IP Library Granted Patent US 9,860,392
Granted Patent B2
US 9,860,392 · App. 14/731,755 · Granted Jan 2, 2018

Direct-current to alternating-current power conversion

Inventors: Sean Anthony Lofthouse (Pflugerville, TX); Bassem ElAzzami (Austin, TX)
Assignee: Silicon Laboratories Inc.
H04M19/02H04M19/001H02M1/00
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Quick Facts
Patent No.
US 9,860,392
App. No.
14/731,755
Granted
Jan 2, 2018
Kind
B2
Abstract

In some embodiments, a power converter circuit includes a first power converter coupled between a direct-current (DC) node and a first pair of output nodes. The first power converter may be configured to provide a first power signal having a first phase to the first pair of output nodes. The power converter circuit may also include a second power converter coupled between the DC node and a second pair of output nodes. The second power converter may be configured to provide a second power signal having a second phase to the second pair of output nodes. The second phase and the first phase may differ by an odd multiple of ninety degrees.

Claims (27)

1. A power converter circuit comprises:

a first power converter coupled between a direct-current (DC) node and a first pair of output nodes, the first power converter configured to convert a DC signal at the DC node into a first power signal and to provide the first power signal having a first phase to the first pair of output nodes; and

a second power converter coupled between the DC node and a second pair of output nodes, the second power converter configured to convert the DC signal at the DC node into a second power signal and to provide the second power signal having a second phase to the second pair of output nodes, the second phase and the first phase differ by an odd multiple of ninety degrees.

2. The power converter circuit of claim 1 , further comprising a control circuit configured to control the first power converter to provide the first power signal to the first pair of output nodes and to control the second power converter to provide the second power signal to the second pair of output nodes.

3. The power converter circuit of claim 1 , wherein the first power signal and the second power signal comprise one of balanced power signals and unbalanced power signals.

4. The power converter of claim 1 , further comprising a power control circuit configured to control a DC voltage at the DC node.

5. The power converter of claim 1 , wherein:

the first power signal comprises a balanced signal pair of substantially equal amplitude and out of phase with one another by 180 degrees; and

the second power signal comprises a balanced signal pair of substantially equal amplitude and out of phase with one another by 180 degrees.

6. The power converter of claim 1 , wherein the first power signal and the second power signal comprise one of sinusoidal signals and trapezoidal signals.

7. The power converter of claim 1 , wherein:

in a first mode, the first power converter and the second power converter convert a DC signal at the DC node into the first and second power signals; and

in a second mode, the first power converter and the second power converter convert power signals at the first and second pairs of output nodes into a DC signal at the DC node.

8. A circuit comprising:

a first driver circuit including an input coupled to a node to receive a direct-current (DC) signal, a first output coupled to a first output node and a second output coupled to a second output node;

a second driver circuit including an input coupled to the node to receive the DC signal, a first output coupled to a third output node and a second output coupled to a fourth output node; and

a control circuit configured to control the first driver circuit to convert a DC signal at the DC node into a first power signal and to provide the first power signal having a first phase to the first and second output nodes and to control the second driver circuit convert the DC signal at the DC node into a second power signal and to provide the second power signal having a second phase to the third and fourth output node, the second phase and the first phase differing by an odd multiple of ninety degrees.

9. The circuit of claim 8 , wherein the control circuit comprises at least one drive control circuit configured to control the first driver circuit to produce the first power signal having the first phase and to control the second driver circuit to produce the second power signal having the second phase.

10. The circuit of claim 8 , wherein the first power signal and the second power signal comprise one of sinusoidal signals and trapezoidal signals.

11. The circuit of claim 8 , wherein each of the first and second power signals comprises a balanced signal pair of substantially equal amplitude and out of phase with one another by 180 degrees.

12. The circuit of claim 8 , each of the first and second power signals comprises an unbalanced signal pair.

13. The circuit of claim 8 , further comprising a power control circuit configured to control an amplitude of the DC signal at the node.

14. The circuit of claim 8 , further including an input to receive the DC signal, the input coupled to a power source.

15. The circuit of claim 14 , wherein the power source comprises a solar panel.

16. The power converter of claim 8 , wherein:

in a first mode, the first driver circuit and the second driver circuit convert a DC signal at the DC node into the first and second power signals; and

in a second mode, the first driver circuit and the second driver circuit convert power signals at the first and second pairs of output nodes into a DC signal at the DC node.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 29, 2021
From: SILICON LABORATORIES INC.
To: SKYWORKS SOLUTIONS, INC.
Reel/Frame 057033/0579 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2017
From: LOFTHOUSE, SEAN ANTHONY; ELAZZAMI, BASSEM
To: SILICON LABORATORIES, INC.
Reel/Frame 041484/0367 →
Continuity (1)
Related Publication 20160360044A1 · Dec 8, 2016