IP Library › Granted Patent US 11,136,652
Granted Patent B2
US 11,136,652 · App. 15/212,083 · Granted Oct 5, 2021

Aluminum alloy material and method for producing the same, and aluminum alloy clad material and method for producing the same

Inventors: Wataru Narita (Tokyo, JP); Atsushi Fukumoto (Tokyo, JP)
Assignee: UACJ CORPORATION
C22C21/16B21B1/22B22D7/005B23K1/0012B23K35/0222B23K35/0238B23K35/22B23K35/286B23K35/288C22C21/00C22C21/02C22C21/10C22C21/14C22F1/04C22F1/057F28F9/0226F28F9/18F28F21/084B21B2001/225B21B2003/001B23K2101/14B23K2103/10C22F1/00F28F2275/04
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Quick Facts
Patent No.
US 11,136,652
App. No.
15/212,083
Granted
Oct 5, 2021
Kind
B2
Abstract

An aluminum alloy material comprises: Si: less than 0.2 mass %, Fe: 0.1 to 0.3 mass %, Cu: 1.0 to 2.5 mass %, Mn: 1.0 to 1.6 mass %, and Mg: 0.1 to 1.0 mass %, the balance being Al and incidental impurities. A number density of Al—Mn compound having a circle equivalent diameter of not less than 0.1 μm is not less than 1.0×10 5 mm −2 , and a number density of Al 2 Cu having a circle equivalent diameter of not less than 0.1 μm is not more than 1.0×10 5 mm −2 .

Claims (12)

1. An aluminum alloy clad material comprising: a core material composed of an aluminum alloy material including: Si: greater than 0 and less than 0.2 mass %, Fe: 0.1 to 0.3 mass %, Cu: 1.5 to 2.5 mass %, Mn: 1.0 to 1.6 mass %, and Mg: 0.1 to 1.0 mass %, the balance being Al and incidental impurities, a number density of Al—Mn compound having a circle equivalent diameter of not less than 0.1 μm being not less than 1.0×10 5 mm −2 , a number density of Al 2 Cu having a circle equivalent diameter of not less than 0.1 μm being not more than 1.0×10 5 mm −2 , and wherein the strength after one week of brazing is not less than 250 MPa; and one of a) a brazing material and a sacrificial anode material provided on one face of the core material, or b) the brazing material provided on one face of the core material and a sacrificial anode material provided on another face of the core material, wherein the brazing material consists of an Al—Si alloy consisting of Si: 7.0 to 12.0 mass % with the balance being Al and incidental impurities.

2. An aluminum alloy clad material comprising: a core material composed of an aluminum alloy material including: Si: greater than 0 and less than 0.2 mass %, Fe: 0.1 to 0.3 mass %, Cu: 1.5 to 2.5 mass %, Mn: 1.0 to 1.6 mass %, and Mg: 0.1 to 1.0 mass %, the balance being Al and incidental impurities, a number density of Al—Mn compound having a circle equivalent diameter of not less than 0.1 μm being not less than 1.0×10 5 mm −2 , a number density of Al2Cu having a circle equivalent diameter of not less than 0.1 μm being not more than 1.0×10 5 mm −2 , and wherein the strength after one week of brazing is not less than 250 MPa; and one of a) a brazing material and a sacrificial anode material provided on one face of the core material, or b) the brazing material provided on one face of the core material and a sacrificial anode material provided on another face of the core material, wherein the brazing material is an Al—Si—Cu alloy containing Si: 7.0 to 12.0 mass % and Cu: 1.0 to 2.5 mass % with the balance being Al and incidental impurities.

3. An aluminum alloy clad material comprising: a core material composed of an aluminum alloy material including: Si: greater than 0 and less than 0.2 mass %, Fe: 0.1 to 0.3 mass %, Cu: 1.5 to 2.5 mass %, Mn: 1.0 to 1.6 mass %, and Mg: 0.1 to 1.0 mass %, the balance being Al and incidental impurities, a number density of Al—Mn compound having a circle equivalent diameter of not less than 0.1 μm being not less than 1.0×10 5 mm −2 , a number density of Al 2 Cu having a circle equivalent diameter of not less than 0.1 μm being not more than 1.0×10 5 mm −2 , and wherein the strength after one week of brazing is not less than 250 MPa; and one of a) a brazing material and a sacrificial anode material provided on one face of the core material, or b) the brazing material provided on one face of the core material and a sacrificial anode material provided on another face of the core material, wherein the brazing material is an Al—Si—Cu—Zn alloy containing Si: 7.0 to 12.0 mass %, Cu: 1.0 to 2.5 mass %, and Zn: 0.1 to 3.0 mass % with the balance being Al and incidental impurities.

4. A method for producing an aluminum alloy material according to claim 1 , the method comprising: casting an aluminum alloy; heating an ingot, the heating being performed at 420° C. to 550° C.; after the heating, retaining at 320° C. to 400° C. for a retention time of not more than 6 minutes; and performing a hot rolling process and a cold rolling process on the heated ingot.

5. The method for producing an aluminum alloy material according to claim 4 , further comprising: after the casting, performing a homogenizing process on the ingot at 400° C. to 550° C.

6. The method for producing an aluminum alloy material according to claim 4 , further comprising performing an annealing process at 200 to 320° C. at least either one of during the rolling and after the rolling.

7. The method for producing an aluminum alloy material according to claim 4 , further comprising: after the casting, performing a homogenizing process on the ingot at 400° C. to 550° C.; and performing an annealing process at 200 to 320° C. at least either one of during the rolling and after the rolling.

8. A method for producing the aluminum alloy clad material according to claim 1 , the method comprising: respectively casting an aluminum alloy material to be the core material, and at least one of an aluminum alloy material to be the brazing material and an aluminum alloy material to be the sacrificial anode material;

hot rolling at least one of the cast ingot for brazing material and the cast ingot for sacrificial anode material; combining at least one of the hot rolled brazing material and the hot rolled sacrificial anode material with the ingot for core material to obtain a combined body; heating the combined body, the heating process being performed at 420° C. to 550° C.; after the heating, retaining at 320° C. to 400° C. for a retention time of not more than 6 minutes; hot clad rolling the material; and performing a cold rolling process on the hot-clad-rolled combined body, wherein in the combining, the hot rolled brazing material or the hot rolled sacrificial anode material is brought together with one face of the ingot for core material, or the hot rolled brazing material is brought together with one face of the ingot for core material, and the hot rolled sacrificial anode material is brought together with the other face of the ingot for core material.

9. The method for producing an aluminum alloy clad material according to claim 8 , further comprising: after the casting of the aluminum alloy material to be the core material, performing a homogenizing process of the cast ingot for core material to a homogenizing process at 400° C. to 550° C.

10. The method for producing an aluminum alloy clad material according to claim 8 , further comprising performing an annealing process at 200 to 320° C. at least either one of during the cold rolling and after the cold rolling.

11. The method for producing an aluminum alloy clad material according to claim 8 , further comprising: after the casting of the aluminum alloy material to be the core material, performing a homogenizing process of the cast ingot for core material to a homogenizing process at 400° C. to 550° C.; and an annealing of performing an annealing process at 200 to 320° C. at least either one of during the cold rolling and after the cold rolling.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 11, 2016
From: NARITA, WATARU; FUKUMOTO, ATSUSHI
To: UACJ CORPORATION
Reel/Frame 039411/0940 →
Priority Claims (1)
JP JP2014-006238 · Jan 16, 2014 · national
Continuity (2)
Continuation PCTJP2015050445 · Jan 9, 2015
Related Publication 20160326614A1 · Nov 10, 2016