Claims
- 1. A combined generator system having a single generator simultaneously driven by both a steam turbine and a gas turbine, said steam turbine having a rotor provided with a mono-block rotor shaft made of a Ni--Cr--Mo--V heat resisting low alloy steel having a bainite structure, multi-stage blades fixed on the mono-block rotor shaft from a high pressure side at which first stage blades are fixed thereon to a low pressure side of steam at which final stage blades are fixed thereon, and a casing covering said rotor, a steam temperature at a steam inlet toward the first stage blades thereof being not less than 530.degree. C. and a steam temperature at the steam outlet of the final stage blades thereof being not more than 100.degree. C., said casing being integrally arranged from the high pressure side of said blades to the low pressure side thereof, a ratio (L/D) of a length (L) defined between bearings of said rotor shaft to a diameter (D) measured between the terminal ends of said blades disposed at the final stage thereof being 1.4 to 2.3, and said blades at least at the final stage thereof having a length not less than 30 inches, wherein said rotor shaft made of said Ni--Cr--Mo--V heat resisting low alloy steel has high temperature strength sufficient to withstand said steam temperature at said steam inlet of not less than 530.degree. C. and an impact value sufficient to withstand impacts occurring with said final stage blades having said length not less than 30 inches.
- 2. A combined power generation system comprising a gas turbine, a waste heat recovery boiler for obtaining steam of not less than 530.degree. C. in temperature by use of exhaust gas of the gas turbine, a steam turbine having a rotor provided with a rotor shaft and multi-stage blades fixed on the rotor shaft which rotor rotates by steam heated at a temperature not less than 530.degree. C., and a generator driven by both of the gas turbine and the steam turbine, said rotor shaft being formed of a mono-block shaft from the high pressure side at which steam having a temperature not less than 530.degree. C. is introduced onto the first stage blades to the low pressure side from which steam of a temperature not more than 100.degree. C. is discharged from final stage blades, said final stage blades having a length not less than 30 inches, and said rotor shaft being made of a Ni--Cr--Mo--V heat resisting low alloy steel having a bainite structure, wherein said rotor shaft made of said Ni--Cr--Mo--V heat resisting low alloy steel has high temperature strength sufficient to withstand said steam temperature at said steam inlet of not less than 530.degree. C. and an impact value sufficient to withstand impacts occurring with said final stage blades having said length not less than 30 inches.
- 3. A combined power generation system comprising a gas turbine, a waste heat recovery boiler for obtaining steam of not less than 530.degree. C. in temperature by use of exhaust gas of the gas turbine, a steam turbine having a rotor provided with a rotor shaft and multi-stage blades fixed on the rotor shaft which rotor rotates by steam heated at a temperature not less than 530.degree. C., and a generator driven by both of the gas turbine and the steam turbine, said rotor shaft being formed of a mono-block shaft from the high pressure side at which steam having a temperature not less than 530.degree. C. is introduced onto the first stage blades to the low pressure side from which steam of a temperature not more than 100.degree. C. is discharged from final stage blades, said rotor shaft being made of Ni--Cr--Mo--V heat resisting low alloy steel having a bainite structure, at least said final stage blades having a length of not less than 30 inches, wherein said rotor shaft made of said Ni--Cr--Mo--V heat resisting low alloy steel has high temperature strength sufficient to withstand said steam temperature at said steam inlet of not less than 530.degree. C. and an impact value sufficient to withstand impacts occurring with said final stage blades having said length not less than 30 inches, and said rotor shaft having at least one of a 538.degree. C., 100,000 hour creep rupture strength not less than 11 kgf/mm.sup.2, a FATT not more than 40.degree. C., and a V shaped notch Charpy impact absorbing energy not less than 3 kg-m/cm.sup.2 at 20.degree. C.
- 4. A combined power generation system comprising a gas turbine, a waste heat recovery boiler for obtaining steam of not less than 530.degree. C. in temperature by use of exhaust gas of the gas turbine, a steam turbine having a rotor provided with a rotor shaft and multi-stage blades fixed on the rotor shaft which rotor rotates by steam heated at a temperature not less than 530.degree. C., and a generator driven by both of the gas turbine and the steam turbine, said rotor shaft being formed of a mon-block shaft from the high pressure side at which steam having a temperature not less than 530.degree. C. is introduced onto the first stage blades to the low pressure side from which steam is discharged from final stage blades, said final stage blades having a length not less than 30 inches, said rotor shaft being made of a Ni--Cr--Mo--V heat resisting low alloy steel having a bainite structure, wherein said rotor shaft made of said Ni--Cr--Mo--V heat resisting low alloy steel has high temperature strength sufficient to withstand said steam temperature at said steam inlet of not less than 530.degree. C. and an impact value sufficient to withstand impacts occurring with said final stage blades having said length not less than 30 inches.
- 5. A combined power generation system according to claim 4, wherein said rotor shaft has a 538.degree. C. 100,000 hour creep rupture strength not less than 11 kgf/mm.sup.2.
- 6. A combined power generation system according to claim 4, wherein said rotor shaft is made of a Ni--Cr--Mo--V heat resisting low alloy steel which contains by weight 0.15 to 0.4% C, not more than 0.1% Si, 0.05 to 0.25% Mn, 1.6 to 2.0% Ni, 0.8% to 2.5% Cr, 0.8% to 2.5%, Mo, and 0.1 to 0.35% V, in said alloy steel a ratio (Mn/Ni) being not more than 0.12 or a ratio (Si+Mn)/Ni being not more than 0.18.
- 7. A combined power generation system comprising power generating apparatus driven by both a steam turbine and a gas turbine, said steam turbine having a steam inlet temperature not less than 530.degree. C. and having a mono-block rotor shaft from a high pressure side to a low pressure side made of a Ni--Cr--Mo--V heat resisting low alloy steel having a bainite structure, wherein final stage blades provided on said mono-block rotor shaft have a length not less than 30 inches, and said gas turbine having a combustion gas temperature not less than 1100.degree. C., wherein said rotor shaft made of said Ni--Cr--Mo--V heat resisting low alloy steel has high temperature strength sufficient to withstand said steam temperature at said steam inlet of not less than 530.degree. C. and an impact value sufficient to withstand impacts occurring with said final stage blades having said length not less than 30 inches.
- 8. A combined power generation system according to claim 7, wherein said mono-block rotor shaft has a 538.degree. C. 100,000 hour creep rupture strength not less than 11 kgf/mm.sup.2.
- 9. A combined power generation system according to claim 7, wherein said mono-block rotor shaft is made of a Ni--Cr--Mo--V heat resisting low alloy steel which contains by weight 0.15 to 0.4% C, not more than 0.1% Si, 0.05 to 0.25% Mn, 1.6 to 2.0% Ni, 0.8% to 2.5% Cr, 0.8% to 2.5%, Mo, and 0.1 to 0.35% V, in said alloy steel a ratio (Mn/Ni) being not more than 0.12 or a ratio (Si+Mn)/Ni being not more than 0.18.
- 10. A combined power generation system comprising power generation apparatus driven by both a steam turbine and a gas turbine, said steam turbine having a rotor shaft formed of a mono-block rotor shaft from a high pressure side at which steam at a temperature not less than 530.degree. C. is introduced to a low pressure side, and final stage blades provided on said rotor shaft having a length not less than 30 inches, wherein said mono-block rotor shaft is made of a Ni--Cr--Mo--V heat resisting low alloy steel having a bainite structure, wherein said rotor shaft made of said Ni--Cr--Mo--V heat resisting low alloy steel has high temperature strength sufficient to withstand said steam temperature at said steam inlet of not less than 530.degree. C. and an impact value sufficient to withstand impacts occurring with said final stage blades having said length not less than 30 inches and has at least one of a 538.degree. C., 100,000 hour creep rupture strength not less than 11 kgf/mm.sup.2, a FATT not more than 40.degree. C., and a V shaped notch Charpy impact absorbing energy not less than 3 kg-m/cm.sup.2 at 20.degree. C.
- 11. A combined power generation system according to claim 10, wherein said rotor shaft has a 538.degree. C. 100,000 hour creep rupture strength not less than 11 kgf/mm.sup.2.
- 12. A combined power generation system according to claim 10, wherein said rotor shaft is made of a Ni--Cr--Mo--V heat resisting low alloy steel which contains by weight 0.15 to 0.4% C, not more than 0.1% Si, 0.05 to 0.25% Mn, 1.6 to 2.0% Ni, 0.8% to 2.5% Cr, 0.8% to 2.5%, Mo, and 0.1 to 0.35% V, in said alloy steel a ratio (Mn/Ni) being not more than 0.12 or a ratio (Si+Mn)/Ni being not more than 0.18.
- 13. A combined power generation system according to claim 3, wherein said rotor shaft has a 538.degree. C. 100,000 hour creep rupture strength not less than 11 kgf/mm.sup.2.
- 14. A combined power generation system according to claim 3, wherein said rotor shaft is made of a Ni--Cr--Mo--V heat resisting low alloy steel which contains by weight 0.15 to 0.4% C, not more than 0.1% Si, 0.05 to 0.25% Mn, 1.6 to 2.0% Ni, 0.8% to 2.5% Cr, 0.8% to 2.5%, Mo, and 0.1 to 0.35% V, in said alloy steel a ratio (Mn/Ni) being not more than 0.12 or a ratio (Si+Mn)/Ni being not more than 0.18.
- 15. A combined power generation system according to claim 2, wherein said rotor shaft has a 538.degree. C. 100,000 hour creep rupture strength not less than 11 kgf/mm.sup.2.
- 16. A combined power generation system according to claim 2, wherein said rotor shaft is made of a Ni--Cr--Mo--V heat resisting low alloy steel which contains by weight 0.15 to 0.4% C, not more than 0.1% Si, 0.05 to 0.25% Mn, 1.6 to 2.0% Ni, 0.8% to 2.5% Cr, 0.8% to 2.5%, Mo, and 0.1 to 0.35% V, in said alloy steel a ratio (Mn/Ni) being not more than 0.12 or a ratio (Si+Mn)/Ni being not more than 0.18.
- 17. A combined power generation system according to claim 1, wherein said rotor shaft has a 538.degree. C. 100,000 hour creep rupture strength not less than 11 kgf/mm.sup.2.
- 18. A combined power generation system according to claim 1, wherein said rotor shaft is made of a Ni--Cr--Mo--V heat resisting low alloy steel which contains by weight 0.15 to 0.4% C, not more than 0.1% Si, 0.05 to 0.25% Mn, 1.6 to 2.0% Ni, 0.8% to 2.5% Cr, 0.8% to 2.5%, Mo, and 0.1 to 0.35% V, in said alloy steel a ratio (Mn/Ni) being not more than 0.12 or a ratio (Si+Mn)/Ni being not more than 0.18.
Priority Claims (2)
Number |
Date |
Country |
Kind |
1-023890 |
Feb 1989 |
JPX |
|
1-126622 |
May 1989 |
JPX |
|
Parent Case Info
This is a divisional of application Ser. No. 07/893,079, filed Jun. 3, 1992 now U.S. Pat. No. 5,383,768, which is a continuation-in-part of application Ser. No. 07/472,838, filed Jan. 31, 1990, now abandoned.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
3642380 |
Saunders |
Feb 1972 |
|
5007240 |
Ishida et al. |
Apr 1991 |
|
5108699 |
Bodnar et al. |
Apr 1992 |
|
Divisions (1)
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Number |
Date |
Country |
Parent |
893079 |
Jun 1992 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
472838 |
Jan 1990 |
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