IP Library Granted Patent US 8,779,681
Granted Patent B2
US 8,779,681 · App. 13/198,854 · Granted Jul 15, 2014

Multimode color tunable light source

Inventor: Helmar Adler (Danvers, MA)
Assignee: Osram Sylvania Inc.
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Quick Facts
Patent No.
US 8,779,681
App. No.
13/198,854
Granted
Jul 15, 2014
Kind
B2
Abstract

Described herein are ambient lighting devices, methods, and systems that utilize at least one multimode artificial ambient light source, a control unit, and a remote image sensor. The control unit couples to at least one artificial ambient light source and is configured to output at least one control signal to the at least one artificial ambient light source. The at least one multimode artificial ambient light source is configured to output light of varying color and color temperature in response to said at least one control signal. The remote image sensor couples to the at least one control unit and is configured to detect at least one color and intensity characteristic and output an output signal to the at least one control unit, based on said color and intensity characteristic detected.

Claims (31)

1. A lighting system, comprising:

at least one multimode artificial ambient light source;

at least one control unit coupled to said at least one artificial ambient light source and configured to output at least one control signal to said at least one artificial ambient light source wherein said at least one multimode artificial ambient light source is configured to output light of varying color and color temperature in response to said at least one control signal; and

one remote image sensor coupled to said at least one control unit, wherein the remote sensor is configured to detect at least one color and intensity characteristic and an output signal to said at least one control unit, based on said color and intensity characteristic detected wherein the remote image sensor utilizes a weighted border region and center region of the image detected.

2. The lighting system of claim 1 , wherein the remote image sensor utilizes only one pixel for aid color and intensity characteristic.

3. The lighting system of claim 1 , wherein the remote image sensor utilizes a region of an image detected smaller than the area of the image detected.

4. The lighting system of claim 1 , wherein the remote image sensor utilizes only a border region of an image detected smaller than the area of the image detected.

5. The lighting system of claim 1 , further comprising a monitor wherein the complete image is displayed on the monitor.

6. The lighting system of claim 1 , wherein the remote image sensor utilizes a frame grabber to provide an image to detect at least one color and intensity characteristic by the image remote sensor.

7. The lighting system of claim 1 , wherein the remote image sensor converts the color and intensity characteristic into the output signal with an R-G-B bitmap format.

8. The lighting system of claim 1 , further comprises an additional sensor coupled to said at least one control unit, wherein the additional sensor is configured to detect at least one color and intensity characteristic of current lighting conditions and wherein the control unit compensates the control signal for current lighting conditions.

9. The lighting system of claim 8 , further comprising a mixing chamber configured to receive light from said natural light source and light from said at least one multimode artificial ambient light source.

10. The lighting system of claim 1 , wherein said at least one multimode artificial ambient light source comprises a plurality of light emitting diodes (LEDS), wherein each of said plurality of LEDS is individually addressable and controllable by said at least one control unit.

11. The lighting system of claim 1 , wherein said at least one multimode artificial ambient light source is disposed within at least one solar tube.

12. A lighting method, comprising:

detecting at least one color and intensity characteristic and producing an output signal to at least one control unit based on said color and intensity characteristic with a remote image sensor wherein the remote image sensor utilizes a region of an image detected smaller than the area of the image detected;

outputting at least one control signal to at least one artificial ambient light source by said at least one control unit; and

outputting light of varying color and color temperature by at least one multimode artificial ambient light source in response to said at least one control signal.

13. The lighting method of claim 12 , wherein the remote image sensor utilizes only one pixel for aid color and intensity characteristic.

14. The lighting method of claim 12 , further comprising:

displaying the image on a display.

15. The lighting method of claim 12 , wherein the remote image sensor utilizes a frame grabber to provide an image to detect at least one color and intensity characteristic by the image remote sensor.

16. The lighting method of claim 12 , wherein the remote image sensor converts the color and intensity characteristic into the output signal with an R-G-B bitmap format.

17. The lighting method of claim 12 , further comprises an additional sensor coupled to said at least one control unit, wherein the additional sensor is configured to detect at least one color and intensity characteristic of current lighting conditions and wherein the control unit compensates the control signal for current lighting conditions.

18. The lighting method of claim 12 , further comprising a mixing chamber configured to receive light from said natural light source and light from said at least one multimode artificial ambient light source.

19. The lighting method of claim 12 , wherein said at least one multimode ambient artificial light source comprises a plurality of light emitting diodes (LEDS), wherein each of said plurality of LEDS is individually addressable and controllable by said at least one control unit.

20. A lighting system, comprising:

at least one multimode artificial ambient light source;

at least one control unit coupled to said at least one artificial ambient light source and configured to output at least one control signal to said at least one artificial ambient light source wherein said at least one multimode artificial ambient light source is configured to output light of varying color and color temperature in response to said at least one control signal;

one remote image sensor coupled to said at least one control unit, wherein the remote sensor is configured to detect at least one color and intensity characteristic and an output signal to said at least one control unit, based on said color and intensity characteristic detected wherein the remote image sensor utilizes a weighted border region and center region of the image detected; and

a monitor displaying the image wherein said ambient light source provides lighting in a room in which the monitor is displaying the image.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 29, 2021
From: OSRAM SYLVANIA INC.
To: FLUENCE BIOENGINEERING, INC.
Reel/Frame 058230/0464 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2011
From: ADLER, HELMAR
To: OSRAM SYLVANIA INC.
Reel/Frame 026707/0033 →
Continuity (2)
Continuation In Part 13152872 · Jun 3, 2011
Related Publication 20120306381A1 · Dec 6, 2012