IP Library › Granted Patent US 12,749,996
Granted Patent B2
US 12,749,996 · App. 18/782,433 · Granted Sep 29, 2026

Motor control device

Inventors: James P. Steiner (Royersford, PA); Dinesh Sundara Moorthy (Allentown, PA)
Assignee: Lutron Technology Company LLC
H02P25/04F21V33/0096H01H47/02H02P1/24H02P27/16H04B3/54H05B47/16H05B47/19H04B2203/5412
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Quick Facts
Patent No.
US 12,749,996
App. No.
18/782,433
Granted
Sep 29, 2026
Kind
B2
Abstract

A load control device may control power delivered from a power source, such as an alternating-current (AC) power source, to at least two electrical loads, such as a lighting load and a motor load. The load control device may include multiple load control circuit, such as a dimmer circuit and a motor drive circuit, for controlling the power delivered to the lighting load and the motor load, respectively. The load control device may adjust the rotational speed of the motor load in a manner so as to minimize acoustic noise generated by the load control device and reduce the amount of time required to adjust the rotational speed of the motor load. The load control device may remain powered when one of the electrical loads (e.g., the lighting load) has been removed (e.g., electrically disconnected or uninstalled) and/or has failed in an open state (has “burnt out” or “blown out”).

Claims (59)

1 . A lighting and fan controller, comprising:

a power input terminal to receive power from power supply circuitry;

a first load control circuit output couplable to a first load control circuit;

a second load control circuit output couplable to a second load control circuit;

a switching circuit output;

a control circuit to:

provide first control signal at the first load control circuit output, the first control signal to cause the first load control circuit to control power delivered from an AC power source to a first circuit that includes a lighting load;

provide second control signal at the second load control circuit output, the second control signal to cause to the second load control circuit to control power delivered from the AC power source to second circuit that includes a fan motor load;

a zero-crossing detection circuit input;

detect an open circuit condition in the first circuit;

responsive to detection of the open circuit condition in the first circuit:

generate a switch output signal at the switching circuit output, the switch output signal to cause the power supply circuit to transition from an electrically parallel connection with the first load control circuit to an electrically parallel connection with the second load control circuit;

wherein to detect the open circuit condition in the first circuit, the control circuit to further:

detect an absence of a zero-cross detect signal at the zero-cross detect circuit input for a defined number of AC cycles.

2 . The lighting and fan controller of claim 1 :

wherein the first load control circuit comprises a controllably conductive device; and

wherein the first control signal comprises a signal to cause the controllably conductive device to transition between conductive and non-conductive states.

3 . The lighting and fan controller of claim 2 , further comprising:

a first actuator input;

wherein the control circuit to further:

receive a first input signal at the first actuator input, wherein the first control signal is proportional to the received first input signal.

4 . The lighting and fan controller of claim 1 :

wherein the second load control circuit comprises a plurality of capacitors; and

wherein the second control signal comprises a switching signal to adjust a capacitance of the second load control circuit.

5 . The lighting and fan controller of claim 4 , further comprising:

a second actuator input

wherein the control circuit to further:

receive a second input signal at the second actuator input, wherein the second control signal causes an adjustment of the capacitance of the second load control circuit based on the received second input signal.

6 . A lighting and fan control method, comprising:

providing, by a control circuit, a first control signal at a first load control circuit output, the first control signal to cause a first load control circuit to control power delivered from an AC power source to a first circuit that includes a lighting load;

providing, by the control circuit, a second control signal at a second load control circuit output, the second control signal to cause to a second load control circuit to control power delivered from the AC power source to second circuit that includes a fan motor load;

detecting, by the control circuit, an open circuit condition in the first circuit;

responsive to detection of the open circuit condition in the first circuit;

generating, by the control circuit, a switch output signal at a switching circuit output, the switch output signal to cause a power supply circuit coupled to the AC power source to transition from an electrically parallel connection with the first load control circuit to an electrically parallel connection with the second load control circuit;

wherein detecting the open circuit condition in the first circuit, further comprises:

detecting, by the control circuit, an absence of a zero-cross detect signal at a zero-cross detect circuit input for a defined number of AC cycles.

7 . The method of claim 6 wherein providing the first control signal at the first load control circuit output further comprises:

providing, by the control circuit, a first control signal that causes a controllably conductive device disposed in the first load control circuit to transition between conductive and non-conductive states.

8 . The method of claim 7 , further comprising:

receiving, by the control circuit, a first input signal at a first actuator input, wherein the first control signal is proportional to the received first input signal.

9 . The method of claim 6 , wherein providing the second control signal at the second load control circuit output further comprises:

providing, by the control circuit, a switching signal that causes an adjustment to a capacitance of the second load control circuit.

10 . The method of claim 9 , further comprising:

receiving, by the control circuit, a second input signal at a second actuator input, wherein the second control signal causes the adjustment of the capacitance of the second load control circuit based on the received second input signal.

11 . A non-transitory, machine-readable, storage device that includes instructions that, when executed by lighting and fan control circuit, cause the lighting and fan control circuit to:

provide a first control signal at a first load control circuit output, the first control signal to cause a first load control circuit to control power delivered from an AC power source to a first circuit that includes a lighting load;

provide a second control signal at a second load control circuit output, the second control signal to cause to a second load control circuit to control power delivered from the AC power source to second circuit that includes a fan motor load;

determine whether an open circuit condition is present in the first circuit;

responsive to the determination that the open circuit condition exists in the first circuit:

generate a switch output signal at a switching circuit output, the switch output signal to cause a power supply circuit coupled to the AC power source to transition from an electrically parallel connection with the first load control circuit to an electrically parallel connection with the second load control circuit;

wherein the instructions that cause the lighting and fan control circuit to detect the open circuit condition in the first circuit, further comprises: detect an absence of a zero-cross detect signal at a zero-cross detect circuit input for a defined number of AC cycles.

12 . The non-transitory, machine-readable, storage device of claim 11 wherein the instructions that cause the lighting and fan control circuit to provide the first control signal at the first load control circuit output cause the lighting and fan control circuit to further:

provide a first control signal that causes a controllably conductive device disposed in the first load control circuit to transition between conductive and non-conductive states.

13 . The non-transitory, machine-readable, storage device of claim 12 wherein the instructions, when executed by the lighting and fan control circuit, cause the lighting and fan control circuit to further:

receive a first input signal at a first actuator input, wherein the first control signal is proportional to the received first input signal.

14 . The non-transitory, machine-readable, storage device of claim 11 wherein the instructions that cause the lighting and fan control circuit to provide the second control signal at the second load control circuit output cause the lighting and fan control circuit to further:

provide a switching signal that causes an adjustment to a capacitance of the second load control circuit.

15 . The non-transitory, machine-readable, storage device of claim 14 wherein the instructions, when executed by the lighting and fan control circuit, cause the lighting and fan control circuit to further:

receive a second input signal at a second actuator input, wherein the second control signal causes the adjustment of the capacitance of the second load control circuit based on the received second input signal.

Continuity (6)
Continuation 18186985 · Mar 21, 2023
Continuation 17552625 · Dec 16, 2021
Continuation 17001143 · Aug 24, 2020
Continuation 16003864 · Jun 8, 2018
Provisional Application 62517478 · Jun 9, 2017
Related Publication 20240380348A1 · Nov 14, 2024
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