RAILWAY ROADBED DFORMATION DETECTION AND EARLY WARNING SYSTEM
20210317618 ยท 2021-10-14
Inventors
- Jun Hu (Nanchang, CN)
- Boyi Luo (Nanchang, CN)
- Yunwei Zhang (Nanchang, CN)
- Binyuan Shi (Nanchang, CN)
- Chengcheng Guo (Nanchang, CN)
Cpc classification
E01B35/12
FIXED CONSTRUCTIONS
B61L23/048
PERFORMING OPERATIONS; TRANSPORTING
E01F11/00
FIXED CONSTRUCTIONS
International classification
E01B35/12
FIXED CONSTRUCTIONS
E01B1/00
FIXED CONSTRUCTIONS
Abstract
A system for detecting and pre-warning railway roadbed deformation includes: a control box and an optical fiber-pressure sensor group. The optical fiber-pressure sensor group is formed by disposing a plurality of optical fiber-pressure sensors into a cuboid shape, and is buried in the railway roadbed for detecting magnitude of roadbed deformation in each direction. The direction of the deformation can be acknowledged easily, allowing the staff to eliminate potential risks purposefully. A time series prediction algorithm is performed to forecast a trend of the roadbed deformation in each direction, such that the staff may purposefully overhaul and correct the tracks where the roadbed is deformed excessively. At the same time, the staff may overhaul the track before the magnitude of the roadbed deformation reaches a predetermined value. Potential safety hazards may be eliminated in advance, ensuring the safety for the operation of the railroad.
Claims
1. A system for detecting and pre-warning railway roadbed deformation, comprising: a control box and an optical fiber-pressure sensor group, wherein the control box is disposed on a road shoulder and connected to the optical fiber-pressure sensor group, for processing information collected by the optical fiber-pressure sensor group; the optical fiber-pressure sensor group is formed by disposing a plurality of optical fiber-pressure sensors into a cuboid shape, and is buried in the railway roadbed for detecting magnitude of roadbed deformation in each direction; the optical fiber-pressure sensor group comprises the plurality of optical fiber-pressure sensors and is configured to detect the magnitude of roadbed deformation in an upward direction, a downward direction, a frontward direction, a backward direction, a leftward direction, and a rightward direction of the roadbed; the control box comprises an aluminum box, a blower, a power voltage dropping and stabilizing module, a relay group, an analog data collector, a control circuit board, a BeiDou positioning module, a shutter, an indicator, a GPRS module, a humidity sensor, and a temperature sensor; each of the plurality of optical fiber-pressure sensors is connected to the analog data collector and is configured to transmit collected data information to the analog data collector; the power voltage dropping and stabilizing module is configured to supply power for the plurality of optical fiber-pressure sensors, the analog data collector, and the control circuit board; the analog data collector is configured to communicate with the control circuit board through an RS485 communication mode; the analog data collector is configured to convert analog information sent from the humidity sensor, the temperature sensor, and the optical fiber-pressure sensor group into corresponding digital information, and is further configured to transmit the digital information to the control circuit board through an RS485 line; the control circuit board is configured to determine the magnitude of roadbed deformation and a direction of the roadbed deformation based on the information of the optical fiber-pressure sensor group; the BeiDou positioning module is configured to transmit location information of the roadbed deformation to the control circuit board, and the control circuit board is configured to control the GPRS module to transmit the magnitude of roadbed deformation, the direction of roadbed deformation, and the location information of the roadbed deformation to a PC for display; the indicator is disposed on an upper surface of the aluminum box and is configured to light up in response to the magnitude of roadbed deformation of a location reaching a preset magnitude value to remind staff that a track at the location needs to be corrected; the humidity sensor is configured to detect humidity information inside the aluminum box, the temperature sensor is configured to detect temperature information inside the aluminum box; the blower is disposed on a left side of the aluminum box, the shutter is disposed on a right side of the aluminum box; the control circuit board is configured to control a working state of the relay group to open the shutter and turn on the blower, in response to a temperature value and a humidity value detected by the temperature sensor and the humidity sensor being greater than a preset temperature value and a preset humidity value respectively, to cool down and dehumidify the aluminum box; the control circuit board is further configured to control blower to blow hot air into the aluminum box and to shut the shutter in response to the temperature value and the humidity value detected by the temperature sensor and the humidity sensor being less than the preset temperature value and the preset humidity value respectively.
2. The system according to claim 1, wherein a slide groove, a gear rod, a gear wheel, a stepping motor, and a steel rod are disposed on an inner wall of the aluminum box on a side of the shutter; the gear rod is embedded in the slide groove, the gear wheel is disposed on a rotation shaft of the stepping motor, the stepping motor is connected to a relay; the control circuit board is configured to control a working state of the relay to control the stepping motor to rotate forwardly or reversely to drive the gear wheel to rotate; the gear wheel is configured to transmit rotation to the gear rod; each blade of the shutter is connected to the gear rod through the steel rod; and the gear rod is configured to drive the steel rod to move to open or shut the shutter.
3. The system according to claim 1, wherein a heating wire is disposed at a vent of the blower; when the aluminum box needs to be heated, the control circuit board is configured to turn on the relay group to further turn on the blower and the heating wire to work; the blower is configured to blow heat generated by the heating wire into the aluminum box to supply heat for the aluminum box; when the aluminum box needs to be cooled down or dehumidified, the control circuit board is configured to control the heating wire to not work, open the shutter, and control the blower to blow external air into the aluminum box.
4. The system according to claim 1, wherein the system is configured to perform a method for detecting and pre-warning the railway roadbed deformation, and the method comprises operations of: initializing the system; detecting, by the optical fiber-pressure sensor group, the magnitude of roadbed deformation in each direction, and transmitting collected information to the analog data collector to complete collection of the roadbed deformation; transmitting, by the analog data collector, the information to the control circuit board through an RS485 line; determining, by the control circuit board, the magnitude and the direction of roadbed deformation based on the information of the optical fiber-pressure sensor group, and controlling the GPRS module to transmit the magnitude of roadbed deformation, the direction of roadbed deformation, and the location of roadbed deformation to the PC for display, wherein a corresponding upper computer is configured at the PC, and displaying the collected information on the upper computer; writing a time series prediction algorithm in the control circuit board to forecast the magnitude of roadbed deformation in each direction; forecasting, by the algorithm, at which time point the magnitude of roadbed deformation at the location in any direction may exceed the preset magnitude value; controlling, by the control circuit board, the indicator to light up, and sending early warning information and the location of the deformation to the PC for display to remind the staff to go to the location of the deformation to overhaul and correct the track, in response to any one of the plurality of optical fiber-pressure sensors in one direction detecting that the magnitude of roadbed deformation exceeds the preset magnitude value; pressing reset information of the control circuit board to update the preset magnitude value of the magnitude of roadbed deformation in each direction after the track being overhauled and corrected; and waiting arrival of next early warning information.
5. The system according to claim 4, wherein the optical fiber-pressure sensor disposed on an upper face of the cuboid optical fiber-pressure sensor group, the optical fiber-pressure sensor disposed on a lower face of the cuboid optical fiber-pressure sensor group, the optical fiber-pressure sensor disposed on a front face of the cuboid optical fiber-pressure sensor group, the optical fiber-pressure sensor disposed on a rear face of the cuboid optical fiber-pressure sensor group, the optical fiber-pressure sensor disposed on a left face of the cuboid optical fiber-pressure sensor group and the optical fiber-pressure sensor disposed on a right face of the cuboid optical fiber-pressure sensor group are numbered; information collected by the optical fiber-pressure sensors 3 disposed on the upper face, the lower face, the front face, the rear face, the left face and the right face is connected to 0 to 5 channels of the analog data collector and numbered as A1, A2, A3, A4, A5, and A6 respectively; the analog data is placed right after each of the 0 to 5 channels of the analog data collector; a value of each of the 0 to 5 channels of the analog data collector is converted into a frame of data and transmitted to the control circuit board through the RS485 communication mode; the control circuit board is configured to parse the received frame of data and determine the number of bits of the data to identify from which channel of the analog data collector the information is collected to identify the data collected by the optical fiber-pressure sensors disposed on the upper face, the lower face, the front face, the rear face, the left face and the right face of the optical fiber-pressure sensor group.
6. The system according to claim 5, wherein identifying the data collected by the optical fiber-pressure sensors disposed on the upper face, the lower face, the front face, the rear face, the left face and the right face of the optical fiber-pressure sensor group comprises; (1) identifying settlement of the roadbed, wherein when the roadbed is settling downwardly, the A1 is configured to detect the roadbed deformation first, and subsequently the A2 is configured to detect the roadbed deformation, pressure generated on the A1 and the A2 is obvious, and magnitude of a signal change in the A1 and the A2 is large; (2) identifying protrusion of the roadbed upwardly, wherein when the roadbed protrudes upwardly, the A2 is configured to detect the roadbed deformation first, and subsequently, the A1 is configured to detect the upward protrusion of the roadbed, and the magnitude of the deformation detected by the A 1 and the A2 is large; (3) identifying leftward protrusion, wherein when the roadbed is deformed towards the left, the A5 is configured to detect the deformation first, and subsequently, the A6 is configured to detect the deformation, to determine the deformation of the roadbed is the leftward protrusion; (4) identifying rightward protrusion, wherein when the roadbed protrudes towards a right relative to a vertical direction, the A6 is configured to detect the deformation first, and subsequently, the A5 is configured to detect the deformation, to determine the deformation of the roadbed is the rightward protrusion; (5) identifying an inward recess of the roadbed, wherein the inward recess refers to two sides of the roadbed being extruded inwardly relative to the vertical direction, and the roadbed has extruded deformation, the inward recess is less likely to occur, and changes in the A3 and the A4 are obvious; and (6) identifying outward protrusion of the roadbed, wherein the outward protrusion comprises two-sided protrusion and single-sided protrusion, the two-sided protrusion refers to the roadbed protruding outwardly towards two sides relative to the vertical direction, the single-sided protrusion refers to the roadbed protruding outwardly towards one side relative to the vertical direction, and changes in the A3 and the A4 are obvious.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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REFERENCE NUMERALS FOR MAJOR ELEMENTS
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TABLE-US-00001 Control box 1 Optical fiber-pressure 2 sensor group Optical fiber-pressure 3 Aluminum box 4 sensor Blower 5 Power voltage dropping 6 and stabilizing module Relay group 7 Analog data collector 8 control circuit board 9 Bei Dou positioning 10 module Shutter 11 Indicator 12 GPRS module 13 Humidity- sensor 14 Temperature sensor 15 Heating wire 16 Slide groove 17 Gear rod 18 Gear wheel 19 Stepping motor 20 Steel rod 21
DETAILED DESCRIPTION
[0045] The present disclosure will be illustrated in detail by referring to accompanying drawings and embodiments.
[0046] As shown in
[0047] As shown in
[0048] As shown
[0049] As shown in
[0050] As shown in
[0051] As shown in
[0052] The control circuit board 9 may take the STM32F103ZET6 microcontroller as a kernel. The STM32F103ZET6 microcontroller may have a fast processing speed and a plurality of peripheral interfaces, and may identify the magnitude of the deformation collected from various directions by the optical fiber-pressure sensor group 2.
[0053] As shown in
[0054] The system may be initialized first. The optical fiber-pressure sensor group 2 may detect the magnitude of the deformation of the railway roadbed in various directions, and may transmit the collected information to the analog data collector 8. Collection of the roadbed deformation may be completed. The analog data collector 8 may transmit the received information to the control circuit board 9 through the RS485 line. The control circuit board 9 may determine magnitude and the direction of deformation of the roadbed based on the information of the optical fiber-pressure sensor group 2. Further, control circuit board 9 may control the GPRS module 13 to transmit the magnitude the roadbed deformation, the direction of the deformation, and the location of the deformation to the PC of the relevant railroad department for display. A corresponding upper computer may be configured at the PC. The collected information may be displayed on the upper computer. A time series prediction algorithm may be written in the control circuit board 9 to forecast the magnitude of the deformation of roadbed in each direction. The algorithm may forecast at which time point the magnitude of the deformation of the roadbed at a certain location in each direction may exceed the preset magnitude value. When the optical fiber-pressure sensor 3 in one direction detects that the magnitude of the roadbed deformation exceeds the preset magnitude value, the control circuit board 9 may control the indicator 12 to light up and may send early warning information and the location information of the deformation to the PC of the railroad department for display. Relevant staff may be reminded to go to the deformation site to overhaul and correct the track. After the staff overhauls and corrects the track, the staff may press reset information of the control circuit board 9 to update the preset magnitude value of magnitude of the roadbed deformation in various directions, and may wait arrival of next early warning information. In this way, the staff may purposefully repair and correct the track where the roadbed is deformed excessively. At the same time, the staff may overhaul the track before the magnitude of the deformation of the roadbed reaches the preset magnitude value. Safety hazards may be eliminated in advance, the safe operation of the railroad may be guaranteed.
[0055] In the present disclosure, a method for the optical fiber-pressure sensor group 2 to identify the direction of the roadbed deformation may include following operations.
[0056] The optical fiber-pressure sensor 3 disposed on each of six faces, i.e, an upper face, a lower face, a front face, a rear face, a left face and a right face, of the cuboid optical fiber-pressure sensor group 2 may be numbered. Information collected by the optical fiber-pressure sensors 3 disposed on the upper face, the lower face, the front face, the rear face, the left face and the right face may be connected to 0 to 5 channels of the analog data collector 8 and may be numbered as A1, A2, A3, A4, A5, and A6 respectively. The analog data may be placed right after the channel of the analog data collector 8. A value of each channel of the analog data collector 8 may be converted into a frame of data and transmitted to the control circuit board 9 through the RS485 communication mode. The control circuit board 9 may parse the received data and determine the number of bits of the data to identify from which channel of the analog data collector 8 the information is collected. In this way, the control circuit board 9 may identify the data collected by the optical fiber-pressure sensors 3 disposed on the upper face, the lower face, the front face, the rear face, the left face and the right face of the optical fiber-pressure sensor group 2. A method for identification may include following operations.
[0057] (1) Identification of Settlement
[0058] As shown in
[0059] (2) Identification of Protrusion Upwardly
[0060] As shown in
[0061] (3) Identification of Leftward Protrusion
[0062] As shown in
[0063] (4) Identification of Rightward Protrusion
[0064] As shown in
[0065] (5) Identification of an Inward Recess
[0066] As shown in
[0067] (6) Identification of an Outward Protrusion
[0068] As shown in
[0069] A working principle of the present disclosure may be illustrated hereinafter.
[0070] As shown in