Bicycle seat rail manufacturing method
US-2024410042-A1 · Dec 12, 2024 · US
US10329652B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10329652-B2 |
| Application number | US-201615226170-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 2, 2016 |
| Priority date | Mar 11, 2016 |
| Publication date | Jun 25, 2019 |
| Grant date | Jun 25, 2019 |
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A method for producing a metal cylinder includes preparing a metal slug having a surface adjusted so that the crystal grain diameter at a depth of 10 μm from the surface is smaller than that at a depth of 100 μm from the surface, and the crystal grain diameter at a depth of 10 μm from the surface is 30 μm or more and 120 μm or less; and forming a cylinder by impact pressing of the metal slug having the surface as a bottom.
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What is claimed is: 1. A method for producing a metal cylinder, the method comprising: preparing a metal slug having a surface adjusted so that a crystal grain diameter in a direction parallel to the surface at a depth of 10 μm from the surface is smaller than a crystal grain diameter in the direction parallel to the surface at a depth of 100 μm from the surface, and the crystal grain diameter at the depth of 10 μm from the surface is 30 μm or more and 120 μm or less; and forming a cylinder by impact pressing of the metal slug having the surface as a bottom. 2. The method for producing a metal cylinder according to claim 1 , wherein the crystal grain diameter at the depth of 10 μm from the surface is 40 μm or more and 100 μm or less. 3. The method for producing a metal cylinder according to claim 1 , wherein the crystal grain diameter at the depth of 10 μm from the surface is 40 μm or more and 70 μm or less. 4. The method for producing a metal cylinder according to claim 1 , wherein the crystal grain diameter at the depth of 100 μm from the surface of the metal slug is 50 μm or more and 160 μm or less. 5. The method for producing a metal cylinder according to claim 1 , wherein the crystal grain diameter at the depth of 100 μm from the surface of the metal slug is 70 μm or more and 150 μm or less. 6. The method for producing a metal cylinder according to claim 1 , wherein the crystal grain diameter at the depth of 100 μm from the surface of the metal slug is 70 μm or more and 130 μm or less. 7. The method for producing a metal cylinder according to claim 1 , wherein the metal slug contains aluminum. 8. The method for producing a metal cylinder according to claim 1 , wherein the metal slug contains 90.0% by weight or more of aluminum. 9. The method for producing a metal cylinder according to claim 1 , wherein the metal slug contains 93.0% by weight or more of aluminum. 10. The method for producing a metal cylinder according to claim 1 , wherein the metal slug contains 95.0% by weight or more of aluminum. 11. The method for producing a metal cylinder according to claim 1 , wherein the preparing includes shot-peening at least one surface of a metal slug to form a metal slug having the surface adjusted so that the crystal grain diameter at the depth of 10 μm from the surface is smaller than that at the depth of 100 μm from the surface, and the crystal grain diameter at the depth of 10 μm from the surface is 30 μm or more and 120 μm or less. 12. The method for producing a metal cylinder according to claim 1 , further comprising ironing the cylinder after the impact pressing. 13. A method for producing a substrate for an electrophotographic photoreceptor, comprising producing a substrate for an electrophotographic photoreceptor by the method for producing a metal cylinder according to claim 5 . 14. A method for manufacturing an electrophotographic photoreceptor, the method comprising: preparing, as a substrate for an electrophotographic photoreceptor, a metal cylinder produced by the method for producing a metal cylinder according to claim 5 ; and forming a photosensitive layer on the outer peripheral surface of the metal cylinder. 15. The method for producing a metal cylinder according to claim 1 , wherein the crystal grain diameter at the depth of 10 μm from the surface is calculated by drawing a first imaginary line parallel to the surface at the depth of 10 μm and number-averaging lengths of crystals crossing the first imaginary line, and wherein the crystal grain diameter at the depth of 100 μm from the surface is calculated by drawing a second imaginary line parallel to the surface at the depth of 100 μm and number-averaging lengths of crystals crossing the second imaginary line.
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