IP Library Granted Patent US 12665521
Granted Patent B2
US 12665521 · App. 18/763,267 · Granted Jun 23, 2026

Converter and control method of sending PWM driver gating signal thereof

Inventors: Zhu Mao (Shenzhen, CN); Yaowei Hu (Shenzhen, CN); Jun Zhao (Shenzhen, CN)
Assignee: HUAWEI DIGITAL POWER TECHNOLOGIES CO., LTD.
H02M5/2932H02M1/0058H02M7/53871H02M7/4815
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Quick Facts
Patent No.
US 12665521
App. No.
18/763,267
Granted
Jun 23, 2026
Kind
B2
Abstract

A converter and a control method of sending a pulse width modulation (PWM) driver gating signal thereof. When an alternating current voltage output by the converter is in an O area, the converter may be controlled to switch between an upper half-bridge arm straight-through mode and a lower half-bridge arm straight-through mode. In this way, it can be ensured that there is a freewheeling path for a current in an inductive component, and a problem that a switching transistor of a secondary-side circuit is in a straight-through state is avoided.

Claims (105)

1 . A converter, comprising:

a transformer,

an inductive component,

a primary-side circuit, wherein the primary-side circuit is connected to a primary-side winding of the transformer;

a secondary-side circuit, wherein the secondary-side circuit is connected in series to the inductive component and then connected to a secondary-side winding of the transformer, the secondary-side circuit comprises a half-bridge circuit that comprises;

a bridge arm, wherein the bridge arm comprises an upper half-bridge arm and a lower half-bridge arm, the upper half-bridge arm or the lower half-bridge arm comprises two switching transistors with opposite freewheeling directions, and a connection point of the upper half-bridge arm and the lower half-bridge arm is connected to a first end of the secondary-side winding of the transformer by using the inductive component,

a first capacitor, and

a second capacitor, wherein; the first capacitor and the second capacitor are connected in series and then connected in parallel to the bridge arm; a connection point of the first capacitor and the second capacitor is connected to a second end of the secondary-side winding of the transformer, the secondary-side circuit further comprises a third capacitor that is connected in parallel to the bridge arm; and

a controller configured to:

after an alternating current voltage output by the converter is greater than or equal to a specified negative voltage threshold and is less than or equal to a specified positive voltage threshold, control the converter to switch between an upper half-bridge arm straight-through mode and a lower half-bridge arm straight-through mode, wherein

in the upper half-bridge arm straight-through mode, the inductive component, the upper half-bridge arm, the third capacitor, the second capacitor, and the secondary-side winding form a current path, and

in the lower half-bridge arm straight-through mode, the inductive component, the lower half-bridge arm, the third capacitor, the first capacitor, and the secondary-side winding form the current path; and

after a current flowing through the inductive component is greater than or equal to a specified negative current threshold and is less than or equal to a specified positive current threshold, sequentially:

control all switching transistors in the upper half-bridge arm or the lower half-bridge arm that is in a straight-through state to be turned off, and

control all switching transistors in the upper half-bridge arm or the lower half-bridge arm that is in a cut-off state to be turned on, to enable the converter to implement mutual switching between the upper half-bridge arm straight-through mode and the lower half-bridge arm straight-through mode; and

after the current flowing through the inductive component is less than the specified negative current threshold or is greater than the specified positive current threshold, sequentially:

control a subset of the switching transistors that are in the straight-through state in the upper half-bridge arm or the lower half-bridge arm to be turned off,

control a subset of the switching transistors that are in the cut-off state in the upper half-bridge arm or the lower half-bridge arm to be turned on,

control all of the switching transistors that are in the straight-through state in the upper half-bridge arm or the lower half-bridge arm to be turned off, and

control all of the switching transistors that are in the cut-off state in the upper half-bridge arm or the lower half-bridge arm to be turned on, to enable the converter to implement mutual switching between the upper half-bridge arm straight-through mode and the lower half-bridge arm straight-through mode.

2 . The converter according to claim 1 , wherein the upper half-bridge arm comprises a sixth switching transistor and an eighth switching transistor that are connected in series, the lower half-bridge arm comprises a fifth switching transistor and a seventh switching transistor that are connected in series, freewheeling directions of the fifth switching transistor and the sixth switching transistor both point to the connection point of the upper half-bridge arm and the lower half-bridge arm, and freewheeling directions of the seventh switching transistor and the eighth switching transistor both point away from the connection point of the upper half-bridge arm and the lower half-bridge arm.

3 . The converter according to claim 2 , wherein

the sixth switching transistor is connected between the eighth switching transistor and the inductive component, or

the eighth switching transistor is connected between the sixth switching transistor and the inductive component; and

the fifth switching transistor is connected between the seventh switching transistor and the inductive component, or

the seventh switching transistor is connected between the fifth switching transistor and the inductive component.

4 . The converter according to claim 2 , wherein after current flowing through the inductive component is greater than or equal to the specified negative current threshold and is less than or equal to the specified positive current threshold,

the controller is further configured to sequentially:

control both the sixth switching transistor and the eighth switching transistor that are in a turned-on state to be turned off, and

control both the fifth switching transistor and the seventh switching transistor that are in a turned-off state to be turned on.

5 . The converter according to claim 2 , wherein after the current flowing through the inductive component is greater than or equal to the specified negative current threshold and is less than or equal to the specified positive current threshold,

the controller is further configured to sequentially:

control both the fifth switching transistor and the seventh switching transistor that are in a turned-on state to be turned off, and

control both the sixth switching transistor and the eighth switching transistor that are in a turned-off state to be turned on.

6 . The converter according to claim 2 , wherein after the current flowing through the inductive component is greater than the specified positive current threshold,

the controller is further configured to sequentially:

control the eighth switching transistor in a turned-on state to be turned off,

control the fifth switching transistor in a turned-off state to be turned on,

control the sixth switching transistor in the turned-on state to be turned off, and

control the seventh switching transistor in the turned-off state to be turned on.

7 . The converter according to claim 2 , wherein after the current flowing through the inductive component is greater than the specified positive current threshold,

the controller is further configured to sequentially:

control the seventh switching transistor in a turned-on state to be turned off,

control the sixth switching transistor in a turned-off state to be turned on,

control the fifth switching transistor in the turned-on state to be turned off, and

control the eighth switching transistor in the turned-off state to be turned on.

8 . The converter according to claim 2 , wherein after the current flowing through the inductive component is less than the specified negative current threshold, the controller is further configured to sequentially:

control the sixth switching transistor in a turned-on state to be turned off,

control the seventh switching transistor in a turned-off state to be turned on,

control the eighth switching transistor in the turned-on state to be turned off, and

control the fifth switching transistor in the turned-off state to be turned on.

9 . The converter according to claim 2 , wherein after the current flowing through the inductive component is less than the specified negative current threshold,

the controller is further configured to sequentially:

control the fifth switching transistor in a turned-on state to be turned off,

control the eighth switching transistor in a turned-off state to be turned on,

control the seventh switching transistor in the turned-on state to be turned off, and

control the sixth switching transistor in the turned-off state to be turned on.

10 . The converter according to claim 1 , wherein the controller is further configured to:

after a switching action of controlling a switching transistor to change an on-off state is completed, control another switching transistor to start to perform the switching action to change the on-off state.

11 . A control method for a converter, comprising:

after an alternating current voltage output by the converter is greater than or equal to a specified negative voltage threshold and is less than or equal to a specified positive voltage threshold,

controlling the converter to switch between an upper half-bridge arm straight-through mode and a lower half-bridge arm straight-through mode, wherein

in the upper half-bridge arm straight-through mode, an inductive component, an upper half-bridge arm, a third capacitor, a second capacitor, and a secondary-side winding form a current path, and

in the lower half-bridge arm straight-through mode, the inductive component, a lower half-bridge arm, the third capacitor, a first capacitor, and the secondary-side winding form the current path; and

after a current flowing through the inductive component is greater than or equal to a specified negative current threshold and is less than or equal to a specified positive current threshold,

controlling switching transistors that are in a straight-through state in the upper half-bridge arm or the lower half-bridge arm to be turned off, and

controlling switching transistors that are in a cut-off state in the upper half-bridge arm or the lower half-bridge arm to be turned on, to enable the converter to implement mutual switching between the upper half-bridge arm straight-through mode and the lower half-bridge arm straight-through mode; and

after, the current flowing through the inductive component is less than the specified negative current threshold or is greater than the specified positive current threshold,

sequentially controlling a subset of the switching transistors that are in the straight-through state in the upper half-bridge arm or the lower half-bridge arm to be turned off;

controlling a subset of the switching transistors that are in the cut-off state in the upper half-bridge arm or the lower half-bridge arm to be turned on;

controlling all of the switching transistors that are in the straight-through state in the upper half-bridge arm or the lower half-bridge arm to be turned off; and

controlling all of the switching transistors that are in the cut-off state in the upper half-bridge arm or the lower half-bridge arm to be turned on, to enable the converter to implement mutual switching between the upper half-bridge arm straight-through mode and the lower half-bridge arm straight-through mode.

12 . The control method according to claim 11 , wherein the upper half-bridge arm comprises a sixth switching transistor and an eighth switching transistor that are connected in series, and the lower half-bridge arm comprises a fifth switching transistor and a seventh switching transistor that are connected in series, freewheeling directions of the fifth switching transistor and the sixth switching transistor both point to the connection point of the upper half-bridge arm and the lower half-bridge arm, and freewheeling directions of the seventh switching transistor and the eighth switching transistor both point away from the connection point of the upper half-bridge arm and the lower half-bridge arm.

13 . The control method according to claim 12 , wherein

the sixth switching transistor is connected between the eighth switching transistor and the inductive component, or

the eighth switching transistor is connected between the sixth switching transistor and the inductive component; and

the fifth switching transistor is connected between the seventh switching transistor and the inductive component, or

the seventh switching transistor is connected between the fifth switching transistor and the inductive component.

14 . The control method according to claim 12 , further comprising, after the current flowing through the inductive component is greater than or equal to the specified negative current threshold and is less than or equal to the specified positive current threshold, sequentially:

controlling both the sixth switching transistor and the eighth switching transistor that are in a turned-on state to be turned off, and

controlling both the fifth switching transistor and the seventh switching transistor that are in a turned-off state to be turned on.

15 . The control method according to claim 12 , further comprising, after the current flowing through the inductive component is greater than or equal to the specified negative current threshold and is less than or equal to the specified positive current threshold, sequentially:

controlling both the fifth switching transistor and the seventh switching transistor that are in a turned-on state to be turned off, and

controlling both the sixth switching transistor and the eighth switching transistor that are in a turned-off state to be turned on.

16 . The control method according to claim 12 , further comprising, after the current flowing through the inductive component is greater than the specified positive current threshold, sequentially:

controlling the eighth switching transistor in a turned-on state to be turned off;

controlling the fifth switching transistor in a turned-off state to be turned on;

controlling the sixth switching transistor in the turned-on state to be turned off; and

controlling the seventh switching transistor in the turned-off state to be turned on.

17 . The control method according to claim 12 , further comprising, after the current flowing through the inductive component is greater than the specified positive current threshold, sequentially:

controlling the eighth switching transistor in a turned-on state to be turned off; controlling the fifth switching transistor in a turned-off state to be turned on;

controlling the sixth switching transistor in the turned-on state to be turned off; and

controlling the seventh switching transistor in the turned-off state to be turned on.

18 . The control method according to claim 12 , further comprising, after the current flowing through the inductive component is less than the specified negative current threshold, sequentially:

controlling the sixth switching transistor in a turned-on state to be turned off,

controlling the seventh switching transistor in a turned-off state to be turned on,

controlling the eighth switching transistor in the turned-on state to be turned off, and

controlling the fifth switching transistor in the turned-off state to be turned on.

19 . The control method according to claim 12 , further comprising, after the current flowing through the inductive component is less than the specified negative current threshold, sequentially:

controlling the fifth switching transistor in a turned-on state to be turned off;

controlling the eighth switching transistor in a turned-off state to be turned on;

controlling the seventh switching transistor in the turned-on state to be turned off; and

controlling the sixth switching transistor in the turned-off state to be turned on.

20 . The control method according to claim 11 , further comprising, after a switching action of controlling a switching transistor to change an on-off state is completed,

controlling another switching transistor to start to perform the switching action to change the on-off state.