IP Library › Granted Patent US 9,565,733
Granted Patent B2
US 9,565,733 · App. 15/089,930 · Granted Feb 7, 2017

Variable lumen output and color spectrum for LED lighting

Inventors: James Saffari (Salt Lake City, UT); Angela Saffari (Salt Lake City, UT)
Assignee: Dynotron, Inc.
H05B33/0854H05B33/0845H05B33/0857H05B33/0863H05B33/0872H05B33/0893H05B37/02H05B37/0272
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Quick Facts
Patent No.
US 9,565,733
App. No.
15/089,930
Granted
Feb 7, 2017
Kind
B2
Abstract

An adjustable LED lighting system may allow for a variable lumen output, an estimation of remaining life expectancy, and/or control of lighting intensity, color temperature, and/or wavelength distribution. An LED lighting system may be capable of mimicking externally monitored, remote controlled, pre-defined, user-selected, or other lighting conditions. An LED lighting system may allow for a variable lumen output by monitoring a temperature associated with one or more LEDs and increasing or decreasing current flow to maintain the monitored temperature below a maximum temperature. The remaining life may be estimated based on historical runtime and temperature data.

Claims (28)

1. A power adjustment module for an LED lighting system, comprising:

a normal power mode to set a current flow to the LED lighting system at a first value that can be sustained indefinitely without the determined temperature exceeding the maximum value for a given environment;

a temperature module to determine a temperature associated with the LED lighting system and compare it with the maximum value;

a manual, user selectable turbo boost mode to set a current flow to the LED lighting system at a second, higher unsustainable value for the given environment; and

a threshold module to automatically decrease the current flow to the LED lighting system based on the determined temperature being within a predetermined range of the maximum value, such that the LED lighting system is automatically transitioned out of the manually selected turbo boost mode.

2. The power adjustment module of claim 1 , wherein the threshold module is configured to gradually decrease the current flow to the LED lighting system based on the determined temperature being within the predetermined range of the maximum value until the current flow corresponds to that of the normal power mode.

3. The power adjustment module of claim 1 , wherein the threshold module is configured to decrease the current flow to the LED lighting system based on the determined temperature being within the predetermined range of the maximum value until the current flow corresponds to an intermediary power mode corresponding to current flow that is higher than the normal power mode and lower than the turbo boost mode.

4. The power adjustment module of claim 1 , wherein the manual, user selected turbo boost mode sets the current flow at the second, higher unsustainable value for a subset of LEDs of the LED lighting system.

5. The power adjustment module of claim 4 , wherein the subset of LEDs with the current flow at the second, higher unsustainable value in the turbo boost mode are selected to adjust at least one of a color and a color temperature of light output by the LED lighting system.

6. The power adjustment module of claim 1 , wherein the power adjustment module is configured for use with an LED lighting system to produce one of visible, infrared, and ultraviolet light.

7. The power adjustment module of claim 1 , wherein the power adjustment module is configured for use with a laser LED lighting system.

8. An LED lighting system, comprising:

a plurality of light-emitting diodes (LEDs);

at least one driver configured to drive the plurality of LEDs;

at least one heat sink configured to dissipate thermal energy produced by the LEDs; and

a power adjustment module to modify a current flow used to drive the LEDs via the at least one LED driver to maintain a thermal temperature associated with the LED lighting system below a maximum value, the power adjustment module comprising:

a normal power mode to set a current flow to the LED lighting system at a first value that can be sustained indefinitely without the determined temperature exceeding the maximum value for a given environment;

a temperature module to determine a temperature associated with the LED lighting system and compare it with the maximum value;

a manual, user selectable turbo boost mode to set a current flow to the LED lighting system at a second, higher unsustainable value for the given environment; and

a threshold module to automatically decrease the current flow to the LED lighting system based on the determined temperature being within a predetermined range of the maximum value, such that the LED lighting system is automatically transitioned out of the manually selected turbo boost mode.

9. The system of claim 8 , wherein the driver control module is further configured to control the at least one LED driver to cause the plurality of LEDs to emit light having an intensity at a third, low-power mode, in which the current module of the power adjustment module is configured to set a current flow at a third value that is less than the first value.

10. The system of claim 8 , wherein each of the normal mode and the turbo boost mode are user-selectable modes.

11. The system of claim 8 , wherein the power adjustment module is configured to smoothly adjust the current flow from the first value to the second, lesser, non-zero value as the determined temperature increases to approach the maximum value.

12. The system of claim 8 , wherein the at least one LED driver comprises a plurality of drivers with each of the plurality of drivers being configured to drive a subset of the LEDs in the plurality of LEDs.

13. The system of claim 8 , further comprising a solar variance module configured to be selectively activated to vary an intensity of light emitted by the LEDs by between approximately 1% and 5% to simulate astronomical scintillation.

14. The system of claim 8 , further comprising a reporting module configured to communicate an estimated remaining life of the LEDs via a wireless communication interface.

15. The system of claim 8 , further comprising a light control module configured to control the at least one LED driver to cause the plurality of LEDs to emit light having a different lighting intensity and lighting color during each of a plurality of time periods.

16. The system of claim 8 , wherein the LED lighting system comprises a handheld LED lighting system.

Continuity (4)
Continuation 14941239 · Nov 13, 2015
Continuation 14615287 · Feb 5, 2015
Provisional Application 61950676 · Mar 10, 2014
Related Publication 20160219669A1 · Jul 28, 2016