IP Library › Granted Patent US 9,315,105
Granted Patent B2
US 9,315,105 · App. 14/374,717 · Granted Apr 19, 2016

Electrically-driven vehicle and method for controlling the same

Inventor: Yosei Sakamoto (Toyota, JP)
Assignee: TOYOTA JIDOSHA KABUSHIKI KAISHA
B60L1/006B60L1/003B60L11/126B60L11/14B60L11/18B60L11/1816B60L11/1861B60L11/1868B60L2210/30B60L2210/40Y02T10/6217Y02T10/7005Y02T10/7044Y02T10/7066Y02T10/7077Y02T10/7241Y02T90/127Y02T90/14
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Quick Facts
Patent No.
US 9,315,105
App. No.
14/374,717
Granted
Apr 19, 2016
Kind
B2
Abstract

A bidirectional charger subjects power supplied from an external power supply to voltage conversion and charges a main power storage device and an auxiliary power storage device. Furthermore, the bidirectional charger is configured to be able to convert power in a bidirectional manner so as to be able to subject power stored in the main power storage device or power stored in the auxiliary power storage device to voltage conversion and to output power to electrical outlet. The electrical outlet is configured to be able to output power to an electrical appliance including a home appliance. When a travel driving force increases during use of the electrical outlet, a PM-ECU controls the bidirectional charger in such a way that power stored in the auxiliary power storage device is subjected to voltage conversion and output power to the electrical outlet.

Claims (82)

1. An electrically-driven vehicle, comprising:

a main power storage device;

an electric motor receiving a supply of power from said main power storage device and generating a travel driving force;

an auxiliary power storage device;

a power output unit configured to be able to output power to an electrical appliance including a home appliance;

a power conversion device electrically connected to said main power storage device, said auxiliary power storage device and said power output unit, and configured to be able to subject power stored in said main power storage device or power stored in said auxiliary power storage device to voltage conversion and output power to said power output unit; and

a control device controlling said power conversion device to subject power stored in said auxiliary power storage device to voltage conversion and output power to said power output unit when said travel driving force increases during use of said power output unit.

2. The electrically-driven vehicle according to claim 1 , wherein during use of said power output unit, when said travel driving force increases to cause a required output for said main power storage device to exceed outputtable power indicating power which can be outputted by said main power storage device, said control device controls said power conversion device to subject power stored in said auxiliary power storage device to voltage conversion and output power to said power output unit.

3. The electrically-driven vehicle according to claim 2 , wherein

said power conversion device includes a charger which subjects power supplied from a power supply provided outside of the vehicle to voltage conversion and charges said main power storage device and said auxiliary power storage device, and

said charger is configured to be able to subject power conversion in a bidirectional manner so as to be able to subject power stored in said main power storage device or power stored in said auxiliary power storage device to voltage conversion and output power to said power output unit.

4. The electrically-driven vehicle according to claim 3 , wherein said charger includes:

a main circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said main power storage device;

a sub power supply circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said auxiliary power storage device and having a smaller capacity than said main circuit.

5. The electrically-driven vehicle according to claim 2 , wherein when said travel driving force increases, said control device further controls a state of charge of said auxiliary power storage device so as to raise a state of charge of said auxiliary power storage device in advance.

6. The electrically-driven vehicle according to claim 5 , further comprising:

an information device having information related to a traveling path, wherein

when an increase in said travel driving force is estimated based on traveling path information from said information device, said control device controls a state of charge of said auxiliary power storage device so as to raise a state of charge of said auxiliary power storage device in advance.

7. The electrically-driven vehicle according to claim 5 , further comprising:

a voltage converter which subjects power outputted from said main power storage device to voltage conversion and outputs power to said auxiliary power storage device, wherein

said power conversion device includes a charger which subjects power supplied from a power supply provided outside of the vehicle to voltage conversion and charges said main power storage device and said auxiliary power storage device, and

said charger includes:

a main circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said main power storage device; and

a sub power supply circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said auxiliary power storage device and having a smaller capacity than said main circuit, and

said sub power supply circuit is electrically connected to said main circuit on a side of said main power storage device, and

in a case where said control device controls a state of charge of said auxiliary power storage device so as to raise a state of charge of said auxiliary power storage device in advance,

when power supplied to said auxiliary power storage device is within rating of said sub power supply circuit, said control device controls said sub power supply circuit such that power is supplied from said main power storage device to said auxiliary power storage device by said sub power supply circuit, and

when power supplied to said auxiliary power storage device exceeds rating of said sub power supply circuit, said control device controls said voltage converter such that power is supplied from said main power storage device to said auxiliary power storage device by said voltage converter.

8. The electrically-driven vehicle according to claim 1 , wherein said power conversion device includes a charger which subjects power supplied from a power supply provided outside of the vehicle to voltage conversion and charges said main power storage device and said auxiliary power storage device, and

said charger is configured to be able to subject power conversion in a bidirectional manner so as to be able to subject power stored in said main power storage device or power stored in said auxiliary power storage device to voltage conversion and output power to said power output unit.

9. The electrically-driven vehicle according to claim 8 , wherein said charger includes:

a main circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said main power storage device;

a sub power supply circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said auxiliary power storage device and having a smaller capacity than said main circuit.

10. The electrically-driven vehicle according to claim 1 , wherein when said travel driving force increases, said control device further controls a state of charge of said auxiliary power storage device so as to raise a state of charge of said auxiliary power storage device in advance.

11. The electrically-driven vehicle according to claim 10 , further comprising:

an information device having information related to a traveling path, wherein

when an increase in said travel driving force is estimated based on traveling path information from said information device, said control device controls a state of charge of said auxiliary power storage device so as to raise a state of charge of said auxiliary power storage device in advance.

12. The electrically-driven vehicle according to claim 10 , further comprising:

a voltage converter which subjects power outputted from said main power storage device to voltage conversion and outputs power to said auxiliary power storage device, wherein

said power conversion device includes a charger which subjects power supplied from a power supply provided outside of the vehicle to voltage conversion and charges said main power storage device and said auxiliary power storage device, and

said charger includes:

a main circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said main power storage device; and

a sub power supply circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said auxiliary power storage device and having a smaller capacity than said main circuit, and

said sub power supply circuit is electrically connected to said main circuit on a side of said main power storage device, and

in a case where said control device controls a state of charge of said auxiliary power storage device so as to raise a state of charge of said auxiliary power storage device in advance, when power supplied to said auxiliary power storage device is within rating of said sub power supply circuit, said control device controls said sub power supply circuit such that power is supplied from said main power storage device to said auxiliary power storage device by said sub power supply circuit, and

when power supplied to said auxiliary power storage device exceeds rating of said sub power supply circuit, said control device controls said voltage converter such that power is supplied from said main power storage device to said auxiliary power storage device by said voltage converter.

13. A method for controlling an electrically-driven vehicle, said electrically-driven vehicle including:

a main power storage device;

an electric motor receiving a supply of power from said main power storage device and generates a travel driving force;

an auxiliary power storage device;

a power output unit configured to be able to output power to an electrical appliance including a home appliance; and

a power conversion device electrically connected to said main power storage device, said auxiliary power storage device and said power output unit, and configured to be able to subject power stored in said main power storage device or power stored in said auxiliary power storage device to voltage conversion and output power to said power output unit, and

said controlling method comprising the steps of:

determining whether or not a use of said power output unit is requested; and

controlling said power conversion device to subject power stored in said auxiliary power storage device to voltage conversion and output power to said power output unit when said travel driving force increases in a case where a use of said power output unit is requested.

14. The method for controlling an electrically-driven vehicle according to claim 13 , wherein the step of controlling said power conversion device includes the steps of:

determining whether or not an increase in said travel driving force causes a required output for main power storage device to exceed outputtable power indicating power which can be outputted by said main power storage device during use of said power output unit; and

controlling said power conversion device to subject power stored in said auxiliary power storage device to voltage conversion and output power to said power output unit when it is determined that said required output exceeds said outputtable power.

15. The method for controlling an electrically-driven vehicle according to claim 14 , further comprising the step of controlling a state of charge of said auxiliary power storage device so as to raise a state of charge of said auxiliary power storage device in advance when said travel driving force increases.

16. The method for controlling an electrically-driven vehicle according to claim 15 , wherein

said electrically-driven vehicle further includes a voltage converter which subjects power outputted from said main power storage device to voltage conversion and outputs power to said auxiliary power storage device, and

said power conversion device includes a charger which subjects power supplied from a power supply provided outside of the vehicle to voltage conversion and charges said main power storage device and said auxiliary power storage device, and

said charger includes:

a main circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said main power storage device; and

a sub power supply circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said auxiliary power storage device and having a smaller capacity than said main circuit, and

said sub power supply circuit electrically connected to said main circuit on a side of said main power storage device, and

said step of controlling a state of charge of said auxiliary power storage device includes the steps of:

determining whether or not power supplied to said auxiliary power storage device is within rating of said sub power supply circuit;

controlling said sub power supply circuit such that power is supplied from said main power storage device to said auxiliary power storage device by said sub power supply circuit when it is determined that said power is within rating of said sub power supply circuit in said step of determining; and

controlling said voltage converter such that power is supplied from said main power storage device to said auxiliary power storage device by said voltage converter when it is determined that said power exceeds the rating of said sub power supply circuit in said step of determining.

17. The method for controlling an electrically-driven vehicle according to claim 13 , further comprising the step of controlling a state of charge of said auxiliary power storage device so as to raise a state of charge of said auxiliary power storage device in advance when said travel driving force increases.

18. The method for controlling an electrically-driven vehicle according to claim 10 , wherein

said electrically-driven vehicle further includes a voltage converter which subjects power outputted from said main power storage device to voltage conversion and outputs power to said auxiliary power storage device, and

said power conversion device includes a charger which subjects power supplied from a power supply provided outside of the vehicle to voltage conversion and charges said main power storage device and said auxiliary power storage device, and

said charger includes:

a main circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said main power storage device; and

a sub power supply circuit configured to be able to subject voltage conversion in a bidirectional manner between said power supply and said auxiliary power storage device and having a smaller capacity than said main circuit, and

said sub power supply circuit electrically connected to said main circuit on a side of said main power storage device, and

said step of controlling a state of charge of said auxiliary power storage device includes the steps of:

determining whether or not power supplied to said auxiliary power storage device is within rating of said sub power supply circuit;

controlling said sub power supply circuit such that power is supplied from said main power storage device to said auxiliary power storage device by said sub power supply circuit when it is determined that said power is within rating of said sub power supply circuit in said step of determining; and

controlling said voltage converter such that power is supplied from said main power storage device to said auxiliary power storage device by said voltage converter when it is determined that said power exceeds the rating of said sub power supply circuit in said step of determining.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2014
From: SAKAMOTO, YOSEI
To: TOYOTA JIDOSHA KABUSHIKI KAISHA
Reel/Frame 033394/0094 →
Continuity (1)
Related Publication 20140371968A1 · Dec 18, 2014