IP Library › Granted Patent US 9,931,950
Granted Patent B2
US 9,931,950 · App. 14/434,454 · Granted Apr 3, 2018

Method for recovering electrical energy with voltage smoothing on an onboard electrical network

Inventors: Sophie Demure (Antony, FR); Gerard Saint-Leger (Versailles, FR)
Assignee: RENAULT s.a.s.
B60L11/1811B60L1/003B60L1/02B60L1/14B60L7/18B60L11/14B60L11/1861B60L15/2009B60L2240/427Y02T10/645Y02T10/70Y02T10/7005Y02T10/705Y02T10/7044Y02T10/7077Y02T10/72Y02T10/7275Y02T10/92
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Quick Facts
Patent No.
US 9,931,950
App. No.
14/434,454
Granted
Apr 3, 2018
Kind
B2
Abstract

During a method for recovering electrical energy, for example during a deceleration phase of a motor vehicle including at least one electric accumulator battery, a low alternator voltage is applied during a first type of vehicle driving phase, and a high alternator voltage higher than the low alternator voltage is applied for a second type of vehicle driving phase. The transition from the low alternator voltage to the high alternator voltage is carried out by applying a first voltage step of a predefined amplitude, followed by a knee in the voltage curve, the voltage curve then continuing into at least a second voltage ramp phase of which the average slope is strictly lower than the voltage ramp of the first step.

Claims (24)

1. A method for recovering electrical energy during a phase of deceleration of a motor vehicle including at least one electric accumulator battery, comprising:

imposing a low alternator voltage regulated at a constant value during a first type of vehicle driving phase;

imposing a high alternator voltage regulated at a constant value, higher than the low alternator voltage, during a second type of vehicle driving phase;

wherein a transition from the low alternator voltage to the high alternator voltage is carried out by imposing a first voltage step of predefined amplitude, followed by a change of slope in the voltage curve, the voltage curve delivered by the alternator as a function of time then continuing into at least a second voltage rise phase of which the average slope is strictly lower than the slope of the voltage rise of the first step.

2. The method as claimed in claim 1 , wherein the voltage is maintained constant at a first voltage level during a first predefined time interval, after the change of slope.

3. The method as claimed in claim 2 , wherein, after the first level, the voltage delivered by the alternator continues to be increased by a succession of second voltage steps, each one substantially being one and a same upward voltage increment, strictly less than the amplitude of the first voltage step.

4. The method as claimed in claim 3 , wherein one and a same second time interval is imposed between starts of two second voltage steps.

5. The method as claimed in claim 1 , wherein the voltage delivered by the alternator continues to be increased until one of the following two conditions is met: the voltage of the alternator reaches the high alternator voltage, or the vehicle is no longer in the second type of driving phase.

6. The method as claimed in claim 5 , wherein once the high alternator voltage is reached, the alternator voltage is maintained at this high alternator voltage until one of the following conditions is met: a characteristic value of the state of charge of the battery reaches a recharge threshold value, or the vehicle is no longer in the second type of driving phase.

7. The method as claimed in claim 1 , wherein, when a characteristic value of the state of charge of the battery reaches a recharge threshold value, or when the vehicle is no longer in the second type of driving phase, and the alternator voltage is higher than a predefined end of charge voltage, a reduction of the voltage delivered by the alternator is imposed, from a maximum voltage reached by the alternator to an end of charge voltage, by firstly imposing a third downward voltage step having a predefined downward voltage amplitude, if the difference between the maximum voltage reached and the end of charge voltage is strictly greater in absolute value than the downward voltage amplitude.

8. The method as claimed in claim 7 , wherein reducing of the voltage is then continued toward the end of charge voltage with a decrease slope that is strictly less on average than the slope of the third voltage step.

9. The method as claimed in claim 7 , wherein, after the third voltage step, a succession of fourth voltage steps, each representing substantially one and a same downward voltage increment strictly less than the downward amplitude of the third voltage step, and separated from each other by one and the same downward time increment, is imposed.

10. An electrical energy supply system for a vehicle, the system comprising:

a network comprising at least one electrical consumer device;

an electric accumulator battery connected to the network;

a controllable alternator connected to the network and configured to deliver electrical energy to the network at a reference voltage that can be controlled at least a low alternator voltage regulated at a strictly positive constant value and at a high alternator voltage regulated at a constant value strictly higher than the low alternator voltage;

an electronic control unit connected to the alternator and to the battery and configured to impose on the alternator, during predetermined driving conditions of the vehicle, an increase in the voltage delivered by the alternator, from a low alternator voltage to a high alternator voltage, the electronic control unit being configured to impose a first voltage step of predefined amplitude, followed by a change of slope of the voltage curve delivered by the alternator as a function of time and followed by a voltage increasing curve having an average slope strictly less than the upward voltage slope of the first step.

11. A method for recovering electrical energy during a phase of deceleration of a motor vehicle including at least one electric accumulator battery, comprising:

imposing a low alternator voltage regulated at a constant value during a first type of vehicle driving phase;

imposing a high alternator voltage regulated at a constant value, higher than the low alternator voltage, during a second type of vehicle driving phase;

wherein a transition from the low alternator voltage to the high alternator voltage is carried out by imposing a first voltage step of predefined amplitude, followed by a change of slope in the voltage curve, the voltage curve delivered by the alternator as a function of time then continuing into at least a second voltage rise phase of which the average slope is strictly lower than the slope of the voltage rise of the first step, and

wherein, when a characteristic value of the state of charge of the battery reaches a recharge threshold value, or when the vehicle is no longer in the second type of driving phase, and the alternator voltage is higher than a predefined end of charge voltage, a reduction of the voltage delivered by the alternator is imposed, from a maximum voltage reached by the alternator to an end of charge voltage, by firstly imposing a third downward voltage step having a predefined downward voltage amplitude, if the difference between the maximum voltage reached and the end of charge voltage is strictly greater in absolute value than the downward voltage amplitude.

12. The method as claimed in claim 11 , wherein reducing of the voltage is then continued toward the end of charge voltage with a decrease slope that is strictly less on average than the slope of the third voltage step.

13. The method as claimed in claim 11 , wherein, after the third voltage step, a succession of fourth voltage steps, each representing substantially one and a same downward voltage increment strictly less than the downward amplitude of the third voltage step, and separated from each other by one and the same downward time increment, is imposed.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 4, 2015
From: DEMURE, SOPHIE; SAINT-LEGER, GERARD
To: RENAULT S.A.S.
Reel/Frame 035783/0358 →
Priority Claims (1)
FR 12 59637 · Oct 10, 2012 · national
Continuity (1)
Related Publication 20150274025A1 · Oct 1, 2015