Seal support assembly for a turbine engine
US-2024301801-A1 · Sep 12, 2024 · US
US2016201655A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016201655-A1 |
| Application number | US-201514597143-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jan 14, 2015 |
| Priority date | Jan 14, 2015 |
| Publication date | Jul 14, 2016 |
| Grant date | — |
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A system and method for wirelessly controlling a shape memory alloy (SMA) actuator using magnetic resonant coupling (MRC). The SMA actuator is part of a receiver circuit including an actuator coil, where the SMA actuator is configured into a certain shape. The system includes a transmitter circuit having a transmitter coil and a controller, where the transmitter coil receives an AC current that causes the transmitter coil to generate an oscillating magnetic field in resonance with the actuator coil in the receiver circuit and be magnetically coupled thereto. The current induced in the actuator coil creates heat that reconfigures the SMA actuator to provide the actuation.
Opening claim text (preview).
What is claimed is: 1 . A magnetic resonant coupling (MRC) actuation circuit comprising: a transmitter circuit including a controller, a base coil, a variable current source and a tuning capacitor, said variable current source selectively providing a predetermined alternating current to the base coil in combination with a capacitance provided by the tuning capacitor so as to generate an oscillating magnetic field at a predetermined frequency; and at least one receiver circuit including a shape memory alloy (SMA) actuator and an actuator coil, said controller selectively providing the frequency of the oscillating magnetic field to be tuned to the actuator coil through MRC so as to heat the SMA actuator and cause it to change its configuration. 2 . The MRC circuit according to claim 1 wherein the receiver circuit includes a variable capacitor in electrical communication with the SMA actuator and the actuator coil, said SMA actuator operating as a resistive load in the at least one receiver circuit. 3 . The MRC circuit according to claim 1 wherein the SMA actuator operates both as an inductor and a parasitic capacitance in the receiver circuit. 4 . The MRC circuit according to claim 1 wherein the transmitter circuit provides fine tuning of the actuator coil based on resistance, resonance frequency, phase of reflected impedance of the receiver circuit and/or power. 5 . The MRC circuit according to claim 1 wherein the at least one receiver circuit is a plurality of receiver circuits, wherein the controller changes the frequency of the oscillating magnetic field to be selectively tuned to all of the receiver circuits. 6 . The MRC circuit according to claim 1 wherein the MRC circuit is a vehicle circuit and the actuator is a vehicle actuator. 7 . The MRC circuit according to claim 6 wherein the transmitter circuit is separate from the vehicle and the receiver circuit is on the vehicle. 8 . A magnetic resonant coupling (MRC) actuation circuit comprising: a transmitter circuit including a controller, a base coil, a variable current source and a tuning capacitor, said variable current source selectively providing a predetermined alternating current to the base coil in combination with a capacitance provided by the tuning capacitor so as to generate an oscillating magnetic field at a predetermined frequency; and a receiver circuit including a shape memory alloy (SMA) actuator being configured as an actuator coil, said controller selectively providing the frequency of the oscillating magnetic field to be tuned to the actuator through MRC so as to heat the actuator and cause it to change its configuration. 9 . The MRC circuit according to claim 8 wherein the receiver circuit includes a variable capacitor in electrical communication with the SMA actuator. 10 . The MRC circuit according to claim 8 wherein the SMA actuator operates both as an inductor and a parasitic capacitance in the receiver circuit. 11 . The MRC circuit according to claim 8 wherein the transmitter circuit provides fine tuning of the actuator coil based resistance, resonance frequency, phase of reflected impedance of the receiver circuit and/or power. 12 . The MRC circuit according to claim 8 wherein the MRC circuit is a vehicle circuit and the actuator is a vehicle actuator. 13 . The MRC circuit according to claim 12 wherein the transmitter circuit is separate from the vehicle and the receiver circuit is on the vehicle. 14 . A magnetic resonant coupling (MRC) actuation circuit for actuating a device on a vehicle, said MRC circuit comprising: a transmitter circuit including a controller, a base coil, a variable current source and a tuning capacitor, said variable current source selectively providing a predetermined alternating current to the base coil in combination with a capacitance provided by the tuning capacitor so as to generate an oscillating magnetic field at a predetermined frequency; and a plurality of receiver circuits each including a shape memory alloy (SMA) actuator and an actuator coil, said controller selectively providing the frequency of the oscillating magnetic field to be separately tuned to the actuator coil in each of the receiver circuits through MRC so as to heat the SMA actuator and cause it to change its configuration. 15 . The MRC circuit according to claim 14 wherein each of the receiver circuits includes a variable capacitor in electrical communication with the SMA actuator and the actuator coil. 16 . The MRC circuit according to claim 14 wherein the SMA actuator operates both as an inductor and a parasitic capacitance in the receiver circuit. 17 . The MRC circuit according to claim 14 wherein the transmitter circuit provides fine tuning of the actuator coil based on resistance, resonance frequency, phase of reflected impedance of the receiver circuit and/or power. 18 . The MRC circuit according to claim 14 wherein the transmitter circuit is separate from the vehicle and the receiver circuit is on the vehicle.
of the resonant type · CPC title
Calibrating; Standards or reference devices, e.g. voltage or resistance standards, "golden" references (G01R33/0035, G01R35/002 take precedence) · CPC title
Measuring real or complex resistance, reactance, impedance, or other two-pole characteristics derived therefrom, e.g. time constant (by measuring phase angle only G01R25/00) · CPC title
Inductive couplings {(for wireless supply or distribution of electric power using inductive coupling H02J50/10)} · CPC title
Automatic control or regulation of feed movement, cutting velocity or position of tool or work · CPC title
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