IP Library Granted Patent US 11,408,364
Granted Patent B2
US 11,408,364 · App. 16/956,125 · Granted Aug 9, 2022

Method for regulating the output voltage of a DC/DC voltage converter of a control computer of a motor vehicle engine

Inventor: Stéphane Saint-Macary (Toulouse, FR)
Assignees: CONTINENTAL AUTOMOTIVE FRANCE; CONTINENTAL AUTOMOTIVE GMBH
F02D41/20F02D2041/2006F02D2041/2048F02D2041/2068
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Quick Facts
Patent No.
US 11,408,364
App. No.
16/956,125
Granted
Aug 9, 2022
Kind
B2
Abstract

Disclosed is a method for regulating the output voltage of a DC-to-DC voltage converter of a motor vehicle engine control computer. The method includes a step of the microcontroller simultaneously controlling a control module, so that the control module drives at least one injector of the vehicle engine, and a converter, so that the converter generates its own output voltage by setting the strength of the drive current to its maximum in what is called a “forced” mode corresponding to a step.

Claims (33)

1. A method for regulating a DC output voltage of a DC-to-DC voltage converter of a control computer of an engine of a motor vehicle, said control computer including a microcontroller, the DC-to-DC voltage converter, a control module, and an intermediate capacitor between the DC-to-DC voltage converter and the control module, the DC-to-DC voltage converter including a conversion module connected to a regulation module, said DC-to-DC voltage converter being configured to convert a DC supply voltage delivered by a supply battery of the motor vehicle into the DC output voltage of higher value than the DC supply voltage and regulate said DC output voltage through a current loop via the regulation module and the conversion module of the DC-to-DC voltage converter, the current loop having a regulation current varying between a first predetermined value and a second predetermined value higher than the first predetermined value in a regulation mode, the second predetermined value being a value resulting in shortest recharging times of the intermediate capacitor without damaging components of the DC-to-DC voltage converter, said method comprising:

simultaneously controlling, by the microcontroller, the control module, so that said control module drives at least one injector of the engine, and the DC-to-DC voltage converter, so that said DC-to-DC voltage converter regulates the DC output voltage using the regulation module by setting a strength of the regulation current to the second predetermined value in a forced mode.

2. The method as claimed in claim 1 , wherein the simultaneously controlling the control module and the DC-to-DC converter comprises simultaneously sending, by the microcontroller, a control signal to the control module, so that said control module drives the at least one injector, and an activation signal to the DC-to-DC voltage converter so that said DC-to-DC voltage converter switches to the forced mode.

3. The method as claimed in claim 2 , wherein reception of the activation signal by the DC-to-DC voltage converter triggers switching of a switch in order to switch the DC-to-DC voltage converter from the regulation mode to the forced mode.

4. The method as claimed in claim 2 , further comprising sending, by the microcontroller, a deactivation signal to the DC-to-DC voltage converter so that said DC-to-DC voltage converter switches from the forced mode to the regulation mode.

5. The method as claimed in claim 3 , further comprising sending, by the microcontroller, a deactivation signal to the DC-to-DC voltage converter so that said DC-to-DC voltage converter switches from the forced mode to the regulation mode.

6. The method as claimed in claim 1 , further comprising sending, by the microcontroller, a deactivation signal to the DC-to-DC voltage converter so that said DC-to-DC voltage converter switches from the forced mode to the regulation mode.

7. The method as claimed in claim 6 , wherein reception of the deactivation signal by the DC-to-DC voltage converter triggers switching of a switch in order to switch the DC-to-DC voltage converter from the forced mode to the regulation mode.

8. The method as claimed in claim 1 , wherein the DC output voltage is subjected to a setpoint voltage in the regulation mode and the DC-to-DC voltage converter regulates the DC output voltage independently of the setpoint voltage in the forced mode.

9. A control computer for an engine of a motor vehicle, the control computer comprising:

a microcontroller;

a control module;

a DC-to-DC voltage converter including a conversion module connected to a regulation module, the DC-to-DC voltage converter being configured to convert a DC supply voltage delivered by a supply battery of the motor vehicle into a DC output voltage of higher value than the DC supply voltage and to regulate said DC output voltage through a current loop via the regulation module and the conversion module of the DC-to-DC voltage converter, the current loop having a regulation current varying between a first predetermined value and a second predetermined value higher than the first predetermined value in a regulation mode such that the DC output voltage is subjected to a setpoint voltage; and

an intermediate capacitor between the DC-to-DC voltage converter and the control module,

wherein the second predetermined value is a value resulting in shortest recharging times of the intermediate capacitor without damaging components of the DC-to-DC voltage converter, and

wherein the microcontroller is configured to simultaneously control:

the control module, so that said control module drives at least one injector of the engine, and the DC-to-DC voltage converter, so that said DC-to-DC voltage converter generates the DC output voltage independently of the setpoint voltage using the regulation module by setting a strength of the regulation current to the second predetermined value in a forced mode.

10. The control computer as claimed in claim 9 , wherein the microcontroller is configured to simultaneously send a control signal to the control module, so that said control module drives the at least one injector, and an activation signal to the DC-to-DC voltage converter so that said DC-to-DC voltage converter switches to the forced mode.

11. The control computer as claimed in claim 10 , wherein the microcontroller is configured to send a deactivation signal to the DC-to-DC converter so that said DC-to-DC converter switches from the forced mode to the regulation mode.

12. The control computer as claimed in claim 9 , wherein the microcontroller is configured to send a deactivation signal to the DC-to-DC converter so that said DC-to-DC converter switches from the forced mode to the regulation mode.

13. The control computer as claimed in claim 12 , wherein the DC-to-DC converter comprises a two-position switch configured to switch between the regulation mode and the forced mode, the microcontroller being configured to control said two-position switch so that the DC-to-DC converter switches between the regulation mode and the forced mode.

14. The control computer as claimed in claim 9 , wherein the DC output voltage is subjected to a setpoint voltage in the regulation mode and the DC-to-DC voltage converter regulates the DC output voltage independently of the setpoint voltage in the forced mode.

15. A motor vehicle comprising:

an engine; and

a control computer for the engine, the control computer including

a microcontroller,

a control module,

a DC-to-DC voltage converter including a conversion module connected to a regulation module, the DC-to-DC voltage converter being configured to convert a DC supply voltage delivered by a supply battery of the motor vehicle into a DC output voltage of higher value than the DC supply voltage and to regulate said DC output voltage through a current loop via the regulation module and the conversion module of the DC-to-DC voltage converter, the current loop having a regulation current varying between a first predetermined value and a second predetermined value higher than the first predetermined value in a regulation mode such that the DC output voltage is subjected to a setpoint voltage, and

an intermediate capacitor between the DC-to-DC voltage converter and the control module,

wherein the second predetermined value is a value resulting in shortest recharging times of the intermediate capacitor without damaging components of the DC-to-DC voltage converter,

wherein the microcontroller is configured to simultaneously control:

the control module, so that said control module drives at least one injector of the engine, and the DC-to-DC voltage converter, so that said DC-to-DC voltage converter generates the DC output voltage independently of the setpoint voltage using the regulation module by setting a strength of the regulation current to the second predetermined value in a forced mode.

16. The motor vehicle as claimed in claim 15 , wherein the DC output voltage is subjected to a setpoint voltage in the regulation mode and the DC-to-DC voltage converter regulates the DC output voltage independently of the setpoint voltage in the forced mode.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2023
From: CONTINENTAL AUTOMOTIVE GMBH; VITESCO TECHNOLOGIES GMBH
To: VITESCO TECHNOLOGIES GMBH
Reel/Frame 063425/0149 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 25, 2023
From: CONTINENTAL AUTOMOTIVE FRANCE S.A.S.; CONTINENTAL AUTOMOTIVE GMBH
To: VITESCO TECHNOLOGIES GMBH; CONTINENTAL AUTOMOTIVE GMBH
Reel/Frame 062492/0737 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 19, 2020
From: SAINT-MACARY, STÉPHANE
To: CONTINENTAL AUTOMOTIVE FRANCE; CONTINENTAL AUTOMOTIVE GMBH
Reel/Frame 052989/0989 →
Priority Claims (1)
FR 1762725 · Dec 21, 2017 · national
Continuity (1)
Related Publication 20200325842A1 · Oct 15, 2020