IP Library Granted Patent US 10,587,127
Granted Patent B2
US 10,587,127 · App. 15/107,007 · Granted Mar 10, 2020

Charging device, charging control method, electricity storage device, power storage device, power system, and electric vehicle

Inventors: Naoyuki Sugeno (Fukushima, JP); Hisato Asai (Tochigi, JP); Eiji Kumagai (Ibaraki, JP); Noritoshi Imamura (Fukushima, JP); Koji Umetsu (Fukushima, JP)
Assignee: Murata Manufacturing Co., Ltd.
H02J7/0014B60L3/0046B60L3/12B60L50/16B60L50/40B60L53/00B60L53/14B60L53/30B60L53/51B60L53/54B60L53/63B60L53/64B60L53/65B60L53/665B60L55/00B60L58/12B60L58/15B60L58/22H02J7/008H02J7/0016H02J7/0021H02J7/045B60L2200/12B60L2210/30B60L2210/40B60L2240/545B60L2240/547B60L2240/549B60L2240/70B60L2250/16Y02E60/721Y02T10/70Y02T10/7005Y02T10/7022Y02T10/7044Y02T10/7055Y02T10/7061Y02T10/7077Y02T10/7088Y02T10/7241Y02T10/7291Y02T90/121Y02T90/127Y02T90/128Y02T90/14Y02T90/16Y02T90/163Y02T90/169Y04S10/126Y04S30/14
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Quick Facts
Patent No.
US 10,587,127
App. No.
15/107,007
Granted
Mar 10, 2020
Kind
B2
Abstract

There is provided a charging device including a charging voltage providing unit configured to provide a maximum charging voltage for an electricity storage unit, wherein the electricity storage unit includes a plurality of battery cells, and wherein the maximum charging voltage satisfies an equation (1) below: Maximum Charging Voltage=Total Battery Voltage+(Fully Charged Voltage−Maximum Cell Voltage)*n (1) wherein n represents a total number of the battery cells connected in series.

Claims (54)

1. A charging device, comprising:

a main controller configured to provide, to a control circuit, a maximum charging voltage for an electricity storage unit,

wherein the electricity storage unit includes a plurality of battery cells in a battery, and at least one battery cell in the plurality of battery cells has a lower voltage than another battery cell in the plurality of battery cells,

wherein the maximum charging value is determined based on at least a total battery voltage, a fully charged cell voltage, and a maximum cell voltage,

wherein the maximum charging voltage satisfies an equation (1) below:

Maximum Charging Voltage=Total Battery Voltage+(Fully Charged Cell Voltage−Maximum Cell Voltage)* n   (1)

wherein n represents a total number of the battery cells connected in series,

wherein the total battery voltage represents a total combined voltage of the plurality of battery cells in the battery,

wherein the fully charged cell voltage represents a predefined voltage value that represents a voltage at which any one battery cell of the plurality of battery cells is configured to be fully charged,

wherein the maximum cell voltage represents a voltage value of a battery cell of the plurality of battery cells that has the highest voltage value, and

wherein the maximum charging voltage satisfies the equation (1) at a plurality of maximum cell voltage values, including when the maximum cell voltage is less than the fully charged cell voltage.

2. The charging device according to claim 1 , wherein the maximum charging voltage further satisfies an equation (2) below:

Maximum Charging Voltage=Charging Set Voltage− Vd   (2)

wherein Vd is a sum total of a voltage difference between a maximum cell voltage and a cell voltage corresponding to each of the battery cells connected in series.

3. The charging device according to claim 2 , wherein the charging set voltage is a product of the fully charged voltage of the battery cells and the total number of the battery cells connected in series.

4. The charging device according to claim 1 , further comprising a voltage detector configured to detect the total battery voltage.

5. The charging device according to claim 2 , further comprising a comparison operator configured to perform a comparison operation on the charging set voltage and the total battery voltage.

6. The charging device according to claim 2 , further comprising: a voltage detector configured to detect the total battery voltage; and

a comparison operator configured to perform a comparison operation on the charging set voltage and the total battery voltage.

7. The charging device according to claim 1 , wherein at least one of the battery cells includes a positive electrode active material having an olivine structure.

8. A charging control method comprising:

providing, by a main controller, to a control circuit, a maximum charging voltage for an electricity storage unit,

wherein the maximum charging value is determined based on at least a total battery voltage, a fully charged cell voltage, and a maximum cell voltage,

wherein the electricity storage unit includes a plurality of battery cells in a battery, at least one battery cell in the plurality of battery cells has a lower voltage than another battery cell in the plurality of battery cells, and wherein the maximum charging voltage is provided and satisfies an equation (1) below:

Maximum Charging Voltage=Total Battery Voltage+(Fully Charged Cell Voltage−Maximum Cell Voltage)* n   (1)

wherein n represents a total number of the battery cells connected in series,

wherein the total battery voltage is a total combined voltage of the plurality of battery cells in the battery,

wherein the fully charged cell voltage is a predefined voltage value that represents a voltage at which any one battery cell of the plurality of battery cells is configured to be fully charged,

wherein the maximum cell voltage is a voltage value of a battery cell of the plurality of battery cells that has the highest voltage value, and

wherein the maximum charging voltage satisfies the equation (1) at a plurality of maximum cell voltage values, including when the maximum cell voltage is less than the fully charged cell voltage.

9. An electricity storage device, comprising:

an electricity storage unit including a plurality of battery cells in a battery, and at least one battery cell in the plurality of battery cells has a lower voltage than another battery cell in the plurality of battery cells; and

a main controller configured to provide, to a control circuit, a maximum charging voltage for the electricity storage unit,

wherein the maximum charging value is determined based on at least a total battery voltage, a fully charged cell voltage, and a maximum cell voltage,

wherein the maximum charging voltage satisfies an equation (1) below:

Maximum Charging Voltage=Total Battery Voltage+(Fully Charged Cell Voltage−Maximum Cell Voltage)* n   (1)

wherein n represents a total number of the battery cells connected in series,

wherein the total battery voltage is a total combined voltage of the plurality of battery cells in the battery,

wherein the fully charged cell voltage is a predefined voltage value that represents a voltage at which any one battery cell of the plurality of battery cells is configured to be fully charged,

wherein the maximum cell voltage is a voltage value of a battery cell of the plurality of battery cells that has the highest voltage value, and

wherein the maximum charging voltage satisfies the equation (1) at a plurality of maximum cell voltage values, including when the maximum cell voltage is less than the fully charged cell voltage.

10. The electricity storage device according to claim 9 ,

wherein the maximum charging voltage further satisfies an equation (2) below

Maximum Charging Voltage=Charging Set Voltage− Vd   (2)

wherein Vd is a sum total of a voltage difference between a maximum cell voltage and a cell voltage corresponding to each of the battery cells connected in series.

11. The electricity storage device according to claim 9 , wherein the electricity storage unit further comprises a voltage detector configured to detect the total battery voltage.

12. The electricity storage device according to claim 11 , further comprising a comparison operator configured to perform a comparison operation on the charging set voltage and the total battery voltage.

13. A power system comprising the electricity storage device according to claim 9 ,

wherein the power system is configured to control charging and dis-charging of the electricity storage device based on information received by an electric power information transceiver configured to transmit and receive signals through a network.

14. A power storage device comprising the electricity storage device according to claim 9 .

15. An electric vehicle comprising the electricity storage device according to claim 9 ,

wherein the electric vehicle includes:

a converting device configured to convert electric power supplied from the electricity storage device into a driving force for the vehicle; and

a control device configured to control the vehicle based on in-formation corresponding to the electricity storage device.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2017
From: TOHOKU MURATA MANUFACTURING CO.
To: MURATA MANUFACTURING CO., LTD.
Reel/Frame 044894/0441 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2017
From: SONY CORPORATION
To: TOHOKU MURATA MANUFACTURING CO., LTD.
Reel/Frame 044894/0461 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 19, 2017
From: SUGENO, NAOYUKI; ASAI, HISATO; KUMAGAI, EIJI; IMAMURA, NORITOSHI; UMETSU, KOJI
To: SONY CORPORATION
Reel/Frame 042059/0708 →
Priority Claims (1)
JP 2014-078088 · Apr 4, 2014 · national
Continuity (1)
Related Publication 20180198289A1 · Jul 12, 2018
Cited By (1)
US 12,502,995