IP Library › Granted Patent US 10,677,537
Granted Patent B2
US 10,677,537 · App. 15/569,838 · Granted Jun 9, 2020

Evaporator

Inventors: Yuusuke Kitou (Kariya, JP); Jun Abei (Kariya, JP); Norihide Kawachi (Kariya, JP); Eiichi Torigoe (Kariya, JP); Shota Chatani (Kariya, JP)
Assignee: DENSO CORPORATION
F28F1/126B60H1/005B60H1/00335F25B39/02F28D1/05366F28D20/02F28D20/026F28F1/40F28D2020/0013F28D2021/0085Y02E60/145
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Quick Facts
Patent No.
US 10,677,537
App. No.
15/569,838
Granted
Jun 9, 2020
Kind
B2
Abstract

An evaporator includes multiple cold storage mechanisms for lowering a temperature of a cold storage material housed inside a cold storage container by heat exchange with a refrigerant. The multiple cold storage mechanisms include a first cold storage mechanism and a second cold storage mechanism higher in heat storage-and-radiation performance than the first cold storage mechanism.

Claims (74)

1. An evaporator that cools air by heat exchange with a refrigerant passing through an inside of the evaporator, the evaporator comprising:

a first cold storage mechanism including a first cold storage container housing a first cold storage material that decreases in temperature by a heat exchange with the refrigerant; and

a second cold storage mechanism including a second cold storage container housing a second cold storage material that decreases in temperature by a heat exchange with the refrigerant, wherein

the second cold storage mechanism is higher in heat storage-and-radiation performance than the first cold storage mechanism.

2. The evaporator according to claim 1 , wherein

both the first cold storage mechanism and the second cold storage mechanism are disposed in a state of being in contact with a tube through which the refrigerant passes, and

a contact area between the second cold storage mechanism and the tube is larger than a contact area between the first cold storage mechanism and the tube, thereby relatively increasing the heat storage-and-radiation performance of the second cold storage mechanism.

3. The evaporator according to claim 1 , wherein

a contact area between the second cold storage container and the second cold storage material in the second cold storage mechanism is larger than a contact area between the first cold storage container and the first cold storage material in the first cold storage mechanism.

4. The evaporator according to claim 1 , wherein

the first cold storage mechanism includes a first inner fin housed in the first cold storage container to promote a heat transfer to the first cold storage material, and wherein

the second cold storage mechanism includes a second inner fin housed in the second cold storage container to promote a heat transfer to the second cold storage material.

5. The evaporator according to claim 4 , wherein

a contact area between the second cold storage container and the second inner fin in the second cold storage mechanism is larger than a contact area between the first cold storage container and the first inner fin in the first cold storage mechanism.

6. The evaporator according to claim 4 , wherein

a contact area between the second inner fin and the second cold storage material in the second cold storage mechanism is larger than a contact area between the first inner fin and the first cold storage material in the first cold storage mechanism.

7. The evaporator according to claim 4 , wherein

the first inner fin is corrugated to have surfaces facing each other and a midpoint distance between two facing surfaces of the first inner fin is a first phase change distance, and wherein

the second inner fin is corrugated to have surfaces facing each other and a midpoint distance between two facing surfaces of the second inner fin is a second phase change distance, and wherein

the second phase change distance in the second cold storage mechanism is smaller than the first phase change distance in the first cold storage mechanism.

8. The evaporator according to claim 4 , wherein

the first inner fin is formed by bending a metal plate in a first wavy shape, and wherein

the second inner fin is formed by bending a metal plate in a second wavy shape, and wherein

the first wavy shape of the first inner fin in the first cold storage mechanism is different than the second wavy shape of the second inner fin in the second cold storage mechanism, or a material of the first inner fin is different than a material of the second inner fin.

9. The evaporator according to claim 8 , wherein

a pitch of the second inner fin in the second cold storage mechanism is smaller than a pitch of the first inner fin in the first cold storage mechanism.

10. The evaporator according to claim 8 , wherein

a thickness of the second inner fin in the second cold storage mechanism is larger than a thickness of the first inner fin in the first cold storage mechanism.

11. The evaporator according to claim 8 , wherein

a thermal conductivity of the second inner fin in the second cold storage mechanism is larger than a thermal conductivity of the first inner fin in the first cold storage mechanism.

12. The evaporator according to claim 1 , wherein

a thermal conductivity of the second cold storage material in the second cold storage mechanism is larger than a thermal conductivity of the first cold storage material in the first cold storage mechanism.

13. The evaporator according to claim 1 , wherein

the first cold storage mechanism and the second cold storage mechanism are disposed next to each other and aligned in a vertical direction.

14. The evaporator according to claim 1 , wherein

the first cold storage mechanism and the second cold storage mechanism are disposed next to each other and aligned in a direction in which the air passes.

15. The evaporator according to claim 1 , further comprising:

a plurality of tubes through which the refrigerant passes; and

a tank that performs at least one of supply of the refrigerant to the plurality of tubes and reception of the refrigerant which has passed through the plurality of tubes, wherein

the second cold storage mechanism is disposed in a core portion where the plurality of tubes are disposed, and

the first cold storage mechanism is disposed at a position different from the core portion and adjacent to the tank.

16. The evaporator according to claim 1 , wherein

a melting point of the second cold storage material in the second cold storage mechanism is higher than a melting point of the first cold storage material in the first cold storage mechanism.

17. The evaporator according to claim 1 , further comprising a plurality of tubes each having therein a flow channel through which the refrigerant passes, wherein

both the first cold storage mechanism and the second cold storage mechanism are disposed in contact with the tubes, and

a contact area between the flow channel of one of the tubes which is in contact with the second cold storage mechanism and the second cold storage material is larger than a contact area between the flow channel of another of the tubes which is in contact with the first cold storage mechanism and the first cold storage material, thereby relatively increasing the heat storage-and-radiation performance of the second cold storage mechanism.

18. The evaporator according to claim 4 , wherein

the first inner fin is a metal plate formed in a first corrugated shape, and

the second inner fin is a metal plate formed in a second corrugated shape,

the first corrugated shape of the first inner fin in the first cold storage mechanism is different than the second corrugated shape of the second inner fin in the second cold storage mechanism, or a material of the first inner fin is different than a material of the second inner fin.

19. The evaporator according to claim 1 , further comprising a plurality of tubes each having therein a flow channel through which the refrigerant passes, wherein

both the first cold storage mechanism and the second cold storage mechanism are disposed in contact with the tubes, and

a contact area between the flow channel of one of the tubes which is in contact with the second cold storage mechanism and the refrigerant is larger than a contact area between the flow channel of another of the tubes which is in contact with the first cold storage mechanism and the refrigerant, thereby relatively increasing the heat storage-and-radiation performance of the second cold storage mechanism.

20. The evaporator according to claim 1 , further comprising:

a plurality of tubes in which the refrigerant passes, the plurality of tubes being stacked in a stacking direction; and

a plurality of spaces provided between the plurality of tubes,

the plurality of spaces configured to contain at least one of

a corrugated fin,

the first cold storage mechanism, and

the second cold storage mechanism, wherein

the corrugated fin, the first cold storage mechanism, and the second cold storage mechanism are arranged along the stacking direction with a sequential repeating pattern of at least one of the first cold storage mechanism, the corrugated fin, and the second cold storage mechanism.

21. An evaporator that cools air by heat exchange with a refrigerant passing through an inside of the evaporator, the evaporator comprising:

a plurality of tubes through which the refrigerant passes;

a first cold storage mechanism held between the plurality of tubes and including a first cold storage container housing a first cold storage material that decreases in temperature by a heat exchange with the refrigerant; and

a second cold storage mechanism held between the plurality of tubes and including a second cold storage container housing a second cold storage material that decreases in temperature by a heat exchange with the refrigerant, wherein

the second cold storage mechanism is higher in heat storage-and-radiation performance than the first cold storage mechanism.

22. An evaporator that cools air by heat exchange with a refrigerant passing through an inside of the evaporator, the evaporator comprising:

a first cold storage mechanism including a first cold storage container housing a first cold storage material that decreases in temperature by a heat exchange with the refrigerant; and

a second cold storage mechanism including a second cold storage container housing a second cold storage material that decreases in temperature by a heat exchange with the refrigerant, wherein

the second cold storage mechanism is higher in cold heat storage performance than the first cold storage mechanism.

23. An evaporator that cools air by heat exchange with a refrigerant passing through an inside of the evaporator, the evaporator comprising:

a first cold storage mechanism including a first cold storage container housing a first cold storage material that decreases in temperature by a heat exchange with the refrigerant; and

a second cold storage mechanism including a second cold storage container housing a second cold storage material that decreases in temperature by a heat exchange with the refrigerant, wherein

the second cold storage mechanism is higher in cold heat release performance than the first cold storage mechanism.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2017
From: KITOU, YUUSUKE; ABEI, JUN; KAWACHI, NORIHIDE; TORIGOE, EIICHI; CHATANI, SHOTA
To: DENSO CORPORATION
Reel/Frame 043965/0930 →
Priority Claims (2)
JP 2015-092589 · Apr 30, 2015 · national
JP 2016-079306 · Apr 12, 2016 · national
Continuity (1)
Related Publication 20180306525A1 · Oct 25, 2018
Cited By (1)
US 12,292,000