Claims
- 1. A process for producing a re-compacted body, comprising:a preliminary molding step of compacting a metallic powder mixture obtained by blending graphite with an iron-based metal powder to form a preform having a density of not less than 7.3 g/cm3; a provisional sintering step of provisionally sintering the preform at a temperature of 700-1000° C. to form a metallic powder-molded body having a structure in which the graphite remains along a grain boundary of the metal powder; and a re-compaction step of re-compacting the metallic powder-molded body.
- 2. The process as claimed in claim 1, wherein said preliminary molding step further comprises the step of pressing the metallic powder mixture filled in a mold cavity of a forming die, by upper and lower punches,said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller-diameter portions with each other, and either one or both of the upper and lower punches having a notch at an outer circumferential periphery of an end surface thereof facing the mold cavity to increase a volume of the mold cavity.
- 3. The process as claimed in claim 1 or claim 2, wherein the amount of the graphite blended with the metal powder is 0.3% by weight or more.
- 4. A process for producing a sintered body, comprising:a preliminary molding step of compacting a metallic powder mixture obtained by blending graphite with an iron-based metal powder to form a preform having a density of not less than 7.3 g/cm3; a provisional sintering step of provisionally sintering the preform at a temperature of 700-1000° C. to form a metallic powder-molded body having a structure in which the graphite remains along a grain boundary of the metal powder; a re-compaction step of re-compacting the metallic powder-molded body to form a re-compacted body; and a re-sintering step of re-sintering the re-compacted body.
- 5. The process as claimed in at least certain claims, wherein said preliminary molding step further comprises the step of pressing the metallic powder mixture filled in a mold cavity of a forming die, by upper and lower punches,said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller-diameter portions with each other, and either one or both of the upper and lower punches having a notch at an outer circumferential periphery of an end surface thereof facing the mold cavity to increase a volume of the mold cavity.
- 6. The process as claimed in at least certain claims or at least certain claims, wherein the amount of the graphite blended with the metal powder is 0.3% by weight or more.
- 7. A process for producing a sintered body, comprising:a preliminary molding step of compacting a metallic powder mixture obtained by blending graphite with an iron-based metal powder to form a preform having a density of not less than 7.3 g/cm3; a provisional sintering step of provisionally sintering the preform at a temperature of 700-1000° C. to form a metallic powder-molded body having a structure in which the graphite particle remains along a grain boundary of the metal powder; a re-compaction step of re-compacting the metallic powder-molded body to form a re-compacted body; a re-sintering step of re-sintering the re-compacted body to form a sintered body; and a heat treatment step of heat-treating the sintered body.
- 8. The process as claimed in at least certain claims, wherein said preliminary molding step further comprises the step of pressing the metallic powder mixture filled in a mold cavity of a forming die, by upper and lower punches,said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller-diameter portions with each other, and either one or both of the upper and lower punches having a notch at an outer circumferential periphery of an end surface thereof facing the mold cavity to increase a volume of the mold cavity.
- 9. The process as claimed in claim 7 or claim 8, wherein the amount of the graphite blended with the metal powder is 0.3% by weight or more.
- 10. A process for producing a re-compacted body, comprising:a preliminary molding step of compacting a metallic powder mixture comprising iron-based metal powder and graphite to form a preform having a density of not less than 7.3 g/cm3; a provisional sintering step of provisionally sintering the preform at a temperature of 700-1000° C. to form a metallic powder-molded body having a structure in which the graphite remains along a grain boundary of the metal powder; and a re-compaction step of re-compacting the metallic powder-molded body.
- 11. A process for producing a sintered body, comprising:a preliminary molding step of compacting a metallic powder mixture comprising iron-based metal powder and graphite to form a preform having a density of not less than 7.3 g/cm3; a provisional sintering step of provisionally sintering the preform at a temperature of 700-1000° C. to form a metallic powder-molded body having a structure in which the graphite remains along a grain boundary of the metal powder; a re-compaction step of re-compacting the metallic powder-molded body to form a re-compacted body; and a re-sintering step of re-sintering the re-compacted body.
- 12. A process for producing a sintered body, comprising:a preliminary molding step of compacting a metallic powder mixture comprising iron-based metal powder and graphite to form a preform having a density of not less than 7.3g/cm3; a provisional sintering step of provisionally sintered the preform at a temperature of 700-1000° C to form a metallic powder-molded body having a structure in which the graphite remains along a grain boundary of the metal powder; a re-compaction step of re-compacting the metallic powder-molded body to form a re-compacted body; and a re-sintering step of re-sintering the re-compacted body to form a sintered body; and a heat treatment step of heat-treating the sintered body.
- 13. A process for producing a re-compacted body, comprising the steps of:forming a preform using a device comprising a forming die having a mold cavity to be filled with the metallic powder mixture, and upper and lower punches inserted into the forming die to press the metallic powder mixture, said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller-diameter portions with each other, and either one or both of the upper and lower punches having a notch at an end surface thereof facing the mold cavity to increase a volume of the mold cavity; provisionally sintering the preform at a temperature of 700-1000° C. to form a metallic powder-molded body, wherein said metallic powder mixture is an iron-based alloy steel powder containing at least one alloy element selected from the group consisting of molybdenum (Mo), nickel (Ni), manganese (Mn), copper (Cu), chromium (Cr), tungsten (W), vanadium (V), cobalt (Co) and the like, which element is capable of forming a solid solution with a base material of the metal powder to enhance mechanical properties such as strength and hardenability, or capable of forming a precipitate such as carbide to enhance mechanical properties such as strength and hardness, said metallic powder-molded body, when being provisionally sintered, having a structure in which the graphite remains along a grain boundary of the metal powder and which contains substantially no precipitate such as carbides of iron or the alloy elements; and re-compacting the metallic powder-molded body to form a re-compacted body.
- 14. A process for producing a sintered body, comprising the steps of:forming a preform using a device comprising a forming die having a mold cavity to be filled with the metallic powder mixture, and upper and lower punches inserted into the forming die to press the metallic powder mixture, said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller-diameter portions with each other, and either one or both of the upper and lower punches having a notch at an end surface thereof facing the mold cavity to increase a volume of the mold cavity; provisionally sintering the preform at a temperature of 700-1000° C. to form a metallic powder-molded body, wherein said metallic powder mixture is an iron-based alloy steel powder containing at least one alloy element selected from the group consisting of molybdenum (Mo), nickel (Ni), manganese (Mn), copper (Cu), chromium (Cr), tungsten (W), vanadium (V), cobalt (Co) and the like, which element is capable of forming a solid solution with a base material of the metal powder to enhance mechanical properties such as strength and hardenability, or capable of forming a precipitate such as carbide to enhance mechanical properties such as strength and hardness, said metallic powder-molded body, when being provisionally sintered, having a structure in which the graphite remains along a grain boundary of the metal powder and which contains substantially no precipitate such as carbides of iron or the alloy elements; re-compacting the metallic powder-molded body to form a re-compacted body; and re-sintering the re-compacted body to form the sintered body.
- 15. A process for producing a re-compacted body, comprising the steps of:forming a preform using a device comprising a forming die having a mold cavity to be filled with the metallic powder mixture, and upper and lower punches inserted into the forming die to press the metallic powder mixture, said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller-diameter portions with each other, and either one or both of the upper and lower punches having a notch at an end surface thereof facing the mold cavity to increase a volume of the mold cavity; provisionally sintering the preform at a temperature of 700-1000° C to form a metallic powder-molded body, said metallic powder-molded body comprising a compacted metallic powder mixture, wherein said metallic powder mixture is obtained by diffusing and depositing a powder containing as a main component, an alloy element selected from the group consisting of molybdenum (Mo), nickel (Ni), manganese (Mn), copper (Cu), chromium (Cr), tungsten (W), vanadium (V), cobalt (Co) and the like, which element is capable of forming a solid solution with a base material of the metal powder to enhance mechanical properties such as strength and hardenability, or capable of forming a precipitate such as carbide to enhance mechanical properties such as strength and hardness, onto said iron-based metal powder, said metallic powder-molded body, when being provisionally sintered, having a structure in which the graphite remains along a grain boundary of the metal powder and which contains substantially no precipitate such as carbides of iron or the alloy elements; and re-compacting the metallic powder-molded body to form a re-compacted body.
- 16. A process for producing a re-compacted body, comprising the steps of:forming a preform using a device comprising a forming die having a mold cavity to be filled with the metallic powder mixture, and upper and lower punches inserted into the forming die to press the metallic powder mixture, said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller-diameter portions with each other, and either one or both of the upper and lower punches having a notch at an end surface thereof facing the mold cavity to increase a volume of the mold cavity; provisionally sintering the preform at a temperature of 700-1000° C to form a metallic powder-molded body, said metallic powder-molded body comprising a compacted metallic powder mixture, wherein said metallic powder mixture is obtained by blending a powder containing as a main component, an alloy element selected from the group consisting of molybdenum (Mo), nickel (Ni), manganese (Mn), copper (Cu), chromium (Cr), tungsten (W), vanadium (V), cobalt (Co) and the like, which element is capable of forming a solid solution with a base material of the metal powder to enchance mechanical properties such as strength and hardenability, or properties such as strength and hardness, with the iron-based metal powder, said metallic powder-molded body, when being provisionally sintered, having a structure in which the graphite remains along a grain boundary of the metal powder and which contains substantially no precipitate such as carbides of iron or the alloy elements; and re-compacting the metallic powder-molded body to form a re-compacted body.
- 17. A process for producing a sintered body, comprising the steps of:forming a preform using a device comprising a forming die having a mold cavity to be filled with the metallic powder mixture, and upper and lower punches inserted into the forming die to press the metallic powder mixture, said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller- diameter portions with each other, and either one or both of the upper and lower punches having a notch at an end surface thereof facing the mold cavity to increase a volume of the mold cavity; provisionally sintering the preform at a temperature of 700-1000° C to form a metallic powder-molded body, said metallic powder-molded body comprising a compacted metallic powder mixture, wherein said metallic powder mixture is obtained by diffusing and depositing a powder containing as a main component, an alloy element selected from the group consisting of molybdenum (Mo), nickel (Ni), manganese (Mn), copper (Cu), chromium (Cr), tungsten (W), vanadium (V), cobalt (Co) and the like, which element is cabable of forming a solid solution with a base material of the metal powder to enhance mechanical properties such as strength and hardenabity, or capable of forming a precipitate such as carbide to enhance mechanical properties such as strength and hardness, onto said iron-based metal powder, said metallic powder-molded body, when being provisionally sintered, having a structure in which the graphite remains along a grain boundary of the metal powder and which contains substantially no precipitate such as carbides of iron or the alloy elements; re-compacting the metallic powder-molded body to form a re-compacted body; and re-sintering the re-compacted body to form the sintered body.
- 18. A process for producing a sintered body, comprising the steps of:forming a preform using a device comprising a forming die having a mold cavity to be filled with the metallic powder mixture, and upper and lower punches inserted into the forming die to press the metallic powder mixture, said mold cavity being formed with a greater-diameter portion into which the upper punch is inserted, a smaller-diameter portion into which the the lower punch is inserted, and a tapered portion connecting the greater-diameter and smaller-diameter portions with each other, and either one or both of the upper and lower punches having a notch at an end surface thereof facing the mold cavity to increase a volume of the mold cavity; provisionalyy sintering the preform at a temperature of 700-1000° C to form a metallic powder-molded body, said metallic powder-molded body comprising a compacted metallic powder mixture, wherein said metallic powder mixture is obtained by blending a powder containing as a main component, an alloy element selected from the group consisting of molybdenum (Mo), nickel (Ni), manganese (Mn), copper (Cu), chromium (Cr), tungsten (W), vanadium (V), cobalt (Co) and the like, which element is capable of forming a solid solution with a base material of the metal powder to enhance mechanical properties such as strength and hardenability, or capable of forming a precipitate such as carbide to enhance mechanical properties such as strength and hardness, with the iron-based metal powder, said metallic powder-molded body, when being provisionally sintered, having a structure in which the graphite remains along a grain boundary of the metal powder and which contains substantially no precipitate such as carbides of iron or the alloy elements; re-compacting the metallic powder-molded body to form a re-compacted body; and re-sintering the re-compacted body to form the sintered body.
Priority Claims (2)
Number |
Date |
Country |
Kind |
11-109056 |
Apr 1999 |
JP |
|
11-110073 |
Apr 1999 |
JP |
|
Parent Case Info
This application is a 371 of PCT/JP00/01615 filed Mar. 17, 2000 which claims Priority to Japan 11-110073 filed Apr. 16, 1999 and Japan 11-109056 filed Apr. 16, 1999.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/JP00/01615 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO00/62960 |
10/26/2000 |
WO |
A |
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GB |
1-123005 |
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JP |
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JP |
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Entry |
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