IP Library Granted Patent US 10,393,416
Granted Patent B2
US 10,393,416 · App. 15/963,998 · Granted Aug 27, 2019

Evaporator

Inventors: Osamu Kamoshida (Oyama, JP); Naohisa Higashiyama (Oyama, JP); Motoyuki Takagi (Oyama, JP); Takashi Hirayama (Oyama, JP)
Assignee: KEIHIN THERMAL TECHNOLOGY CORPORATION
F25B39/022B60H1/00335F28D1/05391F28F9/0204F28F9/026F28D2021/0085F28F9/0273F28F9/0278
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Quick Facts
Patent No.
US 10,393,416
App. No.
15/963,998
Granted
Aug 27, 2019
Kind
B2
Abstract

An evaporator includes a leeward upper header portion, a leeward lower header portion, a refrigerant inlet, leeward heat exchange tubes, a windward upper header portion, a windward lower header portion, a refrigerant outlet, windward heat exchange tubes, and a resistance divider. The resistance divider has at least one refrigerant passage hole and at least one communication path and is provided in the leeward upper header portion or the leeward lower header portion at a position corresponding to a first row of the leeward heat exchange tubes. The refrigerant inlet is in communication with the first row via the at least one refrigerant passage hole. The refrigerant inlet is in communication with the second row via the at least one communication path.

Claims (21)

1. An evaporator comprising:

a first side;

a second side opposite to the first side;

a leeward upper header portion provided to extend from the first side to the second side in an extending direction;

a leeward lower header portion provided substantially parallel to the leeward upper header portion to extend from the first side to the second side;

a refrigerant inlet which is provided at the leeward upper header portion or the leeward lower header portion on the first side and through which refrigerant is to flow into the evaporator;

leeward heat exchange tubes each of which has a longitudinal direction and which are provided between the leeward upper header portion and the leeward lower header portion to connect the leeward upper header portion and the leeward lower header portion in the longitudinal direction, the leeward heat exchange tubes forming a plurality of leeward tube rows, the plurality of leeward tube rows comprising:

a first row which is furthest among the plurality of leeward tube rows from the refrigerant inlet in the extending direction and in which refrigerant is to flow in a first direction along the longitudinal direction, the first row including first leeward heat exchange tubes among the leeward heat exchange tubes;

a third row which is closest among the plurality of leeward tube rows to the refrigerant inlet in the extending direction and in which refrigerant is to flow in the first direction; and

a fourth row which is provided between the first row and the third row to be connected the first row and the third row and in which refrigerant is to flow in a second direction opposite to the first direction in the longitudinal direction;

a windward upper header portion provided substantially parallel to the leeward upper header portion to extend from the first side to the second side;

a windward lower header portion provided substantially parallel to the leeward lower header portion to extend from the first side to the second side;

a refrigerant outlet which is provided at the windward upper header portion or the windward lower header portion on the first side and through which refrigerant is to flow out of the evaporator;

windward heat exchange tubes each of which extends along the longitudinal direction and which are provided between the windward upper header portion and the windward lower header portion to connect the windward upper header portion and the windward lower header portion in the longitudinal direction, the windward heat exchange tubes forming a plurality of windward tube rows, the plurality of windward tube rows comprising:

a second row which is furthest among the plurality of windward tube rows from the refrigerant outlet in the extending direction and in which refrigerant is to flow in the first direction, the second row including second windward heat exchange tubes among the windward heat exchange tubes; and

a resistance divider provided in the leeward upper header portion or the leeward lower header portion at a position corresponding to the first row, the resistance divider comprising:

a first wall provided between the refrigerant inlet and the first row and having at least one refrigerant passage hole via which the refrigerant inlet is in communication with the first row; and

a second wall provided between the refrigerant inlet and the second row and having at least one communication path via which the refrigerant inlet is in communication with the second row.

2. The evaporator according to claim 1 , wherein the resistance divider includes a flow cutoff member to prevent refrigerant flowing from the refrigerant inlet to the first row without via the at least one refrigerant passage hole.

3. The evaporator according to claim 1 , wherein a sectional area of the at least one communication path is larger than a sectional area of the at least one refrigerant passage hole.

4. The evaporator according to claim 1 , wherein the refrigerant inlet is provided at the leeward upper header portion on the first side, and the refrigerant outlet is provided at the windward upper header portion on the first side.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 3, 2022
From: MAHLE BEHR THERMAL SYSTEMS (JAPAN) COMPANY LIMITED
To: MAHLE INTERNATIONAL GMBH
Reel/Frame 058956/0648 →
CHANGE OF NAME Recorded Aug 30, 2021
From: KEIHIN THERMAL TECHNOLOGY CORPORATION
To: MAHLE BEHR THERMAL SYSTEMS (JAPAN) COMPANY LIMITED
Reel/Frame 057364/0482 →
Priority Claims (3)
JP 2010-134100 · Jun 11, 2010 · national
JP 2010-172038 · Jul 30, 2010 · national
JP 2011-090845 · Apr 15, 2011 · national
Continuity (2)
Division 13067399 · May 31, 2011
Related Publication 20180245827A1 · Aug 30, 2018