IP Library › Granted Patent US 11,046,264
Granted Patent B2
US 11,046,264 · App. 16/342,787 · Granted Jun 29, 2021

Vehicle-mounted emergency power supply device

Inventors: Youichi Kageyama (Fukushima, JP); Takashi Higashide (Fukushima, JP); Katsunori Atago (Fukushima, JP); Hisao Hiragi (Saitama, JP); Kazuo Takenaka (Fukushima, JP); Yugo Setsu (Fukushima, JP)
Assignee: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
B60R16/03H02J7/007H02J7/0068H02J7/345
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Quick Facts
Patent No.
US 11,046,264
App. No.
16/342,787
Granted
Jun 29, 2021
Kind
B2
Abstract

An in-vehicle emergency power supply device includes a power storage unit including an electric double-layer capacitor, a charging circuit charging the power storage unit, a discharging circuit discharging the power storage unit, and a controller controlling the charging circuit and the discharging circuit. When the charging circuit charges the power storage unit, the controller determines a set full charging voltage of the power storage unit, determines a correction charging voltage lower than the set full charging voltage based on the set full charging voltage, and controls the charging circuit to charge the power storage unit until a stored voltage reaches the correction charging voltage. This in-vehicle emergency power supply device stabilizes an output voltage thereof.

Claims (46)

1. An in-vehicle emergency power supply device comprising:

a power storage unit including an electric double-layer capacitor;

a charging circuit configured to charge the power storage unit;

a discharging circuit configured to discharge the power storage unit; and

a controller configured to control the charging circuit and the discharging circuit,

wherein the controller is configured to:

cause the charging circuit to start charging the power storage unit:

detect a first voltage of the power storage unit at a first time point and a second voltage of the power storage unit at a second time point later than the first time point;

obtain a rate of change of a voltage of the power storage unit per unit time based on the first voltage, the second voltage, the first time point and the second time point;

determine an estimated full charging voltage of the power storage unit based on the rate of change of the voltage of the power storage unit;

determine a correction charging voltage lower than the estimated full charging voltage; and

after the correction charging voltage is determined, cause the charging circuit to charge the power storage unit by operating the charging circuit until the stored voltage reaches the correction charging voltage.

2. The in-vehicle emergency power supply device of claim 1 , wherein the controller is configured to determine the correction charging voltage by subtracting a margin voltage from the estimated full charging voltage.

3. The in-vehicle emergency power supply device of claim 1 , wherein the discharging circuit is configured to reduce the voltage of the power storage unit.

4. The in-vehicle emergency power supply device of claim 1 ,

wherein the power storage unit has an internal capacitance, and

wherein the controller is configured to increase the correction charging voltage when the internal capacitance of the power storage unit decreases and reaches a limit capacitance.

5. The in-vehicle emergency power supply device of claim 4 ,

wherein the controller is configured to:

determine the correction charging voltage by subtracting a margin voltage from the estimated full charging voltage; and

increase the correction charging voltage by decreasing the margin voltage when the internal capacitance of the power storage unit decreases and reaches a limit capacitance.

6. The in-vehicle emergency power supply device of claim 1 , wherein the power storage unit includes a plurality of electric double-layer capacitors connected in series to one another.

7. The in-vehicle emergency power supply device of claim 1 , wherein the charging circuit is configured to charge the power storage unit at a constant current value.

8. The in-vehicle emergency power supply device of claim 1 , wherein:

the controller stores plural values of the estimated full charging voltage corresponding to plural values of the rate of change of the voltage of the power storage unit per unit time, and

the controller is further configured to determine the estimated the full charging voltage of the power storage unit based on the rate of change of the voltage of the power storage unit per unit time and the plural values of the estimated full charging voltage.

9. An in-vehicle emergency power supply device comprising:

a power storage unit including a plurality of electric double-layer capacitors connected in series to one another;

a charging circuit configured to charge the power storage unit;

a discharging circuit configured to discharge the power storage unit; and

a controller configured to control the charging circuit and the discharging circuit,

wherein the controller is configured to:

cause the charging circuit to start charging the power storage unit;

temporarily stop the charging of the power storage unit, detect a first stored voltage of the power storage unit while the charging by the charging circuit is stopped;

after the first stored voltage is detected, supply a test current to the power storage unit, and detect a second stored voltage of the power storage unit while the test current is supplied;

after the second stored voltage is detected, restart the charging the power storage unit;

obtain an internal resistance of the power storage unit based on the test current and a difference between the detected first stored voltage and the detected second stored voltage;

determine an estimated full charging voltage of the power storage unit based on the internal resistance;

determine a correction charging voltage lower than the estimated full charging voltage; and

after the correction charging voltage is determined, cause the charging circuit to charge the power storage unit until a stored voltage of the power storage unit reaches the correction charging voltage.

10. The in-vehicle emergency power supply device of claim 9 ,

wherein the controller is configured to:

temporarily stop the charging of the power storage unit by the charging circuit after a predetermined period passes from a starting of the charging the power storage unit by the charging circuit, and

determine the correction charging voltage by subtracting a margin voltage from the estimated full charging voltage.

11. The in-vehicle emergency power supply device of claim 9 , wherein the discharging circuit is configured to operate as a step-down circuit.

12. The in-vehicle emergency power supply device of claim 9 , wherein the test current is supplied to discharge the power storage unit.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 9, 2019
From: KAGEYAMA, YOUICHI; HIGASHIDE, TAKASHI; ATAGO, KATSUNORI; HIRAGI, HISAO; TAKENAKA, KAZUO; SETSU, YUGO
To: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
Reel/Frame 050672/0087 →
Priority Claims (1)
JP JP2017-012694 · Jan 27, 2017 · national
Continuity (1)
Related Publication 20200055472A1 · Feb 20, 2020
Cited By (1)
US 12,512,692