Tire monitoring sensor, system and conrol method thereof, and vehicle having the same
US-2024416687-A1 · Dec 19, 2024 · US
US9973039B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9973039-B2 |
| Application number | US-201514594365-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 12, 2015 |
| Priority date | Jan 20, 2014 |
| Publication date | May 15, 2018 |
| Grant date | May 15, 2018 |
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A power receiver includes a resonant circuit generating an internal supply voltage. A voltage rectification circuit receives the internal supply voltage and generate a corresponding rectified voltage. A voltage regulator receives the rectified voltage and a modulation signal and is configured to generate a corresponding regulated voltage. A controlled voltage-to-current converter receives the regulated voltage and the modulation signal. The converter operates to deliver, through an output line of the power receiver, an output current having a DC value corresponding to the DC value of said regulated voltage and having an AC value corresponding to said modulation signal.
Opening claim text (preview).
What is claimed is: 1. A power receiver, comprising: a resonant circuit having a pair of supply terminals between which an internal supply voltage of the power receiver is made available, comprising: a secondary coil configured to be magnetically coupled with a primary coil of a power transmitter, a first resonance capacitance coupled in series with said secondary coil, and a second resonance capacitance coupled between said pair of supply terminals; a voltage rectification circuit configured to receive said internal supply voltage and to generate a rectified voltage; a voltage regulator configured to receive said rectified voltage and generate a regulated voltage; a communication unit configured to monitor a functioning state of a load powered by said power receiver and generate a modulation data signal carrying information about said functioning state of the load; and a controlled voltage-to-current converter configured to receive said regulated voltage and further receive said modulation data signal and to deliver through an output line of the power receiver coupled to said load an output current having a DC value corresponding to said regulated voltage and having an AC value changing in response to said modulation data signal and causing a transmission of said information about said functioning state of the load to said power transmitter by backscatter from said secondary coil. 2. The power receiver of claim 1 , wherein said voltage regulator is configured to adjust its functioning point to generate said regulated voltage as the sum of a nominal constant voltage and of an AC voltage corresponding to said modulation data signal. 3. The power receiver of claim 2 , wherein said voltage regulator is a feedback switching converter comprising: a voltage divider having a center tap and configured to generate at said center tap a feedback voltage as a function of said regulated voltage; an error amplifier configured to receive in input said feedback voltage and a fixed reference voltage; and a switched circuit connected to said center tap and controlled by said modulation data signal to modulate a level of said feedback voltage synchronously with variations of said modulation data signal. 4. The power receiver of claim 2 , wherein said voltage regulator is a feedback switching converter comprising: a voltage divider having a center tap and configured to generate at said center tap a feedback voltage as a scaled replica of said regulated voltage; an error amplifier configured to receive at a first input said feedback voltage and at a second input a reference voltage; and a switched circuit connected to said second input and controlled by said modulation data signal, the switched circuit configured to connect said second input with either a first reference voltage or a second reference voltage synchronously with variations of said modulation data signal. 5. The power receiver of claim 1 , wherein said voltage regulator is configured to adjust its functioning point to keep said regulated voltage at a nominal constant voltage. 6. The power receiver of claim 1 , further including a switched capacitance circuit coupled between said pair of supply terminals and comprising at least a modulation capacitor and a switch that is controlled with said modulation data signal and configured to control connection and disconnection of said modulation capacitor to and from said secondary coil. 7. The power receiver of claim 1 , wherein said load is a battery configured to be charged in operation with said output current, said information about said functioning state of the load comprising battery temperature. 8. A wireless power transfer system, comprising: a power transmitter having a primary coil; and a power receiver comprising: a resonant circuit having a pair of supply terminals between which an internal supply voltage of the power receiver is made available, comprising: a secondary coil configured to be magnetically coupled with the primary coil of the power transmitter, a first resonance capacitance coupled in series with said secondary coil, and a second resonance capacitance coupled between said pair of supply terminals; a voltage rectification circuit configured to receive said internal supply voltage and to generate a rectified voltage; a voltage regulator configured to receive said rectified voltage and generate a regulated voltage; a communication unit configured to monitor a functioning state of a load powered by said power receiver and generate a modulation data signal carrying information about said functioning state of the load; and a controlled voltage-to-current converter configured to receive said regulated voltage and further receive said modulation data signal and to deliver through an output line of the power receiver coupled to said load an output current having a DC value corresponding to said regulated voltage and having an AC value changing in response to said modulation data signal and causing a transmission of said information about said functioning state of the load to said power transmitter by backscatter from said secondary coil; wherein the secondary coil is magnetically coupled with said primary coil. 9. A method of transmitting information contained in a modulation data signal carrying information about a functioning state of a powered load, comprising: generating with a voltage regulator a regulated voltage from a rectified voltage obtained from a secondary coil that is magnetically coupled to a primary coil; and generating with a controlled voltage-to-current converter an output current delivered to the powered load, said output current having a DC value corresponding to said regulated voltage and having an AC value changing in response to said modulation data signal so as to cause a transmission of said information about the functioning state of the powered load to a power transmitter coupled to the primary coil by backscatter from said secondary coil; wherein generating the regulated voltage comprises adjusting a functioning point of the voltage regulator for generating said regulated voltage as the sum of a nominal constant voltage and of an AC voltage changing in response to said modulation data signal. 10. A method of transmitting information contained in a modulation data signal carrying information about a functioning state of a powered load, comprising: generating with a voltage regulator a regulated voltage from a rectified voltage obtained from a secondary coil that is magnetically coupled to a primary coil; and generating with a controlled voltage-to-current converter an output current delivered to the powered load, said output current having a DC value corresponding to said regulated voltage and having an AC value changing in response to said modulation data signal so as to cause a transmission of said information about the functioning state of the powered load to a power transmitter coupled to the primary coil by backscatter from said secondary coil; wherein generating the regulated voltage comprises adjusting the functioning point of the voltage regulator for keeping said regulated voltage at a nominal constant voltage. 11. The system of claim 8 , wherein said voltage regulator is configured to adjust its functioning point to generate said regulated voltage as the sum of a nominal constant voltage and of an AC voltage corresponding to said modulation data signal. 12. The system of claim 11 , wherein said voltage regulator is a feedback switching converter comprising: a voltage divider having a center tap and configured to generate at said center tap a feedback voltage as a function of said regulated voltage; an
with electronic devices having internal batteries, e.g. mobile phones · CPC title
involving the exchange of data, concerning supply or distribution of electric power, between transmitting devices and receiving devices · CPC title
Electricity · mapped topic
using two or more transmitting or receiving devices (H02J50/50 takes precedence) · CPC title
Electricity · mapped topic
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