IP Library › Granted Patent US 12,640,655
Granted Patent B2
US 12,640,655 · App. 18/526,989 · Granted May 26, 2026

Efficiency in a dual-active bridge of a DC-DC stage

Inventors: Saikat Dey (Tempe, AZ); Yukun Luo (Sunnyvale, CA); Shan Chai (Fremont, CA)
Assignee: Atieva, Inc.
H02M3/33576H02M1/083H02M1/44H02M3/33515
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Quick Facts
Patent No.
US 12,640,655
App. No.
18/526,989
Granted
May 26, 2026
Kind
B2
Abstract

A method comprises: in an onboard charger of an electric vehicle, providing i) a direct current (DC) to DC stage including a dual-active bridge, and ii) a DC link capacitor having a DC bus voltage; and dynamically regulating the DC bus voltage to improve zero voltage switching (ZVS) in the onboard charger.

Claims (36)

1 . A method comprising:

in an onboard charger of an electric vehicle, providing i) a direct current (DC) to DC stage including a dual-active bridge, and ii) a DC link capacitor having a DC bus voltage; and

dynamically regulating the DC bus voltage to improve zero voltage switching (ZVS) in the onboard charger, wherein dynamically regulating the DC bus voltage comprises performing a comparison of a sensed battery current with a battery current threshold, and selecting the DC bus voltage based on the comparison, further comprising setting the battery current threshold before performing the comparison, wherein the battery current threshold is set based on a boundary condition where a minimum transferred power is required to achieve a ZVS condition in a buck mode operation at a medium load.

2 . The method of claim 1 , wherein the dual-active bridge dynamically regulates the DC bus voltage during a discharge mode of the onboard charger.

3 . A method comprising:

in an onboard charger of an electric vehicle, providing i) a direct current (DC) to DC stage including a dual-active bridge, and ii) a DC link capacitor having a DC bus voltage; and

dynamically regulating the DC bus voltage to improve zero voltage switching (ZVS) in the onboard charger, wherein dynamically regulating the DC bus voltage comprises performing a comparison of a sensed battery current with a battery current threshold, and selecting the DC bus voltage based on the comparison, wherein if the comparison indicates that the sensed battery current is greater than the battery current threshold, selecting the DC bus voltage comprises setting the DC bus voltage equal to a battery voltage.

4 . The method of claim 3 , wherein dynamically regulating the DC bus voltage comprises performing a comparison of a sensed battery current with a battery current threshold, and selecting the DC bus voltage based on the comparison.

5 . The method of claim 4 , further comprising setting the battery current threshold before performing the comparison.

6 . The method of claim 5 , wherein the battery current threshold is set based on a boundary condition where a minimum transferred power is required to achieve a ZVS condition in a buck mode operation at a medium load.

7 . A method comprising:

in an onboard charger of an electric vehicle, providing i) a direct current (DC) to DC stage including a dual-active bridge, and ii) a DC link capacitor having a DC bus voltage; and

dynamically regulating the DC bus voltage to improve zero voltage switching (ZVS) in the onboard charger, wherein dynamically regulating the DC bus voltage comprises performing a comparison of a sensed battery current with a battery current threshold, and selecting the DC bus voltage based on the comparison, wherein if the comparison indicates that the sensed battery current is equal to or lower than the battery current threshold, selecting the DC bus voltage comprises obtaining the DC bus voltage from a lookup table.

8 . The method of claim 7 , wherein the lookup table is a two-dimensional table organized according to respective values of i) the sensed battery current or battery power, and ii) a battery voltage.

9 . A method comprising:

in an onboard charger of an electric vehicle, providing i) a direct current (DC) to DC stage including a dual-active bridge, and ii) a DC link capacitor having a DC bus voltage; and

dynamically regulating the DC bus voltage to improve zero voltage switching (ZVS) in the onboard charger, wherein dynamically regulating the DC bus voltage comprises performing a comparison of a sensed battery current with a battery current threshold, and selecting the DC bus voltage based on the comparison, wherein dynamically regulating the DC bus voltage comprises avoiding that the DC bus voltage is within a non-ZVS zone within a voltage range of a battery of the vehicle.

10 . A method comprising:

in an onboard charger of an electric vehicle, providing i) a direct current (DC) to DC stage including a dual-active bridge, and ii) a DC link capacitor having a DC bus voltage; and

dynamically regulating the DC bus voltage to improve zero voltage switching (ZVS) in the onboard charger, wherein dynamically regulating the DC bus voltage comprises performing a comparison of a sensed battery current with a battery current threshold, and selecting the DC bus voltage based on the comparison, wherein dynamically regulating the DC bus voltage comprises ensuring that the DC bus voltage is within a first ZVS zone within a voltage range of a battery of the vehicle.

11 . The method of claim 10 , wherein ensuring that the DC bus voltage is within the first ZVS zone comprises selecting the first ZVS zone from among multiple ZVS zones within the voltage range.

12 . The method of claim 11 , wherein the dual-active bridge includes switches arranged in multiple legs, each of the multiple legs controlled by a corresponding one of pulse width modulation (PWM) signals, the method further comprising dynamically modulating the PWM signals to further improve the ZVS.

13 . The method of claim 12 , wherein dynamically modulating the PWM signals comprises creating an additional ZVS zone within the voltage range.

14 . A method comprising:

in an onboard charger of an electric vehicle, providing i) a direct current (DC) to DC stage including a dual-active bridge, and ii) a DC link capacitor having a DC bus voltage; and

dynamically regulating the DC bus voltage to improve zero voltage switching (ZVS) in the onboard charger, wherein the onboard charger further includes power factor correction circuitry, and wherein the power factor correction circuitry dynamically regulates the DC bus voltage during a charge mode of the onboard charger.

15 . An onboard charger for a vehicle, the onboard charger comprising:

a direct current (DC) link capacitor having a DC bus voltage;

a DC to DC stage comprising:

a dual-active bridge having switches arranged in multiple legs; and

wherein the onboard charger is configured to dynamically regulate the DC bus voltage to improve zero voltage switching (ZVS) in the onboard charger; and

power factor correction circuitry, wherein in a charging mode of the onboard charger the power factor correction circuitry dynamically regulates the DC bus voltage.

16 . The onboard charger of claim 15 , wherein each of the multiple legs is controlled by a corresponding one of pulse width modulation (PWM) signals, the onboard charger further comprising modulator circuitry for the dual-active bridge, the modulator circuitry configured to dynamically modulate the PWM signals to further improve the ZVS in the onboard charger.

17 . The onboard charger of claim 16 , wherein the modulator circuitry dynamically modulates the PWM signals by changing phase shifts of the PWM signals.

18 . The onboard charger of claim 15 , further comprising an electromagnetic interference filter.

19 . The onboard charger of claim 15 , wherein in a discharging mode of the onboard charger the dual-active bridge dynamically regulates the DC bus voltage.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 26, 2023
From: DEY, SAIKAT; LUO, YUKUN; CHAI, SHAN
To: ATIEVA, INC.
Reel/Frame 065950/0875 →
Continuity (1)
Related Publication 20250183810A1 · Jun 5, 2025
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