This application is a 35 U.S.C. 371 national stage filing of International Application No. PCT/CN2017/120236 filed Dec. 29, 2017, which claims priority to Chinese Patent Application No. 201711165946.3 filed Nov. 21, 2017. The entire contents of these above patent applications are hereby incorporated by reference in their entirety.
The present application relates to the technology of rail transportation, in particular to a car, a head car, a middle car, and a train.
The current high-speed train set is mainly marshaled in 8-car formation, and runs in an operating mode of 8-car formation, an operating mode of 16-car formation and a reconnection operating mode of two 8-car formations. However, the current formation mode of the high-speed train set is fixed, that is, the position and direction, in a whole train, of each car are stipulated when the car is designed, the formation type cannot be changed, and the number of cars included in the train also cannot be changed.
As illustrated in
In high-speed main line railways of our country, the running of high-speed train sets having 8 cars or 16 cars can solve the problem of large volume of passenger transport. But in some high-speed branch railways, especially in off-peak time for passenger transport, the high-speed train set having 8 cars may be too large, and the high-speed train set having a smaller number of cars is needed. An inter-city high-speed train set having 8 cars can meet an operation requirement in morning peak and evening peak, but in other time, the high-speed train set having 8 cars is slightly large. The formation of the existing high-speed train must be fixed, and customers have to purchase and overhaul the whole train, which does not adapt to the changes of passenger volume. When the occupancy rate of passengers is below 50%, the running of the train having 8 cars causes a waste; if a time interval of running the train is increased, the waiting time of the passengers is prolonged; besides, it is not convenient for overhaul and standby; if a car malfunctions, the whole train needs to be put in storage, which cannot meet the requirements of different customers.
After an arrangement mode of cars is determined in the process of designing a train, when the cars of the train are marshaled at any time thereafter, the arrangement mode of each car cannot be changed, that is, locations of the first end and the second end of the car cannot be turned when the car is arranged. If the train in
A train line of the existing train running through the whole train is arranged at one side of the car. When a certain car is not arranged according to a predetermined direction during marshaling the train, the connection of the train line would go wrong. As illustrated in
To solve one of the above technical problems, the present application provides a car including a car body consisting of a top frame, side walls, and a bottom frame, an end wall is provided on at least one end of the car body,
connectors are symmetrically provided on a left side and a right side of the end wall;
all the connectors provided on the end wall of the car are connected by means of lines.
In an embodiment, the connector includes: an interface for forward movement instruction train line, an interface for backward movement instruction train line, and an interface for braking instruction train line;
a certain type of interface of each connector is connected with this type of interface of other connector by means of corresponding lines.
In an embodiment, sequences of arranging interfaces on the connectors at two sides of the end wall are axisymmetric.
In an embodiment, a junction box is provided in the car; and all connection lines of the connectors are interconnected through line sockets on the junction box.
In an embodiment, a coding module, which is configured to code a sequence and a type of current car, is provided in the car.
In an embodiment, the coding module adopts a six-digit coder, four output ends of the six-digit coder are configured to output a sequence number of the current car, and other two output ends of the six-digit coder are configured to output a type number of the car.
In an embodiment, the four output ends, which of the coder, which are configured to output the sequence number of the car, are respectively connected with an axle temperature alarm system, a traction converter, a door control system, a car control system, and a brake control system which are provided on the car;
the two output ends of the coder, which are configured to output the type number of the car, are respectively connected with the car control system and the brake control system.
In an embodiment, a power supply terminal of the six-digit coder is connected with a power source end, which is provided in the car and configured to supply power for a control device.
In an embodiment, the car body is further provided with a relay which is configured to control turning when a car turns 180 degrees; the relay is connected with an auxiliary control system provided in the car.
To solve one of the above technical problems, the present application further provides a train including the above-mentioned car.
To solve one of the above technical problems, the present application further provides a head car, including a cab body and a car body, one end of the cab body is fixedly connected with one end of the car body,
other end of the car body is provided with an end wall, and connectors are symmetrically provided on a left side and a right side of an outer wall body of the end wall;
two connectors provided on the end wall are connected by means of lines.
In an embodiment, the connector includes: an interface for forward movement instruction train line, an interface for backward movement instruction train line, and an interface for braking instruction train line;
a certain type of interface of each connector is connected with this type of interface of other connector by means of corresponding lines;
sequences of arranging interfaces on the connectors at two sides of the end wall are axisymmetric.
To solve one of the above technical problems, the present application further provides a middle car, including: a top frame, side walls, and a bottom frame; the top frame is fixed with the bottom frame through the side walls,
two ends of the middle car are provided with end walls, and connectors are symmetrically provided on a left side and a right side of an outer wall body of the end wall;
all the connectors provided on two end walls of the car are connected by means of lines.
In an embodiment, the connector includes: an interface for forward movement instruction train line, an interface for backward movement instruction train line, and an interface for braking instruction train line;
a certain type of interface of each connector is connected with this type of interface of other connector by means of corresponding lines;
sequences of arranging interfaces on the connectors at two sides of the end wall are axisymmetric.
In an embodiment, the middle car is a trailer car or a power car.
The present application has the following beneficial effects:
the technical solutions of the present application can marshal the cars of each train in a meal ordering manner, meet the different requirements of customers for a train; when it is not the peak time for passenger transport, adopting a high-speed train set with a small number of cars avoids the energy waste of a high-speed train set with a large number of cars, and does not increase the waiting time of passengers; when it is the peak time for passenger transport, adopting the high-speed train set with a large number of cars avoids the increase of workload of the Railways Bureau caused by increasing the number of trains.
By adopting the technical solutions of the present application, when each car is added into a high-speed train set, the arrangement of the car is not limited, and the car can be added into the train without limitation, thereby reducing the workload of staff marshaling the cars and shortening the work time of the staff marshaling the cars on the premise of ensuring the normal work of systems of the train.
1. car body; 2. end wall; 3. connector; 4. interface for forward movement instruction train line; 5. interface for backward movement instruction train line; 6. interface for braking instruction train line; 7. junction box.
In order to make the technical solutions and advantages in embodiments of the present application clearer, the exemplary embodiments in the present application are further elaborated below in combination with the accompanying drawings. It is apparent that the described embodiments are only a part of the embodiments of the present application but are not exhaustive of all the embodiments. It is to be noted that the embodiments in the present application and the characteristics in the embodiments may be combined under the condition of no conflicts.
The core concept of the present application is that: a dual-redundancy design is applied to a train line running through a whole train, that is, connectors 3 are symmetrically provided at a first side and a second side of a first end and a second end of a car, and all the connectors are connected by means of lines; when the car turns 180 degrees, train lines can still be connected effectively. At the same time, in order to cooperate free marshaling, a six-digit coder and a relay for controlling turning when a car turns 180 degrees are further added on a car; the number and type of a car after the free marshaling are adjusted by means of the six-digit coder, so that other components or systems of the train can identify the number and type of the current car, and then control the train according to the information. A power supply direction of the car is set by means of the relay, thereby assisting in setting a running direction of each power car and assisting other subsystems, and finally realizing unlimited marshaling of the train.
Specifically, as illustrated in
In the present application, in order to facilitate arranging lines and managing the lines of each interface of the connector 3, a junction box 7 is further provided in the car, and the management and interconnection of all the lines are realized through line sockets set on the junction box 7. As illustrated in
In order to further realize the flexible marshaling of the cars, the present application enables a train system and a train-related control and management system to learn information about the number and type of the car added, and provides a coding module which is composed of a plurality of breakers and configured to code the sequence and type of the current car. Preferably, in the solution, the coding module adopts a six-digit coder. Four output ends of the six-digit coder are configured to output the sequence number of the current car, and the other two output ends of the six-digit coder are configured to output the type number of the car. An output and display rule of the coder adopts a binary mode. When the formation is 16 columns, a numbering way is as shown in the following table.
There are two types of cars, namely a power car or a trailer car. When a code output of the power car is 01, the code output of the trailer car is 10. The code outputs represent the current type of the car. The coder in the car can be set manually or embedded in a train control system by writing program to code automatically.
As illustrated in
In the solution, in order to further realize the flexible marshaling after the car turns 180 degrees, relays, which are configured to control the turning when the car turns 180 degrees, are provided at an equipment box of the car, the junction box 7, a conductor room and other positions. The relay assists in setting the running direction of each car and switching power supply directions of other auxiliary systems.
The solution further discloses a train, which includes the above-mentioned car.
Moreover, the solution further discloses a head car including a cab body and a car body. One end of the cab body is fixedly connected with one end of the car body. The other end of the car body is provided with an end wall 2, and connectors 3 are symmetrically provided on a left side and a right side of an outer wall body of the end wall 2. Two connectors 3 provided on the end wall 2 are connected by means of lines. The connector 3 includes: an interface 4 for forward movement instruction train line, an interface 5 for backward movement instruction train line, and an interface 6 for braking instruction train line. A certain type of interface of each connector 3 is connected with this type of interface of other connector 3 by means of corresponding lines. The sequences of arranging interfaces on the connectors 3 at two sides of the end wall 2 are axisymmetric.
Moreover, the solution further discloses a middle car including a top frame, side walls, and bottom frame. The top frame is fixed with the bottom frame through the side walls. Two ends of the middle car are provided with end walls 2, and connectors 3 are symmetrically provided on a left side and a right side of an outer wall body of the end wall 2. All the connectors 3 provided on two end walls 2 of the car are connected by means of lines. The connector 3 includes an interface 4 for forward movement instruction train line, an interface 5 for backward movement instruction train line, and an interface 6 for braking instruction train line. A certain type of interface of each connector 3 is connected with this type of interface of other connector 3 by means of corresponding lines. The sequences of arranging interfaces on the connectors 3 at two sides of the end wall 2 are axisymmetric. In the solution, the type of the middle car is a trailer car or a power car.
The solution is further described through an example.
In the example, the types of basic cars included in a high-speed train set are: end power cars (head car and tail car), middle power cars (seat car and sleeping car), middle trailer cars (double-layer seat car, single-layer seat car, sleeping car, dining-seat car). The positions of the head car and the tail car of the train and the marshaling direction remain unchanged, and the number and directions of other cars can be changed arbitrarily.
In the example, the flexibly marshaled high-speed train set includes car body systems, bogies, braking systems, electric systems, doors, windows, seats and other basic equipment systems. The difference between devices on the power car and the trailer car is that there is a traction system (including a traction transformer, a traction converter, a traction motor, and so on) device mounted on the power car but there is no traction system device mounted on the trailer car.
In the example, a marshaling scheme about the flexibly marshaled train is as follows:
the connectors 3 are symmetrically provided on the left side and the right side of the end wall 2 of the train; the connector 3 includes: the interface 4 for forward movement instruction train line, the interface 5 for backward movement instruction train line, and the interface 6 for braking instruction train line; a certain type of interface of each connector 3 on the end wall 2 of the car is connected with this type of interfaces of other connector 3 by means of corresponding lines; and the sequences of arranging the interfaces on the connectors 3 at the left and right sides of each end wall 2 are axisymmetric. As illustrated in
As illustrated in
Moreover, in order to further realize the flexible marshaling after the car turns 180 degrees, relays, which are configured to control the turning when the car turns 180 degrees, are provided at an equipment box of the car, the junction box 7, a conductor room and other positions. The relay assists in setting the running direction of each car and switching power supply directions of other auxiliary systems.
By means of the above solution, as illustrated in
For example, in the example, a flexibly marshaled high-speed train set having 8 cars is provided; the cars 01, 03, 06 and 08 are the power cars, and the other cars are the trailer cars; except the head cars on two ends, the middle cars can be marshaled in any direction and sequence. Taking the car 03 for example to explain the display of the number and type, if the number of the car 03 is defined in binary code as 0011 and the type of the car 03 is 10, the coder of the car 03 is set to 001110. After the coder is set, all control units of a traction converter, a door control system, a train network system, an axle temperature alarm system and the braking system, which are connected with the coder, learn the information about the number and type of the car from the coder in the car.
As illustrated in
The technical solutions of the present application can marshal 3-16 cars of each train in a meal ordering manner, meet the different requirements of customers for a train; when it is not the peak time for passenger transport, adopting a high-speed train set with a small number of cars avoids the energy waste of a high-speed train set with a large number of cars, and does not increase the waiting time of passengers; when it is the peak time for passenger transport, adopting the high-speed train set with a large number of cars avoids the increase of workload of the Railways Bureau caused by increasing the number of trains.
By adopting the technical solutions of the present application, when each car is added into a high-speed train set, the arrangement of the car is not limited, and the car can be added into the train without limitation, thereby reducing the workload of staff marshaling the cars and shortening the work time of the staff marshaling the cars on the premise of ensuring the normal work of systems of the train.
The technical solution of the present application can realize the application of flexible marshaling and interchange overhaul of a high-speed train set, reduces the inspection rate by more than 10%, reduces the overhaul and maintenance cost by more than 15%, and reduces the cost of one-time purchase by more than 20%, thus the economic benefit of maintaining the cars is remarkable.
It is apparent that those skilled in the art may make various modifications and changes to the present application without departing from departing from its spirit and scope. If these modifications and variations of the present application belong to the scope of the claims of the present application and its equivalent technology, the present application is intended to include these modifications and variations.
Number | Date | Country | Kind |
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201711165946.3 | Nov 2017 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2017/120236 | 12/29/2017 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2019/100532 | 5/31/2019 | WO | A |
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