Claims
- 1. A method of manufacturing a high-Cr martensite steel pipe having excellent pitting resistance and overall corrosion resistance, comprising:
- forming a pipe from a steel material comprising C: about 0.03 wt % or less, Si: about 0.5 wt % or less, Mn: about 0.5-3.0 wt %, Cr: about 10.0-14.0 wt %, Ni: about 0.2-2.0 wt %, Cu: about 0.2-0.7 wt %, N: about 0.03 wt % or less and the balance being Fe and incidental impurities, wherein a value X defined by the following formula (1):
- value X=(Cr%)+3(Cu%)-3(C%) (1)
- is about 12.2-14.2;
- austenitizing said pipe at a temperature substantially equal to the A.sub.C3 point or higher;
- quenching said pipe after austenitizing; and
- annealing said pipe in a temperature range from about 550.degree. C. to a temperature that is lower than the A.sub.C1 point of the steel.
- 2. A method of manufacturing a high-Cr martensite steel pipe according to claim 1, wherein said steel further comprises at least one element selected from the group consisting of Ti, V, Zr, Nb and Ta in a total quantity of about 0.3 wt % or less, and wherein the value Y is defined by the following formula (2):
- value Y=(Cr%)+3(Cu%)-3(C%)+(Ti%)+(V%)+(Zr%)+(Nb%)+(Ta%) (2)
- is about 12.2 or more.
- 3. A method of manufacturing a high-Cr martensite steel pipe according to claim 1, wherein said forming of said pipe comprises a method of manufacturing a seamless steel pipe or a welded pipe.
- 4. A method of manufacturing a high-Cr martensite steel pipe according to claim 2, wherein said forming of said pipe comprises a method of manufacturing a seamless steel pipe or a welded pipe.
- 5. A method of manufacturing a high-Cr martensite steel pipe having excellent pitting resistance and overall corrosion resistance, comprising:
- forming a pipe from a steel comprising C: about 0.03 wt % or less, Si: about 0.5 wt % or less, Mn: about 0.5-3.0 wt %, Cr: about 10.0-14.0 wt %, Ni: about 0.2-2.0 wt %, Cu: about 0.2-0.7 wt %, N: about 0.03 wt % or less and the balance being Fe and incidental impurities, wherein a value X defined by the following formula (1):
- value X=(Cr%)+3(Cu%)-3(C%) (1)
- is about 12.2-14.2;
- austenitizing said pipe at a temperature substantially equal to an A.sub.C3 point or higher;
- quenching said pipe after austenitizing; and
- heat treating said pipe by maintaining said pipe in a temperature range from the A.sub.C1 point to said A.sub.C1 point plus about 50.degree. C. for about 10-60 minutes; and
- cooling said pipe with air.
- 6. A method of manufacturing a high-Cr martensite steel pipe according to claim 5, wherein said steel further comprises at least one element selected from the group consisting of Ti, V, Zr, Nb and Ta in a total quantity of about 0.3 wt % or less, and wherein said value Y is defined by the following formula (2):
- value Y=(Cr%)+3(Cu%)-3(C%)+(Ti%)+(V%)+(Zr%)+(Nb%)+(Ta%) (2).
- 7. A method of manufacturing a high-Cr martensite steel pipe according to claim 5, wherein said forming of said pipe comprises a method of manufacturing a seamless steel pipe or a welded pipe.
- 8. A method of manufacturing a high-Cr martensite steel pipe according to claim 6, wherein said forming of said pipe comprises a method of manufacturing a seamless steel pipe or a welded pipe.
- 9. A method of manufacturing a high-Cr martensite steel pipe having excellent pitting resistance and overall corrosion resistance, comprising:
- forming a pipe from a steel comprising C: about 0.03 wt % or less, Si: about 0.5 wt % or less, Mn: about 0.5-3.0 wt %, Cr: about 10.0-14.0 wt %, Ni: about 0.2-2.0 wt %, Cu: about 0.2-0.7 wt %, N: about 0.03 wt % or less and the balance being Fe and incidental impurities, wherein a value X defined by the following formula (1):
- value X=(Cr%)+3(Cu%)-3(C%) (1)
- is about 12.2-14.2;
- austenitizing said pipe at a temperature substantially equal to the A.sub.C3 point or higher;
- quenching said pipe after austenitizing; and
- heat treating said pipe by maintaining said pipe in a temperature range from the A.sub.c1 point to said A.sub.c1 point plus about 50.degree. C. for about 10-60 minutes;
- cooling said pipe with air; and
- annealing said pipe at a temperature lower than said A.sub.c1 point.
- 10. A method of manufacturing a high-Cr martensite steel pipe according to claim 9, wherein said steel further comprises at least one element selected from the group consisting of Ti, V, Zr, Nb and Ta in a total quantity of about 0.3 wt % or less, and wherein the value Y is defined by the following formula (2):
- value Y=(Cr%)+3(Cu%)-3(C%)+(Ti%)+(V%)+(Zr%)+(Nb%)+(Ta%) (2).
- 11. A method of manufacturing a high-Cr martensite steel pipe according to claim 9, wherein said forming of said pipe comprises a method of manufacturing a seamless steel pipe or a welded pipe.
- 12. A method of manufacturing a high-Cr martensite steel pipe according to claim 10, wherein said forming of said pipe comprises a method of manufacturing a seamless steel pipe or a welded pipe.
Priority Claims (2)
Number |
Date |
Country |
Kind |
7-097063 |
Apr 1995 |
JPX |
|
8-036247 |
Feb 1996 |
JPX |
|
Parent Case Info
This is a division out of our parent application, Ser. No. 08/634,860, filed Apr. 19, 1996, now U.S. Pat. No. 5,858,128, granted Jan. 12, 1999.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
5049210 |
Miyasaka et al. |
Sep 1991 |
|
5858128 |
Miyata et al. |
Jan 1999 |
|
Foreign Referenced Citations (4)
Number |
Date |
Country |
60-26616 |
Feb 1985 |
JPX |
5-140645 |
Jun 1993 |
JPX |
5-263137 |
Oct 1993 |
JPX |
6-88130 |
Mar 1994 |
JPX |
Divisions (1)
|
Number |
Date |
Country |
Parent |
634860 |
Apr 1996 |
|