Claims
- 1. A plurality of electrical machines based on superconducting technology, each of the machines, comprising:
a rotor with superconductors; a rotor cryostat; a rotor shaft; a cryogenic connection to a cryogenic conductor between the cryostat and a cold generator; and a non-superconducting stator, wherein the plurality of electrical machines are designed to be shock-resistant and wherein the stator, the rotor and the cryostat are decoupled via elastic elements, in terms of movement, from an outer machine housing and from the rotor shaft.
- 2. A plurality of electrical machines as claimed in claim 1, wherein the rotor, stator and cryostat include connecting elements and bearings between them, the connecting elements and bearings resulting in movement of the paths as a unit in the event of acceleration caused by shock, and with the movement of the unit being greater than the vibration amplitude.
- 3. A plurality of electrical machines as claimed in claim 1, wherein the outer machine housing is elastically connected to a machine mount.
- 4. A plurality of electrical machines as claimed in claim 1, wherein an electrical steering propeller housing is arranged elastically underneath the a hull of the vessel as the outer machine housing.
- 5. An electrical propulsion device for a vessel, comprising:
a streamlined housing, arrangeable on the lower surface of a hull of a vessel, the housing containing an electric motor, including a stator and a rotor; and at least one propeller, coupled to a propulsion shaft to which the rotor is fitted, wherein the stator is fixed on the rotor via rotating bearings and wherein a unit formed from the stator and rotor is elastically supported on both the housing and the propulsion shaft.
- 6. The propulsion device as claimed in claim 5, wherein the rotor includes a tube-shaped mounting body and an active part, fitted to the mounting body and elastically supported on the propulsion shaft, and wherein the stator is mounted on the mounting body of the rotor and is elastically supported on the housing.
- 7. The propulsion device as claimed in claim 5, wherein the support for the rotor on the propulsion shaft is designed to be soft in the axial and radial directions and torsionally stiff in the circumferential direction.
- 8. The propulsion device as claimed in claim 5, wherein the rotating bearing is in the form of a roller bearing.
- 9. The propulsion device as claimed in claim 5, wherein the bearings for bearing the propulsion shaft are in the form of sliding bearings.
- 10. A plurality of electrical machines as claimed in claim 1, wherein the outer machine housing is elastically mounted on a base frame.
- 11. A plurality of electrical machines as claimed in claim 4, wherein the steering propeller housing is connected to the hull of the vessel elastically and flexibly.
- 12. A plurality of electrical machines as claimed in claim 1, wherein the cryogenic connection includes a fixed cold head and a distributor, which projects into the rotor shaft area, for a liquid coolant.
- 13. A plurality of electrical machines as claimed in claim 12, wherein a flexible cryogenic line, in particular in the form of a coaxial double casing, is arranged between the distributor for the liquid coolant and the cryostat.
- 14. A plurality of electrical machines as claimed in claim 1, wherein the stator has includes a copper winding, and the rotor includes a superconducting air gap winding.
- 15. A plurality of electrical machines as claimed in claim 1, wherein the coolant in the machines is liquid neon.
- 16. A plurality of electrical machines as claimed in claim 1, wherein the coolant in the machines is liquid nitrogen.
- 17. A plurality of electrical machines as claimed in claim 1, wherein ferro-fluid seals are used for the coolant between the stationary and rotating parts of the cryogenic connection.
- 18. A plurality of electrical machines as claimed in claim 1, wherein the rotor shaft includes torque transmission elements composed of fiber-reinforced plastic between the cold part of the machine and the normal temperature shaft parts.
- 19. A plurality of electrical machines as claimed in claim 1, wherein these electrical machines include pulse tube coolers as cold generators.
- 20. A plurality of electrical machines as claimed in claim 19, wherein the pulse tube cooler is combined with a Stirling linear compressor.
- 21. A plurality of electrical machines as claimed in claim 1, wherein the cryogenic connection from the pulse tube cooler, to the cold head on the machine is at least one of routed in a supporting tube and in the form of a metal-reinforced flexible tube.
- 22. A plurality of electrical machines as claimed in claim 1, wherein the cold head/rotor cryogenic coupling is sealed with respect to the rotor shaft by a ferro-fluid coupling, and wherein the cold head is fixed up to the machine housing, with an elastic coolant connection between these two paths.
- 23. A plurality of electrical machines as claimed in claim 1, wherein the cryogenic distributor is supported in an elastically sprung manner in the rotor shaft area.
- 24. A plurality of electrical machines as claimed in claim 1, wherein the elastic supports in the machine include standard rubber spring elements.
- 25. A plurality of electrical machines as claimed in claim 1, wherein the cold generator is connected to a cooling system in the vessel.
- 26. A plurality of electrical machines as claimed in claim 1, wherein the stator copper windings are liquid-cooled.
- 27. A plurality of electrical machines as claimed in claim 26, wherein the electrical machines include cooling channels in the stator which run at least one of radially, axially and in the circumferential direction and through which water flows.
- 28. An electrical steering propeller for a navy vessel, comprising:
at least one electric motor; a casing, on which at least one propeller is housed, the casing being adapted to accommodate power supply lines and being arranged under the stern of the vessel via a rotatable vessel stern casing connection wherein the casing is designed to be elastically deformable, wherein the vessel stern casing connection is designed to allow movements of the casing with respect to the vessel stern, and wherein the electric motor is designed to absorb accelerations of more than 10 g.
- 29. The electrical steering propeller as claimed in claim 28, wherein the casing includes at least one elastic articulation point between individual parts of the casing.
- 30. The electrical steering propeller as claimed in claim 29, wherein the at least one elastic articulation point includes a joint, designed to allow vertical movement and bending of the casing parts with respect to one another.
- 31. The electrical steering propeller as claimed in claim 28, wherein the at least one elastic articulation point includes a joint, the joint including flanges with a screw connection, designed to be elastically flexible.
- 32. The electrical steering propeller as claimed in claim 28, wherein the at least one elastic articulation point includes a joint, the joint including an elastic joint intermediate layer composed of an elastomer material.
- 33. The electrical steering propeller as claimed in claim 28, wherein the at least one elastic articulation point includes more than one joint, with the casing parts between the joints being composed of different materials.
- 34. The electrical steering propeller as claimed in claim 28, wherein the at least one elastic articulation point includes a joint between two casing parts, the joint including a joint collar composed of elastomer material, at least on the outside.
- 35. The electrical steering propeller as claimed in claim 28, wherein a housing of the electric motor includes at least two parts, with individual parts of the housing being composed of aluminum.
- 36. The electrical steering propeller as claimed in claim 28, wherein the propeller is designed in particular to have an automatically variable pitch and is composed of plastic.
- 37. The electrical steering propeller as claimed in claim 28, wherein the electric motor includes an elastic rotor bearing and an air gap between 5 and 50 mm.
- 38. The electrical steering propeller as claimed in claim 28, wherein the electric motor is a three-phase synchronous machine and includes at least one rotating field winding composed of HTS (high-temperature superconductor) wire, and wherein each rotating field winding composed of HTS wire is arranged in a cryostat which is vacuum-insulated and by which the rotating field winding composed of HTS wire is cryogenically coolable to a temperature of 15 to 77 K.
- 39. The electrical steering propeller as claimed in claim 38, wherein the electric motor, in the form of a three-phase synchronous machine, includes an air gap three-phase winding composed of copper bundled conductors, the winding being arranged in an annular gap between a rotor and a laminated magnetic iron yoke.
- 40. The electrical steering propeller as claimed in claim 38, wherein the HTS wire of the rotating field winding is composed of multifilament ribbon conductors.
- 41. The electrical steering propeller as claimed in claim 38, wherein the stator air gap winding of the electric motor has no iron teeth.
- 42. The electrical steering propeller as claimed in claim 28, wherein the electric motor includes sliding bearings as the bearings, and wherein the air gap between the stator and the rotor is between 5 and 50 mm.
- 43. The electrical steering propeller as claimed in claim 28, wherein the vessel stern casing connection in the vessel stern includes elastically deformable structural elements which form elastically deformable mounting cells.
- 44. The electrical steering propeller as claimed in claim 28, wherein the power supply lines for the electric motor are designed without sliprings, for example in the form of a torsionally elastic cable run or of a cable which is provided with spread conductors in a helical shape.
- 45. The electrical steering propeller as claimed in claim 28, wherein the electrical steering propeller includes an auxiliary rudder, movable independently of the position of the casing.
- 46. The electrical steering propeller as claimed in claim 28, wherein the casing has an asymmetric profile which corresponds in particular to an airfoil profile.
- 47. The electrical steering propeller as claimed in claim 28, wherein the casing includes an auxiliary rudder in the form of at least one of a side and leading-edge vane.
- 48. The electrical steering propeller as claimed in claim 28, wherein the electric motor has includes two parts, the two parts being operable independently of one another and including independent power supplies.
- 49. A plurality of electrical machines as claimed in claim 21, wherein the rotation speeds of each part of the electrical motor are controllable independently of one another, and each drives one propeller.
- 50. A plurality of electrical machines as claimed in claim 21, wherein the two propellers are in the form of contrarotating propellers.
- 51. The electrical steering propeller as claimed in claim 28, wherein at least one of the casing rotation and/or the movement of the auxiliary rudder is produced by electric servomotors.
- 52. The electrical steering propeller as claimed in claim 28, wherein the vessel stern casing connection includes semi-universal-joint suspension for the casing.
- 53. The electrical steering propeller as claimed in claim 28, wherein the vessel stern casing connection includes a support for the casing via spherical segments, in particular sprung spherical segments.
- 54. The electrical steering propeller as claimed in claim 28, further comprising a mount structure supported via spring elements and moveable horizontally and vertically, provided for the casing in the vessel stern.
- 55. The electrical steering propeller as claimed in claim 28, wherein the electric motor is designed to operate with windings which are shrunk in the motor housing and with external wall cooling.
- 56. A plurality of electrical machines as claimed in claim 1, wherein the electrical machines are at least one of motors and generators, wherein the plurality of electrical machines are designed to be shock-resistant according to requirements of a navy vessel, and wherein the superconducting technology is high-temperature superconducting technology.
- 57. A plurality of electrical machines as claimed in claim 1, wherein the rotor includes high-temperature super-conductors.
- 58. A plurality of electrical machines as claimed in claim 2, wherein the outer machine housing is elastically connected to a machine mount.
- 59. A plurality of electrical machines as claimed in claim 2, wherein an electrical steering propeller housing is arranged elastically underneath a hull of the vessel as the outer machine housing.
- 60. A plurality of electrical machines as claimed in claim 10, wherein the base frame is connected to the hull of the vessel elastically and flexibly.
- 61. A plurality of electrical machines as claimed in claim 12, wherein the flexible cryogenic line, in the form of a coaxial double casing, is arranged between the distributor for the liquid coolant and the cryostat.
- 62. A plurality of electrical machines as claimed in claim 1, wherein the electrical machines include pulse tube coolers as cold generators, arranged on an elastic mounting frame.
- 63. The electrical steering propeller as claimed in claim 28, wherein the electrical steering propeller is for a navy vessel and wherein the vessel stern casing connection, the casing and the motor are designed such that the vessel stern, casing and motor are flexible in response to underwater explosion pressure waves without being damaged.
- 64. The electrical steering propeller as claimed in claim 29, wherein the joint includes flanges with a screw connection, designed to be elastically flexible, and cup springs.
- 65. The electrical steering propeller as claimed in claim 38, wherein the HTS wire of the rotating field winding is composed of multifilament ribbon conductors of at least one of a material Bi2 Ba2 Sr2 Cu3 Ox and a material whose characteristics are similar.
- 66. The electrical steering propeller as claimed in claim 39, wherein the HTS wire of the rotating field winding is composed of multifilament ribbon conductors.
- 67. The electrical steering propeller as claimed in claim 28, wherein the vessel stern casing connection in the vessel stern includes highly flexible metal sheets which form elastically deformable mounting cells.
- 68. The electrical steering propeller as claimed claim 28, wherein the power supply lines for the electric motor are designed in the form of at least one of a torsionally elastic cable run and of a cable provided with spread conductors in a helical shape.
- 69. A plurality of electrical machines as claimed in 22, wherein the two propellers are in the form of contrarotating propellers.
- 70. The electrical steering propeller as claimed in claim 28, wherein the vessel stern casing connection includes a support for the casing via sprung spherical segments.
- 71. An electrical steering propeller for a navy vessel, comprising:
at least one of the plurality of electrical machines as claimed in claim 1;a casing, on which at least one propeller is housed, the casing being adapted to accommodate power supply lines and being arranged under the stern of the vessel via a rotatable vessel stern casing connection, wherein the casing is designed to be elastically deformable, wherein the vessel stern casing connection is designed to allow movements of the casing with respect to the vessel stern, and wherein the at least one of the plurality of electrical machines is designed to absorb accelerations of more than 10 g.
- 72. An electrical propulsion device for a vessel, comprising:
a streamlined housing, arrangeable on the lower surface of a hull of a vessel, the housing containing at least one of the plurality of electrical machines as claimed in claim 1; and at least one propeller, coupled to a propulsion shaft to which the rotor is fitted, wherein the stator is fixed on the rotor via rotating bearings, and wherein a unit formed from the stator and rotor is elastically supported on both the housing and the propulsion shaft.
Priority Claims (2)
Number |
Date |
Country |
Kind |
101 43 713.7 |
Aug 2001 |
DE |
|
102 24 014.0 |
May 2002 |
DE |
|
Parent Case Info
[0001] This application is the national phase under 35 U.S.C. § 371 of PCT International Application No. PCT/DE02/03239 which has an International filing date of Aug. 30, 2002, which designated the United States of America and which claims priority on German Patent Application numbers DE 101 43 713.7 filed Aug. 30, 2001, and DE 102 24 014.0 filed May 29, 2002, the entire contents of which are hereby incorporated herein by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/DE02/03239 |
8/30/2002 |
WO |
|