AU750658B2 - Integrated train electrical and pneumatic brakes - Google Patents
Integrated train electrical and pneumatic brakes Download PDFInfo
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- AU750658B2 AU750658B2 AU59397/00A AU5939700A AU750658B2 AU 750658 B2 AU750658 B2 AU 750658B2 AU 59397/00 A AU59397/00 A AU 59397/00A AU 5939700 A AU5939700 A AU 5939700A AU 750658 B2 AU750658 B2 AU 750658B2
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Description
-1 I P/00/0011 Regulation 3.2
AUSTRALIA
Patents Act 1990 COMPLETE SPECIFICATION FOR A STANDARD PATENT
ORIGINAL
Name of Applicant: Actual Inventors: Address for service in Australia: New York Air Brake Corporation Kevin B Root Bryan M McLaughlin Dale R Stevens Jon M Marra Freehills Carter Smith Beadle 101 Collins Street Melbourne Victoria 3000 Australia Invention Title: INTEGRATED TRAIN PNEUMATIC BRAKES ELECTRICAL AND The following statement is a full description of this invention, including the best method of performing it known to us INTEGRATED TRAIN ELECTRICAL AND PNEUMATIC BRAKES BACKGROUND AND SUMMARY OF THE INVENTION The present invention relates generally to electrically controlled pneumatic train brakes and computer controlled train brake systems, and more specifically, to the integration of the two systems.
Computer controlled brake systems are well known as exemplified by CCBI and CCBII available from New York Air Brake Corporation. These systems provide computer control of the pneumatic control unit for the pneumatic pipes running throughout the train. This allows pneumatic control of the locomotive as well as the individual car brakes. More recently, the industry has been striving to provide electrically controlled pneumatic brakes on each of the cars. This has led to the electrically controlled pneumatic ECP system which is independent of the computer control braking system. An overview of such a system is EP-60 available from New York Air Brake Corporation.
As presently implemented, the ECP system in the locomotive runs in parallel to that of the conventional pneumatic locomotive train controls. Two brake valves are provided, one being the brake valve for the pneumatic braking and the other being the ECP brake valve. Similarly, separate displays are provided for each system. The locomotive or the consist of the locomotives does not respond to the brake commands made by the ECP system since the locomotives respond to pneumatic single on pipes. Also, the ECP system has its own discreet input from the event recorder and from the locomotive controls to determine penalties.
With the implementation of electrically controlled pneumatic brakes, there has also been 40455101 ROG:RB:JA discussion of the desirability of integrating the computer controlled braking systems with the electrical controlled pneumatic brake systems.
According to a first aspect of the invention there is provided a method of operating a brake system of a train which includes a train brake pipe extending through locomotives and cars in the train, brakes on the locomotives connected to the train brake pipe, electropneumatic brakes on the cars connected to the train brake pipe and an electrical network, and a brake controller providing brake commands, the method comprising: determining if a brake command is a pneumatic or electrical system initiated emergency brake command or an operator initiated emergency brake command; transmitting an emergency brake signal on the network for pneumatic and electrical system and operator initiated emergency brake commands; and transmitting an emergency brake signal on the train brake pipe for operator and pneumatic system initiated emergency brake commands.
There is also described a brake system of a train described in and for performing the method according to the first aspect.
Preferably, the present system provides the above mentioned integration of a brake system for a train which includes a train brake pipe extending through locomotives and cars in the train, a locomotive brake pipe extending through adjacent locomotives, pneumatic brakes on the locomotive connected to the locomotive brake pipe and electropneumatic brakes on the cars connected to the brake pipe and an electrical network. Electropneumatic brakes on the locomotive may also be connected to the electrical network. The system may include a single brake controller providing locomotive and train brake commands. A first control e e 25 may be connected to the brake controller and may transmit a car brake signal on the network for train brake commands. A second control may be connected to the brake controller and may transmit a locomotive brake signal on the locomotive brake pipe for train and locomotive brake commands.
The brake system may have a pneumatic mode and an electrical mode. The first control may transmit car brake signals on the network in the electrical mode and the second control may transmit car brake signals on the train brake pipe for the 004040711 40455101 REO:SJ pneumatic mode. The second control may transmit locomotive brake signals on the locomotive brake pipe in either mode. The brake system's default may be the pneumatic mode.
Preferably, the controller provides a system initiated emergency brake command or an operator initiated emergency brake command. The first control may transmit an emergency brake signal on the network for system
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j b04040711 40455101 REO:SJ 9' T and operator initiated emergency brake command. The second control may transmit an emergency brake signal on the train and locomotive brake pipes for operator initiated and pneumatic system emergency brake commands. The brake controller may have a lead or trail mode and may provide the brake command signals only in the lead mode.
If the locomotive includes a locomotive having electropneumatic brakes on the electrical network, the first control may transmit the locomotive brake signals on the network for train and locomotive brake commands. The second control may continue to transmit locomotive brake signals on the locomotive brake pipe for those locomotives that do not have electropneumatic brakes. The train and/or locomotive brake signals on the network may be transmitted as a percentage of brake signals.
The controller also preferably provides penalty brake commands. The first control may transmit a penalty brake signal on the network for a penalty brake command. If the controller determines that a suppression of the brake command occurs during a penalty brake command, the controller may not provide a penalty brake command signal. The controller also may provide a cut-off train propulsion signal for penalty brake commands.
If the train includes only electropneumatic brakes on the locomotives and the cars, the first control may transmit car brake signals on the network for train and locomotive brake commands. For an emergency, the car and locomotive brake commands may be sent on the network and a second control may provide a brake signal on the train brake pipe.
Upon powerup or default, the brake system may be set in pneumatic mode.
25 Preferably, pneumatic mode set up is performed followed by electrical mode set up, if the electrical mode is selected. If the system includes a distributive power system, the distributive power system set up may be completed after the electrical mode set up. With the distributive power system, brake signals may be transmitted on the train brake pipe and power signals may be transmitted using a radio when the train is operated in the pneumatic mode. Brake signals and power signals may be transmitted on the network when the train is operated in the electrical mode.
I C! 004040711 40455101 REO:SJ a a.
*4 a a.
The controller may include an operator control providing operator brake signals. In the electrical mode, the controller may provide the operator brake commands to the first control. The first control may transmit the locomotive car brake signals on the network and locomotive brake signals back to the controller. The controller may provide the locomotive brake signals to the second control and the second control may apply the brakes of the locomotive. In the pneumatic mode, the control preferably provides the operator brake commands to the second control and the second control preferably transmits the car brake commands on the train brake pipe and preferably applies the brake of the locomotive. Where a locomotive brake pipe is available, the second control may provide locomotive brake signals on the locomotive brake pipe in both modes. A non-transmitting first control, upon receipt of the locomotive brake signal in the network, may provide the locomotive brake signal to its controller. Its controller may then provide the locomotive brake signal to its second control and the second control preferably applies the brakes of the locomotive. The first control may reset the network for pneumatic and electrical systems and operator initiated emergency brake commands. The controller may reset the second control for pneumatic system and operator initiated emergency brake commands.
The controller preferably provides a penalty brake command and the first control preferably transmits the car penalty brake signal on the network for a penalty brake command. The first control may also acknowledge to the controller that it has transmitted a penalty brake signal. The controller may send an emergency brake command to the second control if the penalty acknowledgment is not received. An integrated locomotive computer may be connected to and 25 interfaces the controller and the first control to the locomotive systems. These systems could include, for example, the distributive power system.
According to a second aspect of the invention there is provided a method of operating a train having a distributive power system between at least a lead and remote lead locomotive, a pneumatic brake system including pneumatic train brake pipe connecting electropneumatic and pneumatic brakes, and an electropneumatic brake system including an electrical network connected to the electropneumatic L 004040711 40455101 REO:SJ 0y
OANS
T E~L brakes, the method comprising: determining if the train is operating in a pneumatic or electropneumatic mode; transmitting brake signals on the train brake pipe and power signals using a radio when the train is operating in the pneumatic mode; and transmitting brake signals and power signals on the network when the train is operating in the electrical mode.
According to a third aspect of the invention there is provided a method of operating a train having a pneumatic brake system including a pneumatic train brake pipe connecting electropneumatic and pneumatic brakes, and an electropneumatic brake system including an electrical network connected to the electropneumatic brakes, the method comprising: setting the brake system to a pneumatic mode as a start-up default; performing pneumatic mode set up at start-up; and performing an electrical mode set up after pneumatic mode set up if the electric mode is selected.
*.eoo According to a fourth aspect of the invention there is provided a train brake 0. system of a train having a pneumatic brake system including a pneumatic train :brake pipe connecting electropneumatic and pneumatic brakes, and an electropneumatic brake system including an electrical network connected to the electropneumatic brakes, the train system further comprising: a controller including an operator control providing operator train and locomotive brake commands; a first control connected to the controller for transmitting train and locomotive brake signals on the network for train and locomotive brake commands; and a second control connected to the controller for transmitting train brake signals on the train brake pipe for train brake commands and applying the brake of the locomotive for train and locomotive brake commands; wherein in an electrical mode, the controller provides the operator brake commands to the first control, the first control transmits the train and locomotive brake signals 004040711 40455101 REO:SJ on the network and the locomotive brake signal back to the controller, the controller provides the locomotive brake signal to the second control, and the second control applies the brake of the locomotive; and in the pneumatic mode, the controller provides the operator brake commands to the second control, and the second control transmits the train brake signal on the train brake pipe and applies the locomotive's brake for train and locomotive brake signals.
According to a fifth aspect of the invention there is provided a train having a distributive power system between at least a lead and remote lead locomotive, an electropneumatic brake system including an electrical network connected to a first control which provides train brake signals and the electropneumatic brakes, and a pneumatic brake system including a pneumatic train brake pipe connected to electropneumatic and pneumatic brakes and a second control which provides train brake signals, the train further comprising: a controller connected to the first and second controls and providing brake signals and power signals; 9o** the second control transmitting brake signals on the train brake pipe and the distributive power system transmitting power signals using a radio when the train is operating in a pneumatic mode; and .o 20 the first control transmitting brake signals and power signals on the network when the train is operating in an electrical mode.
Other objects, advantages and novel features of the present invention will become apparent from the following detailed description of the invention when S.considered in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS Figure 1 is a diagram of the architecture of an integrated train electrical and go,, )00404071140455101 REO:SJ
A~-C
pneumatic brake system for locomotive system integration LSI and non-locomotive system integration applications.
Figure 2 is a diagram of system proportioning between the computer controlled brake system and an electropneumatic brake system.
Figure 3 is a block diagram of the integration of a computer controlled brake system and a first electropneumatic brake system for locomotive system integration application.
Figure 4 is a block diagram of the integration of a computer controlled brake system and a second electropneumatic brake system for locomotive system S 10 integration application.
Figure 5 is a block diagram of an alternative to Figure 4 for non-locomotive system integration application.
Figure 6 is a diagram of the electric mode set up of the integrated system.
Figure 7 is a block diagram illustrating brake valve control of the integrated system.
Figure 8 is a block diagram of the electric mode emergency control of the integrated system.
Figure 9 is a block diagram of the penalty control of the integrated system.
l DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT 20 Although the present brake system will be described using electropneumatic train brake system and CCBI/CCBII computer controlled locomotive brake system as an example of two systems which may be integrated, the present integrated system can be implemented using other similar pneumatic and electropneumatic systems for train and locomotive brake controls.
An overview of the system architecture is illustrated in Figure 1. A computer controlled locomotive brake system 10 is illustrated as a CCB. It controls the brake pipe train line 21. It is connected to an electropneumatic train brake system 12, which is illustrated as an EP-60 and controls an electropneumatic trainline 40. An integrated locomotive computer (ILC) 29 is connected to the CCB 10 and the EP-60 12. A distributor power system DP 14 is also provided and AUX connected to the ILC 29. The ILC 29 is also connected to a propulsion system 16 and transmits information to the event recorder 30. An LSI display 32 is also connected to the ILC 29.
For non-locomotive system integration applications, namely where the ILC link to the EP-60 12 is not provided, an operator interface unit or ECP display 44 is provided and connected to the EP-60 and a separate event recorder 30A is connected to the EP-60. The event recorder 30 may be a separate and distinct device or integrated into the ILC 29. If it is a separate event recorder, it is the same event recorder as The partitioning of the operation of the various operations performed by EP- 60 and CCB is illustrated in Figure 2. The EP-60 receives EP set up and display V information. It provides outputs to the power cut-off switch PCS of the locomotive i system as well as the EP trainline control. The EP-60 is responsible for the EP 00trainline brake call, trainline power management, train makeup and sequencing and o AAR functional requirements.
The CCB receives inputs from the CCB set up and display, brake handle commands and penalty commands. It provides outputs to the PCS and other ooo•0 miscellaneous locomotive input/outputs. It also controls the brake pipe 21, the independent pipe 22 and the actuating pipe 28 as well as local brake cylinder controls. The CCB is responsible for brake pipe charging, brake handle 20 interpretation, brake pipe emergency management, penalty interpretation, locomotive brake cylinder control, multi-unit operation function or MU functions (bail and independent), and application of locomotive specific requirements.
The interaction and the transfer of signals and control between EP-60 and the CCB will be explained with respect to standard or pneumatic braking and electrical braking.
The computer controlled locomotive brake system 10 in Figure 3 includes an electropneumatic control unit (EPCU) 20 responsive to input signals to control the pressure on brake pipe 21, independent application and release pipe 22 and the actuating pipe 23 and the brake cylinders 24 on its locomotive. The independent application and release pipe 22 and the actuating pipe 23 run NUS throughout the locomotive consist and allow independent control of the locomotive 40455101 ROG:RB:JA 40455101 ROG:RB:JA brakes as distinguished from the control of the pneumatic brakes in each of the car by the brake pipe 21 running throughout the train. Electrical communication and control of the locomotives in the consist is available over the 27-pin mu wire This is generally under the control of the propulsion control system (not shown).
A computer controlled brake system 10 is shown, for example as a CCBII and includes an integrated processor module IPM 27 which electrically controls the pneumatic control unit 20. The IPM 27 receives inputs from an electronic brake valve EBV 26 having an automatic brake handle 26A to control the brake pipe 21 and an independent brake handle 26B to control the locomotive brakes via S 10 independent pipe 22 and actuating pipe 23.The EBV 26 is an operator brake control.
An integrated locomotive computer ILC 29 connects the IPM to an event recorder 30 and displays 32. The event recorder 30 may be a separate element or integral to the ILC 29. Penalties, for example Alerter and Overspeed are inputs to the ILC 29.
:o The propulsion system 16 communicates with the ILC 29. The ILC communicates with other locomotives in its consist via MU trainline The IPM 27 is connected to locomotive systems, not shown, and exchanges a ooooo power cut-off switch signal PCS, emergency sand signal ES and emergency magnetic valve EMV. The IPM 27 may be integrated with distributed power DP 14 oooo to communicate via radio module 33 to the other locomotives in the consist and 20 distributed throughout the train. An end of train radio 31 communicates to the end of train device.
The connection between the IPM 27, the brake valve 26 and the electropneumatic control unit 20 is by a common bus. The suggested connection, which is an AAR standard, is a LonWork Network wherein each of the modules are a node on the neural network. The connection between the IPM 27 and the ILC 29 is a standard computer bus for example, an RS422-HDLC. The system as described so far is well known and need not be described in further detail.
The controls of an electrically controlled pneumatic brake system ECP of the prior art is illustrated as EP 60 available from New York Air Brake Corporation.
The electric controlled pneumatic brakes include a train power supply TPS 41, w h whc connects the locomotive batteries to an EP train line 40. This is an electric 8 line that runs throughout the train and provides power and communications to EP brakes on each car and if available on locomotives. A trainline communication controller TCC 42 is connected to the EP trainline 40 as a node on the neural network. A car ID node is shown as a node on the network and is part of the system. In the prior art, the TCC 42 has no o *o oo **o ago oOO
ROG:RB:JA
control over the pneumatic brake lines 21, 22 and 23.
It only controls communication, either providing or receiving information, via the EP trainline 40. Thus, it can only communicate with other locomotives in the train which have TCC trainline controllers 42 or EP nodes on the network and connected to the EP trainline Although the EP trainline is shown as a line running through each car in the train, it is to be 10 understood that the EP neural network may be by radio *oooo or other non-wire connection.
As implemented in the prior art, the EP brake system runs in parallel to that of the conventional :pneumatic or computer control locomotive train controls. The two brake valves are provided, one the pneumatic brake valve and the other being the EP brake ooooo valve. Similarly, separate displays are provided.
The locomotive or the consist of the locomotives do not respond to the brake commands made by the EP locomotive system. Also, the EP system has its own ~discreet input from the event recorder 30A (Fig. and locomotive controls to determine penalties.
The integrating of the computer controlled braking systems (10) with the electrical controlled pneumatic brake system (12) is achieved by interconnecting these systems as nodes on a common network as shown. The integration results in having only a single brake control valve, namely the CCB control valve 26, and eliminating the EPC control valve. Also, separate access to the event recorder end of train device and a display for the TCC 42 is not required and is available from the computer US control brake portion 10 in Figures 3-5 or directly -r from the ILC in Figures 3 and 4. Access to the 35 penalties and other locomotive controls for the TCC 42 is also through the computer control brake system 10 in Figures 3-5 or directly from the ILC in Figures 3 and 4. Finally, the ability of the locomotive brakes to be under the electronic controlled pneumatic system TCC 42 is provided.
As shown in Figures 3 and 4, the ILC 29 is directly connected by, for example, an RS 422 HDLC to the TCC 42 in locomotive system integration applications. This provides access to the event recorder 30 via the ILC 29. In Figure 5, the TCC 42 has its own operator interface 44, has a direct connection to event recorder 30A for a non-LSI application. The connection to the event recorder may be an RS 232.
:0 10 An implementation of the integral system for a CCBI style control system is ofillustrated in Figures 4 and 5. An integrated system for the CCBI and EP-60 control system is illustrated in Figures 4 and 5. The CRU 28 is connected via electrical lines instead of communication busses to the electronic brake valve 26. The CRU 28 is connected to the TCC as a node in the communication network. The IPM 27 is a separate distributive power system DP including the DP radio 33 and the end of train EOT 31. The IPM 27 is connected as a node in the network to the TCC 42.
The train control signal from the brake valve 26 is provided to the IPM 27 and, depending upon whether IPM 27 is in the pneumatic or the electronic mode, either controls the pneumatic control unit 20 for control of brake pipe 21, or 20 provides the brake command signals to the TCC 42 which provides electrical train or car brake signals over the EP trainline 40. The IPM 27 will not reduce the equalization reservoir (not shown) in response to the brake valve automatic handle movements in the EP mode as it would in the pneumatic mode. This keeps the brake pipe 21 fully charged.
All locomotives equipped with EP will respond to the control signal in the EP trainline 40 to apply its brakes in response to an EP application.
Simultaneously, the lead and any remote lead ECP equipped locomotive will apply the proportional pneumatic brake signal on the independent brake application and release pipe 22. The signal on this pipe will be monitored by the trailing locomotive units that do not have EP capability and will apply the locomotive Sbrakes accordingly.
40455101 ROG:RB:JA A switch or set-up process will provide an indication to the IPM controller 27 whether it should be operating in the pneumatic or the electric control mode.
The IPM 27 in combination with the EBV 26 in Figure 3 and the CRU 28 and the EBV 26 in Figures 4 and 5 form a brake controller which provides locomotive and train brake commands. TCC 42 forms a first control connected to the brake controller 27,26 and transmits a car brake signal on the network or EP trainline 40 for train brake commands. A second control, which includes control unit 20, is also connected to the brake controller 27,26 and transmits a locomotive brake signal on the locomotive brake pipe, which is an independent pipe 22, for S 10 train and locomotive brake commands. The applying and release of the locomotive brakes using the independent pipe 22 can be achieved as well as bail-off without using the actuating pipe 23 or brake pipe 21. Thus, the actuating pipe 23 may be deleted.
As previously discussed, the brake controller 27,26 has a pneumatic mode and an electrical mode. The default mode for power up and certain types of failure is the pneumatic mode. In the electrical mode, the brake controller 27,26 provides trainline brake signals on trainline 40 for the cars and locomotives that have EP brakes and are connected to the trainline 40. In the pneumatic mode, the brake controller 27,26 provides the train or car brake signals on the brake pipe 21. For 20 both the electronic and pneumatic mode, the control unit 20 provides locomotive braking signals on the locomotive brake pipe or independent brake pipe 22.
The electrical mode set up procedure is illustrated in Figure 6. The CCB set up includes a lead cut-in and equalization reservoir setting. The system is set for freight or passenger. The independent handle is set to maximum and the automatic handle is set to release. The brake pipe is charged, the radio DP is off and the speed is set to zero.
Once these activities are complete, the CCB system will now allow transition from conventional or pneumatic mode to EP mode. From this point, the EP system can now be initialized per the standard EP procedures. Menu selection and set-up options will be provided from the ILC LSI display. For applications when the ILC to ECP interface is not available, the separately provided ECP display will provide 12 the same.
The EP 60 set up includes entering the lead mode, powering up and determining the empty/load and full service interlock.
When the EP locomotive system set-up is complete, the EP train set-up initialization process can then be preformed. This consists of establishing or confirming the identity of all trainline devices So go• *o *o o, *go *go 101 ROG:RB:JA (locomotives or cars) as well as the position and orientation of all EP equipped locomotives and cars.
It also includes assignment of unique network addresses, collection of device information and downloading configuration information. During the initialization process, the Full Service Interlock is present until EP confirms that all equipment is 100% operative. After all these conditions are met, the automatic brake handle must be moved to suppression position for 10 seconds to reset the interlock. After which time, the EP brake is now fully enabled and the brake can be released.
Once EP has been enabled, Wired Distributed Power can now be selected and the remote lead locomotive ii 15 setup can be preformed. All remote locomotive set-up procedures are completed from the lead locomotive. It will not be required to go to remote locomotives for set-up purposes, as is presently required for Radio Distributed Power.
20 An overall view of the brake valve control is illustrated in Figure 7. The EBV 26 provides an automatic handle, independent handle and bail-off inputs to the CCB which also executes application specific requirements for the locomotive. In a conventional or pneumatic mode, it controls the EP control unit 20 to control the brake pipe 21. In the electrical mode, there is communication between the TCC 42 and the CCB which controls the EP trainline In the electrical mode, the actuation of the automatic handle 26A is processed by the IPM 27 and provides train brake signals to TCC 42. TCC 42 then provides an electrical train braking signal on the EP A trainline 40. It also provides back to IPM its electrical train signal, and the IPM 27 in turn 14 provides braking commands to the EP control unit 20. The EP control unit 20 then provides an appropriate brake cylinder pressure for the brake cylinder 24 of that lead locomotive. The TCC's 42 on other remote lead locomotives provide the received train braking commands to their IPM's 27 which control the EP control unit 20 to apply its brakes or brake cylinder 24.
The TCC 42 also, through IPM 27, commands the EP control unit 20 to apply a braking signal to the independent pipe 22. This allows pneumatic actuation of the trailing locomotives to the lead locomotive and the remote lead locomotive.
This allows the consist to have non-EP equipped locomotives or the trail EP 10 locomotives could have their electric mode cut out or disabled. Thus, in the electrical mode, the electropneumatic control unit 20 is controlled by the TCC 42 and not by the EBV 26.
Since the independent pipe 22 is used to provide pneumatic signals to trail locomotives even in the electric mode, accommodations must also be made for the operation of the independent handle 26B in the electric mode. If the independent brake handle 26B is operated in the electric mode, the EBV 26 provides a signal to the TCC through IPM 27. The TCC 42 then provides a command back through IPM 27 to the EP control unit 20 to apply a pneumatic brake signal on the S: independent pipe 22. If the EP trainline 40 and the TCC 42 have the capabilities, 20 they provide a locomotive braking signal to the EP equipped locomotives and not to the cars also connected to the EP line 40. If the automatic handle 26A and the independent handle 26B are both braking at the same time, the more restrictive braking command is used to control the locomotive brakes. Similarly, distributive power can be sent on the EP line 40 addressed to the remote lead locomotive.
The controller 27,26 can determine a system initiated emergency brake command or an operator initiated emergency brake command, as illustrated in Figure 8. The operator initiated brake commands will come from the brake valve 26 in emergency handle positions. The system initiated brake commands include an electrical system emergency or a pneumatic system emergency. The electrical system emergencies include EP-60 system default, CCB system default and crew messaging. The pneumatic system emergencies include break-in-two and 40455101 ROG:RB:JA Fireman's Brake Valve.
For emergencies, the controller 27,26 provides signals to the TCC 42 which transmits an emergency brake signal on the network for system and operator initiated emergency brake commands. The controller 27,26 provides commands to the control unit 20 which transmits an emergency brake signal on the train and locomotive brake pipes 21,22 for operator initiated and pneumatic system initiated emergency brake commands. Thus, for electrical system emergency brake commands, only the EP brake is applied, while for operator and pneumatic system emergency brake commands, the EP and the pneumatic brake systems are operated.
The train brake signals and the locomotive brake signals are transmitted on the trainline 40 as a percentage of brake signals.
An emergency magnetic valve EMV, under the control of TCC 42 may be provided in parallel to the EP control unit 20. If the distributive power system DP includes the emergency magnetic valve, the TCC 42 may jointly control the magnetic valve.
The TCC 42 will control electrical resetting and IPM 27 will control pneumatic resetting after an operator initiated or pneumatic system initiated emergency. The TCC 42 will control electrical resetting after an electrical system initiated emergency and after the automatic handle 26A has been in full service or 20 suppression for a fixed time before a release position can be selected.
The controller 27,26 provides penalty brake commands, as illustrated in Figure 9. For these penalty brake commands in the electrical control mode, it provides penalty brake command signals to the control TCC 42 to transmit a car brake signal on the network for penalty brake commands. As with other car brake signals on the network, the brake pipe 21 is maintained charged. A penalty acknowledgment is needed from the TCC 42 to IPM 27. If it is not received, the IPM 27 will command a pneumatic emergency application using the EP control unit Controller 27 also determines whether a suppression brake command has occurred either to remove or to prevent the application of a penalty brake. This is the suppress position of the automatic brake handle of the electric brake valve 26.
5101 ROG:RB:JA If the suppression brake commands occur during a penalty brake command, the controller 27,26 does not send control or brake command signals to the controller 42 or removes and interrupts any penalty application which controller 42 provides on the EP trainline 40. As is well known, the controller 27,26 provides a power cutoff signal to the locomotive propulsion system for penalty brake commands.
In prior systems, moving the automatic brake handle to the suppression position causes a brake pipe reduction which applies the train brakes. This is undesirable and avoided by the present system, which uses the suppression position only as an electric control signal and does not produce pneumatic results in the brake pipe 21.
As can be seen, in an ECP train, the brake pipe is primarily an air supply and is not used for brake controls. In the present system, the brake pipe 21 is used as a back up to allow pneumatic operation of the train brakes as well as for operator and pneumatic system initiated emergencies. With future acceptance by the industry of ECP brakes, the train brake pipe 21 and the locomotive pipes 22 and 23 may have no control functions. In an all EP train, the independent locomotive brake pipe 22 and the actuating locomotive pipe 23 will be eliminated. All signals will be sent out over the EP trainline 40. Thus, trainline braking signals will be addressed .:.separately to cars and locomotives, and special locomotive braking signals will be 20 addressed only to locomotives.
It should also be noted in the present system, that includes the independent brake pipe 22 with or without the actuating pipe 23, that those locomotives which have EP brakes preferably will receive their brake signal over the electric trainline Those locomotives that do not have EP brakes will receive the signals pneumatically over the independent or locomotive brake pipe 22. Those locomotives which are not adjacent to the lead locomotive and not connected to other locomotives by the independent brake pipe 22 will either receive their signals by radio 33 or the remote locomotive may have EP capability and receive its signals on EP trainline 40. It may then control other adjacent locomotives on its consist pneumatically if they are connected by an independent pipe 22. Another example of a remote locomotive would be a helper locomotive which is attached at the end Rr J40455101 ROG:RB:JA 17 of the train when needed to ascend a certain grade. These locomotives would be EP equipped and would take their locomotive brake signals off the EP trainline These would include automatic, independent and bail-off commands.
The brake controller 27 will power up in a conventional or pneumatic mode.
In order to be switched over to the electrical mode, it must be selected as a lead locomotive and then switched over to the electric mode.
Integrating or coordinating the electrically controlled pneumatics or the ECP system through the computer control brake system, allows enhancement of safety.
The computer controlled brake system can determine whether the electrical 10 controlled pneumatics 42 are operating and if not, provide pneumatic control of the brake pipe 21 to ensure braking throughout the train. Also, by providing a single brake control valve 26 and a single display 32, the operator need not make a decision in an emergency on whether to switch from electrical controls to pneumatic controls. The operator uses a single handle and a single display and selects whether to use pneumatic or electrical controls. If the electrical controlled brakes are not operative, the system will automatically switch to pneumatic control without any other input from the operator. Thus, not only does the integration *increase reliability of the two systems, but also substantially removes operator error.
Although the present invention has been described and illustrated in detail, it 20 is to be clearly understood that the same is by way of illustration and example only, and is not to be taken by way of limitation. The spirit and scope of the present invention are to be limited only by the terms of the appended claims.
40455101 ROG:RB:JA
Claims (41)
1. A method of operating a brake system of a train which includes a train brake pipe extending through locomotives and cars in the train, brakes on the locomotives connected to the train brake pipe, electropneumatic brakes on the cars connected to the train brake pipe and an electrical network, and a brake controller providing brake commands, the method comprising: determining if a brake command is a pneumatic or electrical system initiated emergency brake command or an operator initiated emergency brake command; transmitting an emergency brake signal on the network for pneumatic and electrical system and operator initiated emergency brake commands; and transmitting an emergency brake signal on the train brake pipe for operator and pneumatic system initiated emergency brake commands.
2. The method according to claim 1, including determining if the brake system is in a pneumatic mode or an electrical mode; and transmitting, for train brake commands, the car brake signal on the network in the electrical mode and on the train brake pipe for the pneumatic mode. i-
3. The method according to claim 2, including determining if the brake command is a penalty brake command; and transmitting a car penalty brake signal on the network for penalty brake commands only in the electrical mode.
4. The method according to claim 3, including setting the brake system to pneumatic mode if the penalty brake signal is not transmitted on the network.
5. A method according to claim 1, including transmitting a release signal on the network for an electrical system initiated emergency if the brake controller is in a suspension before a release.
6. The method according to claim 1, wherein the brake system includes a locomotive brake pipe extending through adjacent locomotives and the locomotive brakes are also connected to the locomotive brake pipe; and including: determining if the brake command is a train brake command or a locomotive brake command; 3 N" transmitting a car brake signal on the network for train brake commands; and a. a .a transmitting a locomotive brake signal on the locomotive brake pipe for train and locomotive brake commands.
7. The method according to claim 6, wherein the brake signals on the network are percentage of brake signals.
8. The method according to claim 1, wherein at least one locomotive includes electropneumatic brake on the electrical network; and including transmitting the locomotive brake signals on the network for train and locomotive brake commands.
9. The method according to claim 1, including determining if the brake command is a penalty brake command; and transmitting a car penalty brake signal on the network for penalty brake commands.
The method according to claim 9, including determining if a suppression brake command occurs during a penalty brake command and not transmitting the car penalty brake signal on the network if a suppression brake command occurs during a penalty brake command.
11. The method according to claim 9, including cutting off train propulsion for a penalty brake command.
12. The method according to claim 1, determining if the brake controller is in a lead or trail mode and determining type of brake commands only for determined lead mode. 20
13. The method according to claim 2, including setting the brake system to the pneumatic mode as a start-up default; performing pneumatic mode set up at start up; and performing electrical mode set up after the pneumatic mode set up if the electric Smode is selected.
14. The method according to claim 2, wherein the train includes a distributive S 25 power system between at least a lead and remote lead locomotive; including transmitting brake signals on the train brake pipe and power signals using a radio when the train is operating in the pneumatic mode; and including transmitting brake signals and power signals on the network when the train is operating in the electrical mode.
15. A brake system of a train described in and for performing the method of ,~zclaim 1, 004040711 40455101 REO:SJ 1 0 wherein the controller determines if the brake command is a pneumatic and electrical system initiated emergency brake command or an operator initiated emergency brake command; and the system further comprising: a first control which is connected to the controller and transmits an emergency brake signal on the network for pneumatic and electrical system and operator initiated emergency brake commands, and a second control which is connected to the controller and transmits an emergency brake signal on the train brake pipe for pneumatic system and operator initiated emergency brake commands.
16. The brake system according to claim 15, including: a locomotive brake pipe extending through adjacent locomotives and locomotive brakes connected to the locomotive brake pipe; wherein the brake controller provides locomotive and train brake commands; the first control transmits a car brake signal on the network for train brake commands; and ~the second control transmits a locomotive brake signal on the locomotive i brake pipe for train and locomotive brake commands.
17. The brake system according to claim 16, wherein the brake system has a pneumatic mode or an electrical mode; the first control transmits the car brake signal on the network in the electrical mode; and the second control transmits the car brake signal on the train brake pipe for the pneumatic mode. 25
18. The brake system according to Claim 17, wherein the brake system defaults to the pneumatic mode.
19. The brake system according to Claim 16, wherein at least one locomotive includes electropneumatic brake on the electrical network; and the first control transmits the locomotive brake signals on the network for train and locomotive brake commands. 7
20. The brake system according to one of Claims 15 and 16, wherein the brake 111 40455101 REO:SJ controller has a lead or trail mode and provides brake commands only in the lead mode.
21. A brake system, of a train described in and for performing the method of Claim 13 or Claim 14, wherein the controller provides a penalty brake command; and the first control transmits a car penalty brake signal on the network for penalty brake commands.
22. The brake system according to Claim 21, wherein the controller determines if a suppression brake command occurs during a penalty brake command and does not provide the penalty brake command signal if a suppression brake command occurs during the penalty brake command.
23. The brake system according to Claim 15, including an electropneumatic valve connected to the train brake pipe and controlled by the second control to produce the emergency brake signal on the train brake pipe.
24. The brake system according to Claim 15, wherein the controller includes an operator control providing operator brake commands; in the electrical mode, the controller provides the operator brake commands to the first control, the first control transmits locomotive and car brake signals on 0@o0 the network and the locomotive brake signal back to the controller, the controller provides the locomotive brake signal to the second control, and the second control 20 applies the brake of the locomotive; and in the pneumatic mode, the controller provides the operator brake commands to the second control, and the second control transmits the car brake signal on the train brake pipe and applies the brake of the locomotive.
•25. The brake system according to Claim 16, wherein the controller includes an operator control providing operator brake commands; in the electrical mode, the controller provides the operator brake commands to the first control, the first control transmits locomotive and car brake signals on the network and the locomotive brake signal back to the controller, the controller provides the locomotive brake signal to the second control, and the second control transmits the locomotive brake signal on the locomotive brake pipe and applies the V7brake of the locomotive; and 0 0 4 n AO4O4O711 40455101 REO:SJ N'0 in the pneumatic mode, the controller provides the operator brake commands to the second control, and the second control transmits the car brake signal on the train brake pipe, transmits the locomotive brake signal on the locomotive brake pipe, and applies the brake of the locomotive.
26. The brake system according to Claim 15, wherein the first control resets the network for pneumatic and electrical system and operator initiated emergency brake commands; and the controller resets the second control for pneumatic system and operator initiated emergency brake commands.
27. A method of operating a train having a distributive power system between at least a lead and remote lead locomotive, a pneumatic brake system including pneumatic train brake pipe connecting electropneumatic and pneumatic brakes, and an electropneumatic brake system including an electrical network connected to the electropneumatic brakes, the method comprising: determining if the train is operating in a pneumatic or electropneumatic mode; transmitting brake signals on the train brake pipe and power signals using a radio when the train is operating in the pneumatic mode; and Stransmitting brake signals and power signals on the network when the train is operating in the electrical mode.
28. The method according to Claim 27, including setting the brake system to the pneumatic mode as a start-up default; performing pneumatic mode set up at start up; performing electrical mode set up after the pneumatic mode set up if the electric mode is selected; and performing distributive power set up after the electric mode set up.
29. A method of operating a train having a pneumatic brake system including pneumatic train brake pipe connecting electropneumatic and pneumatic brakes, and an electropneumatic brake system including an electrical network connected to the electropneumatic brakes, the method comprising: setting the brake system to an pneumatic mode as a start-up default; performing pneumatic mode set up at start up; and 004040711 40455101 REO:SJ performing an electrical mode set up after pneumatic mode set up if the electric mode is selected.
The method according to one of Claims 13 and 29, wherein the train includes a distributive power system between at least a lead and remote lead locomotive; and which includes performing distributive power set up after the electric mode set up.
31. A train brake system of a train having a pneumatic brake system including pneumatic train brake pipe connecting electropneumatic and pneumatic brakes, and an electropneumatic brake system including an electrical network connected to the electropneumatic brakes, the train system further comprising: a controller including an operator control providing operator train and locomotive brake commands; a first control connected to the controller for transmitting train and locomotive brake signals on the network for train and locomotive brake commands a second control connected to the controller for transmitting train brake signals on the train brake pipe for train brake commands and applying the brake of the locomotive for train and locomotive brake commands; in an electrical mode, the controller provides the operator brake commands to the first control, the first control transmits the train and locomotive brake signals on the network and the locomotive brake signal back to the controller, the controller 20 provides the locomotive brake signal to the second control, and the second control applies the brake of the locomotive; and in the pneumatic mode, the controller provides the operator brake commands to the second control, and the second control transmits the train brake signal on the .a train brake pipe and applies the locomotive's brake for train and locomotive brake signals.
32. The brake system according to any one of Claims 16, 24, 25 or 31, wherein a 0. non-transmitting first control, upon receipt of a locomotive brake signal on the network, provides the locomotive brake signal to its controller; its controller provides the locomotive brake signal to its second control; and its second control applies the brake of the locomotive. 004040711 40455101 REO:SJ
33. The brake system according to Claim 31 or Claim 32, including: a locomotive brake pipe extending through adjacent locomotivesand wherein the locomotive brakes are connected to the locomotive brake pipe; and wherein the second control transmitting locomotive brake signals on the locomotive brake pipe in both modes.
34. The brake system according to Claim 15 or Claim 31, wherein the controller provides a penalty brake command; and the first control transmits a car penalty brake signal on the network for penalty brake commands and acknowledges to the controller that it has transmitted a penalty brake signal; and the controller sends an emergency brake command to the second control if the penalty acknowledgment is not received.
The brake system according to Claim 15 or Claim 31, including an integrated locomotive computer connected to and interfacing the controller and the first control to locomotive systems.
36. The brake system according to Claim 35, wherein the train includes a odistributive power system between at least a lead and remote lead locomotive; and .the integrated locomotive computer is connected to the distributive power system.
37. A train having a distributive power system between at least a lead and remote lead locomotive, an electropneumatic brake system including an electrical network connected to a first control which provides train brake signals and the electropneumatic brakes, and a pneumatic brake system including pneumatic train :brake pipe connected to electropneumatic and pneumatic brakes and a second control which provides train brake signals the train further comprising: a controller connected to the first and second controls and providing brake signals and power signals; a. the second control transmitting brake signals on the train brake pipe and the distributive power system transmitting power signals using a radio when the train is operating in a pneumatic mode; and the first control transmitting brake signals and power signals on the network Swhen the train is operating in an electrical mode.
38. A method of operating a brake system substantially as hereinbefore described with reference to nay one or more of the accompanying drawings.
39. A brake system of a train substantially as hereinbefore described with reference to any one or more of the accompanying drawings.
40. A method of operating a train substantially as hereinbefore described with reference to any one or more of the accompanying drawings.
41. A train substantially as hereinbefore described with reference to any one or more of the accompanying drawings. DATED: 23 April 2002 FREEHILLS CARTER SMITH BEADLE Patent Attorneys for the Applicant NEW YORK AIR BRAKE CORPORATION see* S.o"o o *S 004040711 40455101 REO:SJ
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
AU59397/00A AU750658B2 (en) | 1997-11-10 | 2000-09-14 | Integrated train electrical and pneumatic brakes |
Applications Claiming Priority (5)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US60/065064 | 1997-11-10 | ||
AU13882/99A AU750378B2 (en) | 1997-11-10 | 1998-11-10 | Integrated train electrical and pneumatic brakes |
US09/397676 | 1999-09-16 | ||
US09/397,676 US6334654B1 (en) | 1996-09-13 | 1999-09-16 | Integrated train electrical and pneumatic brakes |
AU59397/00A AU750658B2 (en) | 1997-11-10 | 2000-09-14 | Integrated train electrical and pneumatic brakes |
Related Parent Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
AU13882/99A Division AU750378B2 (en) | 1997-11-10 | 1998-11-10 | Integrated train electrical and pneumatic brakes |
Publications (2)
Publication Number | Publication Date |
---|---|
AU5939700A AU5939700A (en) | 2001-02-01 |
AU750658B2 true AU750658B2 (en) | 2002-07-25 |
Family
ID=25615320
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
AU59397/00A Expired AU750658B2 (en) | 1997-11-10 | 2000-09-14 | Integrated train electrical and pneumatic brakes |
Country Status (1)
Country | Link |
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AU (1) | AU750658B2 (en) |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4652057A (en) * | 1985-09-16 | 1987-03-24 | General Signal Corporation | Control system for integral trains |
US5538331A (en) * | 1995-01-30 | 1996-07-23 | Westinghouse Air Brake Company | Applications of EPIC® 3102 brake equipment to electro-pneumatic systems |
US5590042A (en) * | 1989-12-08 | 1996-12-31 | New York Air Brake Corporation | Independent brake control |
-
2000
- 2000-09-14 AU AU59397/00A patent/AU750658B2/en not_active Expired
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4652057A (en) * | 1985-09-16 | 1987-03-24 | General Signal Corporation | Control system for integral trains |
US5590042A (en) * | 1989-12-08 | 1996-12-31 | New York Air Brake Corporation | Independent brake control |
US5538331A (en) * | 1995-01-30 | 1996-07-23 | Westinghouse Air Brake Company | Applications of EPIC® 3102 brake equipment to electro-pneumatic systems |
Also Published As
Publication number | Publication date |
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AU5939700A (en) | 2001-02-01 |
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