Claims
- 1. A lighting controller for controlling at least one ballast driving a lighting device, the lighting controller comprising:
an output signal line adapted to output an output signal satisfying a signaling protocol, the signaling protocol defining a control signal for controlling an amount of power provided to the lighting device by the ballast; a first input signal line adapted to receive a first input signal satisfying the signaling protocol; a second input signal line adapted to receive a second input signal satisfying the signaling protocol; and a mode selector selecting among a plurality of modes, each mode determining which of the first input signal and the second input signal are conducted to the output signal line to control the ballast.
- 2. The lighting controller of claim 1 wherein the mode selector selects a mode in which the first input signal is conducted to the output signal line, independent of a signal level of the second input signal.
- 3. The lighting controller of claim 1 wherein the mode selector selects a mode in which the one of the first input signal and second input signal having a higher signal level is conducted to the output signal line.
- 4. The lighting controller of claim 1 wherein the mode selector selects a mode in which the one of the first input signal and second input signal having a lower signal level is conducted to the output signal line.
- 5. The lighting controller of claim 1 wherein the signaling protocol defines a direct current control signal ranging from a low voltage level to a high voltage level and indicating an illumination level to be generated by the lighting device.
- 6. The lighting controller of claim 1 further comprising:
an output port for the output signal line; an input port for each input signal line; a power bus for transferring power between each of the ports in the lighting controller; the output port including a first pair of power bus leads coupled to the power bus and the output signal line, the first pair of power bus leads including a power lead and a ground lead; and the input port including a second pair of power bus leads coupled to the power bus and one of the first input signal line and the second input signal line, the second pair of power bus leads including a power lead and a ground lead.
- 7. The lighting controller of claim 6 wherein the power bus leads of the output port are coupled to an auxiliary power output from the ballast.
- 8. The lighting controller of claim 7 wherein the auxiliary power output from the ballast is coupled to a winding in a power factor circuit of the ballast.
- 9. The lighting controller of claim 7 as a first lighting controller wherein power is transferred from the first lighting controller to another lighting controller having any port coupled to a port of the first lighting controller.
- 10. The lighting controller of claim 6 as a first lighting controller, wherein first input signal includes a control signal and the first input port is adapted to couple to the output port of another lighting controller and to transfer the control signal from the additional lighting controller to the first lighting controller.
- 11. The lighting controller of claim 10 wherein the power provided from the lighting controller is derived from current generated by a power factor circuit of the ballast and is cascaded to the first additional lighting controller via the power bus and the first input port.
- 12. The lighting controller of claim 6 wherein a first current generated by a power factor circuit of the ballast and a second current generated by a power factor circuit of another ballast are applied in parallel to power the lighting controller.
- 13. The lighting controller of claim 1 wherein the second input signal includes a control signal and the second input port is coupled to the output of a controllable voltage selector that generates the second input signal satisfying the signaling protocol.
- 14. The lighting controller of claim 13 wherein the signaling protocol defines a direct current control signal ranging from a low voltage level to a high voltage level and indicates an illumination level to be generated by the lighting device.
- 15. The lighting controller of claim 13 wherein the controllable voltage selector comprises:
a photometer component that generates the second input signal based on detection of manually applied light from a non-ambient light source.
- 16. The lighting controller of claim 15 wherein the photometer component comprises:
a non-ambient light detector and an ambient light detector to determine a signal level of the second input signal based on a relationship between a duration of non-ambient light detected by the non-ambient light detector and an illumination level of ambient light detected by the ambient light detector.
- 17. The lighting controller of claim 13 wherein the controllable voltage selector comprises:
a demand load shedder including at least two selectable load selectors and outputting a load shedder control signal level as the second input signal; and each selectable load selector providing a different load shedder control signal level, wherein selection of a load selector alters the second input signal to a load shedder control signal level associated with a selected load selector.
- 18. The lighting controller of claim 17 wherein the selection of a load selector causes the signal level of the second input signal to change gradually over a predetermined time period.
- 19. The lighting controller of claim 13 wherein the controllable voltage selector comprises:
a potentiometer generating the second input signal.
- 20. The lighting controller of claim 13 wherein the controllable voltage selector comprises:
a digital counter and a digital-to-analog converter generating the second input signal.
- 21. The-lighting controller of claim 13 wherein the controllable voltage selector comprises:
a communications interface receiving a digital command signal and converting the digital command signal to the second input control signal.
- 22. The lighting controller of claim 21 wherein the digital command signal controls the mode selector in selecting the given mode.
- 23. The lighting controller of claim 21 wherein the communications interface comprises:
an addressable component associated with one or more predetermined addresses, the addressable component allowing the lighting controller to respond only to a digital command signal associated with at least one of the predetermined addresses.
- 24. A method for networking a lighting controller that controls at least one ballast driving a lighting device, the lighting controller including an output signal line adapted to output an output signal, a first input signal line adapted to receive a first input signal, a second input signal line adapted to receive a second input signal, wherein the output signal, the first input signal, and the second input signal satisfy the same signaling protocol that defines a control signal for controlling an amount of power provided to the lighting device by the ballast, the method comprising:
coupling an output of an additional lighting controller to the first input signal line of the lighting controller; coupling a user controllable voltage selector to the second input signal line of the lighting controller; and selecting a given mode among a plurality of modes, each mode determining which of the first input signal and the second input signal are conducted to the output signal line.
- 25. The method of claim 24 further comprising:
controlling the at least ballast with the output signal in accordance with the given mode.
- 26. The method of claim 24 further comprising:
powering the lighting controller using current derived from the ballast.
- 27. The method of claim 24 wherein the operation of selecting a given mode comprises:
selecting the given mode to cause the first input signal to be conducted to the output signal line, independent of a signal level of the second input signal.
- 28. The method of claim 24 wherein the operation of selecting a given mode comprises:
selecting the given mode to cause the one of the first input signal and the second input signal having a higher signal level to be conducted to the output signal line.
- 29. The method of claim 24 wherein the operation of selecting a given mode comprises:
selecting the given mode to cause the one of the first input signal and the second input signal having a lower signal level to be conducted to the output signal line.
- 30. A power controller for controlling a driver circuit for driving a electrical device in a building control system, the power controller comprising:
an output signal line adapted to output an output signal satisfying a signaling protocol, the signaling protocol defining a control signal for controlling an amount of power provided to the electrical building device by the driver circuit; an input signal line adapted to receive an input signal satisfying the signaling protocol; a communications interface receiving a digital command signal and converting the digital command signal to the input signal on the input signal line; and a selecting circuit conducting the input signal to the output signal line to control the driver circuit.
- 31. The power controller of claim 31 wherein the communications interface includes an addressable component associated with one or more predetermined addresses, the addressable component allowing the power controller to respond only to a digital command signal associated with at least one of the predetermined addresses.
- 32. The power controller of claim 31 wherein the driver circuit is a ballast and the electrical device is a lighting device.
- 33. The power controller of claim 31 wherein the electrical device is a building automation control device and the driver circuit is a power supply control circuit to the building automation control device.
- 34. A method for networking a power controller that controls at least one driver circuit that drives an electrical device in a building control system, the power controller including an output signal line adapted to output an output signal, an input signal line adapted to receive an input signal, wherein the output signal and the input signal satisfy the same signaling protocol that defines a control signal for controlling an amount of power provided to the electrical building device by the driver circuit, the method comprising:
receiving a digital command signal via a communications interface; converting the digital command signal to the input signal; and conducting the input signal to the input signal line of the power controller; and coupling the input signal line to the output signal line to output the input signal as the output signal to control the driver circuit.
- 35. The method of claim 34 further comprising:
selecting a given mode from a plurality of selection modes, each mode setting a criterion for coupling the input signal line to the output signal line; wherein the coupling operation is dependent upon the criterion being satisfied by the input signal line.
- 36. The method of claim 34 wherein the digital command signal is associated with a unique identifier, and further comprising:
determining whether the digital command signal is directed to the power controller based on the unique identifier.
- 37. The method of claim 34 wherein the operation of converting the digital command signal is conditional upon the determining operation determining that the digital command signal is directed to the power controller based on the unique identifier.
- 38. The method of claim 37 further comprising:
outputting a controlled amount of power from the driver circuit to the electrical device in the building control system, based on the output signal.
- 39. A power controller for controlling at least one driver circuit driving a building automation device, the power controller comprising:
an output signal line adapted to output an output signal satisfying a signaling protocol, the signaling protocol defining a control signal for controlling an amount of power provided to the building control device by the driver circuit; a first input signal line adapted to receive a first input signal satisfying the signaling protocol; a second input signal line adapted to receive a second input signal satisfying the signaling protocol; and a mode selector selecting among a plurality of modes, each mode determining which of the first input signal and the second input signal are conducted to the output signal line to control the driver circuit.
- 40. The power controller of claim 39 further comprising:
an output port for the output signal line; an input port for each input signal line; a power bus for transferring power between each of the ports in the power controller; the output port including a first pair of power bus leads coupled to the power bus and the output signal line, the first pair of power bus leads including a power lead and a ground lead; and the input port including a second pair of power bus leads coupled to the power bus and one of the first input signal line and the second input signal line, the second pair of power bus leads including a power lead and a ground lead.
- 41. The power controller of claim 40 wherein the power bus leads of the output port are coupled to an auxiliary power output from the circuit.
- 42. The power controller of claim 41 as a first power controller wherein power is transferred from the first power controller to another power controller having any port coupled to a port of the first power controller.
- 43. The power controller of claim 40 as a first power controller, wherein first input signal includes a control signal and the first input port is adapted to couple to the output port of another power controller and to transfer the control signal from the additional power controller to the first power controller.
- 44. The power controller of claim 43 wherein the power provided from the power controller is derived from current generated by a power factor circuit of the driver circuit and is cascaded to the first additional power controller via the power bus and the first input port.
- 45. A method for networking a power controller that controls at least one driver circuit driving a building automation control device, the power controller including an output signal line adapted to output an output signal, a first input signal line adapted to receive a first input signal, a second input signal line adapted to receive a second input signal, wherein the output signal, the first input signal, and the second input signal satisfy the same signaling protocol that defines a control signal for controlling an amount of power provided to the building automation control device by the driver circuit, the method comprising:
coupling an output of an additional power controller to the first input signal line of the power controller; coupling a user controllable voltage selector to the second input signal line of the power controller; and selecting a given mode among a plurality of modes, each mode determining which of the first input signal and the second input signal are conducted to the output signal line.
- 46. The method of claim 45 further comprising:
powering the lighting controller using current derived from the ballast.
- 47. The method of claim 45 wherein the operation of selecting a given mode comprises:
selecting the given mode to cause the one of the first input signal and the second input signal having a higher signal level to be conducted to the output signal line.
- 48. The method of claim 45 wherein the operation of selecting a given mode comprises:
selecting the given mode to cause the one of the first input signal and the second input signal having a lower signal level to be conducted to the output signal line.
- 49. A power controller for a power network having a plurality of the power controllers for controlling the passage of control signals through the power network, each of the power controllers having a local control device generating a local control signal at the power controller, the power controller comprising:
a first input port receiving the local control signal; a second input port receiving a remote control signal, the second control signal being passed from another power controller in the network; a mode selector logically gating the local control signal or the remote control signal to under predetermined conditions to an output port for passage as a gated control signal to another power controller in the network or out of the network of power controllers to control a power device.
- 50. The power controller of claim 49 and in addition:
a buffer amplifier isolating the gated control signal passed to the output port from the control signal at an input port.
- 51. The power controller of claim 49 wherein the mode selector comprises:
a switch positioned to pass one or the other of the local control signal and the remote control signal.
- 52. The power controller of claim 49 wherein the mode selector comprises a logic circuit to pass the greater of the local control signal and the remote control signal.
- 53. The power controller of claim 49 wherein the mode selector comprises a logic circuit to combine the local control signal with the remote control signal to generate the gated control signal.
- 54. A power network configured from a plurality of the power controllers with each power controller defined as in claim 49.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/123,899, filed Mar. 11, 1999, entitled “Networking Controls For Power Controlling Ballast”.
[0002] The present application is also related to U.S. patent application Ser. No. 08/982,975, filed Dec. 2, 1997, entitled “Frequency Controlled, Quick and Soft Start Gas Discharge Lamp Ballast and Method Therefor” U.S. patent application Ser. No. 08/982,974, filed Dec. 2, 1997, entitled “Frequency Controller with Loosely Coupled Transformer Having A Shunt With A Gap And Method Therefor”, and U.S. patent application Ser. No. 09/315,395, filed May 20, 1999, entitled “Light Sensing Dimming Control System for Gas Discharge Lamps”.
Provisional Applications (1)
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Number |
Date |
Country |
|
60123899 |
Mar 1999 |
US |
Continuations (1)
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Number |
Date |
Country |
| Parent |
09522390 |
Mar 2000 |
US |
| Child |
10124077 |
Apr 2002 |
US |