IP Library Granted Patent US 11,750,036
Granted Patent B2
US 11,750,036 · App. 18/059,567 · Granted Sep 5, 2023

Systems and methods for providing inductive power transfer power control

Inventors: Arif I. Sarwat (Miami, FL); Hassan Jafari (Miami, FL)
Assignee: THE FLORIDA INTERNATIONAL UNIVERSITY BOARD OF TRUSTEES
H02J50/12H02J7/00712H02M1/083H02M5/2932
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,750,036
App. No.
18/059,567
Granted
Sep 5, 2023
Kind
B2
Abstract

Power controllers (e.g., inductive power transfer (IPT) power controllers) and methods of making and using the same are provided. An IPT power controller can be implemented on direct alternating current (AC)-AC converters and can use only current and voltage measurements to produce multi-power level IPT controller and design switching logic. Using Boolean operators (e.g., AND, OR, Not) applied on a resonant current signal, varying positive energy injections (e.g., 1 to 16 pulses), and varying negative energy injections (e.g., 1 to 16 pulses), up to 32 different active states can be designed.

Claims (51)

1. An inductive power transfer (IPT) power controller, comprising:

a first capacitor;

a first inductor in series with the first capacitor;

a second inductor in operable communication with the first inductor;

a second capacitor in series with the second inductor;

a connection configured to be connected to a converter, the connection being in operable communication with the first capacitor;

a processor; and

a machine-readable medium in operable communication with the processor and having instructions stored thereon that, when executed by the processor, perform at least one algorithm that uses Boolean operators to vary positive energy injections and negative energy injections to give a plurality of discrete charging levels of the IPT power controller.

2. The IPT power controller according to claim 1 , the plurality of discrete charging levels comprising at least 32 discrete charging levels.

3. The IPT power controller according to claim 1 , the at least one algorithm comprising a first algorithm that varies positive energy injections and a second algorithm that varies negative energy injections.

4. The IPT power controller according to claim 3 , the first algorithm varying positive energy injections over a range of from 1 to 16 pulses.

5. The IPT power controller according to claim 3 , the second algorithm varying negative energy injections over a range of from 1 to 16 pulses.

6. The IPT power controller according to claim 1 , the IPT power controller being configured to synchronize a resonant frequency of the IPT power controller with a switching of the converter to allow zero current switching and zero voltage switching.

7. The IPT power controller according to claim 1 , the IPT power controller being implemented on a field-programmable gate array (FPGA).

8. An electric charging system, comprising:

the IPT power controller according to claim 1 ; and

an alternating current (AC)-AC matrix converter connected to the IPT power controller.

9. The electric charging system according to claim 8 , the AC-AC matrix converter comprising a primary full bridge inverter that comprises four switches, and

the AC-AC matrix converter being configured to convert from an input frequency of 60 Hertz (Hz) to a resonant frequency of at least 1 kilohertz (kHz).

10. The electric charging system according to claim 8 , further comprising a gate drive circuit, a peak detector circuit, and at least one sign circuit,

the electric charging system being implemented on a printed circuit board (PCB).

11. A method of providing inductive power transfer (IPT) power control, the method comprising:

providing an IPT power controller, the IP power controller comprising a first capacitor, a first inductor in series with the first capacitor, a second inductor in operable communication with the first inductor, a second capacitor in series with the second inductor, and a connection configured to be connected to a converter, the connection being in operable communication with the first capacitor;

connecting an alternating current (AC)-AC matrix converter to the connection of the IPT power controller; and

performing at least one algorithm that uses Boolean operators to vary positive energy injections and negative energy injections to give a plurality of discrete charging levels of the IPT power controller.

12. The method according to claim 11 , the plurality of discrete charging levels comprising at least 32 discrete charging levels.

13. The method according to claim 11 , the at least one algorithm comprising a first algorithm that varies positive energy injections and a second algorithm that varies negative energy injections.

14. The method according to claim 13 , the first algorithm varying positive energy injections over a range of from 1 to 16 pulses.

15. The method according to claim 13 , the second algorithm varying negative energy injections over a range of from 1 to 16 pulses.

16. The method according to claim 11 , further comprising synchronizing a resonant frequency of the IPT power controller with a switching of the AC-AC matrix converter to allow zero current switching and zero voltage switching.

17. The method according to claim 11 , the IPT power controller being implemented on a field-programmable gate array (FPGA).

18. An inductive power transfer (IPT) power controller, comprising:

a first capacitor;

a first inductor in series with the first capacitor;

a second inductor in operable communication with the first inductor;

a second capacitor in series with the second inductor;

a connection configured to be connected to a converter, the connection being in operable communication with the first capacitor;

a processor; and

a machine-readable medium in operable communication with the processor and having instructions stored thereon that, when executed by the processor, perform at least one algorithm that uses Boolean operators to vary positive energy injections and negative energy injections to give a plurality of discrete charging levels of the IPT power controller,

the plurality of discrete charging levels comprising at least 32 discrete charging levels,

the at least one algorithm comprising a first algorithm that varies positive energy injections and a second algorithm that varies negative energy injections,

the first algorithm varying positive energy injections over a range of from 1 to 16 pulses,

the second algorithm varying negative energy injections over a range of from 1 to 16 pulses,

the IPT power controller being configured to synchronize a resonant frequency of the IPT power controller with a switching of the converter to allow zero current switching and zero voltage switching, and

the IPT power controller being implemented on a field-programmable gate array (FPGA).

19. An electric charging system, comprising:

the IPT power controller according to claim 18 ; and

an alternating current (AC)-AC matrix converter connected to the IPT power controller, the AC-AC matrix converter comprising a primary full bridge inverter that comprises four switches, and

the AC-AC matrix converter being configured to convert from an input frequency of 60 Hertz (Hz) to a resonant frequency of at least 1 kilohertz (kHz).

20. The electric charging system according to claim 19 , further comprising a gate drive circuit, a peak detector circuit, and at least one sign circuit,

the electric charging system being implemented on a printed circuit board (PCB).

Assignments (2)
CONFIRMATORY LICENSE Recorded Feb 19, 2025
From: FLORIDA INTERNATIONAL UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 070253/0933 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 28, 2022
From: SARWAT, ARIF I.; JAFARI, HASSAN
To: THE FLORIDA INTERNATIONAL UNIVERSITY BOARD OF TRUSTEES
Reel/Frame 062222/0125 →
Continuity (2)
Provisional Application 63264696 · Nov 30, 2021
Related Publication 20230170740A1 · Jun 1, 2023