Claims
- 1. A microsource system providing power in any one of an isolation mode and a grid mode and being configured to couple to a power system without modification of existing equipment in the power system, the microsource system comprising:
a microsource power source configured to provide electrical power; and a controller coupled to the microsource power source to control the microsource power source based only on information available locally at the microsource power source.
- 2. The microsource system of claim 1 wherein the controller includes a voltage controller and a power controller.
- 3. The microsource system of claim 2 wherein the voltage controller and the power control receive inputs from a real power and reactive power calculator and a flux vector or phasor calculator.
- 4. The microsource system of claim 3 wherein the real power and reactive power calculator receive inputs from voltage at a connection point, current injected by the microsource power source, and current in a feeder from a utility supply.
- 5. The microsource system of claim 2 wherein the power controller includes a frequency droop governor where if frequency (ω1) decreases below ωo power increases linearly by a coefficient m.
- 6. The microsource system of claim 1 wherein the microsource power source is a fuel cell.
- 7. The microsource system of claim 1 wherein the microsource power source is a microturbine.
- 8. The microsource system of claim 1 wherein the controller reduces a local voltage set point as reactive current generated by the microsource power source become more capacitive.
- 9. The microsource system of claim 1 wherein the controller increases a local voltage set point as current generated by the microsource power source becomes more inductive.
- 10. The microsource system of claim 1 wherein the microsource power source includes a prime mover, a DC interface, and a voltage source inverter.
- 11. A microsource system configured for use in a microgrid which is capable of separation from a power grid while continuing to operate independently when problems occur and reconnecting to the power grid once the problems are solved, the system comprising:
a microsource including a prime mover, a DC interface, and a voltage source inverter; means for controlling real and reactive power coupled to the microsource; and means for regulating voltage through droop control to the microsource.
- 12. The system of claim 11 further comprising means for fast load tracking and storage coupled to the microsource.
- 13. The system of claim 11 further comprising means for frequency droop control for power sharing coupled to the microsource.
- 14. The system of claim 11 wherein the means for regulating voltage through droop reduces a local voltage set point as reactive current generated by the microsource becomes more capacitive.
- 15. The system of claim 11 wherein the means for regulating voltage through droop increases a local voltage set point as current generated by the microsource becomes more inductive.
- 16. A power system comprising:
a microsource including a voltage source inverter, the microsource being configured to connect to a utility grid, the utility grid coupling a plurality of power sources; and a controller coupled to the voltage source inverter and configured to control reactive and active power independently from the plurality of power sources coupled to the utility grid.
- 17. The power system of claim 16 wherein the microsource includes a high frequency AC source that is rectified.
- 18. The power system of claim 16 wherein the microsource includes a DC battery storage source.
- 19. The power system of claim 16 wherein the controller includes a droop controller.
- 20. The power system of claim 19 wherein the droop controller comprises means for reducing a local voltage set point as reactive current generated by a microsource becomes more capacitive; and
means for increasing the local voltage set point as current generated by the microsource becomes more inductive.
- 21. A method of controlling a microsource in a microgrid system where the microgrid can operate independently from a power grid or in cooperation with the grid, the method comprising:
receiving inputs from voltage at a connection point, current injected by the microsource, and current in a feeder from a utility supply; reducing a local voltage set point as current injected by the microsource becomes more capacitive; and increasing the local voltage set point as current generated by the microsource becomes more capacitive.
- 22. The method of claim 21 further comprising controlling voltage and power of the microsource using the inputs.
- 23. The method of claim 22 wherein controlling the power of the microsource includes using a frequency governor.
- 24. The method of claim 22 wherein constant power is provided during microgrid connected mode.
- 25. The method of claim 22 wherein dynamic load tracking is provided during island mode.
STATEMENT REGARDING GOVERNMENT RIGHTS
[0001] This invention was made with United States government support awarded by the following agencies:
[0002] DOE DE-AC36-99-G010337
[0003] NSF EEC-0119230
[0004] The United States government has certain rights in this invention.