Aluminum alloy forging material, aluminum alloy forged product and method of producing same
Abstract
Provided is an aluminum alloy forging material having an alloy composition including Cu: 0.30 mass % to 1.0 mass %, Mg: 0.80 mass % to 1.8 mass %, Si: 0.90 mass % to 1.9 mass %, Mn: 0.30 mass % to 1.2 mass %, Fe: 0.20 mass % to 0.65 mass %, Zn: 0.25 mass % or less, Cr: 0.050 mass % to 0.30 mass %, Ti: 0.01 mass % to 0.1 mass %, B: 0.0010 mass % to 0.030 mass %, and Zr: 0.0010 mass % to 0.050 mass %, and having a ratio Fe/Mn of the Fe content to the Mn content (mass ratio) of less than 1.4, and with the remainder being made up of Al and unavoidable impurities, wherein the number density of precipitates containing Mn within a range of 1.5 μm including crystal grain boundaries in an alloy structure after forging is 4 particles/μm2 or less.
Claims
exact text as granted — not AI-modifiedWhat is claimed is:
1 . An aluminum alloy forging material having an alloy composition including Cu in a range of 0.30 mass % or more and 1.0 mass % or less, Mg in a range of 0.80 mass % or more and 1.8 mass % or less, Si in a range of 0.90 mass % or more and 1.9 mass % or less, Mn in a range of 0.30 mass % or more and 1.2 mass % or less, Fe in a range of 0.20 mass % or more and 0.65 mass % or less, Zn in a range of 0.25 mass % or less, Cr in a range of 0.050 mass % or more and 0.30 mass % or less, Ti in a range of 0.01 mass % or more and 0.1 mass % or less, B in a range of 0.0010 mass % or more and 0.030 mass % or less, and Zr in a range of 0.0010 mass % or more and 0.050 mass % or less, and having a ratio Fe/Mn of the Fe content to the Mn content (mass ratio) of less than 1.4, and with the remainder being made up of Al and unavoidable impurities,
wherein the number density of precipitates containing Mn within a range of 1.5 m including crystal grain boundaries in an alloy structure after forging is 4 particles/μm 2 or less.
2 . An aluminum alloy forging material having an alloy composition including Cu in a range of 0.25 mass % or more and 0.55 mass % or less, Mg in a range of 0.85 mass % or more and 1.25 mass % or less, Si in a range of 1.02 mass % or more and 1.4 mass % or less, Mn in a range of 0.55 mass % or more and 1.0 mass % or less, Fe in a range of 0.32 mass % or more and 0.65 mass % or less, Zn in a range of 0.25 mass % or less, Cr in a range of 0.050 mass % or more and 0.30 mass % or less, Ti in a range of 0.01 mass % or more and 0.1 mass % or less, B in a range of 0.0010 mass % or more and 0.030 mass % or less, and Zr in a range of 0.0010 mass % or more and 0.050 mass % or less, and having a ratio Fe/Mn of the Fe content to the Mn content (mass ratio) of 0.3 or more and 1.2 or less, and with the remainder being made up of Al and unavoidable impurities,
wherein the number density of precipitates containing Mn within a range of 1.5 μm including crystal grain boundaries in an alloy structure after forging is 4 particles/μm 2 or less.
3 . An aluminum alloy forging material having an alloy composition including Cu in a range of 0.25 mass % or more and 0.55 mass % or less, Mg in a range of 0.85 mass % or more and 1.25 mass % or less, Si in a range of 1.02 mass % or more and 1.4 mass % or less, Mn in a range of 0.61 mass % or more and 1.0 mass % or less, Fe in a range of 0.32 mass % or more and 0.65 mass % or less, Zn in a range of 0.25 mass % or less, Cr in a range of 0.050 mass % or more and 0.30 mass % or less, Ti in a range of 0.01 mass % or more and 0.1 mass % or less, B in a range of 0.0010 mass % or more and 0.030 mass % or less, and Zr in a range of 0.0010 mass % or more and 0.050 mass % or less, and having a ratio Fe/Mn of the Fe content to the Mn content (mass ratio) of 0.3 or more and 1.2 or less, and with the remainder being made up of Al and unavoidable impurities,
wherein the number density of precipitates containing Mn within a range of 1.5 μm including crystal grain boundaries in an alloy structure after forging is 4 particles/μm 2 or less.
4 . The aluminum alloy forging material according to claim 1 ,
wherein the size of the precipitates containing Mn is 0.2 μm or less.
5 . The aluminum alloy forging material according to claim 2 ,
wherein the size of the precipitates containing Mn is 0.2 μm or less.
6 . The aluminum alloy forging material according to claim 3 ,
wherein the size of the precipitates containing Mn is 0.2 μm or less.
7 . An aluminum alloy forged product having an elongated part and a connecting part and an aluminum alloy composition having an alloy composition including Cu in a range of 0.30 mass % or more and 1.0 mass % or less, Mg in a range of 0.80 mass % or more and 1.8 mass % or less, Si in a range of 0.90 mass % or more and 1.9 mass % or less, Mn in a range of 0.30 mass % or more and 1.2 mass % or less, Fe in a range of 0.20 mass % or more and 0.65 mass % or less, Zn in a range of 0.25 mass % or less, Cr in a range of 0.050 mass % or more and 0.30 mass % or less, Ti in a range of 0.01 mass % or more and 0.1 mass % or less, B in a range of 0.0010 mass % or more and 0.030 mass % or less, and Zr in a range of 0.0010 mass % or more and 0.050 mass % or less, and having a ratio Fe/Mn of the Fe content to the Mn content (mass ratio) of less than 1.4, and with the remainder being made up of Al and unavoidable impurities,
wherein, when the crystal particle size of a central part of the elongated part in a longitudinal direction is S 1 , and the crystal particle size of a boundary part between the elongated part and the connecting part in the longitudinal direction is S 2 , the value of S 1 /S 2 is in a range of 0.7 or more and 1.0 or less.
8 . An aluminum alloy forged product having an elongated part and a connecting part and having an alloy composition including Cu in a range of 0.25 mass % or more and 0.55 mass % or less, Mg in a range of 0.85 mass % or more and 1.25 mass % or less, Si in a range of 1.02 mass % or more and 1.4 mass % or less, Mn in a range of 0.55 mass % or more and 1.0 mass % or less, Fe in a range of 0.32 mass % or more and 0.65 mass % or less, Zn in a range of 0.25 mass % or less, Cr in a range of 0.050 mass % or more and 0.30 mass % or less, Ti in a range of 0.01 mass % or more and 0.1 mass % or less, B in a range of 0.0010 mass % or more and 0.030 mass % or less, and Zr in a range of 0.0010 mass % or more and 0.050 mass % or less, and having a ratio Fe/Mn of the Fe content to the Mn content (mass ratio) of 0.3 or more and 1.2 or less, and with the remainder being made up of Al and unavoidable impurities,
wherein, when the crystal particle size of a central part of the elongated part in a longitudinal direction is S 1 , and the crystal particle size of a boundary part between the elongated part and the connecting part in the longitudinal direction is S 2 , the value of S 1 /S 2 is in a range of 0.7 or more and 1.0 or less.
9 . An aluminum alloy forged product having an elongated part and a connecting part and having an alloy composition including Cu in a range of 0.25 mass % or more and 0.55 mass % or less, Mg in a range of 0.85 mass % or more and 1.25 mass % or less, Si in a range of 1.02 mass % or more and 1.4 mass % or less, Mn in a range of 0.61 mass % or more and 1.0 mass % or less, Fe in a range of 0.32 mass % or more and 0.65 mass % or less, Zn in a range of 0.25 mass % or less, Cr in a range of 0.050 mass % or more and 0.30 mass % or less, Ti in a range of 0.01 mass % or more and 0.1 mass % or less, B in a range of 0.0010 mass % or more and 0.030 mass % or less, and Zr in a range of 0.0010 mass % or more and 0.050 mass % or less, and having a ratio Fe/Mn of the Fe content to the Mn content (mass ratio) of 0.3 or more and 1.2 or less, and with the remainder being made up of Al and unavoidable impurities,
wherein, when the crystal particle size of a central part of the elongated part in a longitudinal direction is S 1 , and the crystal particle size of a boundary part between the elongated part and the connecting part in the longitudinal direction is S 2 , the value of S 1 /S 2 is in a range of 0.7 or more and 1.0 or less.
10 . The aluminum alloy forged product according to claim 7 , which is used for a suspension arm.
11 . The aluminum alloy forged product according to claim 8 , which is used for a suspension arm.
12 . The aluminum alloy forged product according to claim 9 , which is used for a suspension arm.
13 . A method of producing the aluminum alloy forged product according to claim 7 , comprising:
an alloy molten metal forming process in which an aluminum alloy molten metal having the same alloy composition as the aluminum alloy forged product is formed; a casting process in which the aluminum alloy molten metal obtained in the alloy molten metal forming process is cooled and coagulated to form an aluminum alloy cast product; a forging process in which the aluminum alloy cast product subjected to the casting process is forged at a heating temperature of 450° C. or higher and 560° C. or lower; a solution treatment process in which the forged product obtained in the forging process is subjected to a solution treatment in which it is held at a treatment temperature of 530° C. or higher and 560° C. or lower for 0.3 hours or longer and 3 hours or shorter; a quenching treatment process in which, after the solution treatment process is completed, the entire surface of the forged product is brought into contact with quenching water within a range of 5 seconds or longer and 60 seconds or shorter, and quenching is performed in a water tank for 1 minute or longer and 30 minutes or shorter; and an aging treatment process in which the forged product after the quenching treatment process is subjected to an aging treatment at a heating temperature of 170° C. or higher and 210° C. or lower for 0.5 hours or longer and 7 hours or shorter.
14 . The method of producing the aluminum alloy forged product according to claim 13 , further comprising
a homogenization heat treatment process in which the aluminum alloy cast product is subjected to a homogenization heat treatment in which it is held in a temperature range of 370° C. or higher and 560° C. or lower for 2 hours or longer and 10 hours or shorter between the casting process and the forging process.
15 . A method of producing the aluminum alloy forged product according to claim 8 , comprising:
an alloy molten metal forming process in which an aluminum alloy molten metal having the same alloy composition as the aluminum alloy forged product is formed; a casting process in which the aluminum alloy molten metal obtained in the alloy molten metal forming process is cooled and coagulated to form an aluminum alloy cast product; a forging process in which the aluminum alloy cast product subjected to the casting process is forged at a heating temperature of 450° C. or higher and 560° C. or lower; a solution treatment process in which the forged product obtained in the forging process is subjected to a solution treatment in which it is held at a treatment temperature of 530° C. or higher and 560° C. or lower for 0.3 hours or longer and 3 hours or shorter; a quenching treatment process in which, after the solution treatment process is completed, the entire surface of the forged product is brought into contact with quenching water within a range of 5 seconds or longer and 60 seconds or shorter, and quenching is performed in a water tank for 1 minute or longer and 30 minutes or shorter; and an aging treatment process in which the forged product after the quenching treatment process is subjected to an aging treatment at a heating temperature of 170° C. or higher and 210° C. or lower for 0.5 hours or longer and 7 hours or shorter.
16 . The method of producing the aluminum alloy forged product according to claim 15 , further comprising
a homogenization heat treatment process in which the aluminum alloy cast product is subjected to a homogenization heat treatment in which it is held in a temperature range of 370° C. or higher and 560° C. or lower for 2 hours or longer and 10 hours or shorter between the casting process and the forging process.
17 . A method of producing the aluminum alloy forged product according to claim 9 , comprising:
an alloy molten metal forming process in which an aluminum alloy molten metal having the same alloy composition as the aluminum alloy forged product is formed; a casting process in which the aluminum alloy molten metal obtained in the alloy molten metal forming process is cooled and coagulated to form an aluminum alloy cast product; a forging process in which the aluminum alloy cast product subjected to the casting process is forged at a heating temperature of 450° C. or higher and 560° C. or lower; a solution treatment process in which the forged product obtained in the forging process is subjected to a solution treatment in which it is held at a treatment temperature of 530° C. or higher and 560° C. or lower for 0.3 hours or longer and 3 hours or shorter; a quenching treatment process in which, after the solution treatment process is completed, the entire surface of the forged product is brought into contact with quenching water within a range of 5 seconds or longer and 60 seconds or shorter, and quenching is performed in a water tank for 1 minute or longer and 30 minutes or shorter; and an aging treatment process in which the forged product after the quenching treatment process is subjected to an aging treatment at a heating temperature of 170° C. or higher and 210° C. or lower for 0.5 hours or longer and 7 hours or shorter.
18 . The method of producing the aluminum alloy forged product according to claim 17 , further comprising
a homogenization heat treatment process in which the aluminum alloy cast product is subjected to a homogenization heat treatment in which it is held in a temperature range of 370° C. or higher and 560° C. or lower for 2 hours or longer and 10 hours or shorter between the casting process and the forging process.Join the waitlist — get patent alerts
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