IP Library Granted Patent US 9,757,811
Granted Patent B2
US 9,757,811 · App. 14/346,132 · Granted Sep 12, 2017

Method for treating surface of aluminum heat exchanger

Inventors: Norizumi Matsui (Tokyo, JP); Yuko Wada (Tokyo, JP); Akihiro Mizuno (Tokyo, JP); Junsuke Hokka (Tokyo, JP)
Assignee: Nippon Paint Surf Chemicals Co., Ltd.
B23K1/0012B23P15/26C23C22/44C23C22/73C23C22/83F28F19/02F28F21/084B05D2202/25C23C2222/20F28F2265/22Y10T29/49393
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Quick Facts
Patent No.
US 9,757,811
App. No.
14/346,132
Granted
Sep 12, 2017
Kind
B2
Abstract

A surface treatment method capable of imparting exceptional corrosion resistance and moisture resistance to an NB heat exchanger. The method includes subjecting an NB heat exchanger to a chemical conversion treatment to form a chemical conversion film on the surface thereof using a chemical conversion treatment agent that contains zirconium and/or titanium in a total amount of 5-5,000 ppm by weight, vanadium in an amount of 10-1,000 ppm by weight, and has a pH of 2-6; bringing the NB heat exchanger on whose surface the chemical conversion film is formed into contact with a hydrophilization agent containing a hydrophilic resin and a guanidine compound and/or a salt thereof; and baking the NB heat exchanger subjected to the contacting process, whereby a hydrophilic film is formed on the surface thereof.

Claims (25)

1. A surface treatment method for an aluminum heat exchanger which is subjected to flux brazing by employing a Nocolok brazing process, comprising:

(a) forming a chemical conversion film on a surface of the aluminum heat exchanger by subjecting the aluminum heat exchanger to a chemical conversion treatment using a chemical conversion treatment agent including zirconium, titanium, and having a pH of 2 to 6, wherein an amount of the zirconium relative to the total amount of the chemical conversion treatment agent is 5 to 3,000 mass ppm, an amount of the titanium relative to the total amount of the chemical conversion treatment agent is 10 to 500 mass ppm, and an amount of the vanadium relative to the total amount of the chemical conversion treatment agent is 10 to 500 mass ppm;

(b) bringing the aluminum heat exchanger in which the chemical conversion film is formed on the surface thereof into contact with a hydrophilization treatment agent including a hydrophilic resin, at least one of a guanidine compound represented by the following general formula (1) and a salt thereof, and at least one of phosphoric acid and condensed phosphoric acid:

 [in the formula (1), Y represents —C(═NH)—(CH 2 ) m , —C(═O)—NH—(CH 2 ) m , or —C(═S)—NH—(CH 2 ) m —;

m represents an integer of 0 to 20; n represents a positive integer; k represents 0 or 1;

X represents hydrogen, an amino group, a hydroxyl group, a methyl group, a phenyl group, a chlorophenyl group, or a methylphenyl(tolyl) group; and

Z represents hydrogen, an amino group, a hydroxyl group, a methyl group, a phenyl group, a chlorophenyl group, a methylphenyl(tolyl) group, or a polymer represented by the following general formula (2) and having a mass average molecular weight of 200 to 1,000,000]:

 [in the formula (2), p represents a positive integer]; and

(c) forming a hydrophilic film on the surface of the aluminum heat exchanger by subjecting the aluminum heat exchanger which is subjected to the contact treatment to a baking treatment.

2. The aluminum heat exchanger surface treatment method according to claim 1 , wherein

the guanidine compound and the salt thereof are a guanidine compound having a biguanide structure represented by the following general formula (4) and a salt thereof:

3. The aluminum heat exchanger surface treatment method according to claim 1 , wherein

a sum of an amount of zirconium and an amount of titanium is 5 to 300 mg/m 2 and an amount of vanadium is 1 to 150 mg/m 2 in the chemical conversion film formed in the step (a); and

a coating amount of the hydrophilic film is 0.05 to 5 g/m 2 .

4. The aluminum heat exchanger surface treatment method according to claim 1 , wherein

the hydrophilic resin in the hydrophilization treatment agent comprises at least one of polyvinyl alcohol and modified polyvinyl alcohol each having a saponification degree of 90% or more.

5. The aluminum heat exchanger surface treatment method according to claim 2 , wherein

a sum of an amount of zirconium and an amount of titanium is 5 to 300 mg/m 2 and an amount of vanadium is 1 to 150 mg/m 2 in the chemical conversion film formed in the step (a); and

a coating amount of the hydrophilic film is 0.05 to 5 g/m 2 .

6. The aluminum heat exchanger surface treatment method according to claim 1 , wherein

the hydrophilic resin in the hydrophilization treatment agent comprises at least one of polyvinyl alcohol and modified polyvinyl alcohol each having a saponification degree of 90% or more.

7. The aluminum heat exchanger surface treatment method according to claim 2 , wherein

the hydrophilic resin in the hydrophilization treatment agent comprises at least one of polyvinyl alcohol and modified polyvinyl alcohol each having a saponification degree of 90% or more.

8. The aluminum heat exchanger surface treatment method according to claim 3 , wherein

the hydrophilic resin in the hydrophilization treatment agent comprises at least one of polyvinyl alcohol and modified polyvinyl alcohol each having a saponification degree of 90% or more.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2017
From: MATSUI, NORIZUMI; WADA, YUKO; MIZUNO, AKIHIRO; HOKKA, JUNSUKE
To: NIPPON PAINT CO., LTD.
Reel/Frame 043208/0137 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 6, 2017
From: NIPPON PAINT HOLDINGS CO., LTD.
To: NIPPON PAINT SURF CHEMICALS CO., LTD.
Reel/Frame 040875/0862 →
CHANGE OF NAME Recorded Jan 4, 2017
From: NIPPON PAINT CO., LTD.
To: NIPPON PAINT HOLDINGS CO., LTD.
Reel/Frame 040844/0727 →
Priority Claims (1)
JP 2011-205809 · Sep 21, 2011 · national
Continuity (1)
Related Publication 20140223740A1 · Aug 14, 2014