INSPECTION DEVICE AND METHOD FOR SUBWAY TUNNELS BASED ON THREE-DIMENSIONAL LASER SCANNING
20210325213 ยท 2021-10-21
Inventors
- Jun WANG (Nanjing, CN)
- Dawei LI (Nanjing, CN)
- Yuxiang WU (Nanjing, CN)
- Cheng YI (Nanjing, CN)
- Xu XU (Nanjing, CN)
Cpc classification
B61K9/02
PERFORMING OPERATIONS; TRANSPORTING
G01D21/02
PHYSICS
G01M5/0058
PHYSICS
G01M11/081
PHYSICS
G01N21/954
PHYSICS
International classification
G01D21/02
PHYSICS
Abstract
An inspection device for subway tunnel based on three-dimensional laser scanning includes a three-dimensional laser scanner, an adaptive structure of a track trolley, a power control module for the track trolley, a photoelectric sensor and a body of the track trolley. The power control module is arranged on the body. A support rod is vertically arranged on the power control module, and the three-dimensional laser scanner is mounted at a top of the support rod. The adaptive structure is symmetrically arranged at two sides of the body of the track trolley, and the photoelectric sensor is arranged in the body of the track trolley. The inspection device is designed to be modular, which is convenient to carry and repair, and easy to mount. In addition, the inspection device has low labor cost due to less manual intervention, and the inspection efficiency can be improved.
Claims
1. An inspection device for subway tunnel based on three-dimensional laser scanning, comprising: a three-dimensional laser scanner; an adaptive structure of a track trolley; a power control module for the track trolley; a photoelectric sensor; and a body of the track trolley; wherein the power control module is arranged on the body; a support rod is vertically arranged on the power control module, and the three-dimensional laser scanner is mounted at a top of the support rod; the adaptive structure is symmetrically arranged at two sides of the body of the track trolley, and the photoelectric sensor is arranged in the body of the track trolley.
2. The inspection device of claim 1, wherein the three-dimensional laser scanner comprises: a scanner body; and a fixed mounting head; wherein the fixed mounting head is arranged at a bottom of the scanner body, and fixedly connected to the scanner body through a bolt; a top end of the support rod is inserted into the fixed mounting head in a fixed manner, and the support rod 6 is fixedly connected to the body of the track trolley through a bolt.
3. The inspection device of claim 1, wherein the adaptive structure comprises: a balance side rod; a plurality of balance rockers; a guide wheel; and a guide frame; wherein the balance side rod is horizontally fixed at a front side of the body of the track trolley; each of the balance rockers is L-shaped, and two ends of the balance side rod are respectively hinged with bending points of the balance rockers of the adaptive structure arranged on both sides of the body of the track trolley; a vertical part and a horizontal part of each of the balance rockers are hinged with each other; the vertical part of each of the balance rockers is screwed to the body of the track trolley; and an end of the horizontal part of each of the balance rockers is hinged to a middle of the guide frame; the guide wheel is mounted at an end of the guide frame far away from the body of the track trolley, and the guide frame is screwed to the body of the track trolley at an end close to the body of the track trolley; the guide frame of the adaptive structure adaptively adjusts a height and an offset angle of the track trolley along a track through the balance side rod and the balance rockers; and the guide wheel adaptively fits the track through the balance side rod and the balance rockers.
4. The inspection device of claim 1, wherein the power control module comprises: a control box; a display; an industrial control; and a microprocessor printed circuit board (PCB); wherein the display and the industrial control are mounted on an upper surface of the control box, and the microprocessor PCB is mounted inside the control box.
5. The inspection device of claim 4, wherein the industrial control is an integrated device with low power consumption, and is connected to the three-dimensional laser scanner and the power control module through wires to control data collection of the three-dimensional laser scanner and the travelling of the track trolley, respectively; and the industrial control is connected to the photoelectric sensor through an RS232 serial port to control the operation of the photoelectric sensor, receive data from the photoelectric sensor, and fuse multi-source data.
6. The inspection device of claim 1, wherein the body of the track trolley comprises: four arms; a plurality of wheels; two motor shafts; four arm bearings; a motor assembly; a plurality of fans; a main body; and two fixing frames; wherein the main body is arranged under the power control module, and the fans are arranged on a side and a bottom of the main body; the four arm bearings are respectively symmetrically arranged at ends of two sides of the main body; the four arms are screwed to the main body through the four arm bearings; the four arm bearings allow the body of the track trolley to be foldable; the two fixing frames are respectively arranged on both sides of the main body of the track trolley, and ends of two arms on each side of the main body are fixed on a corresponding fixing frame; the vertical part of each of balance rockers is screwed to an end of each of front arms on both sides of the main body; an end of the guide frame close to the body of the track trolley is screwed to the fixing frame; and the motor assembly is arranged inside and penetrates through the main body of the track trolley to connect one end of each of the two motor shafts, and the other ends of the two motor shafts pass through the two fixing frames on both sides of the main body of the track trolley, and are fixed with wheels, respectively.
7. The inspection device of claim 1, wherein the motor assembly comprises: a motor; a driving wheel; a driven wheel; a speed measuring encoder disk; and a differential box: wherein the motor is fixed at an upper part of the body of the track trolley; the motor is in transmission connection with the driving wheel, and the driving wheel meshes with the driven wheel; the driven wheel is in transmission connection with the speed measuring encoder disk and the differential box in turn; two sides of the differential box are respectively connected to the two motor shafts on both sides of the body of the track trolley through two transmission shafts; the photoelectric sensor is arranged on the speed measuring encoder disk; the photoelectric sensor is a grating encoder, and the photoelectric sensor output a pulse signal for collecting position and mileage information of the track trolley in a tunnel.
8. An inspection method for subway tunnel based on three-dimensional laser scanning, comprising: 1) presetting a running speed of a track trolley through an industrial control of a power control module; 2) controlling the industrial control of the power control module to send a start instruction to a three-dimensional laser scanner, a photoelectric sensor and a body of the track trolley; and turning on the motor to drive the body of the track trolley to start moving; and 3) letting the three-dimensional laser scanner, the photoelectric sensor and the trackcar body receive the start instruction from the industrial control; continuously collecting point cloud data of a tunnel segment by the three-dimensional laser scanner; transmitting the point cloud data to the industrial control in real time; and storing the point cloud data; collecting mileage data by the photoelectric sensor in real time; transmitting the mileage data to the industrial control; and displaying the mileage data on the display in real time; and making the body of the track trolley steadily travel.
9. The inspection method of claim 8, wherein in the step 1, a maximum running speed can be set to be 6 km/h, and real-time stepless speed regulation is carried out during the operation of the track trolley.
10. The inspection method of claim 8, wherein during the collection of the three-dimensional laser scanner in the step 3, an emitted laser rotates in a vertical plane perpendicular to a track of a subway, and the three-dimensional laser scanner moves for scanning.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0065] The present disclosure will be described below with reference to the accompanying drawings, from which technical solutions in the embodiments of the present disclosure will be clearer. Obviously, the drawings in the following description are only some embodiments of the present disclosure. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative work.
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DETAILED DESCRIPTION OF EMBODIMENTS
[0074] The technical solutions of an embodiment of the present disclosure will be clearly and completely described below.
[0075] The present disclosure provides an inspection device for subway tunnel based on three-dimensional laser scanning. As shown in
[0076] As shown in
[0077] As shown in
[0078] As shown in
[0079] The industrial control 302 is an integrated device with low power consumption, and is connected to the three-dimensional laser scanner 1 and the power control module 3 through wires to control the data collection of the three-dimensional laser scanner 1 and the travelling of the track trolley, respectively. At the same time, the industrial control 302 is connected to the photoelectric sensor 4 through an RS232 serial port to control the operation of the photoelectric sensor 4, receive data from the photoelectric sensor 4, and fuse multi-source data.
[0080] As shown in
[0081] As shown in
[0082] The present disclosure further provides an inspection method for subway tunnels based on three-dimensional laser scanning, which includes the following steps.
[0083] 1) The construction personnel use the industrial control 302 of the power control module 3 to preset a running speed of the track trolley. A maximum running speed can be set to be 6 km/h, and real-time stepless speed regulation can be carried out during the operation of the track trolley.
[0084] 2) The industrial control 302 of the power control module is controlled to send a start instruction to the three-dimensional laser scanner 1, the photoelectric sensor 4 and the body 5 of the track trolley, and the motor 7 is turned on to drive the body 5 of the track trolley to start moving.
[0085] 3) The three-dimensional laser scanner 1, the photoelectric sensor 4 and the trackcar body 5 receive the start instruction from the industrial control. The three-dimensional laser scanner 1 continuously collects point cloud data of the tunnel segments and transmits the point cloud data to the industrial control 302 in real time, and the industrial control 302 stores the point cloud data. The photoelectric sensor 4 collects the mileage data in real time, transmits it to the industrial control and displays it on the display 301 in real time. The body 5 of the track trolley runs at a steady speed. During the collection of the three-dimensional laser scanner 1, an emitted laser rotates in a vertical plane perpendicular to the track of subway, and the three-dimensional laser scanner 1 moves for scanning.
[0086] The inspection device of the present disclosure is designed to be modular, which is convenient to carry and repair and easy to mount. In addition, the inspection device has low labor cost due to less manual intervention, and the inspection efficiency can be improved.
[0087] The above embodiments are illustrative of the present disclosure and not intended to limit the scope of the present disclosure. Various modifications and changes made by those of ordinary skill in the art without departing from the spirit and scope of the present disclosure shall fall within the scope of the application defined by the appended claims.