Current state of the art in train detection systems is based on track circuits or axle counting blocks that detect a presence of an object or objects, assumed to be a train or trains, within a certain predefined guideway area. The objects are tracked based on the track circuits and/or axle counting that block's occupancies. A guideway switch is deadlocked, i.e., a switch move is prevented, if the track circuit and/or axle counting area associated with the switch is occupied. These technologies are expensive and have numerous shortcomings.
One or more embodiments are illustrated by way of example, and not by limitation, in the figures of the accompanying drawings, wherein elements having the same reference numeral designations represent like elements throughout. It is emphasized that, in accordance with standard practice in the industry various features may not be drawn to scale and are used for illustration purposes only. In fact, the dimensions of the various features in the drawings may be arbitrarily increased or reduced for clarity of discussion.
The following disclosure provides many different embodiments, or examples, for implementing different features of the invention. Specific examples of components and arrangements are described below to simplify the present disclosure. These are examples and are not intended to be limiting.
With considerable inherent uncertainty and unreliability issues, current technologies employ expensive wayside equipment to imply the presence or absence of a train or trains within a block, but still do not provide a reliable positive identification of such a train or trains. The lack of a more certain identification gives rise to numerous problems associated with false positives and false negatives. This is especially true for non-communicative trains. Trains can be non-communicative for a number of reasons including failure to install communications equipment, defective or damaged communications equipment, adverse external conditions, differing communication standards, etc. Embodiments of the invention provide more cost-effective, certain and reliable guideway vehicle identification entering or exiting a guideway block, including guideway switch deadlocking for non-communicating trains with positive train identification.
The wayside train detection and switch deadlocking with positive train identification application includes one or more multimodal guideway vehicle sensors. The multimodal guideway vehicle sensor (“fusion sensor”) includes three main components, i.e., a passive sensor, an active sensor and a unique identification code (ID) sensor that detects a unique ID associated with a guideway vehicle. In addition to the unique ID, the multimodal guideway vehicle sensor detects and determines guideway vehicle position, velocity and direction of travel. In some embodiments, each of guideway vehicle ID, guideway vehicle position, velocity and direction of travel are sensed by at least two different sensors. Data from the at least two different sensors is weighted and combined to form guideway vehicle information or “fusion data,” to provide far greater certainty and reliability in a cost-effective manner. Fusion data is used in some embodiments to enable more certain and reliable wayside train detection and switch deadlocking with positive train identification. In some embodiments the guideway vehicle is a train, however, the type of guideway vehicle is not restricted to trains and includes a variety of other equipment including guideway servicing vehicles and guideway testing vehicles. In some embodiments the guideway vehicle is non-communicative, however, in some embodiments the guideway vehicle is communicative.
In some embodiments, the active sensor 104 is a radar-based sensor that detects and tracks guideway vehicles based on reflected waves in the microwave portion or radio portion of the electromagnetic spectrum. In some embodiments, the active sensor 104 is a laser-based sensor that detects and tracks the guideway vehicles based on the reflected laser light waves in the optical portion or infrared portion of the electromagnetic spectrum. Similar to the passive sensor 102, the active sensor 104 detects guideway vehicle position, speed and direction of travel. In some embodiments, the active sensor 104 can also detect an ID associated with the guideway vehicle. For example a license plate or bar code type object carried by guideway vehicles contains an ID code capable of being sensed by the active sensor 104.
In some embodiments, the ID sensor 106 includes a radio frequency ID (RFID) sensor, such as an RFID reader, that uses waves in the microwave portion or radio portion of the electromagnetic spectrum to wirelessly sense IDs of guideway vehicles stored in RFID devices (tags) carried by the guideway vehicles. The RFID tags each transfer their stored ID as data that is received by the RFID sensor 106, for the purposes of automatically identifying and tracking guideway vehicles. Some RFID tags are powered by and read at short ranges (on the order of meters) via electromagnetic induction, to act as a passive transponder and emit waves in the radio portion or microwave portion of the electromagnetic spectrum. In some embodiments, RFID tags use a local power source on guideway vehicles, such as a battery, and operate reliably at hundreds of meters. Unlike a bar code, the RFID tag does not necessarily need to be within line of sight of the reader, and may be embedded within the guideway vehicle. In some embodiments, the RFID sensor 106 can sense RFID tags of guideway vehicles that are active, power-assisted passive or passive. An active RFID tag has an on-board power supply and periodically transmits its ID signal. A power-assisted passive RFID tag is connected to a power source and is activated by the RFID sensor 106. A passive RFID tag is activated and powered by the RFID sensor 106.
In some embodiments, the ID sensor 106 includes a magnetic proximity sensor that detects the presence of metal objects in proximity to a magnetic field associated with the magnetic proximity sensor. The unique ID associated with the guideway vehicle is represented in a pattern of metal objects. Similar to an RFID sensor, a magnetic proximity sensor senses an ID associated with a guideway vehicle. In some embodiments, each ID is associated with a separate guideway vehicle by installing multiple metal objects on each guideway vehicle each having a unique detection pattern corresponding to the ID of that guideway vehicle.
Although the ID sensor 106 is able to sense an ID associated with a guideway vehicle, in some embodiments, the ID sensor also indirectly detects position, speed and direction of travel of that guideway vehicle.
Information sensed by the passive sensor 102, active sensor 104 and ID sensor 106 regarding guideway vehicle position, speed and direction of travel as well as guideway vehicle ID is transmitted to a data fusion center 108. Data from the sensors 102, 104, 106 directly or indirectly enable the data fusion center 108 to provide guideway vehicle information 110 on guideway vehicle type (such as a train), guideway vehicle ID, position (including track and distance to frontmost end of approaching guideway vehicle or distance to rearmost end of receding guideway vehicle), relative speed between the guideway vehicle and sensors, guideway vehicle travel direction (approaching or receding), an elevation angle to the guideway vehicle in the sensor's body coordinates, for example, to help confirm the detected object is a train, and a heading angle, for example, to help confirm direction of travel, and in some embodiments, a video image of all or a portion of the guideway vehicle. In some embodiments, the data fusion center 108 receives data from two or more of the sensors 102, 104, 106 that is weighted and combined (fused) to produce the guideway vehicle information 110. For example, while the ID sensor 106 provides an indication of train position, data from the active sensor 104, using transmitted radar or laser, receives greater weight in some embodiments.
In some embodiments, the wayside device 502 is communicatively coupled to a switch machine 508. Commands 510 are transmitted from the wayside device 502 to the switch machine 508. Status data 512 is received by the wayside device 502 from the switch machine 508. The switch machine 508 receives commands 510 and transmits status data 512 pertaining to operation of a guideway switch.
In some embodiments, the wayside device 502 is communicatively coupled to a platform doors controller 514. Commands 516 are transmitted from the wayside device 502 to the platform doors controller 514. Status data 518 is received by the wayside device 502 from the platform doors controller 514. The platform doors controller 514 receives commands 516 and transmits status data 518 pertaining to operation of platform doors.
In some embodiments, the wayside device 502 is communicatively coupled to an emergency stop button 520. Status data 522 from the emergency stop button 520, specifically, the emergency stop button's state of being active (depressed) or inactive (not depressed), is transmitted from the emergency stop button to the wayside device 502. Upon receipt of status data 522 from the emergency stop button 520, the wayside device issues corresponding status to a vehicle on-board controller (VOBC) 524 to initiate an emergency stop process.
The wayside device 502 transmits data 526 to the VOBC 524 and receives data 528 from the VOBC. In some embodiments, the VOBC 524 includes a transmitter/receiver for bidirectional wireless communication with the wayside device 502, a power supply and peripheral devices including a driver console having one or more displays. Data 526, 528 exchanged between the wayside device 502 and VOBC 524 enable more reliable monitoring and control of guideway vehicles. In some embodiments, data 526, 528 includes guideway vehicle information 506, switch identification, identification of multimodal guideway vehicle sensor 504, position and reservation status, platform doors identification and open/closed status. The multimodal guideway vehicle sensor 504 performs more reliable detection, identification and tracking of guideway vehicles, such as trains, is integrated into the wayside device 502 as described to control switches and other devices such as platform doors installed in the platform.
In some embodiments, guideway vehicle information 506 received from the multimodal guideway vehicle sensor 504 is used by the wayside device 502 to deadlock at least one switch upon an unequipped or non-communicating train approaching and/or occupying the switch area. In some embodiments, guideway vehicle information 506 received from the multimodal guideway vehicle sensor 504 is used by the wayside device 502 to unlock switches upon an unequipped or non-communicating train receding from and being outside a switch area. In some embodiments, guideway vehicle information 506 received from the multimodal guideway vehicle sensor 504 is used by the wayside device 502 to identify an unequipped or non-communicating train entry into and/or exit from the switch area 202, platform area 302 and/or transition area 402, as illustrated in
In operation 602 a data fusion center in multimodal guideway vehicle sensor 600 receives sensed data, weights and combines the sensed data to produce guideway vehicle information, and transmits the guideway vehicle information to a wayside device. In operation 604 the system with a multimodal guideway vehicle sensor 600 queries whether a guideway vehicle, such as a train, was detected by at least one sensor, but two or more sensors in the multimodal guideway vehicle sensor failed to detect a train within the maximum detection time. If operation 604 is “true,” in operation 606 a supervisor function timeout cross checks sensor data against expected data ranges to determine if the passive sensor, the active sensor and/or the ID sensor is outputting sensor data outside the expected data range and, if so, changes the status of that sensor to “failed” indicating an unhealthy condition. In operation 608, results of operation 606 are reported to the wayside device.
If operation 604 is “false,” in operation 610 the system with a multimodal guideway vehicle sensor 600 queries whether a guideway vehicle, such as a train, was detected by at least one sensor and one sensor in the multimodal guideway vehicle sensor failed to detect the train within the maximum time period. If operation 610 is “true,” in operation 612 the system with a multimodal guideway vehicle sensor 600 queries whether a guideway vehicle, such as a train, was detected within a shortened or minimized maximum time period by at least one sensor. If a detection was made within the shortened maximum time period, operation 612 is “true” and in operation 614 a supervisor function timeout cross checks sensor data against expected data ranges to determine if the passive sensor, the active sensor and/or the ID sensor is outputting sensor data outside the expected data range and, if so, changes the status of that sensor to “failed” indicating an unhealthy condition. In operation 616, results of operation 614 are reported to the wayside device.
If operation 610 is “false” or operation 612 is false, in operation 618 the system with a multimodal guideway vehicle sensor 600 queries whether the conditions for deadlocking a switch are exist. If so, in operation 620 the switch is deadlocked, if not, in operation 622 the guideway vehicle information is reported to the wayside device.
In some embodiments, the processor 782 is a central processing unit (CPU), a multi-processor, a distributed processing system, an application specific integrated circuit (ASIC), and/or a suitable processing unit.
In some embodiments, the computer readable storage medium 784 is an electronic, magnetic, optical, electromagnetic, infrared, and/or a semiconductor system (or apparatus or device). For example, the computer readable storage medium 784 includes a semiconductor or solid-state memory, a magnetic tape, a removable computer diskette, a random access memory (RAM), a read-only memory (ROM), a rigid magnetic disk, and/or an optical disk. In some embodiments using optical disks, the computer readable storage medium 784 includes a compact disk-read only memory (CD-ROM), a compact disk-read/write (CD-R/W), a digital video disc (DVD) and/or Blu-Ray Disk.
In some embodiments, the storage medium 784 stores the computer program code 486 configured to cause computer system 700 to perform the operations as described with respect to the multimodal guideway vehicle sensor 100 (
In some embodiments, the storage medium 784 stores instructions 786 for interfacing with external components. The instructions 786 enable processor 782 to generate operating instructions readable by the external components to effectively implement the operations as described with respect to the wayside guideway vehicle detection and switch deadlocking system with a multimodal guideway vehicle sensor.
Computer system 700 includes I/O interface 790. I/O interface 790 is coupled to external circuitry. In some embodiments, I/O interface 790 includes a keyboard, keypad, mouse, trackball, trackpad, and/or cursor direction keys for communicating information and commands to processor 782.
Computer system 700 also includes network interface 792 coupled to the processor 782. Network interface 792 allows computer system 700 to communicate with network 794, to which one or more other computer systems are connected. Network interface 792 includes wireless network interfaces such as BLUETOOTH, WIFI, WIMAX, GPRS, or WCDMA; or wired network interface such as ETHERNET, USB, or IEEE-1394.
Computer system 700 also includes inductive loop interface 796 coupled to the processor 782. Inductive loop interface 796 allows computer system 700 to communicate with external devices, to which one or more other computer systems are connected. In some embodiments, the operations as described above are implemented in two or more computer systems 700
Computer system 700 is configured to receive information related to the instructions 786 through I/O interface 710. The information is transferred to processor 782 via bus 788 to determine corresponding adjustments to the transportation operation. The instructions are then stored in computer readable medium 784 as instructions 786.
Some embodiments include a multimodal guideway vehicle sensor. The multimodal guideway vehicle sensor includes a passive sensor configured to receive and detect a first electromagnetic radiation from a guideway vehicle. The multimodal guideway vehicle sensor further includes an active sensor configured to transmit a second electromagnetic radiation and receive and detect the second electromagnetic radiation reflected from the guideway vehicle. The multimodal guideway vehicle sensor includes still further includes an unique identification code (ID) sensor that detects an ID associated with the guideway vehicle. The multimodal guideway vehicle sensor also includes a data fusion center that combines signals from the passive sensor, the active sensor and the ID sensor to produce guideway vehicle information about the guideway vehicle.
Some embodiments include a guideway vehicle detection system. The guideway vehicle detection system includes a wayside device. The guideway vehicle detection system further includes a multimodal guideway vehicle sensor electrically coupled to the wayside device, the multimodal guideway vehicle sensor including a passive sensor configured to receive and detect a first electromagnetic radiation from a guideway vehicle, an active sensor configured to transmit a second electromagnetic radiation and receive and detect the second electromagnetic radiation reflected from the guideway vehicle, and an unique identification code (ID) sensor that detects an ID associated with the guideway vehicle.
Some embodiments include a method for operating a guideway vehicle detection system having a multimodal guideway vehicle sensor having a passive sensor for detecting a guideway vehicle and producing sensor data, an active sensor for detecting a guideway vehicle and producing sensor data and an identification sensor for identifying a guideway vehicle and producing sensor data. The method includes receiving sensor data from passive sensor, the active sensor and the identification sensor. The method further includes detecting a first guideway vehicle with at least one of the passive sensor, the active sensor and the identification sensor. The method still further includes failing to detect the first guideway vehicle with one of the passive sensor, the active sensor and the identification sensor. The method further includes reducing a maximum amount of time for the multimodal guideway vehicle sensor to detect a second guideway vehicle.
One of ordinary skill in the art will recognize the operations of method 600 are merely examples and additional operations are includable, describe operations are removable and an order of operations are adjustable without deviating from the scope of method 600.
It will be readily seen by one of ordinary skill in the art that the disclosed embodiments fulfill one or more of the advantages set forth above. After reading the foregoing specification, one of ordinary skill will be able to affect various changes, substitutions of equivalents and various other embodiments as broadly disclosed herein. It is therefore intended that the protection granted hereon be limited only by the definition contained in the appended claims and equivalents thereof.
Number | Name | Date | Kind |
---|---|---|---|
5330136 | Colbaugh | Jul 1994 | A |
6032905 | Haynie | Mar 2000 | A |
6371417 | Southon | Apr 2002 | B1 |
6397130 | Carr | May 2002 | B1 |
6604031 | Ohuma et al. | Aug 2003 | B2 |
6666411 | Hart et al. | Dec 2003 | B1 |
6688561 | Mollet et al. | Feb 2004 | B2 |
6732023 | Sugita et al. | May 2004 | B2 |
6848657 | Young et al. | Feb 2005 | B2 |
7027901 | Oguma et al. | Apr 2006 | B2 |
7050890 | Tolmei | May 2006 | B2 |
7075427 | Pace | Jul 2006 | B1 |
7092800 | Kane et al. | Aug 2006 | B2 |
7165748 | Ebuchi et al. | Jan 2007 | B2 |
7209810 | Meyer et al. | Apr 2007 | B2 |
7464904 | Vehar | Dec 2008 | B2 |
7593963 | Ballesty et al. | Sep 2009 | B2 |
7729818 | Wheeler | Jun 2010 | B2 |
7742850 | Kane | Jun 2010 | B2 |
7840338 | Paolacci | Nov 2010 | B2 |
8073581 | Morris | Dec 2011 | B2 |
8073582 | Kellner et al. | Dec 2011 | B2 |
8140250 | Mian | Mar 2012 | B2 |
8157218 | Riley et al. | Apr 2012 | B2 |
8157219 | Ashraf et al. | Apr 2012 | B2 |
8212685 | LeFebvre | Jul 2012 | B2 |
8231270 | Groeneweg et al. | Jul 2012 | B2 |
8245983 | Gilbertson | Aug 2012 | B2 |
8280567 | Brand | Oct 2012 | B2 |
8296065 | Haynie et al. | Oct 2012 | B2 |
8297558 | O'Dell et al. | Oct 2012 | B2 |
8370006 | Kumar et al. | Feb 2013 | B2 |
8380361 | Evans | Feb 2013 | B2 |
20050205719 | Hendrickson et al. | Sep 2005 | A1 |
20100258682 | Fries | Oct 2010 | A1 |
20110022253 | Chen | Jan 2011 | A1 |
20110226909 | O'Dell | Sep 2011 | A1 |
20110238241 | Brady | Sep 2011 | A1 |
20120126065 | Smith | May 2012 | A1 |
20120277948 | Noonan | Nov 2012 | A1 |
20120286103 | Hilleary | Nov 2012 | A1 |
20120325980 | Noffsinger | Dec 2012 | A1 |
20130018534 | Hilleary | Jan 2013 | A1 |
20130018536 | Cooper | Jan 2013 | A1 |
20150175178 | Ignatius | Jun 2015 | A1 |
20150175179 | Green | Jun 2015 | A1 |
Number | Date | Country |
---|---|---|
2390158 | Nov 2011 | EP |
2011153114 | Dec 2011 | WO |
Entry |
---|
R. W. Ngigi et al., “Modem techniques for condition monitoring of railway vehicle dynamics”, 251 International Congress on Condition Monitoring and Diagnostic Engineering, IOP 1-9 Publishing Journal of Physics; Conference Series 364 (2012) 012016. |
A. M irabadi et al. ,“Fault detection and Isolation in Multisensor Train Navigation Systems”, UKACC International Conference on Control '98, Sep. 1-4, 1998, Conference Publication No. 455, IEE, 1998. |
International Search Report for corresponding International Application No. PCT/IB2014/063529, dated Nov. 7, 2014. |
VKACC International Conference on Control '98, Sep. 1-4, 1998, Conference Publication, No. 455, IEE, 1998. |
A Lancia et al., “Integrated multifunction system for the wayside detection of defects and hazardous conditions in rolling stock approaching critical tunnels,” Heuristics GmbH, Vaglio, Switzerland; 2Elsag SpA, Genova, Italy, 2008, <http://www.uic.org/cdrom/2008/11—wcrr2008/pdf/R.2.1.5.2.pdf>. |
Mazzino, “Wayside Monitoring Trains and Infrastructures: Information Management in a Railway Control Centre,” Ansaldo STS, 2012, <www.sose2012.eu/docs/SOSE%202012—rev03.pdf>. |
Broquetas et al., “Track Detection in Railway Sidings Based on MEMS Gyroscope Sensors,” Department of Signal Theory and Communications, Universitat Politècnica de Catalunya, Spain, 2012, <www.mdpi.com/1424-8220/12/12/16228/pdf>. |
A Acharya et al., “Train localization and parting detection using data fusion,” Jadavpur University, Kolkata, India, 2011, <http://www.sciencedirect.com/science/article/pii/S0968090X10000367>. |
Number | Date | Country | |
---|---|---|---|
20150175179 A1 | Jun 2015 | US |