Wireless power receiver synchronization detection circuit
US-2019386518-A1 · Dec 19, 2019 · US
US12567765B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12567765-B2 |
| Application number | US-202418443954-A |
| Country | US |
| Kind code | B2 |
| Filing date | Feb 16, 2024 |
| Priority date | Feb 24, 2023 |
| Publication date | Mar 3, 2026 |
| Grant date | Mar 3, 2026 |
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The invention relates to an input circuit ( 9 ) for a wireless power receiver ( 10 ), the input circuit ( 9 ) comprises: an active rectifier ( 5 ) configured with output nodes; a voltage regulator ( 7 ) connected to the output nodes, wherein the active rectifier ( 5 ) is configurated to output a DC voltage (V DC ) at the output nodes, wherein the voltage regulator ( 7 ) is arranged to actively affect the said DC voltage (V DC ); a control structure adapted to control the DC voltage (V DC ), wherein the control structure comprises a first control loop operatively coupled to the voltage regulator ( 7 ) and configured to control a voltage regulation operation of the voltage regulator ( 7 ), and a second control loop operatively coupled to the active rectifier ( 5 ) and configured to control a rectifier operation of the active rectifier ( 5 ), operates with a faster response time (more than two order of magnitude faster) than the second control loop, and wherein the first control loop is operably engaged with the second control loop. The invention also relates to a wireless power receiver ( 10 ) and a method for operating the wireless power receiver ( 10 ).
Opening claim text (preview).
The invention claimed is: 1 . An input circuit for a wireless power receiver, the input circuit comprising: an active rectifier configured to receive an AC voltage at input nodes and output a DC voltage to output nodes, a voltage regulator connected to the output nodes, a control structure adapted to control the DC voltage comprising a first control loop operatively coupled to the voltage regulator and configured to control a voltage regulation operation of the voltage regulator such that the DC voltage is actively modified, and a second control loop operatively coupled to the active rectifier and configured to control a rectifier operation of the active rectifier, wherein the first control loop operates with a faster response time than the second control loop. 2 . The input circuit of claim 1 , wherein the adaptation of the rectifier operation comprises the adaptation of a conduction angle of the active rectifier for controlling the DC voltage, wherein the control structure is configured to exclusively control the DC voltage by adapting the conduction angle if the DC voltage is away from a predetermined threshold. 3 . The input circuit of claim 2 , wherein the active rectifier is configured with input nodes for connecting the active rectifier to a receiver matching network, wherein the receiver matching network is external to the input circuit. 4 . The input circuit of claim 3 , wherein second control loop is configured to adapt the conduction angle of the active rectifier to control an input impedance of the input circuit connected to the receiver matching network through the input nodes. 5 . The input circuit of claim 3 , wherein second control loop is configured to adapt the conduction angle of the active rectifier to control an input impedance of the input circuit to zero for short-circuiting the input nodes. 6 . The input circuit of claim 1 , wherein the voltage regulator is adapted to actively reduce the DC voltage if the DC voltage exceeds a predetermined threshold. 7 . The input circuit of claim 6 , wherein the voltage regulator is provided as a shunt regulator and configured to shunt a DC current for reducing the DC voltage, wherein the first control loop is adapted to control the DC current during the voltage regulation operation if the DC voltage exceeds a predetermined threshold. 8 . The input circuit of claim 1 , wherein the active rectifier comprises a plurality of controllable semiconductor switches, wherein each controllable semiconductor switch is provided as a MOS active diode. 9 . The input circuit of claim 1 , in a wireless power receiver for a wireless power transfer system, comprising: a load, a receiver coil configured to receive electrical energy via inductive coupling from a transmitter device external to the wireless power receiver, a receiver matching network configured to match an impedance of the receiver coil. 10 . A wireless power receiver receiving an AC voltage from a receiver coil, comprising: an active rectifier including controllable semiconductor components receiving an AC voltage from a receiver coil and providing a DC voltage at output nodes a shunt voltage regulator connected between the output nodes, a control structure configured to stabilize the DC voltage at a desired constant value, comprising a first control loop acting on a current flowing through the shunt voltage regulator a second control loop, slower than the first control loop, acting on a timing of the controllable semiconductor components. 11 . The wireless power receiver of claim 10 , wherein the controllable semiconductor components are MOS transistors. 12 . The wireless power receiver of claim 10 , the control structure being configured to deactivate the first control loop when the DC voltage is below a predetermined threshold.
Impedance-matching networks · CPC title
Plural converter units in cascade (push-pull DC/DC converters with pre-regulator H02M3/3374; DC-AC converters following a DC-DC stage including a high frequency transformer H02M7/4807; DC-AC converters following a DC-DC conversion stage generating periodically varying voltages H02M7/4826) · CPC title
with digital control · CPC title
having a synchronous rectifier circuit or a synchronous freewheeling circuit at the secondary side of an isolation transformer · CPC title
Full-bridge at primary side of an isolation transformer · CPC title
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