble. From this perspective, the present invention provides a displacement measurement system and a displacement measurement method that can reduce the labor and time required for displacement measurement in mountain tunnels. [Means for solving the problem]
[0005] The displacement measurement system according to the present invention is a displacement measurement system for mountain tunnels. This displacement measurement system comprises a transmitting unit installed at measurement points on the inner wall of the tunnel and transmitting ultrasonic waves, a receiving unit that receives ultrasonic waves transmitted from the transmitting unit, and a position estimation unit that estimates the position of the transmitting unit based on the ultrasonic waves received by the receiving unit. The receiving unit is Placed at each vertex of the rectangular prism The system consists of multiple microphones, and the position estimation unit estimates the position of the transmitter based on the time difference in which the ultrasonic waves reach each microphone. The position estimation unit, for example, detects the peaks of the ultrasonic signals received by each of the microphones, determines the time difference between these peaks, and estimates the position of the transmitter using a position estimation algorithm. In the displacement measurement system according to the present invention, it is not necessary to ensure horizontality, and the time required for installation and confirmation work can be shortened compared to the conventional method. Therefore, the labor and time required for displacement measurement can be reduced compared to the conventional method. In particular, even when the arrival of ultrasonic waves is obstructed by an obstacle in the tunnel, it is only necessary to move the receiving unit, so the installation and confirmation work is very easy.
[0006] before The position estimation algorithm uses, for example, the least squares method. The position estimation algorithm represents the coordinates of the transmitting unit as the sum of an initial value and an error, and repeats the calculation by changing the initial value to reduce the error. When the error becomes extremely small, the coordinates of the transmitting unit obtained by the calculation are taken as the true position. As the first value of the initial value, it is preferable to set the coordinates on the extension line of the line segment connecting the first microphone that first received the ultrasonic wave and the last microphone that last received the ultrasonic wave, on the extension line on the side of the first microphone. By doing this, the convergence speed is fast, and it is difficult to obtain an incorrect solution (the certainty of obtaining the correct solution increases). The transmitting unit is installed at a plurality of positions within the same cross-section of the mountain tunnel, and the position estimating unit may calculate the distance between two points from the positions of each transmitting unit. The transmitting unit may be housed in a socket embedded in the tunnel inner wall. By doing this, it is difficult for the transmitting unit to interfere with work such as blasting, and it is possible to suppress the transmitting unit from being accidentally detached. The receiving unit may be installed in the mountain tunnel by a leg portion that can be erected on the ground or a fixing portion that is magnetically fixed to a support. By doing this, the installation of the receiving unit becomes easier.
[0007] The displacement measurement method according to the present invention is a displacement measurement method for a mountain tunnel. This displacement measurement method includes a transmission step of transmitting ultrasonic waves by a transmitting unit installed at a measurement point on the tunnel inner wall, a reception step of receiving the ultrasonic waves transmitted from the transmitting unit by a receiving unit, and a position estimation step of estimating the position of the transmitting unit based on the ultrasonic waves received by the receiving unit. The receiving unit is Placed at each vertex of the rectangular prism It is composed of a plurality of microphones, and in the position estimation step, the position of the transmission unit is estimated based on the time difference at which the ultrasonic wave reaches each microphone. In the displacement measurement method according to the present invention, for example, it is not necessary to ensure horizontality, and the time required for installation and confirmation work can be shortened compared to the conventional method. Therefore, the labor and time required for displacement measurement can be reduced compared to the conventional method. In particular, even when the arrival of ultrasonic waves is blocked by an obstacle in the tunnel, it is only necessary to move the receiving unit, so the installation and confirmation work is very easy.
Effect of the Invention
[0008] According to the present invention, the labor and time required for displacement measurement of a mountain tunnel can be reduced.
Brief Description of the Drawings
[0009] [Figure 1] It is a schematic diagram of a displacement measurement system according to an embodiment of the present invention. [Figure 2] It is a schematic configuration diagram of a transmission device. [Figure 3] It is a schematic configuration diagram of a receiving device. [Figure 4] It is a schematic configuration diagram of an operating device. [Figure 5] It is a block diagram of a displacement measurement system according to an embodiment of the present invention. [Figure 6] It is a diagram for explaining the definitions used in a position estimation algorithm. [Figure 7] It is a program flow of a displacement measurement system according to an embodiment of the present invention. [Figure 8] It is a diagram for explaining the measurement operation of a displacement measurement system according to an embodiment of the present invention. [Figure 9] It is a diagram for explaining the measurement procedure of a displacement measurement system according to an embodiment of the present invention. [Figure 10] It is a diagram for explaining the measurement procedure of a displacement measurement system according to an embodiment of the present invention. [Figure 11]These are examples of measurement screens; (a) is the measurement screen from the first measurement operation, and (b) is the measurement screen from the second measurement operation with the receiving device's position shifted. [Figure 12] This is an illustrative diagram of the information synthesis process used to store information in a group. [Modes for carrying out the invention]
[0010] Hereinafter, embodiments for carrying out the present invention will be described in detail with reference to the drawings as appropriate. Each figure is only a schematic representation to the extent that the present invention can be fully understood. Therefore, the present invention is not limited to the illustrated examples. In each figure, common or similar components are denoted by the same reference numerals, and their redundant descriptions are omitted. <Configuration of the displacement measurement system according to the embodiment> Referring to Figure 1, the configuration of the displacement measurement system 1 according to the embodiment will be described. Figure 1 is a schematic diagram of the displacement measurement system 1 according to the embodiment. The displacement measurement system 1 is a system for measuring the displacement of a tunnel. The displacement measurement system 1 can be used in various situations for measuring the displacement of a tunnel, and is not particularly limited to the object of measurement. In this embodiment, "internal displacement measurement" in "Measurement A" will be used as an example. The purpose of internal displacement measurement is to obtain data for confirming the stability of the tunnel and the effectiveness of the support structure, determining the timing of support structure construction, and determining the timing of lining placement. For example, as a general rule, internal displacement measurements are performed at one location (one cross section) every "30m" and at locations (cross sections) where the design pattern is changed, and the measurement interval is adjusted considering the stage of construction and the grade of the ground.
[0011] As shown in Figure 1, the displacement measurement system 1 mainly comprises a transmitter 2, a receiver 3, an operating device 4, and an administrator terminal 5. In the displacement measurement system 1, ultrasonic waves emitted from the transmitter 2 are received by multiple microphones in the receiver 3, and the position of the transmitter 2 is estimated based on the time difference in when the ultrasonic waves reach each microphone. The transmitter 2 is installed at positions (each measurement point) in the tunnel where displacement is to be measured, and the displacement of the tunnel is measured by examining the change in the coordinates of the transmitter 2 as time progresses. Furthermore, since the temperature / humidity sensor built into the receiver 3 automatically corrects for changes in the speed of sound due to temperature and humidity, high measurement accuracy is achieved without being affected by changes in temperature and humidity.
[0012] The transmitter 2 shown in Figure 1 is a device that transmits ultrasonic waves. Transmitter 2 is, for example, an ultrasonic beacon that intermittently transmits ultrasonic waves at regular intervals. Transmitter 2 is installed at positions (each measurement point) where displacement within the tunnel is to be measured. In other words, transmitter 2 is installed at the target positions in conventional laser-based measurements. In this embodiment, since we are assuming the measurement of internal displacement in measurement A, transmitter 2 is installed at multiple measurement points within the same cross-section of the tunnel. The positions of transmitter 2 are, for example, positions where measurements can be taken from "measurement line A" to "measurement line D".
[0013] The receiving device 3 is a device that receives ultrasonic waves transmitted by the transmitting device 2, and is installed within the range (acquisition location) of the ultrasonic waves. The receiving device 3 has, for example, legs that can be erected on the ground or a fixing part that is fixed to a support structure by magnetic force, and can be installed at any location in the tunnel by the legs or the fixing part. The receiving device 3A is equipped with a tripod and is placed on the ground in the tunnel. The receiving device 3B has a magnet attached to its bottom and is fixed to a support structure.
[0014] The operating device 4 is a device for operating the receiving device 3, and is operated, for example, by tunnel construction workers. The operating device 4 is, for example, a portable terminal that is easy to carry. The administrator terminal 5 is installed, for example, in a location away from the receiving device 3 inside the tunnel and is operated by the tunnel construction manager or similar person. The administrator terminal 5 can be, for example, a PC (Personal Computer), a smartphone, or a tablet device. Alternatively, the administrator terminal 5 may be installed in an office outside the tunnel.
[0015] Figure 2 shows the configuration of the transmitting device 2. Figure 2 is a schematic diagram of the transmitting device 2. The transmitting device 2 of this embodiment is configured to be usable when fitted into a recess formed in the wall surface of a tunnel. The transmitting device 2 mainly comprises a wireless module 21, an ultrasonic speaker (transmitting unit) 22, a battery 23, and a control board 24, and these components are housed in a case 20. The case 20 plays a role in protecting the components it houses and, for example, can be sealed. The battery 23 is rechargeable and can be removed as needed. The transmitting device 2 is housed in a socket 6 embedded in the wall surface. The socket 6 has a space for housing the transmitting device 2 and an opening 6a for mounting the transmitting device 2. For example, a hole is formed in the ground (or support structure) before concrete is sprayed, the socket 6 is embedded, and the opening 6a is sealed using a sealing means such as a lid. Then, after concrete is sprayed, the sealing means is removed and the transmitting device 2 is fixed inside the socket 6. As a result, the transmitting device 2 is embedded in the inner wall of the tunnel and does not interfere with work such as blasting. It is preferable that one or both of the transmitter 2 and the socket 6 be equipped with a mechanism to prevent the transmitter 2 housed in the socket 6 from unintentionally popping out (falling). Alternatively, the socket 6 with the transmitter 2 housed inside may be covered with concrete, leaving the transmitter 2 buried (permanently embedded).
[0016] Figure 3 shows the configuration of the receiving device 3. Figure 3 is a schematic diagram of the receiving device 3. The receiving device 3 of this embodiment is configured to be movable within a tunnel. The receiving device 3 mainly comprises a receiving unit 31, a wireless module 33, a temperature / humidity sensor 34, a battery 35, and a control board 36. The receiving unit 31 is the part that receives ultrasonic waves emitted from the ultrasonic speaker 22, which is the transmitting unit. The receiving unit 31 has a plurality of microphones 32, and these microphones 32 are installed on the base unit 31a. It is preferable that the plurality of microphones 32 be arranged in an array. In this embodiment, the microphones 32 are arranged at each vertex of a rectangular parallelepiped. Note that the microphones 32 do not have to be arranged in an array, and it is also possible to have separate configurations instead of installing all microphones 32 on a single base unit 31a. The wireless module 33, temperature / humidity sensor 34, battery 35, and control board 36 are housed in a case 30. The case 30 protects the components it houses and, for example, is airtight. The case 30 and the base 31a are connected by a connecting part 31b. The receiving device 3 preferably has a fixed part that is magnetically attached to, for example, legs that can be erected on the ground or to a support structure (see Figure 1). The receiving device 3 is provided with a USB terminal 37 for maintenance and a charging terminal 38 for charging. Communication between the receiving device 3 and the operating device 4 is performed wirelessly using wireless modules 33 and 42, but it may also be done by wired communication. If the administrator terminal 5 has the functions of the operating device 4, the receiving device 3 and the administrator terminal 5 communicate wirelessly (or by wired communication).
[0017] Figure 4 shows the configuration of the operating device 4. Figure 4 is a schematic diagram of the operating device 4. The operating device 4 according to this embodiment is intended to be operated by a worker holding it with both hands. The case 40 of the operating device 4 has a shape that can be held by both hands on the left and right sides (for example, a plate shape that is long in the left-right direction and has a predetermined thickness). The operating device 4 mainly comprises a display unit 41, a wireless module 42, a battery 43, an operating unit 44, and a control board 45. The operating unit 44 includes a joystick 44a and various operation buttons ("transmitter search" button 44b, "measurement start / stop" button 44c, clear button 44d). The display unit 41 is, for example, a liquid crystal display, and the display unit 41 displays information necessary for performing measurements (for example, information for setting measurement conditions) and measurement result information. The joystick 44a is positioned so that it can be operated with the left hand, and can specify, for example, the up, down, left, and right directions. The "Transmitter Search" button 44b, the "Start / Stop Measurement" button 44c, and the clear button 44d are positioned so that they can be operated with the right hand. The wireless module 42 and battery 43 are housed in the case 40. The operating device 4 is provided with a USB terminal 46 for maintenance and a charging terminal 47 for charging. The receiving device 3 and the administrator terminal 5 may also be configured to have some or all of the functions of the operating device 4.
[0018] Refer to Figure 5 (and Figures 1 to 4 as appropriate) to explain the exchange of information within the displacement measurement system 1. Figure 5 is a block diagram (including the software configuration) of the displacement measurement system 1 according to this embodiment.
[0019] When the wireless module 21 receives a request from the receiving device 3 to start measurement, the transmitting device 2's transmitting control unit 24a instructs the pulse control unit 24b to transmit a signal, and the pulse control unit 24b transmits a pulse signal to the ultrasonic speaker 22. The ultrasonic speaker 22 then emits an ultrasonic pulse signal into the air, and the emitted ultrasonic pulse signal reaches the receiving device 3.
[0020] The receiving device 3 sends a request to the transmitting device 2 to start measurement via the wireless module 33. In response, it receives an ultrasonic pulse signal from the transmitting device 2 using multiple microphones 32, and the received pulse signal is sent to the control unit (position estimation unit) 36a. The control unit 36a also receives temperature and humidity information from the temperature / humidity sensor 34. Based on the ultrasonic pulse signal, temperature information, and humidity information, the control unit 36a estimates the position of the transmitting device 2, which is the source of the transmission. Details of the source position estimation will be described later. The receiving device 3 transmits the measurement results (information regarding the position of the transmitting device 2 and information regarding the distance between the two transmitting devices 2, etc.) to the operating device 4 via the wireless module 33.
[0021] The operating device 4 receives operator input via the operating unit 44 and transmits operator information (for example, information about the transmitting device 2 performing the measurement and operation information to start the measurement) to the receiving device 3 via the wireless module 42. The operating device 4 also receives measurement results (for example, information about the position of the transmitting device 2 and information about the distance between the two transmitting devices 2) from the receiving device 3 via the wireless module 42, and the control unit 45a displays the received information on the display unit 41. The operating device 4 also transmits the measurement results to the administrator terminal 5 via the wireless module 42. This allows the administrator to check the measurement results on the administrator terminal 5.
[0022] The display unit 41 of the operating device 4 displays, for example, the measurement screen M10. The measurement screen M10 has an ID display area M11, a position display area M12, a distance display area M13, and a group display area M14. The ID display area M11 displays a list of IDs of transmitting devices 2 that are within communication range of the receiving device 3. The control unit 36a of the receiving device 3 transmits a wireless signal requesting a communication connection, for example, and the control unit 45a of the operating device 4 displays the ID of the transmitting device 2 that received the response in the ID display area M11.
[0023] The position display area M12 displays the position (measurement result) of the transmitter 2, which is within communication range of the receiver 3. The control unit 36a of the receiver 3 determines the position of the transmitter 2 based on the ultrasonic signal emitted from the transmitter 2, and the control unit 45a of the operating device 4 displays the result in the position display area M12. The position of the transmitter 2 is estimated using a position estimation algorithm described later.
[0024] The distance display area M13 displays the distance between the two transmitting devices 2. The control unit 36a of the receiving device 3 calculates the distance between the two transmitting devices 2 for all combinations of transmitting devices 2 that are within communication range of the receiving device 3. The distance display area M13 can display a predetermined number of combinations (in Figure 4, three combinations can be displayed: "ID(1)-ID(2)", "ID(1)-ID(3)", and "ID(2)-ID(3)"), and the displayed combination can be changed by operating the joystick 44a up and down.
[0025] The group display area M14 displays information about the group. A group is a collection of measurement results. The control unit 36a of the receiving device 3 registers the results of multiple transmitting devices 2 measured in a single measurement operation as one group. The group display area M14 displays identification information for a predetermined number of groups (in Figure 4, four groups, "Grp.1" to "Grp.4," are displayed), and one group can be selected by operating the joystick 44a left or right. The selected group is highlighted (in Figure 4, "Grp.1" is selected, and the text "Grp.1" is highlighted by surrounding it with a frame M14a).
[0026] Next, with reference to Figure 6, the estimation of the position of the transmitting device 2, which is the source of the ultrasonic waves, will be explained. Figure 6 is a diagram illustrating the definitions used in the position estimation algorithm. In this embodiment, it is assumed that the receiving device 3 performs the position estimation of the transmitting device 2, but other devices (for example, the receiving device 3 or the administrator terminal 5) may also perform the position estimation of the transmitting device 2. The position estimation function (position estimation unit) is realized, for example, by program execution processing by the CPU (Central Processing Unit).
[0027] As preparation for the measurement, a coordinate system (x,y,z) with its origin near microphone 32 is established. The coordinate system (x,y,z) can be a local coordinate system, and its orientation is arbitrary. Since the arrangement of the 1st to Nth microphones 32 (N is the number of microphones, and they are numbered in ascending order according to the order in which the ultrasound arrived) is known, the coordinate P of microphone 32 is known. i (i=1~N) are known. Also, the reception time t for the first to Nth microphones 32 is known. i (i=1~N) time difference "(t 2~N )-t1" represents the speed of sound and the coordinates P of microphone 32. i It becomes known from there. Thus, the coordinates P of microphone 32 i and the time difference in reception "(t 2~N If )-t1 is known, and for example, if "N≧4", then the coordinates P of the ultrasonic speaker 22 P This can be expressed as an equation. Then, by solving this equation using methods such as Newton's method, least squares method, or nearest four-point method, the coordinates P of the ultrasonic speaker 22 can be determined. P It is possible to estimate this. Here, since the speed of sound is affected by temperature and humidity, the temperature / humidity sensor 34 measures the temperature and humidity in real time, and the speed of sound is corrected using the following formula. T is the temperature [°C] and H is the humidity [%]. ·Sound speed C=331.4+0.606×T+0.0124×H
[0028] The control unit 36a (position estimation unit) of the receiving device 3 filters the sound signals received by each microphone 32 using a bandpass filter to extract only specific frequency components (ultrasonic components emitted by the transmitting device 2) and remove high-frequency and low-frequency noise. The control unit 36a also detects peaks to determine the starting point of the filtered signal. For example, the control unit 36a sets a threshold for identifying peaks, and defines the timing of the first peak reached after the threshold is exceeded as the timing when the signal arrives.
[0029] The control unit 36a uses a position estimation algorithm to estimate the position of the ultrasonic speaker 22 and the distance between the ultrasonic speakers 22, based on the time difference of the peaks of the sound signals received by each microphone 32. The least squares method will be used as an example below.
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[0035] The estimation of the position of the transmitting device 2, as described above, will now be explained with reference to Figure 7. Figure 7 is the program flow of the displacement measurement system 1 according to this embodiment. Since the arrangement of each microphone 32 is known, the coordinates P of each microphone 32 arei (x i , y i , z i ), set a fixed value based on the arrangement (step S11). Also, set appropriate values as the initial values P0(x0, y0, z0) of the coordinates of the ultrasonic speaker 22 (step S12). Subsequently, from the above equation (8), calculate α i , β i , γ i (step S13), and calculate f i (R i ) from the above equation (3) (step S14). Subsequently, calculate Δf i from the above equation (7) (step S15), and calculate the errors Δx, Δy, Δz from the above equation (10) (step S16). If Δx, Δy, Δz are large and there is still an error (step S17), obtain x p , y p , z p from the above equation (5) and set them as the new x0, y0, z0 (step S18). Then, perform steps S13 to S16 to calculate the new errors Δx, Δy, Δz. If Δx, Δy, Δz are sufficiently small (step S17), x0, y0, z0 become the coordinates of the transmission device 2 (step S19). Thus, in the position estimation in this embodiment, during the repeated calculation, the provisional values of the coordinates P P (x p , y p , z p ) of the ultrasonic speaker 22 are used as the initial values x0, y0, z0 in the next calculation for repeated calculation. And when the error becomes small, the coordinates x0, y0, z0 (or the coordinates P P (x p , y p , z p )) are taken as the true position of the ultrasonic speaker 22 and the repeated calculation is terminated. That is, the coordinates P P (x p , y p , z p ) of the ultrasonic speaker 22 obtained in the first calculation are used as the initial values x0, y0, z0 to perform the second calculation, and newly obtain the coordinates P P (x p , y p , zp )
[0036] The initial values x0, y0, z0 (the first values used in the iterative calculation) are not particularly limited and can be any coordinates. The initial values x0, y0, z0 are the first microphone 321 (the first microphone) that first received the ultrasound and the last microphone 32 N It is desirable to set the coordinates on the extension of the line segment connecting (the last microphone) and the first microphone 321, on the extension of the line segment on the first microphone 321 side (for example, a position a few meters away from the first microphone 321). Doing so speeds up convergence and reduces the likelihood of finding the wrong solution (increases the certainty of finding the correct solution).
[0037] <Regarding the measurement operation of the displacement measurement system according to the embodiment> Referring to Figure 8 (and Figures 1 to 7 as appropriate), an overview of the measurement operation of the displacement measurement system 1 according to this embodiment will be explained. Figure 8 is a diagram illustrating the measurement operation of the displacement measurement system 1. First, the receiving device 3 wirelessly requests the transmitting device 21 (transmitting device 2 of "ID(1)") to start transmitting (step S1). Upon receiving the request to start transmitting, the transmitting device 21 begins transmitting ultrasound (step S2). The transmitting device 21 intermittently transmits ultrasound at regular intervals, for example. The receiving device 3 receives the ultrasound emitted from the transmitting device 21 with each microphone 32 and calculates the position of the transmitting device 21 from the time difference Δt between the microphones 32 (step S3). Then, the receiving device 3 wirelessly requests the transmitting device 21 to stop transmitting (step S4). Upon receiving the request to stop transmitting, the transmitting device 21 stops transmitting ultrasound.
[0038] Next, the receiving device 3 wirelessly requests the transmitting device 22 (the transmitting device 2 of "ID(2)") to start transmitting (step S5), and calculates the position of the transmitting device 22 using the same procedure as the transmitting device 21. In this way, the receiving device 3 receives the position of the transmitting devices 21-2 NThe positions of each measurement point within the tunnel are calculated sequentially, and the position of each measurement point is determined. The receiving device 3 then calculates the positions of each measurement point based on the determined positions of each measurement point (each transmitting device 21-2 N The distance between them is calculated. Then, after some time, the transmitting devices 21-2 N The positions (locations of each measurement point) are measured again, and the tunnel displacement is measured by comparing them with the previously measured positions and distances.
[0039] A more detailed measurement procedure will be described with reference to Figures 9 and 10 (and, as appropriate, Figures 1 through 8). Figures 9 and 10 are diagrams illustrating the measurement procedure of the displacement measurement system 1 according to an embodiment. Note that the measurement procedure described here is merely illustrative. When a worker activates the receiver 3, the receiver 3 automatically connects to the transmitters 2 within its wireless range K. Here, as shown in Figure 9, assume that transmitters 21-28 (transmitters 2 with IDs 1-8) are within wireless range K, and the receiver 3 automatically connects to them. The IDs of the connected transmitters 2 are then displayed in the ID display area M11 of the measurement screen M10. As shown in Figure 11(a), the ID display area M11 of the measurement screen M10 displays a list of the IDs of the connected transmitters 2 (IDs 1-8). Figure 11 is an example of the measurement screen M10.
[0040] Next, the operator presses the "Start / Stop Measurement" button 44c (see Figure 4) to instruct the receiver 3 to begin measuring the position of transmitter 2. The receiver 3 measures the positions of transmitters 21 to 28 within the wireless range K and displays the coordinates of transmitter 2 in the position display area M12, corresponding to their IDs (see Figure 11(a)). The receiver 3 also calculates the distance between the measured transmitters 21 to 28 and displays the calculated distance in the distance display area M13 (see Figure 11(a)). The receiver 3 then saves the information regarding the measured coordinates of transmitter 2 and the calculated distance between transmitters 2 to the selected group. In this case, as shown in Figure 11(a), "Grp.1" is selected, so the information of transmitters 21 to 28 is saved to "Grp.1". This completes the measurement by the receiver 3 at the position shown in Figure 9.
[0041] Next, the worker operates the joystick 44a (see Figure 4) to change the selected group to "Grp.2" and moves the receiver 3 in the direction of the tunnel axis (see Figure 10). Then, the worker presses the "Transmitter Search" button 44b (see Figure 4) to instruct the receiver 3 to start searching for transmitter 2. The receiver 3 searches for transmitter 2 within wireless range K (within the range where the receiver 3 can communicate). Here, as shown in Figure 10, transmitters 25~2 12 Assuming that transmitters 2 (ID(5) to ID(12)) are within wireless range K, the receiver 3 will receive transmitters 25 to 2 12 The device is then connected. The ID of the connected transmitter 2 is then displayed in the ID display area M11 of the measurement screen M10. As shown in Figure 11(b), the ID display area M11 of the measurement screen M10 displays a list of the IDs of the connected transmitter 2 ("ID(5)" to "ID(12)").
[0042] Next, the worker presses the "Start / Stop Measurement" button 44c (see Figure 4) to instruct the receiver 3 to start measuring the position of transmitter 2. The receiver 3 then checks the position of transmitters 25-2, which are within wireless range K. 12The position of the transmitter 2 is measured and its coordinates are displayed in the position display area M12, corresponding to the ID (see Figure 11(b)). The receiver 3 also measures the position of the transmitters 25-2. 12 The distance between the transmitters is calculated and displayed in the calculated distance display area M13 (see Figure 11(b)). The receiver 3 then saves the information regarding the measured coordinates of the transmitters 2 and the calculated distance between the transmitters 2 to the selected group. In this case, as shown in Figure 11(b), "Grp.2" is selected, so transmitters 25-2 12 The information is saved to "Grp.2". This completes the measurement by the receiving device 3 at the location shown in Figure 10.
[0043] Furthermore, the receiving device 3 preferably has a function to combine the information stored in the groups, and can re-register the information stored in two target groups as a single group. The receiving device 3 combines the groups using a positioning algorithm (for example, the ICP (Iterative Closest Point) algorithm or the Singular Value Decomposition (SVD) algorithm). Here, "positioning" refers to the process of estimating the positional relationship between three-dimensional point clouds acquired from different locations and combining the point clouds. For example, the ICP algorithm calculates a rotation matrix or translation matrix to align the second point cloud with the first point cloud. Group combination can be performed when there are three or more common transmitting devices 2 in each of the groups to be combined. Figure 12 shows an image of the information combination process stored in the groups.
[0044] As shown in Figure 12(a), the measurement results of "Grp.1" store the measurement results (coordinates, etc.) of transmitter 2 for "ID(1)" to "ID(4)", and the measurement results of "Grp.2" store the measurement results (coordinates, etc.) of transmitter 2 for "ID(1)" to "ID(3)" and "ID(5)". Since "ID(1)" to "ID(3)" are common to both "Grp.1" and "Grp.2", it is possible to combine "Grp.1" and "Grp.2". In Figure 12, we assume that the measurement results of "Grp.2" are aligned with the measurement results of "Grp.1". As shown in Figure 12(b), rotation and translation are performed focusing on the coordinates of "ID(1)" to "ID(3)" included in "Grp.2" to align them with the coordinates of "ID(1)" to "ID(3)" included in "Grp.1". Then, with the coordinates of "ID(1)" to "ID(3)" in "Grp.2" matching those of "ID(1)" to "ID(3)" in "Grp.1", the remaining measurement results are combined. As a result, as shown in Figure 12(c), the measurement results of "Grp.1" and "Grp.2" are combined, and the measurement results of "ID(1)" to "ID(5)" are saved in a single group. The combination function allows the transmitter 2 to perform measurements again and consolidate the results if, for some reason, it is not possible to perform all measurements at once, even though it is desirable to save them in a single group.
[0045] As described above, the displacement measurement system 1 according to this embodiment does not require ensuring horizontality, and the time required for installation and verification work can be reduced compared to conventional methods. Therefore, the labor and time required for displacement measurement can be reduced compared to conventional methods. In particular, even if the arrival of ultrasonic waves is obstructed by obstacles in the tunnel, it is only necessary to move the receiving unit 31 (see Figure 3), making installation and verification work very easy.
[0046] Furthermore, in this embodiment, the ultrasonic speaker 22 (see Figure 2), which is the transmitting unit, is housed in a socket 6 (see Figure 2) embedded in the inner wall of the tunnel. This makes it less likely for the ultrasonic speaker 22 to interfere with blasting or other operations, and also prevents the ultrasonic speaker 22 from unintentionally coming loose. Furthermore, in this embodiment, since the receiving unit 31 is installed inside the mountain tunnel by a fixed part that is fixed to the ground by magnetic force or by legs that can be erected on the ground or by shoring, the installation of the receiving unit 31 is easier.
[0047] Although embodiments of the present invention have been described above, the present invention is not limited thereto and can be implemented without changing the spirit of the claims. In this embodiment, the use of the displacement measurement system 1 was illustrated by describing "internal displacement measurement" in "Measurement A". However, the displacement measurement system 1 can also be used in other situations, for example, for "top settlement measurement" in "Measurement A". In that case, absolute coordinates should be provided to the receiving device 3 in some way. In this embodiment, the operating device 4 and the administrator terminal 5 were described as separate devices. However, for example, the functions of the operating device 4 may be integrated into a PC (Personal Computer), smartphone, or tablet terminal and operated from the administrator terminal 5. [Explanation of symbols]
[0048] 1. Displacement Measurement System 2 Transmitter 3,3A.3B Receiving device 4 Control device 5. Administrator terminal 6 sockets 20 cases 21 Wireless Modules 22. Ultrasonic speaker (transmitter) 23 batteries 24 Control board 30 cases 31 Receiver 32 Microphones 33 Wireless Modules 34 Temperature / Humidity Sensor 35 batteries 36 Control board 36a Control Unit (Position Estimation Unit) 40 cases 41 Display section 42 Wireless Modules 43 batteries 44 Control section 44a Joystick 44b "Transmitter Search" button 44c "Start / Stop Measurement" button 44d Clear button 45 Control board 45a Control Unit M10 Measurement Screen M11 ID display area M12 Position display area M13 Distance display area M14 Group Display Area K Wireless Range
Claims
1. A displacement measurement system for mountain tunnels, A transmitting unit is installed at a measurement point on the inner wall of the tunnel and transmits ultrasonic waves, A receiving unit receives ultrasonic waves transmitted from the transmitting unit, The system includes a position estimation unit that estimates the position of the transmitting unit based on the ultrasonic waves received by the receiving unit, The receiving unit consists of multiple microphones arranged at each vertex of a rectangular parallelepiped. The position estimation unit estimates the position of the transmitting unit based on the time difference in which the ultrasonic waves reach each microphone. A displacement measurement system characterized by the following features.
2. The position estimation unit detects the peak of the ultrasonic signal received by each of the microphones, determines the time difference between the peaks, and estimates the position of the transmitter using a position estimation algorithm. The displacement measurement system according to feature 1.
3. The position estimation algorithm uses the least squares method, expresses the coordinates of the transmitter as the sum of an initial value and an error, and reduces the error by changing the initial value and repeating the calculation until the error becomes infinitesimally small, and takes the coordinates of the transmitter obtained by the calculation as the true position. As the initial value of the aforementioned initial value, the coordinates are set on the extension of the line segment connecting the first microphone that first received the ultrasound and the last microphone that last received it, specifically on the extension on the side of the first microphone. The displacement measurement system according to claim 2.
4. The transmitting unit is installed at multiple locations within the same cross-section of the mountain tunnel. The position estimation unit calculates the distance between two points from the position of each transmitting unit. The displacement measurement system according to feature 1.
5. The displacement measurement system according to claim 1, characterized in that the transmitting unit is housed in a socket embedded in the inner wall of the tunnel.
6. The receiving unit is installed in the mountain tunnel by a fixed part that is fixed by magnetic force to a support structure or by legs that can be erected on the ground. The displacement measurement system according to feature 1.
7. A method for measuring displacement in mountain tunnels, A transmission process in which ultrasonic waves are transmitted from a transmitter installed at a measurement point on the inner wall of the tunnel, A receiving step in which ultrasonic waves transmitted from the transmitting unit are received by the receiving unit, The system includes a position estimation step for estimating the position of the transmitting unit based on the ultrasonic waves received by the receiving unit, The receiving unit consists of multiple microphones arranged at each vertex of a rectangular parallelepiped. In the position estimation step, the position of the transmitting unit is estimated based on the time difference in which the ultrasonic waves reach each microphone. A displacement measurement method characterized by the following:
Citation Information
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