Claims
- 1. Stamping tool with a structured stamping surface formed of an anodally oxidized surface or covering layer with open hollow chambers created model-free by the anodic oxidation, wherein the stamping surface has a structure formed at least partially by the hollow chambers which have diameters in a nanometer range.
- 2. Stamping tool according to claim 1, wherein the structural width of the stamping surface is 30 to 600 nm.
- 3. Stamping tool according to claim 1, wherein the hollow chambers have opening areas with an average diameter of 10 to 500 nm
- 4. Stamping tool according to claim 1, wherein the hollow chambers have opening areas with an average, at least essentially uniform diameter of 15 to 200 nm.
- 5. Stamping tool according to claim 1, wherein the hollow chambers have a depth which is greater than the average diameter of the hollow chambers.
- 6. Stamping tool according to claim 1, wherein the hollow chambers are conical.
- 7. Stamping tool according to claim 1, wherein the hollow chambers vary at least in one of form, depth, and surface density.
- 8. Stamping tool according to claim 1, wherein the stamping surface comprises both fine and rough structures.
- 9. Stamping tool according to claim 1, wherein the stamping surface is curved.
- 10. Stamping tool according to claim 1, wherein the surface layer or covering layer with the hollow chambers is formed, at least substantially, of a material selected from the group consisting of aluminum oxide, silicon oxide, iron oxide, oxidized steel and titanium oxide.
- 11. Method for producing a stamping tool with a structured stamping surface, comprising the steps of:
oxidizing a surface or covering layer of the stamping tool forming the stamping surface at least partially anodally so as to form model-free open hollow chambers that are at least essentially uniformly shaped and at least essentially evenly distributed over the surface or surface area of the stamping surface.
- 12. Method according to claim 11, wherein the surface or covering layer is oxidized potentiostatically.
- 13. Method according to claim 11, wherein the surface layer or covering layer is oxidized with varying voltage.
- 14. Method according to claim 13, wherein the surface or covering layer is oxidized galvanostatically.
- 15. Method according to claim 11, wherein the surface or covering layer that is oxidized is formed of a material selected from the group consisting of aluminum, silicon, iron, steel and titanium.
- 16. Method according to claim 11, comprising the additional step of modifying the stamping surface at least one of before and after said oxidizing step for producing a rough structure.
- 17. Method for structuring a surface of a work piece in a nanometer range by means of a stamping tool with a structured stamping surface, comprising at least one of pressing and rolling a stamping surface, formed of an anodally oxidized surface or covering layer with open hollow chambers which have diameters in a nanometer range that have been created model-free by anodic oxidation, onto the surface to be structured.
- 18. Method according to claim 17, wherein the surface is first roughly structured in a first step by means of a first stamping tool and then is finely structured by means of a second stamping tool in a second step.
- 19. Method according to claim 18, wherein the surface is finely structured by means of said second stamping tool in said second step with a stamping force that is reduced relative to that applied with said first stamping tool.
- 20. Method according to claim 18, wherein the surface is finely structured by means of said second stamping tool in said second step after hardening of the surface structured by said first step.
- 21. Casting mold with a molding face formed of an anodally oxidized surface or covering layer with open hollow chambers created model-free by the anodic oxidation, wherein the stamping surface has a structure formed at least partially by the hollow chambers which have diameters in a nanometer range.
- 22. Casting mold according to claim 21, wherein the structural width of the molding face is essentially 30 to 600 nm.
- 23. Casting mold according to claim 21, wherein the hollow chambers have opening areas with an average diameter of 10 to 500 nm.
- 24. Casting mold according to claim 21, wherein the hollow chambers have opening areas with an average, at least essentially uniform diameter of 15 to 200 nm.
- 25. Casting mold according to claim 21, wherein the hollow chambers have a depth, which is greater than the average diameter of the hollow chambers.
- 26. Casting mold according to claim 21, wherein the hollow chambers are conical.
- 27. Casting mold according to claim 21, wherein the hollow chambers vary at least in one of form, depth, and surface density.
- 28. Casting mold according to claim 21, wherein the molding face surface comprises both a fine and rough structure.
- 29. Casting mold according to claim 21, wherein the surface or covering layer with the hollow chambers is formed at least substantially of a material selected from the group consisting of aluminum oxide, silicon oxide, iron oxide, oxidized steel and titanium oxide.
- 30. Method for at least partially structuring a surface of a cast work piece by casting a structured molding face of the cast work piece mold using a casting mold having an anodally oxidized surface or covering layer with open hollow chambers created model-free by anodic oxidation.
- 31. Method according to claim 29, wherein the surface or covering layer is formed at least substantially of a material selected from the group consisting of aluminum oxide, silicon oxide, iron oxide, oxidized steel, and titanium oxide.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| 101 54 756.0 |
Nov 2001 |
DE |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of International Patent Application No. PCT/EP02/07240 which designated the United States and of International Patent Application No. PCT/EP01/04650 which designated the United States.