Claims
- 1. A locomotive for model-based incipient failure detection, said locomotive comprising:at least one locomotive replaceable unit; at least one sensor to generate signals representative of current engine conditions related to said at least one replaceable unit; and a controller including an embedded replaceable unit model algorithm wherein current operating conditions and ambient conditions are utilized to generate a model-based predicted value for said at least one sensor; wherein said controller compares said at least one sensor signals to said model-based predicted values for calculating deviations therebetween.
- 2. A locomotive in accordance with claim 1, wherein said algorithm is programmed in a language selected from the group of C, C++, JAVA, Basic, MATLAB and Fortran.
- 3. A locomotive in accordance with claim 1, wherein said controller is selected from the group consisting of a work station, a minicomputer, a microcomputer or a super computer, an onboard locomotive control sub-system, or an onboard locomotive monitoring system.
- 4. A locomotive in accordance with claim 1, wherein said at least one sensor is selected from the group of sensors consisting of temperature sensors, pressure sensors, accelerometers, speed sensors, notch position sensors, gross horse power sensors, RPM current sensors, and voltage sensors.
- 5. A locomotive in accordance with claim 1 further comprising a communications link.
- 6. A locomotive in accordance with claim 5 wherein said communication link is selected from the group consisting of a geo-synchronous L-Band satellite system and a little LEO system.
- 7. A model based incipient failure detection system for detecting incipient failure in at least one locomotive replaceable unit, said system comprising:at least one sensor to generate signals representative of current engine conditions related to said at least one replaceable unit; and a controller including an embedded replaceable unit model algorithm wherein current operating conditions and ambient conditions are utilized to generate a model-based predicted value for said at least one sensor; wherein said controller compares said at least one sensor signal to said model-based predicted values for calculating deviations therebetween.
- 8. A system in accordance with claim 7, wherein said algorithm is programmed in a language selected from the group of C, C++, JAVA, Basic, MATLAB and Fortran.
- 9. A system in accordance with claim 7, wherein said controller is selected from the group consisting of a work station, a minicomputer, a microcomputer or a super computer, or an onboard locomotive control sub-system.
- 10. A system in accordance with claim 7, wherein said at least one sensor is selected from the group of sensors consisting of temperature sensors, pressure sensors, accelerometers, speed sensors, notch position sensors, gross horse power sensors, RPM current sensors, and voltage sensors.
- 11. A system in accordance with claim 7 further comprising a communications link.
- 12. A system in accordance with claim 11 wherein said communication link is selected from the group consisting of a geo-synchronous L-Band satellite system and a little LEO system.
- 13. A model-based incipient failure detection system for detecting incipient failure in at least one locomotive replaceable unit onboard a locomotive, said system comprising:at least one sensor to generate signals representative of current engine conditions related to said at least one replaceable unit; a communications link between said locomotive and a remote service center; a control structure including an embedded replaceable unit model algorithm wherein current operating conditions and ambient conditions are received through said communication link and are utilized to generate a model-based predicted value for said at least one sensor; wherein said control structure compares said at least one sensor signal to said model based predicted values for calculating deviations therebetween.
- 14. A system in accordance with claim 13, wherein said control structure is inputted into circuitry by programming into an application specific integrated circuit.
- 15. A system in accordance with claim 13, wherein said control structure is inputted into one or more computers.
- 16. A system in accordance with claim 13, wherein said algorithm is programmed in a language selected from the group of C, C++, JAVA, Basic, MATLAB and Fortran.
- 17. A system in accordance with claim 15, wherein said computer is selected from the group consisting of a work station, a minicomputer, a microcomputer or a super computer.
- 18. A system in accordance with claim 13, wherein said at least one sensor is selected from the group of sensors consisting of temperature sensors, pressure sensors, accelerometers, speed sensors, notch position sensors, gross horse power sensors, RPM current sensors, and voltage sensors.
- 19. A system in accordance with claim 13 wherein said communication link is selected from the group consisting of a geo-synchronous L-Band satellite system and a little LEO system.
CROSS REFERENCE TO A RELATED APPLICATION
This invention is a continuation-in-part of application Ser. No. 09/145,077, of commonly assigned U.S. Pat. No. 5,961,567, filed Sep. 1, 1998, entitled “Method and Apparatus For Performance Based Assessment of Locomotive Diesel Engines,” which patent is herein incorporated by reference.
US Referenced Citations (10)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/145077 |
Sep 1998 |
US |
Child |
09/303753 |
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US |