IP Library Granted Patent US 11,568,159
Granted Patent B2
US 11,568,159 · App. 17/503,579 · Granted Jan 31, 2023

Method for charging an electric vehicle

Inventors: Joseph E. Kovarik (Englewood, CO); James J. Kovarik (Englewood, CO)
G06K7/10376E01F9/30E01F9/578G05D1/0259G05D2201/0213
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Quick Facts
Patent No.
US 11,568,159
App. No.
17/503,579
Granted
Jan 31, 2023
Kind
B2
Abstract

A system and method is provided for delivering electric energy to an electric vehicle via electric charging stations or kiosks where an energy delivery point is configured to provide energy to the electric vehicle via a connector or a wireless energy source. The method involves charging an electric vehicle by detecting, using a RFID tag reader associated with an electric vehicle, signals emanating from a marker positioned on the ground, where the marker includes one or more RFID tags, and where the RFID tag reader is able to recognize the signals despite weather conditions where the ground is covered by snow.

Claims (20)

1. A method for charging an electric vehicle designed to traverse public highways, comprising: detecting, using a RFID tag reader associated with an electric vehicle, signals emanating from a marker positioned on a road that includes at least one or more RFID tags, said RFID tag reader being positioned on one of the electric vehicle, a tire, or a wheel of the electric vehicle; and wherein said method enables recognition of said signals despite weather conditions where the road is covered by snow; wherein said electric vehicle has at least one rechargeable battery and employs a computer-implemented method to locate a kiosk for charging said at least one rechargeable battery of the electric vehicle, said computer-implemented method involving a request for a geographic location of at least one kiosk location proximate to the geographic location of the electric vehicle; providing a connection for providing an electric charge to the at least one rechargeable battery within the electric vehicle, wherein the electric charge is delivered to the electric vehicle by a transfer surface that the electric vehicle parks over, and the electric charge is transferred wirelessly to the vehicle; and charging the rechargeable battery of the electric vehicle;

aligning the electric vehicle with a wireless charger, said wireless charger having a stationary position relative to the electric vehicle; and

presenting a visual representation on a display device of the vehicle, said visual display providing information about the electric charge transferred wirelessly to the vehicle.

2. The method as set forth in claim 1 , wherein the electric charge flows capacitively to the electric vehicle.

3. The method as set forth in claim 1 , further comprising generating a plurality of paths that can be traversed by the electric vehicle between a current location and a destination location, where each of the plurality of paths identify possible charge locations at which the electric vehicle can be charged.

4. The method as set forth in claim 1 , wherein the electric charge is transferred wirelessly to the vehicle via conductors on the underside of the vehicle.

5. The method as set forth in claim 1 , wherein the kiosk is connected to the Internet and the electric vehicle accesses an application to identify the location of the kiosk.

6. The method as set forth in claim 1 , further comprising locating the kiosk that has discounts available.

7. The method as set forth in claim 1 , wherein the transfer surface comprises a charging pad on the ground.

8. The method as set forth in claim 1 , further comprising obtaining a measured distance between a first wireless device and a second wireless device, and determining, based on the measured distance, a position of the electric vehicle relative to the wireless charger, and calculating, by a processor of the vehicle, based on the determined position of the vehicle relative to the wireless charger, a trajectory according to which the vehicle can be maneuvered into a charging position in which a charge receiving device of the vehicle is aligned with respect to the wireless charger.

9. The method as set forth in claim 1 , wherein during wireless charging, an oscillation circuit of a transmitter converts electrical energy into a high-frequency alternating current (AC) and supplies the high-frequency AC to a primary coil, and the primary coil couples the electrical energy to a secondary coil using a magnetic field that is generated from the high-frequency AC current, and the secondary coil receives the electrical energy, converts the electrical energy into a direct current (DC) using a converter circuit, and supplies the DC to a load for use.

10. A method for charging an electric vehicle designed to traverse public highways, comprising: detecting, using a RFID tag reader associated with an electric vehicle, signals emanating from a marker positioned on a ground surface that includes at least one or more RFID tags, said RFID tag reader being positioned on the electric vehicle, wherein said method enables recognition of said signals despite weather conditions where the ground surface is covered by snow; wherein said electric vehicle has at least one rechargeable battery and employs a computer-implemented method to locate a kiosk for charging said at least one rechargeable battery of the electric vehicle, said computer-implemented method involving a request for a geographic location of at least one kiosk location proximate to the geographic location of the electric vehicle; providing a connection for providing an electric charge to the at least one rechargeable battery within the electric vehicle, wherein the electric charge is delivered to the electric vehicle by a wireless charger that the electric vehicle parks over, and the electric charge is transferred wirelessly to the vehicle; aligning the electric vehicle with the wireless charger, said wireless charger having a stationary position relative to the electric vehicle; charging the rechargeable battery of the electric vehicle; and presenting a visual representation on a display device of the vehicle, said visual display providing information about the electric charge transferred wirelessly to the vehicle.

11. The method as set forth in 10 , further comprising generating a plurality of paths that can be traversed by the electric vehicle between a current location and a destination location, where each of the plurality of paths identify possible charge locations at which the electric vehicle can be charged.

12. The method as set forth in 10 , wherein the electric charge is transferred wirelessly to the vehicle via conductors on the underside of the vehicle.

13. The method as set forth in 10 , wherein the kiosk is connected to the Internet and the electric vehicle accesses an application to identify the location of the kiosk.

14. The method as set forth in 10 , further comprising locating the kiosk that has discounts available.

15. The method as set forth in 10 , wherein the wireless charger comprises a charging pad on the ground.

16. The method as set forth in 10 , wherein the electric charge flows capacitively to the electric vehicle.

17. The method as set forth in claim 10 , further comprising obtaining a measured distance between a first wireless device and a second wireless device, and determining, based on the measured distance, a position of the electric vehicle relative to the wireless charger, and calculating, by a processor of the vehicle, based on the determined position of the vehicle relative to the wireless charger, a trajectory according to which the vehicle can be maneuvered into a charging position in which a charge receiving device of the vehicle is aligned with respect to the wireless charger.

18. The method as set forth in claim 10 , wherein during wireless charging, an oscillation circuit of a transmitter converts electrical energy into a high-frequency alternating current (AC) and supplies the high-frequency AC to a primary coil, and the primary coil couples the electrical energy to a secondary coil using a magnetic field that is generated from the high-frequency AC current, and the secondary coil receives the electrical energy, converts the electrical energy into a direct current (DC) using a converter circuit, and supplies the DC to a load for use.

Continuity (7)
Continuation 17104147 · Nov 25, 2020
Continuation In Part 16131127 · Sep 14, 2018
Continuation 15883223 · Jan 30, 2018
Continuation 14938352 · Nov 11, 2015
Provisional Application 62078539 · Nov 12, 2014
Provisional Application 62163163 · May 18, 2015
Related Publication 20220036020A1 · Feb 3, 2022
Cited By (3)
US 12,248,839 US 12,472,837 US 12,481,848