Claims
- 1. A martensitic stainless steel comprising C: 0.01-0.1% and Cr: 9-15% in mass %,
wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 111γ is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 2. A martensitic stainless steel comprising C: 0.01-0.1%, Si: 0.05-1%, Mn: 0.05-1.5%, P: not more than 0.03%, S: not more than 0.01%, Cr: 9-15%, Ni: 0.1-7%, Al: not more than 0.05% and N: 0.1% in mass %, the residual being Fe and impurities,
wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 11165 is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 3. A martensitic stainless steel comprising C: 0.01-0.1%, Si: 0.05-1%, Mn: 0.05-1.5%, P: not more than 0.03%, S: not more than 0.01%, Cr: 9-15%, Ni: 0.1-7%, Al: not more than 0.05% and N: 0.1%, and further Cu: 0.05-4% in mass %, the residual being Fe and impurities,
wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 111γ is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 4. A martensitic stainless steel comprising C: 0.01-0.1%, Si: 0.05-1%, Mn: 0.05-1.5%, P: not more than 0.03%, S: not more than 0.01%, Cr: 9-15%, Ni: 0.1-7%, Al: not more than 0.05% and N: 0.1%, and further Mo: 0.05-3% in mass %, the residual being Fe and impurities,
wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 111γ is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 5. A martensitic stainless steel comprising C: 0.01-0.1%, Si: 0.05-1%, Mn: 0.05-1.5%, P: not more than 0.03%, S: not more than 0.01%, Cr: 9 15%, Ni: 0.1-7%, Al: not more than 0.05% and N: 0.1%, and further Cu: 0.04-4% and Mo: 0.05-3% in mass %, the residual being Fe and impurities,
wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 111γ is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 6. A martensitic stainless steel comprising C; 0.01-0.1%, Si: 0.05-1%, Mn: 0.05-1.5%, P: not more than 0.03%, S: not more than 0.01%, Cr: 9-15%, Ni: 0.1-7%, Al: not more than 0.05% and N: not more than 0.1% and further one or more of the below-described Group A in mass %, the residual being Fe and impurities,
Group A; Ti: 0.005-0.5%, V: 0.005-0.5% and Nb: 0.005-0.5%, wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 111γ is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 7. A martensitic stainless steel comprising C: 0.01-0.1%, Si: 0.05-1%, Mn: 0.05-1.5%, P: not more than 0.03%, S: not more than 0.01%, Cr: 9-15%, Ni: 0.1-7%, Al: not more than 0.05% and N: not more than 0.1% and further Cu: 0.05-4% and one or more of the below-described Group A in mass %, the residual being Fe and impurities,
Group A; Ti: 0.005-0.5%, V: 0.005-0.5% and Nb: 0.005-0.5%, wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 111γ is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 8. A martensitic stainless steel comprising C: 0.01-0.1%, Si: 0.05-1%, Mn: 0.05-1.5%, P: not more than 0.03%, S: not more than 0.01%, Cr: 9-15%, Ni: 0.1-7%, Al: not more than 0.05% and N: not more than 0.1% and further Mo: 0.05-3% and one or more of the below-described Group A in mass %, the residual being Fe and impurities,
Group A; Ti: 0.005-0.5%, V: 0.005-0.5% and Nb: 0.005-0.5%, wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 111γ is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 9. A martensitic stainless steel comprising C: 0.01-0.1%, Si: 0.05-1%, Mn: 0.05-1.5%, P: not more than 0.03%, S: not more than 0.01%, Cr: 9-15%, Ni: 0.1-7%, Al: not more than 0.05% and N: not more than 0.1% and further Cu: 0.05-4%, Mo: 0.05-3% and one or more of the below-described Group A in mass %, the residual being Fe and impurities,
Group A; Ti: 0.005-0.5%, V: 0.005-0.5% and Nb: 0.005-0.5%, wherein the thickness of the retained austenite phase in the steel is not more than 100 nm, and wherein the X-ray integral intensities 111γ and 110α satisfy the following formula (a);0.005≦111γ/(111γ+110α)≦0.05 (a) where 111γ is the X-ray integral intensity of austenite phase (111) plane and 110α is the X-ray intensity of martensite phase (110) plane.
- 10. A martensitic stainless steel according to claim 2, further comprising one or more of the below-described Group B in mass %,
Group B; B: 0.0002-0.005%, Ca: 0.0003-0.005%, Mg: 0.0003-0.005% and rare earth elements: 0.0003-0.005%.
- 11. A martensitic stainless steel according to claim 3, further comprising one or more of the below-described Group B in mass %,
Group B; B: 0.0002-0.005%, Ca: 0.0003-0.005%, Mg: 0.0003-0.005% and rare earth elements: 0.0003-0.005%.
- 12. A martensitic stainless steel according to claim 4, further comprising one or more of the below-described Group B in mass %,
Group B; B: 0.0002-0.005%, Ca: 0.0003-0.005%, Mg: 0.0003-0.005% and rare earth elements: 0.0003-0.005%.
- 13. A martensitic stainless steel according to claim 5, further comprising one or more of the below-described Group B in mass %,
Group B; B: 0.0002-0.005%, Ca: 0.0003-0.005%, Mg: 0.0003-0.005% and rare earth elements: 0.0003-0.005%.
- 14. A martensitic stainless steel according to claim 6, further comprising one or more of the below-described Group B in mass %,
Group B; B: 0.0002-0.005%, Ca: 0.0003-0.005%, Mg: 0.0003-0.005% and rare earth elements: 0.0003-0.005%.
- 15. A martensitic stainless steel according to claim 7, further comprising one or more of the below-described Group B in mass %,
Group B; B: 0.0002-0.005%, Ca: 0.0003-0.005%, Mg: 0.0003-0.005% and rare earth elements: 0.0003-0.005%.
- 16. A martensitic stainless steel according to claim 8, further comprising one or more of the below-described Group B in mass %,
Group B; B: 0.0002-0.005%, Ca: 0.0003-0.005%, Mg: 0.0003-0.005% and rare earth elements: 0.0003-0.005%.
- 17. A martensitic stainless steel according to claim 9, further comprising one or more of the below-described Group B in mass %,
Group B; B: 0.0002-0.005%, Ca: 0.0003-0.005%, Mg: 0.0003-0.005% and rare earth elements: 0.0003-0.005%.
- 18. A method for manufacturing a martensitic stainless steel according to claim 1, which comprises steps of heating up said steel to a temperature of Ac3 point or more, and then cooling said steel from 800° C. to 400° C. at a cooling rate of not less than 0.08° C./sec; and further cooling down said steel to 150° C. at a cooling rate of not more than 1° C./sec.
- 19. A method for manufacturing a martensitic stainless steel according to claim 2, which comprises steps of heating said steel to a temperature of Ac3 point or more, and then cooling said steel from 800° C. to 400° C. at a cooling rate of not less than 0.08° C./sec; and further cooling down said steel to 150° C. at a cooling rate of not more than 1° C./sec.
- 20. A method for manufacturing a martensitic stainless steel according to claim 1, which comprises steps of heating up said steel to a temperature of Ac3 point or more and hot-working said steel, and then cooling said steel from 800° C. to 400° C. at a cooling rate of not less than 0.08° C./sec; and further cooling down said steel to 150° C. at a cooling rate of not more than 1° C./sec.
- 21. A method for manufacturing a martensitic stainless steel according to claim 2, which comprises steps of heating said steel to a temperature of Ac3 point or more and hot-working, and then cooling said steel from 800° C. to 400° C. at a cooling rate of not less than 0.08° C./sec; and further cooling down said steel to 150° C. at a cooling rate of not more than 1° C./sec.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2001-322548 |
Oct 2001 |
JP |
|
Parent Case Info
[0001] This application is a continuation of International Patent Application No. PCT/JP02/10394. This PCT application was in English as published under PCT Article 21(2).
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/JP02/10394 |
Oct 2002 |
US |
Child |
10443821 |
May 2003 |
US |