IP Library Granted Patent US 10,186,971
Granted Patent B1
US 10,186,971 · App. 15/445,765 · Granted Jan 22, 2019

Full bridge power amplifier with coupled ZVS tanks for wireless power transfer

Inventors: Lingxiao Xue (Torrance, CA); Ju Zhang (Monterey Park, CA)
Assignee: Navitas Semiconductor, Inc.
H02M3/33507H02J50/10H02M1/083H02M3/337H02M3/33569H02M2001/0058
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Quick Facts
Patent No.
US 10,186,971
App. No.
15/445,765
Granted
Jan 22, 2019
Kind
B1
Abstract

A full bridge circuit is disclosed. The full bridge circuit includes first and second half bridge circuits each having a midpoint node, and a transmitter tank circuit connected across the midpoint nodes and configured to transmit power based on the transmitter tank current to a load. The full bridge circuit also includes a ZVS tank circuit connected across the midpoint nodes. The ZVS tank circuit generates first and second ZVS tank currents. The first ZVS tank current and the transmitter tank current cooperatively cause the voltage at the first midpoint node to be substantially equal to the voltage of a power or ground node, and the second ZVS tank current and the transmitter tank current cooperatively cause the voltage at the second midpoint node to be substantially equal to the voltage of the power or ground node.

Claims (46)

1. A full bridge circuit, comprising:

a first half bridge circuit comprising a first midpoint node and connected between a power node and a ground node;

a second half bridge circuit comprising a second midpoint node and connected between a power node and a ground node;

a transmitter tank circuit connected across the first and second midpoint nodes and configured to receive a transmitter tank current and to transmit power based on the transmitter tank current to a load; and

a ZVS tank circuit connected across the first and second midpoint nodes, wherein the ZVS tank circuit is configured to generate first and second ZVS tank currents, wherein the first ZVS tank current and the transmitter tank current are cooperatively configured to cause the voltage at the first midpoint node to be substantially equal to the voltage of the power node or to be substantially equal to the voltage of the ground node, wherein the second ZVS tank current and the transmitter tank current are cooperatively configured to cause the voltage at the second midpoint node to be substantially equal to the voltage of the power node or to be substantially equal to the voltage of the ground node, wherein the values of the first and second ZVS tank currents are dependent on the value of the transmitter tank current, wherein the ZVS tank circuit comprises a transformer having first and second windings, and wherein the first ZVS tank current flows through the first winding of the transformer and the second ZVS tank current flows through the second winding of the transformer.

2. The circuit of claim 1 , wherein the first and second ZVS tank currents are substantially equal.

3. The circuit of claim 1 , wherein the first and second ZVS tank currents are negatively correlated with the transmitter tank current.

4. The circuit of claim 1 , wherein the sum of the transmitter tank current and the first ZVS tank current is substantially independent of the value of the load, and wherein the sum of the transmitter tank current and the second ZVS tank current is substantially independent of the value of the load.

5. The circuit of claim 1 , wherein a differential signal defined as the difference of the voltages of the first and second midpoint nodes has a voltage waveform leading a current waveform of the transmitter tank current by substantially 90°.

6. The circuit of claim 1 , wherein a differential signal defined as the difference of the voltages of the first and second midpoint nodes has a voltage waveform leading a current waveform of the transmitter tank current by less than 90°,

wherein the transmitter tank circuit is configured to generate a first transmitter ZVS current based on the transmitter tank current and to generate a second transmitter ZVS current based on the transmitter tank current, wherein the first ZVS tank current and the first transmitter ZVS current are cooperatively configured to cause the voltage at the first midpoint node to be substantially equal to the voltage of the power node or to be substantially equal to the voltage of the ground node, wherein the second ZVS tank current and the second transmitter ZVS current are cooperatively configured to cause the voltage at the second midpoint node to be substantially equal to the voltage of the power node or to be substantially equal to the voltage of the ground node,

wherein the sum of the first ZVS tank current and the first transmitter ZVS current is substantially equal to the sum of the second ZVS tank current and the second transmitter ZVS current.

7. The circuit of claim 6 , wherein the value of the first ZVS tank current is not equal to the value of the second ZVS tank current.

8. The circuit of claim 1 , wherein the ZVS tank circuit comprises:

a first capacitor connected in series with the first winding between the first midpoint node and either the power node or the ground node; and

a second capacitor connected in series with the second winding between the second midpoint node and either the power node or the ground node.

9. The circuit of claim 8 , wherein the ZVS tank circuit further comprises:

a first inductor connected in series with the first winding between the first midpoint node and either the power node or the ground node; and

a second inductor connected in series with the second winding between the second midpoint node and either the power node or the ground node.

10. The circuit of claim 1 , wherein the ZVS tank circuit comprises:

a first capacitor connected with the first and second windings and connected to the power node; and

a second capacitor connected with the first and second windings and connected to the ground node.

11. The circuit of claim 10 , wherein the first winding is coupled to the first midpoint node with a first inductor, and wherein the second winding is coupled to the second midpoint node with a second inductor.

12. A full bridge circuit, comprising:

a first half bridge circuit comprising a first midpoint node and connected between a power node and a ground node;

a second half bridge circuit comprising a second midpoint node and connected between a power node and a ground node;

a transmitter tank circuit connected across the first and second midpoint nodes and configured to receive a transmitter tank current and to transmit power based on the transmitter tank current to a load; and

a ZVS tank circuit connected across the first and second midpoint nodes, wherein the ZVS tank circuit is configured to generate first and second ZVS tank currents, wherein the first ZVS tank current and the transmitter tank current are cooperatively configured to cause the voltage at the first midpoint node to be substantially equal to the voltage of the power node or to be substantially equal to the voltage of the ground node, wherein the second ZVS tank current and the transmitter tank current are cooperatively configured to cause the voltage at the second midpoint node to be substantially equal to the voltage of the power node or to be substantially equal to the voltage of the ground node, wherein the sum of the transmitter tank current and the first ZVS tank current is substantially independent of the value of the load, and wherein the sum of the transmitter tank current and the second ZVS tank current is substantially independent of the value of the load, wherein the ZVS tank circuit comprises a transformer having first and second windings, and wherein the first ZVS tank current flows through the first winding of the transformer and the second ZVS tank current flows through the second winding of the transformer.

13. The circuit of claim 12 , wherein the first and second ZVS tank currents are substantially equal.

14. The circuit of claim 12 , wherein the first and second ZVS tank currents are negatively correlated with the transmitter tank current.

15. The circuit of claim 12 , wherein a differential signal defined as the difference of the voltages of the first and second midpoint nodes has a voltage waveform leading a current waveform of the transmitter tank current by substantially 90°.

16. The circuit of claim 12 , wherein a differential signal defined as the difference of the voltages of the first and second midpoint nodes has a voltage waveform leading a current waveform of the transmitter tank current by less than 90°,

wherein the transmitter tank circuit is configured to generate a first transmitter ZVS current based on the transmitter tank current and to generate a second transmitter ZVS current based on the transmitter tank current, wherein the first ZVS tank current and the first transmitter ZVS current are cooperatively configured to cause the voltage at the first midpoint node to be substantially equal to the voltage of the power node or to be substantially equal to the voltage of the ground node, wherein the second ZVS tank current and the second transmitter ZVS current are cooperatively configured to cause the voltage at the second midpoint node to be substantially equal to the voltage of the power node or to be substantially equal to the voltage of the ground node,

wherein the sum of the first ZVS tank current and the first transmitter ZVS current is substantially equal to the sum of the second ZVS tank current and the second transmitter ZVS current.

17. The circuit of claim 16 , wherein the value of the first ZVS tank current is not equal to the value of the second ZVS tank current.

18. The circuit of claim 12 , wherein the ZVS tank circuit comprises:

a transformer having first and second windings;

a first capacitor connected in series with the first winding between the first midpoint node and either the power node or the ground node; and

a second capacitor connected in series with the second winding between the second midpoint node and either the power node or the ground node.

19. The circuit of claim 18 , wherein the ZVS tank circuit further comprises:

a first inductor connected in series with the first winding between the first midpoint node and either the power node or the ground node; and

a second inductor connected in series with the second winding between the second midpoint node and either the power node or the ground node.

20. The circuit of claim 12 , wherein the ZVS tank circuit comprises:

a transformer having first and second windings respectively coupled to the first and second midpoint nodes;

a first capacitor connected with the first and second windings and connected to the power node; and

a second capacitor connected with the first and second windings and connected to the ground node.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNMENT DOCUMENTS AND THE RECEIVING PARTY'S POSTAL CODE PREVIOUSLY RECORDED AT REEL: 053864 FRAME: 0208. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Mar 9, 2021
From: NAVITAS SEMICONDUCTOR, INC.
To: NAVITAS SEMICONDUCTOR LIMITED
Reel/Frame 056758/0314 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 23, 2020
From: NAVITAS SEMICONDUCTOR, INC.
To: NAVITAS SEMICONDUCTOR LIMITED
Reel/Frame 053864/0208 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 2, 2017
From: XUE, LINGXIAO; ZHANG, JU
To: NAVITAS SEMICONDUCTOR, INC.
Reel/Frame 041442/0327 →
Continuity (1)
Provisional Application 62301888 · Mar 1, 2016