IP Library Granted Patent US 9,796,241
Granted Patent B2
US 9,796,241 · App. 14/112,487 · Granted Oct 24, 2017

Vehicle temperature control apparatus and in-vehicle thermal system

Inventors: Masayuki Takeuchi (Nukata-gun, JP); Hiroshi Kishita (Anjo, JP); Yasumitsu Omi (Okazaki, JP); Nobuharu Kakehashi (Toyoake, JP); Hideaki Okawa (Kariya, JP); Kouji Miura (Okazaki, JP); Michio Nishikawa (Nagoya, JP)
Assignee: DENSO CORPORATION
B60H1/00735B60H1/00899B60L1/003B60L1/02B60L1/08B60L11/1816B60L11/1874B60L11/1875B60H2001/00928B60H2001/00949B60L2240/34B60L2240/36B60L2240/545B60L2240/662B60L2250/12B60L2270/44B60L2270/46Y02T10/7005Y02T10/705Y02T10/7072Y02T10/7291Y02T90/14Y02T90/16
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Quick Facts
Patent No.
US 9,796,241
App. No.
14/112,487
Granted
Oct 24, 2017
Kind
B2
Abstract

A vehicle temperature control apparatus for controlling temperature of a temperature control object, which is at least one of inside air of a vehicle compartment and a vehicle component, includes a heat capacitive element capable of storing heat, a refrigeration cycle in which heat is absorbed from a low temperature side and is dissipated to a high temperature side, a heat exchanger that causes the heat capacitive element to exchange heat with refrigerant of the refrigeration cycle, and a heat dissipation portion which dissipates heat in the refrigerant of the refrigeration cycle to the temperature control object. Thus, a temperature control by using the heat capacitive element can be effectively performed.

Claims (78)

1. A vehicle temperature control apparatus for controlling temperature of a temperature control object which is at least one of inside air of a vehicle compartment and a vehicle component, the vehicle temperature control apparatus comprising:

a heat capacitive element capable of storing heat;

a coolant circuit in which a cooling water for cooling the heat capacitive element circulates, the heat capacitive element being located in the coolant circuit;

a refrigeration cycle in which refrigerant circulates, and heat is absorbed from a low temperature side of the refrigerant and is dissipated to a high temperature side of the refrigerant;

a heat exchanger disposed to exchange heat between the refrigerant in the refrigeration cycle and the cooling water in the coolant circuit;

a first heat dissipation portion configured to dissipate heat contained in the refrigerant of the refrigeration cycle to the temperature control object;

an interrupter that interrupts and resumes heat storage in the heat capacitive element and heat dissipation from the heat dissipation portion to the temperature control object;

a controller that controls the interrupter based on a determination result of heat storage requirement whether the heat capacitive element is required to store heat therein; and

a second heat dissipation portion disposed in the coolant circuit, the second heat dissipation portion dissipating heat contained in the heat capacitive element to the temperature control object, wherein

the controller controls the interrupter so that heat is firstly stored in the heat capacitive element and is then dissipated from the heat capacitive element to the temperature control object, when the controller determines that the heat capacitive element is required to store heat,

the controller calculates a target temperature of the heat capacitive element and controls the interrupter based on the target temperature,

the controller changes the target temperature to be different from each other between a case in which it is determined that the heat storage in the heat capacitive element is required, and a case in which it is determined that the heat storage in the heat capacitive element is not required, and

the heat capacitive element is a battery capable of storing and supplying electric power, the battery being located upstream or downstream of the heat exchanger in the coolant circuit.

2. The vehicle temperature control apparatus of claim 1 , wherein

the first heat dissipation portion is configured to heat the temperature control object by using the refrigerant of the refrigeration cycle, and

the heat exchanger is disposed on a low-pressure side of the refrigeration cycle.

3. The vehicle temperature control apparatus of claim 1 , wherein

the first heat dissipation portion is configured to cool the temperature control object by using the refrigerant of the refrigeration cycle, and

the heat exchanger is disposed on a high-pressure side of the refrigeration cycle.

4. The vehicle temperature control apparatus of claim 1 , wherein

the second heat dissipation portion dissipates heat stored in the heat capacitive element to the temperature control object without using the refrigerant of the refrigeration cycle.

5. The vehicle temperature control apparatus of claim 4 further comprising:

a switch unit that switches between two modes, one mode that performs heat exchange for transferring heat stored in the heat capacitive element to the refrigerant of the refrigeration cycle by using the heat exchanger, and other mode that dissipates the heat stored in the heat capacitive element to the temperature control object by using the second heat dissipation portion.

6. The vehicle temperature control apparatus of claim 1 , wherein

the controller sets the target temperature to be higher in a case in which a storage of a heat energy in the heat capacitive element is determined to be required, as compared with a case in which the storage of the heat energy in the heat capacitive element is determined to be not required.

7. The vehicle temperature control apparatus of claim 1 , wherein

the controller sets the target temperature to be lower in a case in which a storage of a cold energy in the heat capacitive element is determined to be required, than a case in which the storage of the cold energy in the heat capacitive element is determined to be not required.

8. The vehicle temperature control apparatus of claim 1 , wherein the refrigeration cycle is separate from the cooling circuit.

9. A vehicle temperature control apparatus for controlling temperature of a temperature control object which is at least one of inside air of a vehicle compartment and a vehicle component, the vehicle temperature control apparatus comprising:

a heat capacitive element capable of storing heat;

a refrigeration cycle in which heat is absorbed from a low temperature side and is dissipated to a high temperature side;

a heat exchanger that causes the heat stored in the heat capacitive element to be exchanged with a refrigerant of the refrigeration cycle;

a first heat dissipation portion configured to dissipate heat contained in the refrigerant of the refrigeration cycle to the temperature control object;

an interrupter that interrupts and resumes a heat storage in the heat capacitive element and heat dissipation from the heat dissipation portion to the temperature control object;

a controller that controls the interrupter based on a determination result of heat storage requirement whether the heat capacitive element is required to store heat therein; and

a heat collection portion that collects heat remaining in the vehicle to the heat capacitive element, wherein

the controller controls the interrupter so that heat is firstly stored in the heat capacitive element and is then dissipated from the heat capacitive element to the temperature control object, when the controller determines that the heat capacitive element is required to store heat,

the controller calculates a target temperature of the heat capacitive element and controls the interrupter based on the target temperature,

the controller changes the target temperature to be different from each other between a case in which it is determined that the heat storage in the heat capacitive element is required, and a case in which it is determined that the heat storage in the heat capacitive element is not required;

the interrupter is configured to interrupt and resume heat collection by the heat collection portion, and

the controller controls the interrupter such that heat collection by the heat collection portion is started when an ignition switch of the vehicle is turned off.

10. The vehicle temperature control apparatus of claim 9 , wherein

the heat dissipation portion is configured to heat the temperature control object by using the refrigerant of the refrigeration cycle, and

the heat exchanger is disposed on a low-pressure side of the refrigeration cycle.

11. The vehicle temperature control apparatus of claim 9 , wherein

the heat dissipation portion is configured to cool the temperature control object by using the refrigerant of the refrigeration cycle, and

the heat exchanger is disposed on a high-pressure side of the refrigeration cycle.

12. The vehicle temperature control apparatus of claim 9 further comprising:

a second heat dissipation portion that dissipates heat stored in the heat capacitive element to the temperature control object without using the refrigerant of the refrigeration cycle.

13. The vehicle temperature control apparatus of claim 12 further comprising:

a switch unit that switches between two modes, one mode that performs heat exchange for transferring heat stored in the heat capacitive element to the refrigerant of the refrigeration cycle by using the heat exchanger, and other mode that dissipates the heat stored in the heat capacitive element to the temperature control object by using the second heat dissipation portion.

14. The vehicle temperature control apparatus of claim 9 , wherein

the controller sets the target temperature to be higher in a case in which a storage of a heat energy in the heat capacitive element is determined to be required, as compared with a case in which the storage of the heat energy in the heat capacitive element is determined to be not required.

15. A vehicle temperature control apparatus for controlling temperature of a temperature control object which is at least one of inside air of a vehicle compartment and a vehicle component, the vehicle temperature control apparatus comprising:

a heat capacitive element capable of storing heat;

a refrigeration cycle in which heat is absorbed from a low temperature side and is dissipated to a high temperature side;

a heat exchanger that causes the heat stored in the heat capacitive element to be exchanged with a refrigerant of the refrigeration cycle;

a first heat dissipation portion configured to dissipate heat contained in the refrigerant of the refrigeration cycle to the temperature control object;

an interrupter that interrupts and resumes a heat storage in the heat capacitive element and heat dissipation from the heat dissipation portion to the temperature control object;

a controller that controls the interrupter based on a determination result of heat storage requirement whether the heat capacitive element is required to store heat therein; and

a heat collection portion that collects heat remaining in the vehicle to the heat capacitive element, wherein

the controller controls the interrupter so that heat is firstly stored in the heat capacitive element and is then dissipated from the heat capacitive element to the temperature control object, when the controller determines that the heat capacitive element is required to store heat,

the controller calculates a target temperature of the heat capacitive element and controls the interrupter based on the target temperature,

the controller changes the target temperature to be different from each other between a case in which it is determined that the heat storage in the heat capacitive element is required, and a case in which it is determined that the heat storage in the heat capacitive element is not required;

the interrupter is configured to interrupt and resume heat collection by the heat collection portion, and

the controller determines whether heat is surplus in the vehicle during a vehicle running time, and controls the interrupter such that heat collection by the heat collection portion is performed even during the vehicle running time when the controller determines that heat is surplus in the vehicle.

16. The vehicle temperature control apparatus of claim 15 , wherein

the heat dissipation portion is configured to heat the temperature control object by using the refrigerant of the refrigeration cycle, and

the heat exchanger is disposed on a low-pressure side of the refrigeration cycle.

17. The vehicle temperature control apparatus of claim 15 , wherein

the heat dissipation portion is configured to cool the temperature control object by using the refrigerant of the refrigeration cycle, and

the heat exchanger is disposed on a high-pressure side of the refrigeration cycle.

18. The vehicle temperature control apparatus of claim 15 further comprising:

a second heat dissipation portion that dissipates heat stored in the heat capacitive element to the temperature control object without using the refrigerant of the refrigeration cycle.

19. The vehicle temperature control apparatus of claim 18 further comprising:

a switch unit that switches between two modes, one mode that performs heat exchange for transferring heat stored in the heat capacitive element to the refrigerant of the refrigeration cycle by using the heat exchanger, and other mode that dissipates the heat stored in the heat capacitive element to the temperature control object by using the second heat dissipation portion.

20. The vehicle temperature control apparatus of claim 15 , wherein

the controller sets the target temperature to be higher in a case in which a storage of a heat energy in the heat capacitive element is determined to be required, as compared with a case in which the storage of the heat energy in the heat capacitive element is determined to be not required.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2013
From: TAKEUCHI, MASAYUKI; KISHITA, HIROSHI; OMI, YASUMITSU; KAKEHASHI, NOBUHARU; OKAWA, HIDEAKI; MIURA, KOUJI; NISHIKAWA, MICHIO
To: DENSO CORPORATION
Reel/Frame 031430/0307 →
Priority Claims (2)
JP 2011-091847 · Apr 18, 2011 · national
JP 2012-038731 · Feb 24, 2012 · national
Continuity (1)
Related Publication 20140041826A1 · Feb 13, 2014