IP Library Patent Application 10644217
Patent Application
App. No. 10/644,217

Copper alloy having excellent corrosion cracking resistance and dezincing resistance, and method for producing same

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Patent No.
US None
App. No.
10/644,217
Abstract

A copper alloy having an excellent corrosion cracking resistance and an excellent dezincing resistance consists of: 58 to 66 wt % of copper (Cu); 0.1 to 0.8 wt % of Sn; 0.01 to 0.5 wt % of Si; at least one of 0.3 to 3.5 wt % of lead (Pb), 0.3 to 3.0 wt % of bismuth (Bi), 0.02 to 0.15 wt % of phosphorus (P), 0.02 to 3.0 wt % of nickel (Ni) and 0.02 to 0.6 wt % of iron (Fe) if necessary; and the balance being zinc (Zn) and unavoidable impurities, wherein the proportion of an alpha phase is 80 vol % or more. The apparent content of zinc (Zn) in the copper alloy is in the range of from 34 to 39 wt %.

Claims (24)

1 . A copper alloy comprising 58 to 66 wt % of copper, 0.1 to 0.8 wt % of tin, 0.01 to 0.5 wt % of silicon, and the balance being zinc and unavoidable impurities, wherein a proportion of an alpha phase is 80 vol % or more.

2 . A copper alloy as set forth in claim 1 , wherein an apparent content B′ of zinc in said copper alloy is in the range of from 34 to 39 wt %, said apparent content B′ of zinc being expressed by the following expression:

B ′=[( B+t 1 q 1 +t 2 q 2 )/( A+B+t 1 q 1 +t 2 q 2 )]×100

wherein A denotes the content (wt %) of copper and B denotes the content (wt %) of zinc, t 1 and t 2 denoting zinc equivalents of tin and silicon, respectively (t 1 =2.0, t 2 =10.0), and q 1 and q 2 denoting the contents (wt %) of tin and silicon, respectively.

3 . A copper alloy as set forth in claim 1 , which further contains at least one of 0.3 to 3.5 wt % of lead and 0.3 to 3.0 wt % of bismuth.

4 . A copper alloy as set forth in claim 1 or 3 , which further contains at least one of 0.02 to 0.15 wt % of phosphorus, 0.02 to 3.0 wt % of nickel, and 0.02 to 0.6 wt % of iron, the total amount thereof being in the range of from 0.02 to 3.0 wt %.

5 . A copper alloy as set forth in claim 4 , wherein an apparent content B′ of zinc in said copper alloy is in the range of from 34 to 39 wt %, said apparent content B′ of zinc being expressed by the following expression:

B ′=[( B+t 1 q 1 +t 2 q 2 +t 3 q 3 +t 4 q 4 )/( A+B+t 1 q 1 +t 2 q 2 +t 3 q 3 +t 4 q 4 )]×100

wherein A denotes the content (wt %) of copper and B denotes the content (wt %) of zinc, t 1 , t 2 , t 3 and t 4 denoting zinc equivalents of tin, silicon, nickel and iron, respectively (t 1 =2.0, t 2 =10.0, t 3 =−1.3, t 4 =0.9), and q 1 , q 2 , q 3 and q 4 denoting the contents (wt %) of tin, silicon, nickel and iron, respectively.

6 . A method for producing a copper alloy, said method comprising the steps of:

preparing raw materials of a copper alloy comprising 58 to 66 wt % of copper, 0.1 to 0.8 wt % of tin, 0.01 to 0.5 wt % of silicon, and the balance being zinc and unavoidable impurities;

casting the raw materials to form an ingot;

hot working said ingot;

cold or hot working the hot worked ingot;

annealing the cold or hot worked ingot at a temperature of 300 to 600° C. for two minutes to five hours; and

cooling the annealed ingot at a cooling rate of 0.2 to 10° C./sec.

7 . A method for producing a copper alloy as set forth in claim 6 , wherein an apparent content B′ of zinc in said copper alloy is in the range of from 34 to 39 wt %, said apparent content B′ of zinc being expressed by the following expression:

B ′=[( B+t 1 q 1 +t 2 q 2 )/( A+B+t 1 q 1 +t 2 q 2 )]×100

wherein A denotes the content (wt %) of copper and B denotes the content (wt %) of zinc, t 1 and t 2 denoting zinc equivalents of tin and silicon, respectively (t 1 =2.0, t 2 =10.0), and q 1 and q 2 denoting the contents (wt %) of tin and silicon, respectively.

8 . A method for producing a copper alloy as set forth in claim 6 , wherein said raw materials further contain at least one of 0.3 to 3.5 wt % of lead and 0.3 to 3.0 wt % of bismuth.

9 . A method for producing a copper alloy as set forth in claim 6 or 8 , wherein said raw materials further contain at least one of 0.02 to 0.15 wt % of phosphorus, 0.02 to 3.0 wt % of nickel, and 0.02 to 0.6 wt % of iron, the total amount thereof being in the range of from 0.02 to 3.0 wt %.

10 . A method for producing a copper alloy as set forth in claim 9 , wherein an apparent content B′ of zinc in said copper alloy is in the range of from 34 to 39 wt %, said apparent content B′ of zinc being expressed by the following expression:

B ′=[( B+t 1 q 1 +t 2 q 2 +t 3 q 3 +t 4 q 4 )/( A+B+t 1 q 1 +t 2 q 2 +t 3 q 3 +t 4 q 4 )]×100

wherein A denotes the content (wt %) of copper and B denotes the content (wt %) of zinc, t 1 , t 2 , t 3 and t 4 denoting zinc equivalents of tin, silicon, nickel and iron, respectively (t 1 =2.0, t 2 =10.0, t 3 =−1.3, t 4 =0.9), and q 1 , q 2 , q 3 and q 4 denoting the contents (wt %) of tin, silicon, nickel and iron, respectively.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2008
From: DOWA HOLDINGS CO., LTD.
To: DOWA METALTECH CO., LTD.
Reel/Frame 020354/0632 →
CHANGE OF NAME Recorded Nov 5, 2007
From: DOWA MINING CO., LTD.
To: DOWA HOLDINGS CO., LTD.
Reel/Frame 020121/0161 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2003
From: YAMAGISHI, YOSHINORI; DONG, SHU-XIN
To: DOWA MINING CO., LTD.
Reel/Frame 014416/0451 →