IP Library Granted Patent US 12,389,502
Granted Patent B2
US 12,389,502 · App. 18/105,282 · Granted Aug 12, 2025

Retrofit remote control devices

Inventors: Chris Dimberg (Easton, PA); Jason C. Killo (Emmaus, PA); Matthew Philip McDonald (Phoenixville, PA); Daniel L. Twaddell (Bethlehem, PA)
Assignee: Lutron Technology Company LLC
H05B45/20G05B15/02G05G1/105H01H19/14H01H19/54H01H23/14H02J3/00H03K17/962H05B45/24H05B47/175H05B47/19G05B2219/2614G05G1/08H01H19/025H01H2300/03Y02B90/20Y04S20/14
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Quick Facts
Patent No.
US 12,389,502
App. No.
18/105,282
Granted
Aug 12, 2025
Kind
B2
Abstract

A control device may be configured to control an amount of power delivered to one or more electrical loads and provide various feedback associated with the control device and/or the electrical loads. The control device may be a wall-mounted device or a battery-powered remote control device. The feedback may indicate the amount of power delivered to the one or more electrical loads. The feedback may also indicate a low battery condition. The control device may include a light bar and/or one or more indicator lights for providing the feedback.

Claims (42)

1. A control device for controlling an intensity level of a lighting load in a load control system, the control device comprising:

a printed circuit board (PCB) comprising a control circuit and a plurality of light sources, wherein the plurality of light sources are arranged around a perimeter of the PCB;

a light bar configured to be illuminated by the plurality of light sources; and

a substantially circular rotating portion, wherein the light bar is configured to extend along a perimeter of the rotating portion to form a substantially circular light bar;

wherein the control circuit is configured to control an amount of power delivered to the lighting load to control a present intensity level of the lighting load, and wherein the control circuit is further configured to dim the light bar during an idle state; and

wherein the control circuit is configured to, in response to detecting that a user is within close proximity of the control device, determine whether the lighting load is in an off state or an on state, wherein, when the lighting load is in the on state, the control circuit is configured to illuminate at least a subset of the plurality of light sources to form an illuminated portion on the light bar to indicate the present intensity level of the lighting load, and when the lighting load is in the off state, the control circuit is configured to illuminate at least a subset of the plurality of light sources to form the illuminated portion on the light bar to indicate a last-known intensity level of the lighting load before the lighting load was turned off, and

wherein, when the lighting load is on, the control circuit is further configured to adjust the illuminated portion of the light bar based on the present intensity level of the lighting load such that the illuminated portion expands or contracts along the light bar in response to adjustments in the intensity level of the lighting load.

2. The control device of claim 1 , further comprising:

a controllably conductive device coupled in series electrical connection between an alternating-current (AC) power source and the lighting load and configured to control the intensity level of the lighting load;

wherein the control circuit is configured to generate the control signal for controlling the controllably conductive device in response to a user input received via the control device.

3. The control device of claim 2 , further comprising:

a hot terminal adapted to be coupled to the AC power source; and

a dimmed hot terminal adapted to be coupled to the lighting load;

wherein the controllably conductive device is electrically coupled between the hot terminal and the dimmed hot terminal.

4. The control device of claim 2 , further comprising:

a power supply electrically coupled in parallel with the controllably conductive device and configured to conduct a charging current through the lighting load for generating a direct-current (DC) supply voltage for powering the plurality of light sources and the control circuit.

5. The control device of claim 1 , further comprising:

an actuation portion, wherein the control circuit is further configured to generate a control signal for turning the lighting load on and off in response to the actuation portion being actuated.

6. The control device of claim 1 , further comprising:

a wireless communication circuit configured to transmit digital messages to the lighting load; and

a direct-current (DC) power source configured to power the plurality of light sources, the control circuit, and the wireless communication circuit.

7. The control device of claim 6 , wherein the DC power source comprises a battery.

8. The control device of claim 6 , wherein the control device comprises a tabletop remote control device that is configured to be placed on a surface.

9. The control device of claim 6 , wherein the control device comprises a handheld remote control device that is configured to fit within a user's hand.

10. The control device of claim 6 , further comprising:

a base portion configured to be mounted over an actuator of a mechanical switch that controls power delivered to the lighting load.

11. The control device of claim 1 , wherein the control circuit is configured to dim the light bar by turning off the plurality of light sources during the idle state.

12. The control device of claim 1 , further comprising:

an actuation portion; and

a capacitive touch element configured to detect that a user is within close proximity of the control device, wherein the capacitive touch element is located adjacent to a rear surface of the actuation portion.

13. The control device of claim 1 , further comprising an electric field sensor configured to detect that a user is within close proximity of the control device.

14. The control device of claim 1 , wherein the control circuit is configured to, in response to detecting that a user is within close proximity of the control device, illuminate the plurality of light sources to form a single illuminated portion on the light bar, the control circuit further configured to adjust the illuminated portion of the light bar such that an end point of the single illuminated portion moves in a first direction along the light bar when the intensity level of the lighting load is raised, the control circuit further configured to adjust the illuminated portion of the light bar such that the end point of the single illuminated portion moves in a second direction along the light bar when the intensity level of the lighting load is lowered, the second direction being opposite to the first direction.

15. The control device of claim 14 ,

wherein the control circuit is configured to adjust the illuminated portion of the light bar such that the end point of the single illuminated portion moves at a greater angular speed than that of the rotating portion when the rotating portion is being rotated to adjust the intensity level of the lighting load.

16. The control device of claim 1 , wherein the control circuit is configured to, in response to detecting that a user is within close proximity of the control device, illuminate the plurality of light sources to form a single illuminated portion on the light bar, the control circuit configured to adjust the illuminated portion of the light bar such that a length of the single illuminated portion is extended from two end points of the single illuminated portion when the intensity level of the lighting load is raised, the control circuit further configured to adjust the illuminated portion of the light bar such that the length of the single illuminated portion is shortened from the two end points of the single illuminated portion when the intensity level of the lighting load is lowered.

17. The control device of claim 1 , wherein the control circuit is configured to, in response to detecting that a user is within close proximity of the control device, illuminate the plurality of light sources to form multiple illuminated portions on the light bar, the control circuit further configured to adjust the illuminated portion of the light bar such that a length of each of the illuminated portions is extended from both end points of the each of the illuminated portions when the intensity level of the lighting load is raised, the control circuit further configured to adjust the illuminated portion of the light bar such that the length of each of the illuminated portions is shortened from both end points of the each of the illuminated portions when the intensity level of the lighting load is lowered.

18. The control device of claim 17 , wherein each of the illuminated portions are centered along a diagonal axis of the control device or a horizontal axis of the control device when the control device is installed.

19. The control device of claim 17 , wherein a length of the illuminated portion is indicative of the intensity of the lighting load.

20. The control device of claim 1 , further comprising:

a carrier, wherein the PCB is arranged over the carrier.

21. The control device of claim 1 , wherein the control circuit is configured to determine the subset of the plurality of light sources to illuminate based on the user being within close proximity of the control device.

22. The control device of claim 1 , wherein, before the lighting load was turned off, the control circuit is configured to store the last-known intensity of the lighting load in a memory of the control device.

Continuity (6)
Continuation 17493151 · Oct 4, 2021
Continuation 16862650 · Apr 30, 2020
Continuation 15613086 · Jun 2, 2017
Provisional Application 62356288 · Jun 29, 2016
Provisional Application 62345449 · Jun 3, 2016
Related Publication 20230189412A1 · Jun 15, 2023
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