IP Library Granted Patent US 9,364,913
Granted Patent B2
US 9,364,913 · App. 14/264,432 · Granted Jun 14, 2016

Method for brazing sheet material and heat exchanger

Inventors: Shin Takewaka (Takahama, JP); Shogo Yamada (Nagoya, JP); Shumpei Ozawa (Narashino, JP); Tohru Nagasawa (Kusatsu, JP); Haruhiko Matsushita (Kyoto, JP); Yasunaga Itoh (Tokyo, JP); Tomoki Yamayoshi (Tokyo, JP)
Assignees: DENSO CORPORATION; Chiba Institute of Technology; Canon Machinery Inc.; UACJ Corporation
B23K1/0012B23K1/008B23K1/012B23K1/19B23K1/20B23K35/00B23K35/004B23K35/0222B23K35/286B23K35/38C22C21/02F28D1/0308F28F3/025F28F21/089B23K2201/14B23K2203/10F28F2275/04Y10T428/12764
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Quick Facts
Patent No.
US 9,364,913
App. No.
14/264,432
Granted
Jun 14, 2016
Kind
B2
Abstract

In a method for brazing a sheet material without use of flux, an inert gas is firstly introduced into an oxygen pump to reduce an oxygen partial pressure in the inert gas to 1×10 −10 Pa or less, and the sheet material is heated in a brazing furnace in an atmosphere of the inert gas discharged from the oxygen pump. A core alloy of the sheet material or a brazing filler alloy cladded to a surface of the core alloy contains Mg. Both the core alloy and the brazing filler alloy may contain Mg. Accordingly, brazability of the sheet material is sufficiently improved.

Claims (38)

1. A method for manufacturing a heat exchanger that includes sheet materials and a flow passage through which a refrigerant passes, the method comprising:

stacking the sheet materials;

brazing the sheet materials without use of flux, each sheet material including (i) a core alloy containing Al as a major component, more than 0 mass % and less than or equal to 1.8 mass % of Mn, and unavoidable impurities, and (ii) a brazing filler alloy cladded to a surface of the core alloy, the brazing filler alloy containing Al as a major component, 0.1 to 1.2 mass % of Mg, 4 to 13 mass % of Si, 0.01 to 0.15 mass % of Bi, and unavoidable impurities; or

each sheet material including (i) a core alloy containing Al as a major component, more than 0 mass % and less than or equal to 1.8 mass % of Mn, 0.3 to 1.3 mass % of Mg, and unavoidable impurities, and (ii) a brazing filler alloy cladded to a surface of the core alloy, the brazing filler alloy containing Al as a major component, 0.1 to 1.2 mass % of Mg, 4 to 13 mass % of Si, and unavoidable impurities; and

producing a fillet length of more than or equal to 30 mm, wherein

the brazing of the sheet materials includes:

reducing a partial pressure of oxygen contained in an inert gas; and

joining both side end parts of each sheet material, respectively, to both side end parts of adjacent sheet material to provide the flow passage between the sheet materials in an atmosphere of the inert gas,

the reducing of the partial pressure of oxygen includes:

introducing the inert gas into an oxygen pump provided with a solid electrolyte having an oxygen ion conductivity; and

applying a voltage to the solid electrolyte to reduce the partial pressure of oxygen to 1×10 −10 Pa or less, and

the joining of the both side end parts of the sheet materials includes:

introducing the inert gas from the oxygen pump into a brazing furnace; and

heating the sheet materials in the atmosphere of the inert gas in the brazing furnace.

2. The method according to claim 1 , wherein the reducing of the partial pressure of oxygen and the joining of the sheet materials are performed simultaneously by circulating the inert gas in a gas circulation path provided between the oxygen pump and the brazing furnace.

3. A method for manufacturing a heat exchanger that includes sheet materials and a flow passage through which a refrigerant passes, the method comprising:

stacking the sheet materials;

brazing the sheet materials without use of flux, each sheet material including (i) a core alloy containing Al as a major component, 0.3 to 1.3 mass % of Mg, more than 0 mass % and less than or equal to 1.8 mass % of Mn, and unavoidable impurities, and (ii) a brazing filler alloy cladded to a surface of the core alloy, the brazing filler alloy containing Al as a major component, 4 to 13 mass % of Si, 0.01 to 0.15 mass % of Bi, and unavoidable impurities; or

each sheet material including (i) a core alloy containing Al as a major component, more than 0 mass % and less than or equal to 1.8 mass % of Mn, 0.3 to 1.3 mass % of Mg, and unavoidable impurities, and (ii) a brazing filler alloy cladded to a surface of the core alloy, the brazing filler alloy containing Al as a major component, 0.1 to 1.2 mass % of Mg, 4 to 13 mass % of Si, and unavoidable impurities; and

producing a fillet length of more than or equal to 30 mm, wherein

the brazing of the sheet materials includes:

reducing a partial pressure of oxygen contained in an inert gas, and

joining both side end parts of each sheet material, respectively, to both side end parts of adjacent sheet material to provide the flow passage between the sheet materials in an atmosphere of the inert gas,

the reducing of the partial pressure of oxygen includes:

introducing the inert gas into an oxygen pump provided with a solid electrolyte having an oxygen ion conductivity; and

applying a voltage to the solid electrolyte to reduce the partial pressure of oxygen to 1×10 −10 Pa or less, and

the joining of the both side end parts of the sheet materials includes:

introducing the inert gas from the oxygen pump into a brazing furnace; and

heating the sheet materials in the atmosphere of the inert gas in the brazing furnace.

4. The method according to claim 3 , wherein the reducing of the partial pressure of oxygen and the joining of the sheet materials are performed simultaneously by circulating the inert gas in a gas circulation path provided between the oxygen pump and the brazing furnace.

5. The method according to claim 1 , wherein stacking the sheet materials further comprises stacking three sheets of sheet material and two corrugated fins alternately.

6. The method according to claim 5 , wherein the three sheets of sheet material include two outer sheet materials having side surfaces and a center sheet material having side surfaces interposed between the two outer sheet materials.

7. The method according to claim 6 , wherein brazing the sheet materials further includes cladding both side surfaces of the center sheet material with the brazing filler alloy and cladding only one side surface of each of the two outer sheet materials with the brazing filler alloy.

8. The method according to claim 6 , wherein joining both side end parts of each sheet material further comprises joining both end parts of each of the two outer sheet materials and both end parts of the center sheet material to each other so as to provide two spaces in which the two corrugated fins are accommodated.

9. The method according to claim 3 , wherein stacking the sheet materials further comprises stacking three sheets of sheet material and two corrugated fins alternately.

10. The method according to claim 9 , wherein the three sheets of sheet material include two outer sheet materials having side surfaces and a center sheet material having side surfaces interposed between the two outer sheet materials.

11. The method according to claim 10 , wherein brazing the sheet materials further includes cladding both side surfaces of the center sheet material with the brazing filler alloy and cladding only one side surface of each of the two outer sheet materials with the brazing filler alloy.

12. The method according to claim 10 , wherein joining both side end parts of each sheet material further comprises joining both end parts of each of the two outer sheet materials and both end parts of the center sheet material to each other so as to provide two spaces in which the two corrugated fins are accommodated.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 19, 2024
From: DENSO CORPORATION; UACJ CORPORATION; CHIBA INSTITUTE OF TECHNOLOGY
To: CANON MACHINERY INC.
Reel/Frame 067771/0927 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 29, 2014
From: TAKEWAKA, SHIN; YAMADA, SHOGO; OZAWA, SHUMPEI; NAGASAWA, TOHRU; MATSUSHITA, HARUHIKO; ITOH, YASUNAGA; YAMAYOSHI, TOMOKI
To: DENSO CORPORATION; CHIBA INSTITUTE OF TECHNOLOGY; CANON MACHINERY INC.; UACJ CORPORATION
Reel/Frame 034061/0265 →
Priority Claims (1)
JP 2013-096115 · May 1, 2013 · national
Continuity (1)
Related Publication 20140329109A1 · Nov 6, 2014