IP Library Granted Patent US 12,463,550
Granted Patent B2
US 12,463,550 · App. 18/118,818 · Granted Nov 4, 2025

Lumped power supply circuit for converting an AC signal into a DC signal

Inventors: Yu Qi (Hangzhou, CN); Gao Fan (Hangzhou, CN); Wei Chen (Hangzhou, CN)
Assignee: Silergy Semiconductor Technology (Hangzhou) LTD
H02M7/219H02M1/007H02M1/14H02M7/23
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Quick Facts
Patent No.
US 12,463,550
App. No.
18/118,818
Granted
Nov 4, 2025
Kind
B2
Abstract

A lumped power supply circuit for converting an AC signal into a DC signal, the lumped power supply circuit including: a cascaded H-bridge circuit having N H-bridge sub-circuits connected in series between two input terminals of the AC signal, and being configured to convert the AC signal into N first voltage signals, where N is a positive integer greater than or equal to 2; a high-frequency filtering module configured to filter the N first voltage signals, and to generate N second voltage signals; a DC conversion module to receive the N second voltage signals, and to convert the N second voltage signals into at least one third voltage signal; and a lumped power buffer module having an output terminal coupled to a load, and being configured to receive the at least one third voltage signal, and to filter out part of power frequency fluctuations in the third voltage signal.

Claims (30)

1 . A lumped power supply circuit for converting an alternating current (AC) signal into a direct current (DC) signal, the lumped power supply circuit comprising:

a) a cascaded H-bridge circuit having N H-bridge sub-circuits connected in series between two input terminals of the AC signal, and being configured to convert the AC signal into N first voltage signals, wherein N is a positive integer greater than or equal to 2;

b) a high-frequency filtering module configured to filter the N first voltage signals, and to generate N second voltage signals;

c) a DC conversion module configured to receive the N second voltage signals, and to convert the N second voltage signals into K third voltage signals, wherein K is a positive integer;

d) a lumped power buffer module comprising an output terminal coupled to a load, and being configured to receive the K third voltage signals, and to filter out part of power frequency fluctuations in the K third voltage signals;

e) wherein the DC conversion module comprises N DC conversion sub-modules, an input terminal of each DC conversion sub-module receives a corresponding one of the second voltage signals, and output terminals of DC conversion sub-modules are connected in parallel and coupled with an input terminal of the lumped power buffer module;

f) when the DC conversion sub-module is a DC-DC power stage circuit operating in a fixed gain mode and K=1, the lumped power supply circuit comprises a second DC-DC power stage circuit operating in a voltage regulation mode; and

g) the second DC-DC power stage circuit comprises an input terminal connected to an output terminal of the lumped power buffer module, and an output terminal connected to the load.

2 . The lumped power supply circuit of claim 1 , wherein the high-frequency filtering module comprises N high-frequency filter circuits, and each high-frequency filter circuit is coupled between two output terminals of a corresponding one of the H-bridge sub-circuits.

3 . The lumped power supply circuit of claim 1 , wherein the DC conversion sub-module is a DC-DC power stage circuit operating in a fixed gain mode or a DC-DC power stage circuit operating in a voltage regulation mode.

4 . The lumped power supply circuit of claim 1 , wherein the DC conversion module comprises:

a) N inverter circuits, wherein an input terminal of each inverter circuit receives a corresponding one of the second voltage signals;

b) a transformer comprising N primary windings and at least one secondary winding;

c) at least one rectifier circuit; and

d) wherein a number of the rectifier circuit equals a number of the secondary winding, each primary winding is connected to an output terminal of a corresponding one of the inverter circuits, and each secondary winding is connected to an input terminal of a corresponding one of the at least one rectifier circuit.

5 . The lumped power supply circuit of claim 4 , wherein the at least one output terminal of the at least one rectifier circuit is coupled to the lumped power buffer module.

6 . The lumped power supply circuit of claim 4 , wherein:

a) when all the output terminals of the at least one rectifier circuit are connected with an input terminal of the lumped power buffer module, the lumped power supply circuit comprises a second DC-DC power stage circuit operating in a voltage regulation mode; and

b) the second DC-DC power stage circuit comprises an input terminal connected to the output terminal of the lumped power buffer module, and an output terminal connected to the load.

7 . The lumped power supply circuit of claim 1 , wherein the lumped power buffer module comprises a filter capacitor.

8 . The lumped power supply circuit of claim 1 , wherein the lumped power buffer module is configured as a power decoupling circuit that generates an AC signal according to an input signal of the power decoupling circuit to compensate fluctuations of the input signal, in order to reduce the fluctuations of the input signal.

9 . The lumped power supply circuit of claim 1 , wherein the lumped power buffer module comprises a filter capacitor and a power decoupling circuit, and the power decoupling circuit generates an AC signal according to an input signal of the power decoupling circuit to compensate fluctuations of the input signal, in order to reduce the fluctuations of the input signal.

10 . A lumped power supply circuit for converting an alternating current (AC) signal into a direct current (DC) signal, the lumped power supply circuit comprising:

a) a cascaded H-bridge circuit having N H-bridge sub-circuits connected in series between two input terminals of the AC signal, and being configured to convert the AC signal into N first voltage signals, wherein N is a positive integer greater than or equal to 2;

b) a high-frequency filtering module configured to filter the N first voltage signals, and to generate N second voltage signals;

c) a DC conversion module configured to receive the N second voltage signals, and to convert the N second voltage signals into K third voltage signals, wherein K is a positive integer;

d) a lumped power buffer module comprising an output terminal coupled to a load, and being configured to receive the K third voltage signals, and to filter out part of power frequency fluctuations in the K third voltage signals;

e) wherein the DC conversion module comprises N inverter circuits, wherein an input terminal of each inverter circuit receives a corresponding one of the second voltage signals, a transformer comprising N primary windings and at least one secondary winding, at least one rectifier circuit, and wherein a number of the rectifier circuit equals a number of the secondary winding, each primary winding is connected to an output terminal of a corresponding one of the inverter circuits, and each secondary winding is connected to an input terminal of a corresponding one of the at least one rectifier circuit;

f) wherein when part of the output terminals of the at least one rectifier circuit are connected with an input terminal of the lumped power buffer module, the lumped power supply circuit further comprises a second DC-DC power stage circuit operating in a voltage regulation mode; and

g) wherein the second DC-DC power stage circuit comprises an input terminal connected to a remaining part of the output terminals of the at least one rectifier circuit, and an output terminal of the lumped power buffer module and the output terminal of the second DC-DC power stage circuit are connected in series at both terminals of the load.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 8, 2023
From: QI, YU; FAN, GAO; CHEN, WEI
To: SILERGY SEMICONDUCTOR TECHNOLOGY (HANGZHOU) LTD
Reel/Frame 062917/0101 →
Priority Claims (1)
CN 202210348066.4 · Mar 28, 2022 · national
Continuity (1)
Related Publication 20230308029A1 · Sep 28, 2023
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