Claims
- 1. A hybrid energy railway vehicle system comprising:
a hybrid energy railway vehicle having a plurality of wheels; a traction motor coupled to at least one of the wheels, said traction motor having a motoring mode of operation for driving the coupled wheel and a dynamic braking mode of operation for braking the coupled wheel, and said traction motor generating dynamic braking electrical energy when operating in the dynamic braking mode; an electrical energy source for supplying charging electrical energy; and an electrical energy storage system in electrical communication with the energy source and the traction motor for storing electrical energy, said energy storage system storing charging electrical energy supplied by the energy source to the energy storage system and storing dynamic braking electrical energy generated by the traction motor during braking, said energy storage system selectively supplying stored electrical energy to the traction motor for driving the coupled wheel.
- 2. The hybrid energy railway vehicle system of claim 1, further comprising a resistive grid electrically connected to the energy storage system, said resistive grid dissipating electrical energy selectively supplied thereto by either the energy source or the traction motor operating in the dynamic braking mode or both.
- 3. The hybrid energy railway vehicle system of claim 1, further comprising a control system controlling an operation of the hybrid energy railway vehicle.
- 4. The hybrid energy railway vehicle system of claim 3 wherein the control system comprises:
a computer readable medium having computer executable instructions for controlling the operation of the hybrid energy railway vehicle, said computer executable instructions defining a plurality of hybrid energy railway vehicle operating modes, each of said operating modes defining a set of operational parameters; and a processor configured to control the operation of the hybrid energy railway vehicle as a function of at least one of the operating modes.
- 5. The hybrid energy railway vehicle system of claim 4 wherein the operating modes include one or more of the following: a switcher mode, an energy tender mode, a pusher mode, and a roadmate mode.
- 6. The hybrid energy railway vehicle system of claim 4 wherein the set of operational parameters includes one or more of the following: defining a configuration of the energy storage system, operating the traction motor in the dynamic braking mode to generate dynamic braking electrical energy, dissipating dynamic braking electrical energy, receiving external electrical energy, supplying stored electrical energy, generating charging electrical energy, operating the traction motor in the motoring mode, storing charging electrical energy, storing dynamic braking electrical energy, storing received external electrical energy, and receiving a control command from an external control system.
- 7. The hybrid energy railway vehicle system of claim 3 wherein the control system is configured to control operation of another railway vehicle.
- 8. The hybrid energy railway vehicle system of claim 3, further comprising a communication link in communication with the control system, said communication link being configured to receive a control command from an external control system and to provide the control command to the control system, and wherein the control system is responsive to the control command for selecting an operating mode for controlling operation of the railway vehicle.
- 9. The hybrid energy railway vehicle system of claim 8 wherein the communication link is a wireless communication facility.
- 10. The hybrid energy railway vehicle system of claim 1, further comprising an external energy transfer interface for receiving external electrical energy from an external electrical energy system or for discharging electrical energy to the external electrical energy system, said energy storage system storing the received external electrical energy.
- 11. The hybrid energy railway vehicle system of claim 10 wherein the external energy transfer interface is adapted to be detachably connected to one or more of the following: a locomotive, a second hybrid energy railway vehicle, an electric power grid, an electric third rail, an electrical overhead line, and an external charging system.
- 12. The hybrid energy railway vehicle system of claim 1 wherein the energy source comprises a generator, said generator operating continuously and independent of a level of charge of the energy storage system.
- 13. The hybrid energy railway vehicle system of claim 1 wherein the energy source is a fuel cell.
- 14. The hybrid energy railway vehicle system of claim 1 wherein the energy storage system comprises a removable electrical energy storage unit.
- 15. The hybrid energy railway vehicle system of claim 14 wherein the removable storage unit is configured to be electrically charged or discharged remotely from the hybrid energy railway vehicle.
- 16. A hybrid energy railway vehicle system comprising:
a hybrid energy railway vehicle; an electrical energy source for supplying charging electrical energy; an electrical energy storage system for storing the charging electrical energy supplied by the energy source; a converter electrically coupled to the energy storage system, said energy storage system selectively transferring stored electrical energy to the converter and said converter being responsive to the transferred stored electrical energy to provide hybrid energy railway vehicle drive energy; a traction motor, said traction motor being electrically coupled to the converter and adapted to propel the hybrid energy railway vehicle in response to the railway vehicle drive energy; a resistive grid electrically connected to the energy storage system, said resistive grid dissipating electrical energy selectively supplied thereto by the energy source.
- 17. The hybrid energy railway vehicle system of claim 16 wherein the traction motor has a dynamic braking mode of operation in which the traction motor generates dynamic braking electrical energy, the energy storage system being electrically coupled to the traction motor and storing the dynamic braking electrical energy.
- 18. The hybrid energy railway vehicle system of claim 17 wherein the resistive grid is electrically connected to the traction motor and selectively receives dynamic braking electrical energy therefrom, said resistive grid dissipating the selectively received dynamic braking electrical energy.
- 19. A hybrid energy railway vehicle system comprising:
a hybrid energy railway vehicle having a plurality of wheels; a traction motor having a motoring mode of operation for driving one of the wheels in response to electrical input energy, said traction motor also having a dynamic braking mode of operation for dynamically braking the traction motor, said traction motor generating dynamic braking electrical energy when operating in the dynamic braking mode; an electrical energy storage system in electrical communication with the traction motor for selectively storing dynamic braking electrical energy generated by the traction motor during braking; and a converter selectively providing stored electrical energy from the energy storage system to the traction motor as electrical input energy for driving one or more of wheels.
- 20. The hybrid energy railway vehicle system of claim 19 wherein the traction motor is electrically coupled to a locomotive, said locomotive providing locomotive electric input energy to the traction motor of the hybrid energy railway vehicle for driving one or more of the plurality of wheels.
- 21. The hybrid energy railway vehicle system of claim 19, further comprising an electrical energy source for supplying charging electrical energy to the energy storage system, said energy storage system being electrically coupled to the energy source and storing the supplied charging electrical energy.
- 22. The hybrid energy railway vehicle system of claim 21 wherein the energy source is a fuel cell.
- 23. The hybrid energy railway vehicle system of claim 21, further comprising a resistive grid electrically connected to the energy source, said resistive grid dissipating electrical energy selectively supplied thereto by the energy source.
- 24. The hybrid energy railway vehicle system of claim 21, further comprising an external energy transfer interface for discharging supplied charging electrical energy to an external electrical energy system.
- 25. The hybrid energy railway vehicle system of claim 19, further comprising a resistive grid electrically connected to the traction motor, said resistive grid dissipating dynamic braking electrical energy selectively supplied thereto by the traction motor.
- 26. The hybrid energy railway vehicle system of claim 19, further comprising a control system controlling an operation of the hybrid energy railway vehicle.
- 27. The hybrid energy railway vehicle system of claim 26 wherein the control system comprises:
a computer readable medium having computer executable instructions for controlling the operation of the hybrid energy railway vehicle, said computer executable instructions defining a plurality of railway vehicle operating modes, each of said operating modes defining a set of operational parameters; and a processor configured to control the operation of the railway vehicle as a function of at least one of the operating modes.
- 28. The hybrid energy railway vehicle system of claim 27 wherein the plurality of operating modes includes one or more of the following: a switcher mode, an energy tender mode, a pusher mode, and a roadmate mode.
- 29. The hybrid energy railway vehicle system of claim 28 wherein the set of operational parameters includes one or more of the following: defining a configuration of the energy storage system, operating the traction motor in the dynamic braking mode to generate dynamic braking electrical energy, dissipating dynamic braking electrical energy, receiving external electrical energy, supplying stored electrical energy, generating charging electrical energy, operating the traction motor in the motoring mode, storing charging electrical energy, storing dynamic braking electrical energy, storing received external electrical energy, and receiving a control command from an external control system.
- 30. The hybrid energy railway vehicle system of claim 26 wherein the control system is configured to control operation of another railway vehicle.
- 31. The hybrid energy railway vehicle system of claim 26, further comprising a communication link in communication with the control system, said communication link being configured to receive a control command from an external control system and to provide the control command to the control system, and wherein the control system is responsive to the control command for selecting an operating mode for controlling operation of the railway vehicle.
- 32. The hybrid energy railway vehicle system of claim 31 wherein the communication link is a wireless communication facility.
- 33. The hybrid energy railway vehicle system of claim 19, further comprising an external energy transfer interface for receiving external electrical energy from an external electrical energy system or for discharging electrical energy to the external electrical energy system, said energy storage system storing the received external electrical energy.
- 34. The hybrid energy railway vehicle system of claim 19 wherein the external energy transfer interface is adapted to be detachably connected to one or more of the following: a locomotive, a second hybrid energy railway vehicle, an electric power grid, an electric third rail, an electrical overhead line, and an external charging system.
- 35. The hybrid energy railway vehicle system of claim 19 wherein the energy storage system comprises a removable electrical energy storage unit.
- 36. The hybrid energy railway vehicle system of claim 35 wherein the removable storage unit is configured to be electrically charged or discharged remotely from the hybrid energy railway vehicle.
- 37. A hybrid energy railway vehicle system comprising:
a hybrid energy railway vehicle; a computer readable medium having computer executable instructions for controlling an operation of the hybrid energy railway vehicle, said computer executable instructions defining a plurality of hybrid energy railway vehicle operating modes, each of said operating modes defining a set of operational parameters; and a processor configured to control an operation of the hybrid energy railway vehicle as a function of at least one of the operating modes as a function of a desired use of the hybrid energy railway vehicle.
- 38. The hybrid energy railway vehicle system of claim 37 wherein the operating modes include one or more of the following: a switcher mode, an energy tender mode, a pusher mode, and a roadmate mode.
- 39. The hybrid energy railway vehicle system of claim 37 wherein the set of operational parameters includes one or more of the following: defining a configuration of the energy storage system, operating the traction motor in the dynamic braking mode to generate dynamic braking electrical energy, dissipating dynamic braking electrical energy, receiving external electrical energy, supplying stored electrical energy, generating charging electrical energy, operating the traction motor in the motoring mode, storing charging electrical energy, storing dynamic braking electrical energy, storing received external electrical energy, and receiving a control command from an external control system.
- 40. A method of operating a hybrid energy railway vehicle system comprising:
supplying charging electrical energy with an electrical energy source; storing charging electrical energy in an electrical energy storage system to produce stored electrical energy; operating a traction motor in a dynamic braking mode to generate dynamic braking electrical energy; storing dynamic braking electrical energy in the energy storage system to produce stored electrical energy; supplying stored electrical energy to the traction motor; and operating the traction motor in a motoring mode in response to the supplied stored electrical energy for driving on or more wheels of the hybrid energy railway vehicle.
- 41. The method of claim 40, further comprising:
selectively supplying the charging electrical energy to a resistive grid; and dissipating into heat energy the charging electrical energy supplied to the resistive grid.
- 42. The method of claim 40, further comprising:
selectively supplying the dynamic braking electrical energy to a resistive grid; and dissipating into heat energy the dynamic braking electrical energy supplied to the resistive grid.
- 43. The method of claim 40, further comprising supplying stored electrical energy from the energy storage system to a locomotive that is electrically coupled to the hybrid energy railway vehicle, said locomotive comprising a traction motor, the locomotive traction motor operating in a motoring mode in response to the supplied stored electrical energy.
- 44. The method of claim 40, further comprising:
receiving external electrical energy from an external electrical energy system; and storing the received external electrical energy to the energy storage system.
- 45. The method of claim 44 wherein the external electrical energy system is one or more of the following: a locomotive, a second hybrid energy railway vehicle, an electric power grid, a third rail, an overhead electric line, and an external charging system.
- 46. The method of claim 40, further comprising selectively supplying stored electrical energy from the energy storage system to an external electrical energy system.
- 47. The method of claim 40, further comprising supplying charging electrical energy from the energy source to an external electrical energy system.
- 48. The method of claim 40, further comprising selectively supplying dynamic braking electrical energy from the traction motor to an external electrical energy system.
- 49. The method of claim 40, further comprising:
removing from the hybrid energy railway vehicle a removable storage unit of the energy storage system; charging the storage unit remotely from the hybrid energy railway vehicle; and installing the charged storage unit on the hybrid energy railway vehicle.
- 50. The method of claim 40, further comprising:
charging a removable storage unit of the energy storage system; removing from the hybrid energy railway vehicle the charged storage unit; and discharging the removed storage unit remotely from the hybrid energy railway vehicle.
- 51. The method of claim 40, further comprising controlling operation of another railway vehicle from the control system of the hybrid energy railway vehicle.
- 52. The method of claim 40, further comprising:
receiving a control signal from an external control system; and controlling an operation of the hybrid energy railway vehicle in response to the received control signal.
- 53. The method of claim 40, further comprising:
defining a plurality of operating modes, each of the plurality of operating modes defining a set of operational parameters and specifying a value for each of the operational parameters in the set of operational parameters as a function of an optimization characteristic; and controlling an operation of the hybrid energy railway vehicle as a function of a particular set of operational parameters defined by a particular operating mode in response to a selection of the particular operating mode.
- 54. The method of claim 53 wherein the plurality of operating modes includes one or more of the following: a switcher mode, an energy tender mode, a pusher mode, and a roadmate mode.
- 55. The method of claim 53 wherein the set of operational parameters includes one or more of the following: defining a configuration of the energy storage system, operating the traction motor in the dynamic braking mode to generate dynamic braking electrical energy, dissipating dynamic braking electrical energy, receiving external electrical energy, supplying stored electrical energy, generating charging electrical energy, operating the traction motor in the motoring mode, storing charging electrical energy, storing dynamic braking electrical energy, storing received external electrical energy, and receiving a control command from an external control system.
- 56. A method of operating a hybrid energy railway vehicle system comprising:
operating a traction motor in a dynamic braking mode to generate dynamic braking electrical energy; storing dynamic braking electrical energy in an energy storage system to produce stored electrical energy; supplying stored electrical energy to the traction motor; and operating the traction motor in a motoring mode in response to the supplied stored electrical energy for driving one or more wheels of the hybrid energy railway vehicle.
- 57. The method of claim 56, further comprising:
selectively supplying dynamic braking electrical energy to a resistive grid; and dissipating into heat energy the dynamic braking electrical energy supplied to the resistive grid.
- 58. The method of claim 56, further comprising selectively supplying stored electrical energy from the energy storage system to an external electrical energy system.
- 59. The method of claim 56 wherein the external electrical energy system is one or more of the following: a second railway vehicle, an electric power grid, a third rail, an overhead electric line, and an external storage system.
- 60. The method of claim 56 wherein the external electrical energy system is a locomotive, said locomotive being electrically coupled to the railway vehicle and being configured with a traction motor, said locomotive traction motor operating in a motoring mode in response to the supplied stored electrical energy.
- 61. The method of claim 56, further comprising:
receiving external electrical energy from an external electrical energy system; and storing the received external electrical energy to the energy storage system.
- 62. The method of claim 61 wherein the external electrical energy system is one or more of the following: a locomotive, a second hybrid energy railway vehicle, an electric power grid, a third rail, an overhead electric line, and an external charging system.
- 63. The method of claim 56, further comprising selectively supplying dynamic braking electrical energy from the traction motor to an external electrical energy system.
- 64. The method of claim 56, further comprising:
removing from the hybrid energy railway vehicle a removable storage unit of the energy storage system; charging the storage unit remotely from the hybrid energy railway vehicle; and installing the charged storage unit on the hybrid energy railway vehicle.
- 65. The method of claim 56, further comprising:
charging a removable storage unit of the energy storage system; removing from the hybrid energy railway vehicle the charged storage unit; and discharging the removed storage unit remotely from the hybrid energy railway vehicle.
- 66. The method of claim 56, further comprising controlling operation of another railway vehicle from the control system of the hybrid energy railway vehicle.
- 67. The method of claim 56, further comprising:
receiving a control signal from an external control system; and controlling an operation of the hybrid energy railway vehicle in response to the received control signal.
- 68. A method of operating a hybrid energy railway vehicle system comprising:
receiving external electrical energy from an external electrical energy system; storing the received external electrical energy in an electrical energy storage system to produce stored electrical energy; and supplying stored electrical energy to the external electrical energy system.
- 69. The method of claim 68 wherein the external electrical energy system is one or more of the following: another railway vehicle, an electric power grid, a third rail, an overhead electric line, and an external charging system.
- 70. The method of claim 68 wherein the external electrical energy system is a locomotive, said locomotive being electrically coupled to the hybrid energy railway vehicle and being configured with a traction motor, said locomotive traction motor operating in a motoring mode in response to the supplied stored electrical energy.
- 71. The method of claim 68 wherein the energy storage system is configured with a removable storage unit, further comprising:
removing the storage unit from the hybrid energy railway vehicle; charging the removed storage unit remotely from the hybrid energy railway vehicle; and installing the charged storage unit on the hybrid energy railway vehicle.
- 72. The method of claim 68 wherein the energy storage system is configured with a removable storage unit, further comprising:
charging the storage unit of the energy storage system; removing the charged storage unit; and discharging the removed storage unit remotely from the hybrid energy railway vehicle.
- 73. A method of operating a hybrid energy railway vehicle system comprising:
receiving external electrical energy from an external electrical energy system; storing the received external electrical energy in an electrical energy storage system to produce stored electrical energy; supplying stored electrical energy to a traction motor; and operating the traction motor in a motoring mode in response to the supplied stored electrical energy for driving on or more wheels of the hybrid energy railway vehicle.
- 74. A method of operating a hybrid energy railway vehicle system comprising:
operating a traction motor in a dynamic braking mode to generate dynamic braking electrical energy; storing dynamic braking electrical energy in an energy storage system to produce stored electrical energy; and supplying stored electrical energy to an external electrical energy system.
- 75. The method of claim 74 wherein the external electrical energy system is one or more of the following: a second railway vehicle, an electric power grid, a third rail, an overhead electric line, and an external storage system.
- 76. The method of claim 74 wherein the external electrical energy system is a locomotive, said locomotive being electrically coupled to the railway vehicle and being configured with a traction motor, said locomotive traction motor operating in a motoring mode in response to the supplied stored electrical energy.
- 77. The method of claim 74, further comprising:
selectively supplying dynamic braking electrical energy to a resistive grid; and dissipating into heat energy the dynamic braking electrical energy supplied to the resistive grid.
- 78. A method of operating a hybrid energy railway vehicle system comprising:
defining a plurality of operating modes, each of the plurality of operating modes defining a set of operational parameters and specifying a value for each of the operational parameters in the set of operational parameters as a function of an optimization characteristic; and controlling an operation of the hybrid energy railway vehicle as a function of a particular set of operational parameters defined by a particular operating mode responsive to a desired use of the hybrid energy railway vehicle.
- 79. The method of claim 78 wherein the operating modes include one or more of the following: a switcher mode, an energy tender mode, a pusher mode, and a roadmate mode.
- 80. The method of claim 78 wherein the set of operational parameters includes one or more of the following: defining a configuration of the energy storage system, operating the traction motor in the dynamic braking mode to generate dynamic braking electrical energy, dissipating dynamic braking electrical energy, receiving external electrical energy, supplying stored electrical energy, generating charging electrical energy, operating the traction motor in the motoring mode, storing charging electrical energy, storing dynamic braking electrical energy, storing received external electrical energy, and receiving a control command from an external control system.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The invention of the present application is a continuation-in-part of U.S. patent application Ser. No. 10/032,714, filed on Dec. 26, 2001, entitled Locomotive Energy Tender, which claims priority based on U.S. Provisional Application Serial No. 60/278,975, filed on Mar. 27, 2001, the entire disclosures of which are incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60278975 |
Mar 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10032714 |
Dec 2001 |
US |
Child |
10435261 |
May 2003 |
US |