IP Library Granted Patent US 8,237,377
Granted Patent B2
US 8,237,377 · App. 12/630,102 · Granted Aug 7, 2012

Energy efficient lighting system and method

Assignee: Michael Blair Hopper
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Quick Facts
Patent No.
US 8,237,377
App. No.
12/630,102
Granted
Aug 7, 2012
Kind
B2
Abstract

A light system and method includes a housing having an array of LEDs spaced to transmit light within a field of illumination. An EM sensor disposed within the housing is configured to detect EM radiation within the field of illumination. A processor is configured to generate an output in response to levels of EM radiation, such as visible light, infrared light, and/or radio frequency (RF) radiation detected by the EM sensor relative to a predetermined setpoint.

Claims (38)

1. A light system comprising: a housing; a plurality of LEDs disposed in spaced relation within the housing and configured to transmit light within a field of illumination; a power source configured to supply operational power to the LEDs; an optical sensor disposed within the housing, and configured to detect ambient light levels within the field of illumination of the LEDs; a dimmer operatively engaged with the power source; a processor communicably coupled to the dimmer and the optical sensor, the processor configured to actuate the dimmer to adjust power supplied to the LEDs in response to levels of light detected by the optical sensor relative to a predetermined setpoint; a packet-based communications module operatively engaged with the processor, and configured to receive from a remote location, adjustments to the predetermined setpoint; a thermostat disposed within the housing; a thermal switch disposed within the housing; a cooling fan disposed within the housing to move cooling air to the LEDs in response to actuation of the thermal switch; at least one vent disposed within the housing; at least one baffle disposed to alternately open and close the vent to alternately direct cooling air from the LEDs towards locations on opposite sides of the housing; an actuator operatively engaged with the baffle, and configured to open and close the vents in response to the thermostat; and a speaker driver disposed within the housing to enable the light system to function as a loudspeaker.

2. A light system comprising: a housing; a plurality of LEDs disposed in spaced relation within the housing and configured to receive operational power from a power source and to transmit light within a field of illumination; an electro-magnetic (EM) sensor disposed within the housing, and configured to detect EM radiation levels within the field of illumination of the LEDs; a processor communicably coupled to the EM sensor, the processor configured to generate an output in response to levels of EM radiation detected by the EM sensor relative to a predetermined setpoint; a thermal switch disposed within the housing; a cooling fan disposed within the housing to cool the LEDs in response to actuation of the thermal switch; at least one vent disposed within the housing; at least one baffle disposed to alternately open and close the vent to alternately direct cooling air from the LEDs towards and away from the field of illumination, wherein the baffle is configured to open and close the vent so that air warmed by the LEDs is directed towards a user during cold weather conditions, and away from a user during warm weather conditions; and a speaker driver disposed within the housing, and configured to enable the light system to function as a loudspeaker.

3. The light system of claim 2 , wherein the EM sensor is selectively reconfigurable by the processor to detect EM radiation in mutually distinct portions of the EM spectrum ranging from visible light to radio frequency radiation.

4. The light system of claim 2 , further comprising: a dimmer configured for operative engagement with the power source; the processor being communicably coupled to the dimmer, and being configured to actuate the dimmer to adjust power supplied to the LEDs in response to levels of light detected by the EM sensor relative to a predetermined setpoint.

5. The light system of claim 2 , wherein a dimmer is configured for operative engagement with a low voltage power source.

6. The light system of claim 2 , wherein the EM sensor is configured to detect the presence of occupants within the field of illumination of the LEDs, and the processor is configured to transmit information pertaining to the location of the occupants to a network.

7. The light system of claim 6 , comprising: a dimmer configured for operative engagement with the power source; the processor being communicably coupled to the dimmer, and being configured to actuate the dimmer to adjust power supplied to the LEDs in response to levels of light detected by the EM sensor relative to a predetermined setpoint.

8. The system of claim 4 , wherein the processor is configured to actuate the dimmer to adjust power supplied to the LEDs by selectively turning off power to individual ones of the LEDs.

9. The system of claim 4 , wherein the dimmer and the processor are disposed within the housing.

10. The system of claim 5 , comprising the low voltage power source configured to supply operational power to the LEDs.

11. The system of claim 10 , wherein the low voltage power source comprises a rechargeable device.

12. The system of claim 11 , wherein the rechargeable device is selected from the group consisting of a battery and capacitor.

13. The system of claim 10 , wherein the low voltage power source comprises a line voltage to low voltage power supply.

14. The system of claim 13 , wherein the low voltage power supply comprises an AC to DC converter.

15. The system of claim 13 , wherein the power supply is disposed remotely from the housing.

16. The system of claim 2 , comprising a packet-based communications module operatively engaged with the processor.

17. The method of claim 16 , wherein said packet-based communications module is configured for communication with fire, police and other authorized personnel.

18. The system of claim 16 , wherein the packet-based communications module is configured for peer-to-peer communication with other light systems.

19. The system of claim 16 , wherein the packet-based communications module is configured to receive from a remote location, adjustments to the predetermined setpoint.

20. The system of claim 2 , comprising an anti-vibration support operatively engaged with the cooling fan.

21. The system of claim 2 , comprising a thermostat disposed within the housing.

22. The system of claim 21 , comprising an actuator operatively engaged with the baffle, and configured to open and close the vent in response to the thermostat.

23. The system of claim 4 , wherein the EM sensor is configurable to detect light within the infrared (IR) spectral range to identify the presence of occupants within the field of illumination and the processor is configured to actuate the dimmer to adjust power supplied to individual ones of the LEDs in response to identification of any occupants using the EM sensor.

24. The system of claim 2 , comprising a memory communicably couple to the processor, the memory configured to store output of the EM sensor.

25. The system of claim 24 , wherein the memory further comprises computer readable program code configured to actuate the light system in accordance with predetermined protocols.

26. The system of claim 23 , wherein the EM sensor is configurable to detect the color temperature of the ambient light within the field of illumination of the LEDs and the processor is configured to actuate the dimmer to adjust power supplied to individual ones of the LEDs in response to color temperature levels of light detected by the EM sensor relative to a predetermined setpoint of color temperature.

27. The system of claim 26 , wherein the LEDs comprise LEDs of mutually distinct colors.

28. The system of claim 27 , wherein the mutually distinct colors comprise mutually distinct color temperatures.

29. The system of claim 28 , wherein the LEDs are selected from the group consisting of Red, Green, Blue, and White LEDs, and combinations thereof.

30. The system of claim 24 , wherein the EM sensor is configured to capture images within the field of illumination.

31. The system of claim 4 , wherein the dimmer is configured to adjust at least one of the brightness and color of light output by the LEDs.

32. The system of claim 31 , wherein the dimmer is selected from the group consisting of current limiters, voltage limiters, pulse width modulators, and combinations thereof.

33. A method of illuminating a premises, the method comprising: (a) installing the light system of claim 2 ; and (b) loading into the light system, the predetermined setpoint, wherein the light system automatically adjusts the output of the LEDs in response to changes in ambient light levels.

34. The method of claim 33 , wherein the EM sensor is configured to detect the presence of occupants within the field of illumination, and the method further comprises communicably coupling the light system to an IP network, wherein output of the EM is communicated to a location remote from the light system.

35. The method of claim 34 , further comprising installing a plurality of light systems and communicably coupling the plurality of light systems to one another.

36. The method of claim 34 , further comprising a smoke detector disposed within the housing and communicably coupled to the processor.

37. The method of claim 34 , further comprising a microphone disposed within the housing and communicably coupled to the processor.

38. The method of claim 34 , further comprising an RFID detector disposed within the housing and communicably coupled to the processor.

Continuity (3)
Provisional Application 61121810 · Dec 11, 2008
Provisional Application 61121816 · Dec 11, 2008
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