Claims
- 1. An electric rotary machine having a superconducting rotor, wherein said superconducting rotor comprises a driving shaft having at an end thereof a flange portion, a hollow shaft confronting said driving shaft with a gap therebetween and having a flange portion, a torque tube connected between said flange portions, a field winding provided on an outer peripheral surface of said torque tube, said torque tube having a coolant pool therein, coolant supply means for supplying a coolant to said coolant pool through said hollow shaft, an inner shielding member formed of a cylindrical non-magnetic body and provided so as to surround the field winding, a cylindrical outer shielding member disposed so as to surround the inner shielding member and connected between said flange portions, said outer shielding member being a cylindrical single-layer body, coolant discharge means for collecting said coolant from said coolant pool through said hollow shaft, and a power lead passing through said hollow shaft for supplying said field winding with electric power, and wherein said outer shielding member is made of a non-magnetic nickel alloy containing 0.05 to 0.25% carbon, 0.01 to 0.5% silicon, 0.01 to 0.5% manganese, 0.01 to 0.6% titanium, 2.5 to 6.0% aluminum, 9.2 to 15.0% copper, and the balance nickel by weight, said alloy having such a structure that a .gamma.'-phase precipitation is formed by hard-aging in an austenitic matrix.
- 2. An electric rotary machine having a superconducting rotor as claimed in claim 1, wherein said outer shielding member has a resistivity of 70 .mu..OMEGA..cm or less and a 0.2% proof stress of 60 kg/mm.sup.2 or more, at 20.degree. C.
- 3. An electric rotary machine having a superconducting rotor as claimed in claim 1, wherein said cylindrical single-layer body is a body which has been made through electroslag remelting.
- 4. An electric rotary machine having a superconducting rotor as claimed in claim 1, wherein the alloy of the outer shielding member contains 4.2 to 5% aluminum.
- 5. An electric rotary machine having a superconducting rotor, wherein said superconducting rotor comprises a driving shaft having at an end thereof a flange portion, a hollow shaft confronting said driving shaft with a gap therebetween and having a flange portion, a torque tube connected between said flange portions, a field winding provided on an outer peripheral surface of said torque tube, said torque tube having a coolant pool, coolant supply means for supplying a coolant to said coolant pool through said hollow shaft, an inner shielding member formed of a cylindrical non-magnetic body and provided so as to surround the field winding, a cylindrical outer shielding member disposed so as to surround the inner shielding member and connected between said flange portions, said outer shielding member being a cylindrical single-layer body, coolant discharge means for collecting said coolant from said coolant pool through said hollow shaft, and a power lead passing through said hollow shaft for supplying said field winding with electric power, wherein said outer shielding member is made of a non-magnetic nickel alloy substantially containing 0.05 to 0.25% carbon, 0.01 to 0.5% silicon, 0.01 to 0.5% manganese, 0.1 to 0.6% titanium, x% aluminum, y% copper, and the balance nickel by weight, where said aluminum content x and copper content y lie in a composition range having as corners thereof a composition A (containing 2% aluminum and 12% copper), a composition B (containing 2.5% aluminum and 40% copper), a composition C (containing 4.2% aluminum and 40% copper), a composition D (containing 8% aluminum and 20% copper), a composition E (containing 8% aluminum and 10% copper), a composition F (containing 7% aluminum and 8% copper), and a composition G (containing 4.5% aluminum and 8% copper), said alloy having such structure that a .gamma.'-phase precipitation is formed by aging in an austenitic matrix.
- 6. An electric rotary machine having a superconducting rotor as claimed in claim 5, wherein said cylindrical single-layer body is a body which has been made through electroslag remelting.
- 7. An electric rotary machine having a superconducting rotor as claimed in claim 5, wherein said outer shielding member has a resistivity of 70 .mu.5/8.cm or less and a proof stress of 60 kg/mm.sup.2 or more, at 20.degree. C.
- 8. An electric rotary machine having a superconducting rotor as claimed in claim 5, wherein said driving shaft is connected to a prime mover.
- 9. A generator having a superconducting rotor, wherein said superconducting rotor comprises a driving shaft having at an end thereof a flange portion and adapted to be connected to a prime mover, a hollow shaft confronting said driving shaft with a gap therebetween and having a flange portion confronting said flange portion of said driving shaft, a torque tube bridging a gap between said flange portions, a field winding supported on an outer peripheral surface of said torque tube, a non-magnetic holding sleeve adapted for holding the entire peripheral surface of said field winding, a coolant pool formed on the inner side of said torque tube, coolant supply means for supplying a coolant to said coolant pool through said hollow shaft, an inner shielding member disposed as to surround the field winding, supported by said torque tube, and made up of a cylindrical non-magnetic inner shielding body and non-magnetic reinforcing bodies closely fitted to inner and outer peripheral surfaces of said inner shielding body, a cylindrical outer shielding member disposed as to surround the inner shielding member and connected between said flange portions, said outer shielding member being a cylindrical single-layer body, cooling ducts starting from said cooling pool and extending along end portions of said torque tube and said outer shielding member, coolant discharge means for collecting said coolant from said cooling ducts through said hollow shaft, and a power lead passing through said hollow shaft for supplying said field winding with electric power, and wherein said outer shielding member is made of a non-magnetic nickel alloy containing 0.05 to 0.25% carbon, 0.01 to 0.5% silicon, 0.01 to 0.5% manganeses, 0.1 to 0.6% titanium, 2.5 to 6.0% aluminum, 9.2 to 15.0% copper, and the balance nickel by weight, said alloy having such a structure that a .gamma.'-phase precipitation is formed by aging in an austenitic matrix. .Iadd.
- 10. A rotor for an electric rotary machine, comprising a cylindrical shield member surrounding a field winding, said cylindrical shield member being made of a non-magnetic nickel alloy containing 0.05 to 0.25% carbon, 0.01 to 0.5% silicon, 0.01 to 0.5% manganese, 0.01 to 0.6% titanium, 2.5 to 6.0% aluminum, 9.2 to 15.0% copper, and the balance nickel by weight, said non-magnetic nickel alloy having such a structure that a .gamma.'-phase precipitation is formed by age-hardening in an austenitic matrix, and said non-magnetic nickel alloy has a resistivity of 70 .mu..OMEGA..cm or less and a 0.2% proof stress of 60 kg/mm.sup.2 or more, at 20.degree. C. .Iaddend. .Iadd.11. A rotor as claimed in claim 10, comprising a further cylindrical shield member surrounding said field winding, said further cylindrical shield member being interposed between said cylindrical shield member and said field winding. .Iaddend. .Iadd.12. A rotor as claimed in claim 11, wherein said further cylindrical shield member is made of a non-magnetic material. .Iaddend. .Iadd.13. A rotor as claimed in claim 11, wherein said field winding is provided on the outer
- peripheral surface of a torque tube. .Iaddend. .Iadd.14. A rotor as claimed in claim 13, wherein said torque tube has a coolant pool formed therein, with coolant supply means for supplying a coolant to the coolant pool and coolant discharge means for collecting coolant from the coolant pool. .Iaddend. .Iadd.15. A rotor for an electric rotary machine, comprising a cylindrical shield member surrounding a field winding, said cylindrical shield member being made of a non-magnetic nickel alloy containing about 0.15% carbon, about 0.4% titanium, about 4.3% aluminum, about 20.7% copper, and the balance nickel by weight, said non-magnetic nickel alloy having such a structure that a .gamma.'-phase precipitate is formed by age-hardening in an austenitic matrix, and said non-magnetic nickel alloy has a resistivity of about 53 .mu..OMEGA..cm and a 0.2% proof stress of about 78 kg/mm.sup.2, at 20.degree. C. .Iaddend. .Iadd.16. A superconducting rotor for an electric rotary machine, comprising a cylindrical shield member surrounding a field winding, said cylindrical shield member being made of a non-magnetic nickel alloy containing about 0.16% carbon, about 1.2% titanium, about 2.7% aluminum, about 13.8% copper, and the balance nickel by weight, said non-magnetic nickel alloy having such a structure that a .gamma.'-phase precipitate is formed by age-hardening in an austenitic matrix, and said non-magnetic nickel alloy has a resistivity of about 42.1 .mu..OMEGA..cm and a 0.2% proof stress of
- about 61 kg/mm.sup.2, at 20.degree. C. .Iaddend. .Iadd.17. An electric rotary machine comprising: a field winding; a winding support shaft for supporting said field winding; a torque tube for supporting said winding support shaft, a power lead for supplying electric power to said field winding; at least one cylindrical shield member surrounding said field winding; and a driving shaft fixedly connected to said at least one cylindrical shield member and said torque tube to thereby transmit torque through said torque tube and said winding support shaft to said field winding, wherein said at least one cylindrical shield member is made of a non-magnetic nickel alloy containing 0.05 to 0.25% carbon, 0.01 to 0.5% silicon, 0.01 to 0.5% manganese, 0.01 to 0.6% titanium, 2.5 to 6.0% aluminum, 9.2 to 15.0% copper, and the balance nickel by weight, said non-magnetic nickel alloy having such a structure that a .gamma.'-phase precipitate is formed by age-hardening in an austenitic matrix, and said non-magnetic nickel alloy has a resistivity of 70 .mu..OMEGA..cm or less and a 0.2% proof stress of 60 kg/mm.sup.2 or more, at 20.degree. C. .Iaddend. .Iadd.18. An electric rotary machine having a superconducting rotor which has a shield member made of a non-magnetic nickel alloy containing 0.05 to 0.25% carbon, 0.01 to 0.5% silicon, 0.01 to 0.5% manganese, 0.01 to 0.6% titanium, 2.5 to 6.0% aluminum, 9.2 to 15.0% copper, and the balance nickel by weight, said non-magnetic nickel alloy having such a structure that a .gamma.'-phase precipitate is formed by age-hardening in an austenitic matrix, and said non-magnetic nickel alloy has a resistivity of 70 .mu..OMEGA..cm or less and a 0.2% proof stress of 60 kg/mm.sup.2 or more, at 20.degree. C. .Iaddend.
Priority Claims (1)
Number |
Date |
Country |
Kind |
57-24488 |
Feb 1982 |
JPX |
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Parent Case Info
This is a continuation of application Ser. No. 467,808, filed Feb. 18, 1983 now abandoned.
US Referenced Citations (6)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0867165 |
Feb 1953 |
DEX |
Non-Patent Literature Citations (1)
Entry |
Huntington Alloys, Monel Alloys, International Nickel Co. Inc., pp. 31-53, 12/72. |
Continuations (1)
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Number |
Date |
Country |
Parent |
467808 |
Feb 1983 |
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Reissues (1)
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Number |
Date |
Country |
Parent |
726394 |
Apr 1985 |
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