Claims
- 1. A power conversion system for driving a load, the power conversion system comprising:
a power transformer having at least one primary winding circuit and at least one secondary winding circuit, the primary winding circuit being electrically connectable to an AC power source; at least one power cell, each of the at least one power cell having a power cell input connected to a respective one of the at least one secondary winding circuit, a single phase output connectable to the load, an SCR arrangement including a gate drive and at least one SCR connected to the power cell input and a DC bus, an SCR controller connected to the SCR arrangement and the power cell input, a PWM output stage having a plurality of PWM switches connected to the DC bus and the single phase output, and a local modulation controller connected to the PWM output stage, wherein the SCR arrangement and the SCR controller are configured for controlling a DC bus voltage, the PWM switches are configured for controlling power flow to the single phase output, and the local modulation controller is configured for controlling activation of the PWM power switches; and a master controller in communication with the SCR controller and the local modulation controller of each of the at least one power cell, the master controller being connectable to the load to monitor power flow thereto.
- 2. A power conversion system according to claim 1 wherein the SCR arrangement includes at least one forward-conducting SCR connected to the power cell input and the DC bus and at least one reverse-conducting SCR connected to the power cell input and the DC bus.
- 3. A power conversion system according to claim 2 wherein the at least one power cell is operable in a motoring mode in which power from the AC power source is supplied to the load by the at least one power cell and a regeneration mode in which power from the load is supplied to the AC power source by the at least one power cell.
- 4. A power conversion system according to claim 3 wherein the master controller is configured to control transition of the at least one power cell from the motoring mode to the regeneration mode and from the regeneration mode to the motoring mode using commands to at least one of the SCR controller and the local modulation controller.
- 5. A power conversion system according to claim 1 wherein the SCR controller includes a DC bus voltage controller connected to the DC bus.
- 6. A power conversion system according to claim 5 wherein the DC bus voltage controller includes a summing junction configured for determining a voltage error between the DC bus voltage and a voltage reference, a DC bus voltage regulator in communication with the summing junction, and a firing angle controller in communication with the DC bus voltage regulator.
- 7. A power conversion system according to claim 6 wherein the SCR controller further includes a voltage reference select module in communication with the summing junction and the master controller.
- 8. A power conversion system according to claim 6 wherein the firing angle controller is in communication with the SCR arrangement.
- 9. A power conversion system according to claim 6 wherein the SCR controller further includes a firing angle mode selector in communication with the firing angle controller, the master controller and the SCR arrangement.
- 10. A power conversion system according to claim 1 wherein the power cell includes a smoothing capacitor connected across the DC bus intermediate the SCR arrangement and the PWM output stage.
- 11. A power conversion system according to claim 1 wherein the SCR arrangement includes a plurality of forward-conducting SCRs connected to the power cell input and the DC bus and a plurality of reverse-conducting SCRs connected to the power cell input and the DC bus.
- 12. A power conversion system for driving a load, the power conversion system comprising:
a multiphase power transformer having at least one primary winding circuit and at least one secondary winding circuit, the primary winding circuit being electrically connectable to a multiphase AC power source; at least one power cell, each of the at least one power cell having a power cell input connected to a respective one of the at least one secondary winding circuit, a single phase output connectable to the load, an SCR arrangement including a gate drive and a plurality of SCRs connected to the power cell input and a DC bus, an SCR controller connected to the SCR arrangement and the power cell input, a PWM output stage having a plurality of PWM switches connected to the DC bus and the single phase output, and a local modulation controller connected to the PWM output stage, wherein the SCR arrangement and the SCR controller are configured for controlling a DC bus voltage, the PWM switches are configured for controlling power flow to the single phase output, and the local modulation controller is configured for controlling activation of the PWM power switches; and a master controller in communication with the SCR controller and the local modulation controller of each of the at least one power cell, the master controller being connectable to the load to monitor power flow to and from the load.
- 13. A power conversion system according to claim 12 wherein the SCR arrangement includes a plurality of forward-conducting SCRs connected to the power cell input and the DC bus and a plurality of reverse-conducting SCRs connected to the power cell input and the DC bus.
- 14. A power conversion system according to claim 13 wherein the at least one power cell is operable in a motoring mode in which power from the multiphase AC power source is supplied to the load by the at least one power cell and a regeneration mode in which power from the load is supplied to the multiphase AC power source by the at least one power cell.
- 15. A power conversion system according to claim 14 wherein the master controller is configured to control transition of the at least one power cell from the motoring mode to the regeneration mode and from the regeneration mode to the motoring mode using commands to at least one of the SCR controller and the local modulation controller.
- 16. A power conversion system according to claim 12 wherein the SCR controller includes a DC bus voltage controller connected to the DC bus.
- 17. A power conversion system according to claim 16 wherein the DC bus voltage controller includes a summing junction configured for determining a voltage error between the DC bus voltage and a voltage reference, a DC bus voltage regulator in communication with the summing junction, and a firing angle controller in communication with the DC bus voltage regulator.
- 18. A power conversion system according to claim 17 wherein the SCR controller further includes a voltage reference select module in communication with the summing junction and the master controller.
- 19. A power conversion system according to claim 17 wherein the firing angle controller is in communication with the SCR arrangement.
- 20. A power conversion system according to claim 17 wherein the SCR controller further includes a firing angle mode selector in communication with the firing angle controller, the master controller and the SCR arrangement.
- 21. A power conversion system according to claim 12 wherein the power cell includes a smoothing capacitor connected across the DC bus intermediate the SCR arrangement and the PWM output stage.
- 22. A power conversion system for driving a load, the power conversion system comprising:
a power transformer having at least one primary winding circuit and at least one secondary winding circuit, the primary winding circuit being electrically connectable to an AC power source; at least one power cell, each of the at least one power cell having a power cell circuit with a power cell input connected to a respective one of the at least one secondary winding circuit, a DC bus and a single phase output connectable to the load; an SCR arrangement in the power cell circuit of each of the at least one power cell, the SCR arrangement including a gate drive, at least one forward-conducting SCR connected to the power cell input and at least one reverse-conducting SCR connected to the power cell input and the DC bus; an SCR controller associated with each of the at least one power cell, the SCR controller being connected to the SCR arrangement and the power cell input; a PWM output stage in the power cell circuit of each of the at least one power cell, the PWM output stage having a plurality of PWM switches connected to the DC bus and the single phase output; a local modulation controller associated with each of the at least one power cell, the local modulation controller being connected to the PWM output stage; and a master controller in communication with the SCR controller and the local modulation controller of each of the at least one power cell, the master controller being connectable to the load to monitor power flow thereto.
- 23. A power conversion system according to claim 22 wherein the at least one power cell is operable in a motoring mode in which power from the AC power source is supplied to the load by the at least one power cell and a regeneration mode in which power from the load is supplied to the AC power source by the at least one power cell.
- 24. A power conversion system according to claim 23 wherein the master controller is configured to control transition of the at least one power cell from the motoring mode to the regeneration mode and from the regeneration mode to the motoring mode using commands to at least one of the SCR controller and the local modulation controller.
- 25. A power conversion system according to claim 22 wherein the SCR controller includes a DC bus voltage controller connected to the DC bus.
- 26. A power conversion system according to claim 25 wherein the DC bus voltage controller includes a summing junction configured for determining a voltage error between the DC bus voltage and a voltage reference, a DC bus voltage regulator in communication with the summing junction, and a firing angle controller in communication with the DC bus voltage regulator.
- 27. A power conversion system according to claim 26 wherein the SCR controller further includes a voltage reference select module in communication with the summing junction and the master controller.
- 28. A power conversion system according to claim 26 wherein the SCR controller further includes a firing angle mode selector in communication with the firing angle controller, the master controller and the SCR arrangement.
- 29. A power conversion system according to claim 22 wherein the power cell circuit includes a smoothing capacitor connected across the DC bus intermediate the SCR arrangement and the PWM output stage.
- 30. A power conversion system for driving a load, the power conversion system comprising:
a power transformer having at least one primary winding circuit and at least one secondary winding circuit, the primary winding circuit being electrically connectable to an AC power source; at least one power cell, each of the at least one power cell having a power cell circuit with a power cell input connected to a respective one of the at least one secondary winding circuit, a DC bus and a single phase output connectable to the load; an SCR arrangement in the power cell circuit of each of the at least one power cell, the SCR arrangement including a gate drive, at least one forward-conducting SCR connected to the power cell input and the DC bus and at least one reverse-conducting SCR connected to the power cell input and the DC bus; an SCR controller associated with each of the at least one power cell, the SCR controller being connected to the SCR arrangement and the power cell input and having a DC bus voltage controller connected to the DC bus, the DC bus voltage controller including a summing junction configured for determining a voltage error between a DC bus voltage and a voltage reference, a DC bus voltage regulator in communication with the summing junction, and a firing angle controller in communication with the DC bus voltage regulator and in selective communication with the SCR arrangement; a PWM output stage in the power cell circuit of each of the at least one power cell, the PWM output stage having a plurality of PWM switches connected to the DC bus and the single phase output; a local modulation controller associated with each of the at least one power cell, the local modulation controller being connected to the PWM output stage; and a master controller in communication with the SCR controller and the local modulation controller of each of the at least one power cell, the master controller being connectable to the load to monitor power flow thereto.
- 31. A power conversion system according to claim 30 wherein the at least one power cell is operable in a motoring mode in which power from the AC power source is supplied to the load by the at least one power cell and a regeneration mode in which power from the load is supplied to the AC power source by the at least one power cell.
- 32. A power conversion system according to claim 31 wherein the master controller is configured to control transition of the at least one power cell from the motoring mode to the regeneration mode and from the regeneration mode to the motoring mode using commands to at least one of the SCR controller and the local modulation controller.
- 33. A power conversion system according to claim 30 wherein the SCR controller further includes a voltage reference select module in communication with the summing junction and the master controller.
- 34. A power conversion system according to claim 30 wherein the SCR controller further includes a firing angle mode selector in communication with the firing angle controller, the master controller and the SCR arrangement.
- 35. A power conversion system according to claim 30 wherein the power cell circuit includes a smoothing capacitor connected across the DC bus intermediate the SCR arrangement and the PWM output stage.
- 36. A power cell for use in a power conversion system, the power cell comprising:
a power cell input connectable to a secondary winding of a power transformer; a single phase output connectable to a load; an SCR arrangement including a gate drive and at least one SCR connected to the power cell input; an SCR controller connected to the SCR arrangement and the power cell input; a DC bus connected to the SCR arrangement, the SCR arrangement and the SCR controller being configured for controlling a DC bus voltage; a PWM output stage having a plurality of PWM switches connected to the DC bus and the single phase output, the PWM switches being configured for controlling power flow to the single phase output; and a local modulation controller connected to the PWM output stage, the local modulation controller being configured for controlling activation of the PWM power switches.
- 37. A power cell according to claim 36 wherein the SCR arrangement includes at least one forward-conducting SCR connected to the power cell input and the DC bus and at least one reverse-conducting SCR connected to the power cell input and the DC bus.
- 38. A power cell according to claim 37 wherein the power cell is operable in a motoring mode in which power from an AC power source is supplied to a load by the power cell and a regeneration mode in which power from the load is supplied to the AC power source by the power cell.
- 39. A power cell according to claim 38 wherein the local modulation controller and the SCR controller are connectable to a master controller configured to control transition of the power cell from the motoring mode to the regeneration mode and from the regeneration mode to the motoring mode using commands to at least one of the SCR controller and the local modulation controller.
- 40. A power cell according to claim 36 wherein the SCR controller includes a DC bus voltage controller connected to the DC bus.
- 41. A power cell according to claim 40 wherein the DC bus voltage controller includes a summing junction configured for determining a voltage error between the DC bus voltage and a voltage reference, a DC bus voltage regulator in communication with the summing junction, and a firing angle controller in communication with the DC bus voltage regulator.
- 42. A power cell according to claim 41 wherein the SCR controller further includes a voltage reference select module that is in communication with the summing junction and is connectable to a master controller.
- 43. A power cell according to claim 41 wherein the firing angle controller is in communication with the SCR arrangement.
- 44. A power cell according to claim 41 wherein the SCR controller further includes a firing angle mode selector in communication with the firing angle controller and the SCR arrangement, the firing angle mode selector being connectable to a master controller.
- 45. A power cell according to claim 36 wherein the power cell includes a smoothing capacitor connected across the DC bus intermediate the SCR arrangement and the PWM output stage.
- 46. A power cell according to claim 36 wherein the SCR arrangement includes a plurality of forward-conducting SCRs connected to the power cell input and the DC bus and a plurality of reverse-conducting SCRs connected to the power cell input and the DC bus.
- 47. A power cell for use in a power conversion system, the power cell comprising:
a power cell input connectable to a secondary winding of a power transformer; a single phase output connectable to a load; an SCR arrangement including a gate drive and at least one forward-conducting SCR connected to the power cell input and a DC bus and at least one reverse-conducting SCR connected to the power cell input and the DC bus, the SCR arrangement being configured for controlling a DC bus voltage; an SCR controller connected to the SCR arrangement and the power cell input, the SCR controller including a DC bus voltage controller connected to the DC bus, the DC bus voltage controller including a summing junction configured for determining a voltage error between the DC bus voltage and a voltage reference, a DC bus voltage regulator in communication with the summing junction, and a firing angle controller in communication with the DC bus voltage regulator and in selective communication with the SCR arrangement; a PWM output stage having a plurality of PWM switches connected to the DC bus and the single phase output, the PWM switches being configured for controlling power flow to the single phase output; and a local modulation controller connected to the PWM output stage, the local modulation controller being configured for controlling activation of the PWM power switches.
- 48. A power cell according to claim 47 wherein the power cell is operable in a motoring mode in which power from an AC power source is supplied to a load by the power cell and a regeneration mode in which power from the load is supplied to the AC power source by the power cell.
- 49. A power cell according to claim 48 wherein the local modulation controller and the SCR controller are connectable to a master controller configured to control transition of the power cell from the motoring mode to the regeneration mode and from the regeneration mode to the motoring mode using commands to at least one of the SCR controller and the local modulation controller.
- 50. A power cell according to claim 47 wherein the SCR controller further includes a firing angle mode selector in communication with the firing angle controller and the SCR arrangement, the firing angle mode selector being connectable to a master controller.
- 51. A power cell according to claim 36 wherein the power cell includes a smoothing capacitor connected across the DC bus intermediate the SCR arrangement and the PWM output stage.
- 52. A method of controlling a supply of AC power to a load, the method comprising:
receiving an input voltage in a power cell circuit having a power cell input, a single phase output connected to the load, an SCR arrangement having at least one SCR connected to the power cell input, a DC bus connected to the SCR arrangement and a PWM output stage having a plurality of PWM switches connected to the DC bus and the single phase output; selectively controlling the DC bus voltage using the SCR arrangement; and applying power to the load by selectively activating at least one of the PWM power switches to allow current to flow through the single phase output to the load.
- 53. A method according to claim 52 wherein the step of selectively controlling a DC bus voltage includes:
determining an updated firing angle for the at least one SCR; and gating the at least one SCR using the updated firing angle.
- 54. A method according to claim 53 wherein the step of determining an updated firing angle includes:
determining the DC bus voltage; determining a voltage error by finding a difference between the DC bus voltage and a reference voltage; comparing the voltage error to a predetermined limit set; and responsive to the voltage error being outside the predetermined limit set, computing an updated firing angle for the at least one SCR of the SCR arrangement.
Parent Case Info
[0001] The present application derives priority from U.S. Application No. 60/258,820, which is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60258820 |
Jan 2001 |
US |