IP Library Granted Patent US 12,676,544
Granted Patent B2
US 12,676,544 · App. 18/405,805 · Granted Jul 7, 2026

Constant power startup for power converter

Inventors: Xiaowu Sun (Milford, NH); Gregory Szczeszynski (Nashua, NH)
Assignee: Murata Manufacturing Co., Ltd.
H02M1/08H02M1/0025H02M1/36H02M3/07H03K17/0822
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Quick Facts
Patent No.
US 12,676,544
App. No.
18/405,805
Granted
Jul 7, 2026
Kind
B2
Abstract

Circuits and methods for providing a constant, limited power to a transistor of a power converter during a startup period while achieving high efficiency and high performance. In a first embodiment, a driver circuit includes a variable reference current circuit configured to provide a first current inversely proportional to a voltage across the transistor, and a coupled power limiting circuit that enables a second current through the transistor that is proportional to the first current. In a second embodiment, a driver circuit includes a variable reference current circuit configured to provide a first current that increases over a time period of operation as a function of a voltage at a node of the power converter, and a coupled power limiting circuit that enables a second current through the transistor that is proportional to the first current and inversely proportional to a voltage across the transistor.

Claims (32)

1 . A driver circuit configured to maintain approximately constant power through a transistor of a power converter during a time period of operation of the power converter, the driver circuit comprising:

a variable reference current circuit configured to provide a first current that is inversely proportional to a voltage across the transistor; and

a power limiting circuit coupled to the variable reference current circuit and to the transistor, wherein the power limiting circuit is configured to provide a control voltage to a control input of the transistor based on the first current to cause the transistor to pass a second current proportional to the first current in which the second current changes the voltage across the transistor such that power through the transistor is maintained approximately constant.

2 . The driver circuit of claim 1 , wherein the transistor of the power converter is a FET.

3 . The driver circuit of claim 1 , wherein the transistor of the power converter is a FET, and the voltage across the FET is a drain-to-source voltage V DS .

4 . The driver circuit of claim 1 , wherein the power limiting circuit is configured to provide the control voltage to cause the transistor to pass the second current through the transistor during a startup period of the power converter.

5 . The driver circuit of claim 1 , wherein the power limiting circuit is configured to provide the control voltage to cause the transistor to pass the second current through the transistor during a soft-startup period of the power converter commencing from an OFF state of the power converter.

6 . The driver circuit of claim 1 , wherein the first current is inversely proportional to V IN −(n×V OUT ), where V IN is an input voltage to the power converter, V OUT is an output voltage of the power converter, and n is a conversion ratio of the power converter.

7 . The driver circuit of claim 1 , wherein the first current is proportional to one of V OUT or V FCx , where V OUT is an output voltage of the power converter and V FCx is a voltage across a fly capacitor of the power converter.

8 . The driver circuit of claim 1 , wherein the second current is inversely proportional to V IN −(n×V OUT ), where V IN is an input voltage to the power converter, V OUT is an output voltage of the power converter, and n is a conversion ratio of the power converter.

9 . The driver circuit of claim 1 , wherein the second current is proportional to one of V OUT or V FCx , where V OUT is an output voltage of the power converter and V FCx is a voltage across a fly capacitor of the power converter.

10 . The driver circuit of claim 1 , wherein the power limiting circuit includes:

a first FET having a conduction channel coupled between a gate of the transistor and a reference voltage;

a second FET having a conduction channel having a first terminal coupled to a voltage source and a second terminal coupled to a gate of the second FET; and

a third FET having a gate coupled to a gate of the first FET and a conduction channel having a first terminal coupled to the second terminal of the second FET and a second terminal coupled to the gate of the third FET and to the variable reference current circuit.

11 . The driver circuit of claim 1 , wherein to maintain the power of the transistor approximately constant, in response to a decrease in the voltage across the transistor, the variable reference current circuit and the power limiting circuit are cooperatively configured to increase the second current.

12 . A driver circuit configured to maintain approximately constant power through a transistor of a power converter, the driver circuit comprising:

a variable reference current circuit configured to provide a first current based on a voltage at a node of the power converter; and

a power limiting circuit coupled to the variable reference current circuit and to the transistor, wherein the power limiting circuit is configured to provide a control voltage to a control input of the transistor based on the first current to cause the transistor to pass a second current proportional to the first current and inversely proportional to a voltage across the transistor in which the second current changes the voltage across the transistor such that power through the transistor is maintained approximately constant.

13 . The driver circuit of claim 12 , wherein the transistor of the power converter is a FET.

14 . The driver circuit of claim 12 , wherein the transistor of the power converter is a FET, and the voltage across the FET is a drain-to-source voltage V DS .

15 . The driver circuit of claim 12 , wherein the power limiting circuit is configured to provide the control voltage to cause the transistor to pass the second current through the transistor during a startup period of the power converter.

16 . The driver circuit of claim 12 , wherein the power limiting circuit is configured to provide the control voltage to cause the transistor to pass the second current through the transistor during a soft-startup period of the power converter commencing from an OFF state of the power converter.

17 . The driver circuit of claim 12 , wherein the first current is inversely proportional to V IN −(n×V OUT ), where V IN is an input voltage to the power converter, V OUT is an output voltage of the power converter, and n is a conversion ratio of the power converter.

18 . The driver circuit of claim 12 , wherein the first current is proportional to one of V OUT or V FCx , where V OUT is an output voltage of the power converter and V FCx is a voltage across a fly capacitor of the power converter.

19 . The driver circuit of claim 12 , wherein the second current is inversely proportional to V IN −(n×V OUT ), where V IN is an input voltage to the power converter, V OUT is an output voltage of the power converter, and n is a conversion ratio of the power converter.

20 . The driver circuit of claim 12 , wherein the second current is proportional to one of V OUT or V FCx , where V OUT is an output voltage of the power converter and V FCx is a voltage across a fly capacitor of the power converter.

21 . The driver circuit of claim 12 , wherein the power limiting circuit includes:

a first FET having a conduction channel coupled between a gate of the transistor and a reference voltage;

a second FET having a conduction channel having a first terminal coupled to a voltage source and a second terminal coupled to a gate of the second FET; and

a third FET having a gate coupled to a gate of the first FET and a conduction channel having a first terminal coupled to the second terminal of the second FET and a second terminal coupled to the gate of the third FET and to the variable reference current circuit.

22 . The driver circuit of claim 12 , wherein to maintain the power of the transistor approximately constant, in response to a decrease in the voltage across the transistor, the variable reference current circuit and the power limiting circuit are cooperatively configured to increase the second current.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 17, 2024
From: PSEMI CORPORATION
To: MURATA MANUFACTURING CO., LTD.
Reel/Frame 067742/0983 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2024
From: SUN, XIAOWU; SZCZESZYNSKI, GREGORY
To: PSEMI CORPORATION
Reel/Frame 066889/0141 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 14, 2024
From: PSEMI CORPORATION
To: MURATA MANUFACTURING CO., LTD.
Reel/Frame 066597/0427 →
Continuity (1)
Related Publication 20250226740A1 · Jul 10, 2025
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