Pneumatic configuration module for electronic air brake system
10807575 ยท 2020-10-20
Assignee
Inventors
- Erich Leonard (Clayton, NY, US)
- Konstantinos Vilaetis (Watertown, NY, US)
- Ben Kintish (Watertown, NY, US)
Cpc classification
B60T8/3235
PERFORMING OPERATIONS; TRANSPORTING
B60T13/683
PERFORMING OPERATIONS; TRANSPORTING
B60T15/048
PERFORMING OPERATIONS; TRANSPORTING
B60T13/665
PERFORMING OPERATIONS; TRANSPORTING
B60T15/184
PERFORMING OPERATIONS; TRANSPORTING
B60T8/3675
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60T13/66
PERFORMING OPERATIONS; TRANSPORTING
B60T8/32
PERFORMING OPERATIONS; TRANSPORTING
B60T17/22
PERFORMING OPERATIONS; TRANSPORTING
B60T13/68
PERFORMING OPERATIONS; TRANSPORTING
B60T15/18
PERFORMING OPERATIONS; TRANSPORTING
B60T15/02
PERFORMING OPERATIONS; TRANSPORTING
B60T8/36
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A modular EAB system that reduces the number of individualized modules but provides the desired functionality using a configuration module that is coupled to a plurality of brake system control modules and has a receptacle interface configured to engage a series of modular sections that can be selected from a variety of options to perform dedicated air brake functions. The dedicated air brake functions included comprise brake pipe cutout, equalizing reservoir backup, brake pipe emergency, automatic flow calibration, dead engine regulator, dynamic brake interlock, emergency limiting valve regulation, dynamic brake interlock and emergency limiting valve regulation, 20 pipe back up, and brake cylinder cutout.
Claims
1. An electronic air brake system, comprising: a plurality of brake system control modules; and a configuration module coupled to the plurality of brake system control modules and having a plurality of pressure ports in a receptacle interface that allows the plurality of brake system control modules to engage a series of sections of the configuration module, each of which has a plurality of pneumatic lines and a set of internal pneumatic components connected to the plurality of pressure ports so that the series of sections can operatively interact with the plurality of brake system control modules to accomplish a series of corresponding dedicated air brake functions using the plurality of pneumatic lines and the set of internal pneumatic components.
2. The electronic air brake system of claim 1, wherein the receptacle interface comprises a brake pipe relay output pressure port, a brake pipe feedback pressure port, a brake pipe vent valve pressure port, a brake pipe pressure port, and a brake pipe cutout pilot pressure port.
3. The electronic air brake system of claim 1, wherein the receptacle interface comprises a main reservoir pressure port, a 10 pipe pressure port, a brake pipe relay pilot port, a brake pipe electronic control pressure in port, a brake pipe electronic control pressure out port, a pneumatic equalizing reservoir pressure port, a reduction limiting valve pressure port, an equalizing reservoir backup exhaust port, an equalizing reservoir backup out port, and a PVPL pressure port.
4. The electronic air brake system of claim 1, wherein the receptacle interface comprises a 21 pipe pressure port and a brake pipe pressure port.
5. The electronic air brake system of claim 1, wherein the receptacle interface comprises a brake pipe pressure port.
6. The electronic air brake system of claim 1, wherein the receptacle interface comprises a main reservoir pressure port and a brake pipe pressure port.
7. The electronic air brake system of claim 1, wherein the receptacle interface comprises a main reservoir pressure port, a 13 pipe port, and a bail off pressure port.
8. The electronic air brake system of claim 1, wherein the receptacle interface comprises a main reservoir pressure port, a brake pipe pressure port, a bail off pressure port, and an emergency limiting valve pressure port.
9. The electronic air brake system of claim 1, wherein the receptacle interface comprises a distributor valve pressure port, an emergency limiting valve pressure port, a first brake cylinder back up pressure port, and a second brake cylinder back up pressure port.
10. The electronic air brake system of claim 1, wherein the receptacle interface comprises a pilot valve for power loss pressure port, a 20 pipe pressure port, and a brake cylinder one pressure port.
11. The electronic air brake system of claim 1, wherein the receptacle interface comprises a first brake cylinder cutout pressure port and a second brake cylinder cutout pressure port.
12. The electronic air brake system of claim 1, wherein the plurality of brake system control modules comprises a brake pipe control module, brake cylinder control module, multiple unit pipe control module, backup equalizing reservoir control module, and a backup brake cylinder control module.
13. A method of providing an electronic air brake system, comprising the steps of: providing a plurality of brake system control modules and a configuration module coupled to the plurality of brake system control modules and having a plurality of pressure ports in a receptacle interface that allows the plurality of brake system control modules to engage a series of sections of the configuration module, each of which has a plurality of pneumatic lines and a set of internal pneumatic components that may be connected to the plurality of pressure ports so that the series of sections can operatively interact with the plurality of brake system control modules using the plurality of pneumatic lines and the set of internal pneumatic components to accomplish a series of corresponding dedicated air brake functions; selecting the series of sections from a plurality of optional sections; and assembling the selected series of sections to the receptacle interface to form a complete air brake system.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
(1) The present invention will be more fully understood and appreciated by reading the following Detailed Description in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
(14) Referring to the figures, wherein like numerals refer to like parts throughout, there is seen in
(15) Configuration module 12 is configured to interact with BP control module 14, BC control module 16, MU pipe control module 18, backup ER control module 20, and backup BC control module 22 based on inputs and outputs and communication messages from those components in the system and according to instructions provided by the operator of a locomotive having EAB system 10. Configuration module 12 may also contain diagnostics so that it can self-diagnose hardware failures, inform the system of its status, and log prior recorded information for troubleshooting and root cause analysis of module returns to the original manufacture.
(16) Referring to
(17) According to the present invention, each of BPCO section 32, ERBU section 34, BPEM section 36, AFC section 38, DER section 40, BCBO section 42, EMBC section 44, PBCC section 46, 20BU section 48, and BCCO section 50 may be substituted with a comparable section that provides different user-specific functionality so that all variations of EAB system 10 are made via changes to configuration module 12 rather than BP control module 14, BC control module 16, MU pipe control module 18, backup ER control module 20, and backup BC control module 22.
(18) For example, as seen in
(19) Referring to
(20) Referring to
(21) The portion of receptacle 28 of configuration module 12 that is adapted to connect to any one of the variations of ER backup section 34 includes a main reservoir pressure port 70, a 10 pipe pressure port 72, a BPRP port 74, a BPEC pressure in port 76, a BPEC pressure out port 78, a PER pressure port 80, an RLV pressure port 82, an ERBU exhaust port 84, an ERBU out port 86, and a PVPL pressure port 88. Referring to
(22) Configuration module 12 further includes a 21 pipe pressure port 90 and a brake pipe pressure port 92 to accept and connect to BPEM section 36. Referring to
(23) Configuration module 12 also includes a brake pipe pressure port 94 for connection to AFC section 38. Referring to
(24) Configuration module 12 further includes a main reservoir pressure port 96 and a brake pipe pressure port 98 for coupling to DER section 40. Referring to
(25) Similarly, configuration module 12 is connected to BCBO section 42 by providing a main reservoir pressure port 100, a 13 pipe port 102, and a BO pressure port 104. Referring to
(26) Configuration module 12 includes a main reservoir pressure port 106, a brake pipe pressure port 108, a BO pressure port 110, and an emergency limiting valve pressure port 112 for coupling to EMBC section 44. Referring to
(27) Configuration module 12 also includes an MRTC port 112, DV1 pressure port 114, an emergency limiting valve pressure port 116, a BCBU1 pressure port 118, and a BCBU2 pressure port 120 for connecting to PBCC section 46. Referring to
(28) Configuration module 12 additionally includes a PVPL pressure port 122, an MRTC port 124, a 20 pipe pressure port 126, and a BC1 pressure port 128 for receiving 20BU section 48. Referring to
(29) Finally, configuration module 10 connects to BCCO section 50 with a first brake cylinder cutout pressure port 130 and a second brake cylinder cutout pressure port 132. Referring to
(30) While some sections illustrated in
(31) A user of the present invention may thus install a plurality of brake system control modules and a configuration module coupled to the plurality of brake system control modules, wherein the configuration module has a receptacle interface configured to engage a series of sections performing a series of corresponding dedicated air brake functions, select a desired series of sections from a plurality of options for each section, and then assemble the selected series of sections to the receptacle interface to form a complete EAB system 10 that has the desired functionality without having to have individual and application specific control modules.
(32) The present invention can thus have a positive impact on many areas of the lifecycle of an EAB system. From a design perspective, the variant designs that exist are limited to assembly drawings of a superset bill of material for the maximum configuration. The testing can be featured based on the chosen configuration as a subset of the maximum functionality. By limiting the design differences to configuration module 12, the design process for BP control module 14, BC control module 16, MU pipe control module 18, backup ER control module 20, and backup BC control module 22 can be streamlined. With respect to lead times, the only variable part among EAB systems is configuration module 12, so maintenance and repair of BP control module 14, BC control module 16, MU pipe control module 18, backup ER control module 20, and backup BC control module 22 is simplified and uniform across all operators. Customization is also easier as only configuration module 12 needs to be reconfigured and can be finished after delivery to a customer or easily changed in the future. Less stock is also required to support maintenance and repair and the opportunity for improper installation or repair reduced. Additionally, the use of configuration module 12 allows for BP control, BC control, and MU pipe control functions to be consolidated into fewer modules. For example, ER and BP control functions can be contained in a single physical module.
(33) The method of claim 14, wherein the dedicated functions comprise brake pipe cutout, equalizing reservoir backup, brake pipe emergency, automatic flow calibration, dead engine regulator, dynamic brake interlock, emergency limiting valve regulation, dynamic brake interlock and emergency limiting valve regulation, 20 pipe back up (20BU), and brake cylinder cutout.
(34) As described above, the present invention may be a system, a method, and/or a computer program associated therewith and is described herein with reference to flowcharts and block diagrams of methods and systems. The flowchart and block diagrams illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer programs of the present invention. It should be understood that each block of the flowcharts and block diagrams can be implemented by computer readable program instructions in software, firmware, or dedicated analog or digital circuits. These computer readable program instructions may be implemented on the processor of a general purpose computer, a special purpose computer, or other programmable data processing apparatus to produce a machine that implements a part or all of any of the blocks in the flowcharts and block diagrams. Each block in the flowchart or block diagrams may represent a module, segment, or portion of instructions, which comprises one or more executable instructions for implementing the specified logical functions. It should also be noted that each block of the block diagrams and flowchart illustrations, or combinations of blocks in the block diagrams and flowcharts, can be implemented by special purpose hardware-based systems that perform the specified functions or acts or carry out combinations of special purpose hardware and computer instructions.