This is a Continuation-In-Parts application of an application having an application number U.S. application Ser. No. 13/825,262, filed on Aug. 9, 2011, which is a U.S. National Stage under 35 U.S.C 371 of the International Application PCT/CN2011/001307, filed Aug. 9, 2011, which claims priority under 35 U.S.C. 119(a-d) to CN 201110046202.6, filed Feb. 26, 2011; and of the International Application PCT/CN2012/001763, filed Dec. 31, 2012, which claims priority under 35 U.S.C. 119(a-d) to CN 201210307124.5 field Aug. 27, 2012.
1. Field of Invention
The present invention relates to a networking operation dispatch system for preventing rail vehicles from head-on collision and rear-ending collision.
2. Description of Related Arts
A Chinese patent application with an application number 201110046202.6 (PCT/CN2011/001307) discloses a method for improving operation density of rail vehicle and preventing mutual collision and rear-end collision. The method divides a rail line into equidistant electronic zones, the length of a zone being greater than the shortest safe distance between two running vehicles, and a locomotive passing detection alarm device is installed in each electronic zone, when a locomotive travels at a high speed on the rail, the locomotive passing detection alarm device corresponding to the zone occupied by the locomotive itself will simultaneously access adjacent front and back zones, and determine whether the two adjacent zones are simultaneously occupied by locomotives. If the two adjacent zones are simultaneously occupied by locomotives, the locomotive passing alarm device will send an alarm signal to the locomotives to warn or otherwise take measures. The aforesaid method adopts wired hardware connection of electronic components, and working thereof is processed by a logic gate circuit, whose operation is independent and offline, and information exchanges thereof are offline as well. Therefore, the method is capable of preventing mutual collision and rear-end collision and has an absolute priority. However, the method has disadvantages as follows. A fast determination method for relative distance between locomotives is not provided. The locomotive is not processed with real-time range based localization along the rail. In addition, information of locomotives running in each electronic zone cannot be exchanged and transmitted in real time, which brings great difficulties to the unified dispatch and control. Further, the method has disadvantages of insufficiently displaying of dynamic information of locomotives in road network and insufficiently providing external interference for preventing mutual collision and rear-end collision of locomotives.
The present invention provides a networking operation dispatch system based on electronic zones for rail vehicle, so as to solve a problem of difficulties in unified dispatch and control, which exist in the method based on electronic zones for improving operation density of rail vehicle and preventing mutual collision and rear-end collision. Furthermore, the networking operation dispatch system based on electric zones for rail vehicle of the present invention is capable of achieving range based localization of locomotives in electronic zones, interconnection and intercommunication between locomotives or between the locomotive and the road network, so as to achieve an unmanned driving of the locomotives.
Accordingly, in order to solve the problems mentioned above, technical solutions adopted by the present invention are as follows.
A networking operation dispatch system based on electronic zones for rail vehicle comprises: a zone-end relay computer, a communication ranging antenna along rail, a locomotive-mounted response computer and a road networking computer, wherein:
the zone-end relay computer is installed on an end of each electronic zone;
the communication ranging antenna along rail has an equivalent length to the electronic zone, a first end of the communication ranging antenna along rail is connected with the zone-end relay computer and a second thereof is disposed in the air;
the locomotive-mounted response computer is installed on each locomotive and communicates with the zone-end relay computer in the electronic zone occupied by the locomotive via the communication ranging antenna; and
the road networking computer connects each zone-end relay computer to form a network.
The present invention is an improvement to an application having an application number CN201110046202.6 (PCT/CN2011/001307) and a title “Method for improving operation density of rail vehicle and preventing mutual collision and rear-end collision”. The aforementioned method disclosed is capable of definitely avoiding locomotive head-on and rear-end collision and has an absolute priority. The networking operation dispatch system of the present invention exchanges and transmits information of locomotive running in each electronic zone in real time via the zone-end relay computer and the road networking computer, processes range based localization on the locomotive along rail in the electronic zone, so as to provide convenience for operation dispatch of the locomotive, so as to provide subsidiary for preventing mutual collision and rear-end collision, and thus has a secondary priority.
A rail security detecting sensor is disposed in the electronic zone for detecting rail hardware or security operation condition, transmitting detected results to the zone-end relay computer in real time, or otherwise marking the information with geographic coordinates and uploading to the road networking computer via the zone-end relay computer. According to a detecting result, the zone-end relay computer is capable of automatically closing the electronic zone and stopping entrance of the locomotive, or otherwise uploading the detecting result added with the geographic coordinate to the road networking computer in time, so as to inform relevant units to discover and avoid potential security problems for locomotive running.
The networking operation dispatch system of the present invention marks all of the locomotives running in the road network with electronic addresses in an overall network. Each locomotive is precisely processed with range based localization along rail in corresponding electronic zone thereof Information of all locomotives in the road network is uploaded to the road networking computer via the zone-end relay computer in the electronic zone occupied by the locomotives, so as to provide great convenience for unified dispatch and control. Furthermore, the technical solution is capable of opening or closing a certain electronic zone or turnout in a long distance as well. In addition, installing other rail security detecting sensors has great significance on disaster reduction and prevention and avoiding driving accidents.
These and other objectives, features, and advantages of the present invention will become apparent from the following detailed description, the accompanying drawings, and the appended claims.
In the
The present invention provides a networking operation dispatch system based on electronic zones for rail vehicle comprising: a zone-end relay computer, a communication ranging antenna along rail, a locomotive-mounted response computer and a road networking computer.
Referring to
The zone-end relay computers (Mai, MBi, MCi . . . ) are installed on end positions of each electronic zone. Each end of all the electronic zones has a zone-end relay computer provided thereon, and the zone-end relay computer is installed on one end of the electronic zone. Ends for installing in the electronic zone are divided into “a forward direction end” and “a reverse direction end” according to running directions, so as to distinguish two ends of the electronic zone. Each zone-end relay computer occupies one electronic zone address, which in practically represents a precise geographic coordinate position.
The communication ranging antenna along rail (TAi, TBi, TCi . . . ) has an equivalent length to the electronic zone. A first end of the communication ranging antenna along rail is connected with the zone-end relay computer and a second thereof is disposed in the air. The communication ranging antenna along rail, which has an equivalent length to the electronic zone, is lying at a short distance aside the rail. The locomotive-mounted response computer communicates with the zone-end relay computer in one electronic zone therein via the communication ranging antenna along rail. The communication ranging antenna along rail must be installed near the rail to ensure a wireless coupling communication with small gap of the locomotive in real time. The zone-end relay computer is capable of collecting and storing running information of the locomotive in the electronic zone thereof, repeating and communicating on network, sending a ranging signal to the locomotive in the electronic zone thereof. After the locomotive responses, a precise distance between the locomotive and the zone-end relay computer is obtained by measuring a length of the communication ranging antenna along rail, which is called zone distance (LAi, LBi, LCi . . . ).
The communication ranging antenna along rail is lying at a short distance along the rail, so as to ensure that a length thereof is equal to an actual traveling rail of the locomotive. When the locomotive is traveling in a certain electronic zone, the zone-end relay computer in this zone sends out a ranging signal to the locomotive via the communication ranging antenna along rail connected therewith, after the locomotive-mounted response computer receives the ranging signal, the ranging signal is marked thereby and then sent back to the zone-end relay computer via the communication ranging antenna along rail, the zone-end relay computer calculates a time of sending the ranging signal, a time of retrieving the ranging signal and a time of marking the ranging signal by the locomotive-mounted response computer, so as to obtain a transmission time of the ranging signal in the communication ranging antenna along rail, in such a manner that a length of the communication ranging antenna along rail is calculated, wherein the length of the communication ranging antenna along rail is also a distance between the locomotive and the zone-end relay computer and thus is called a zone distance. Ranging communication between the locomotive-mounted response computer and the zone-end relay computer is ensured to be transmitted back and forth on line inside the communication ranging antenna along rail, wherein a wireless coupling communication gap is at minimum, so as to decrease a deterministic transmission distance of radio waves to improve precision of ranging and locating the locomotive along rail.
The locomotive-mounted response computers (J1, J2, Jn . . . ) are mounted on each locomotive, which is also an identification card of the locomotive and has uniqueness. The locomotive communicates with the zone-end relay computer in the electronic zone occupied by the locomotive via the communication ranging antenna along rail. During operation process of the locomotive, the locomotive-mounted response computer communicates with the zone-end relay computer in the electronic zone occupied by the locomotive in real time. The locomotive-mounted response computer is installed on each locomotive and communicates with the zone-end relay computer in the electronic zone occupied by the locomotive via the communication ranging antenna. The locomotive-mounted response computer transmits running information of the electronic zone occupied by the locomotive to corresponding zone-end relay computer for storing, or otherwise switches relay continuously via the zone-end relay computer of each electronic zone, so as to maintain continuous communication with the road networking computer. After receiving the ranging signal sent by the zone-end relay computer, the locomotive-mounted response computer marks the ranging signal with precise working time, calculates running distance of the locomotive during this working time according to running speed thereof, wherein the running distance along with relevant data of locomotive combination and length thereof, positions of the locomotive and the locomotive-mounted response computer in the locomotive combination and running speed of the locomotive are all sent back to the zone-end relay computer.
The road networking computer (Czz) is connected with each zone-end relay computer to form a network. Since the zone-end relay computer installed in each electronic zone has a named electronic address, which is practically corresponded to a precise geographic coordinate position. While forming networking with the road networking computer, a wire or wireless type can be adopted according to security classification and anti-interference ability. In addition, satellite networking can be adopted as well. The road networking computer is capable of switching on/off an electronic zone or turnout in a long distance, so as to control that whether the locomotive can run into the electronic zone.
A rail security detecting sensor is disposed in the electronic zone. The rail security detecting sensor transmits information to the zone-end relay computer, marks the information with a geographic coordinate and then uploads the information with the geographic coordinate to the road networking computer via the zone-end relay computer. The rail security detecting sensor is for detecting rail deformation caused by natural disasters such as collapse or flood, or other accident potentials that do not accord with security operation condition. If conditions mentioned above happen, the rail security detecting sensor sends information to the zone-end relay computer, and then uploads the information with the geographic coordinate to the road networking computer via the zone-end relay computer.
If the zone-end relay computer receives a detecting result that hinders driving , the zone-end relay computer is capable of closing the electronic zone thereof, i.e., the electronic zone thereof is set “1”. According to a principle that two adjacent electronic zones can not be occupied by locomotives at the same time, when the locomotive runs into an adjacent electronic zone ahead of or behind a closed electronic zone, the locomotive learns that a next electronic zone is closed and a stopping measure must be taken.
Combined with the accompanying drawings, principle of the networking operation dispatch system of the present invention is specifically illustrated as follows.
Referring to
Referring to
S=L[Ai−(Ai−1)]+L(Ai)−L(Ai−1)
wherein Ai and Ai−1 respectively represent zone-end geographic coordinates; L[Ai-(Ai−1)] is a length of the electronic zone Ai−1; L(Ai) and L(Ai−1) are zone distances respectively corresponding to the two locomotives, wherein early warning levels of the two locomotives are obtained by calculating further according to relative velocity of the two locomotives.
One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting.
It will thus be seen that the objects of the present invention have been fully and effectively accomplished. Its embodiments have been shown and described for the purposes of illustrating the functional and structural principles of the present invention and is subject to change without departure from such principles. Therefore, this invention includes all modifications encompassed within the spirit and scope of the following claims.
Number | Date | Country | Kind |
---|---|---|---|
2012 1 0307124 | Aug 2012 | CN | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2012/001763 | 12/31/2012 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2014/032218 | 3/6/2014 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
8514825 | Addepalli et al. | Aug 2013 | B1 |
8520695 | Rubin et al. | Aug 2013 | B1 |
20090114114 | Rose et al. | May 2009 | A1 |
20090167513 | Hill et al. | Jul 2009 | A1 |
20100280751 | Breed | Nov 2010 | A1 |
20110061558 | Crawford et al. | Mar 2011 | A1 |
20110098908 | Chun | Apr 2011 | A1 |
20110112751 | Sethi | May 2011 | A1 |
20110184605 | Neff | Jul 2011 | A1 |
20120323474 | Breed et al. | Dec 2012 | A1 |
20130059589 | Dalsgaard et al. | Mar 2013 | A1 |
20130184985 | Bollars | Jul 2013 | A1 |
20130345979 | Oostveen | Dec 2013 | A1 |
20140104081 | Cross et al. | Apr 2014 | A1 |
20140303892 | Morlock | Oct 2014 | A1 |
20150218872 | Breed | Aug 2015 | A1 |
Number | Date | Country | |
---|---|---|---|
20150191184 A1 | Jul 2015 | US |