Generator and cooling system

The closed-loop thermosiphon cryogenic cooling system for superconducting generators addresses sloshing and spatial constraints by using reservoir and expansion units, enhancing efficiency and reducing testing complexity.

JP7739584B2Active Publication Date: 2025-09-16GENERAL ELECTRIC RENOVABLES ESPANA SL
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Patent Information

Application Number
JP2024501483
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-07-13
Publication Date
2025-09-16
Estimated Expiration
2041-07-13

AI Technical Summary

Technical Problem

Existing superconducting generators face challenges with cooling systems that require pressure vessels to contain both liquid and gaseous cooling fluids, leading to sloshing, increased temperature, and spatial constraints, necessitating complex baffles and rigorous testing.

Method used

A closed-loop thermosiphon cryogenic cooling system with reservoir units containing liquid cooling fluid and expansion units in a gaseous state, eliminating the need for pressure vessels and baffles, and utilizing gravity-fed circulation to maintain efficient cooling without pumps.

Benefits of technology

The system reduces sloshing, simplifies design, fits within spatial constraints, and avoids costly and time-consuming testing requirements, ensuring effective and reliable cooling of superconducting generators.

✦ Generated by Eureka AI based on patent content.

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Abstract

A generator and a cooling system for the generator are provided. The generator includes a non-rotating component supporting a field winding assembly and a rotating component oriented for rotation relative to the non-rotating component. The generator also includes an armature winding assembly secured to the rotating component and rotating therewith during operation of the generator. The generator also includes a cooling system operatively coupled to the field winding assembly. The cooling system includes one or more reservoir units and a plurality of expansion units. The cooling system also includes a conduit network configured to circulate a portion of the cooling fluid adjacent the field winding assembly to cool the field winding assembly. Additionally, the cooling system includes first and second plurality of toroidal expansion units circulating an axis of the generator.
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Description

[Technical Field]

[0001] The present disclosure relates generally to generators and, more particularly, to cooling systems for generators. [Background technology]

[0002] Wind turbines are gaining attention as an environmentally safe and relatively inexpensive alternative energy source. With this growing interest, considerable effort has been expended in developing reliable and efficient wind turbines.

[0003] Generally, a wind turbine includes multiple blades coupled to a turbine shaft via a rotor hub. The rotor hub is located on a tubular tower or base. Utility-grade wind turbines (i.e., wind turbines designed to supply power to a utility grid) may have large rotors (e.g., diameters of 100 m or more). The rotor blades convert wind energy into rotational torque or force to drive a generator, rotationally coupled to the rotor.

[0004] Low-reactance machines (such as superconducting generators) are being considered for use in wind turbine installations, particularly offshore installations. These machines use a superconducting field winding and armature coil assembly, a cooling system, and non-magnetic teeth disposed between the coils of the armature. In certain designs, superconducting generators differ from conventional machine (e.g., conventional non-superconducting generator) configurations in that they include an armature assembly rotating within a superconducting field assembly that includes a cryostat with superconducting field coils within the cryostat.

[0005] In superconducting generators, it is typically desirable to cool the field winding assembly. This can be achieved by a cooling system using a cooling fluid (e.g., a cryogenic fluid such as liquid or gaseous helium). The cooling fluid is typically stored at low temperature in a pressure vessel for supply to the field winding assembly. In a closed-loop cooling system, a constant volume of cooling fluid is maintained within the system. Therefore, the pressure vessel must be sized to maintain both the liquid and gaseous volumes of cooling fluid. However, such sizing can cause the liquid volume of cooling fluid to slosh within the pressure vessel, raising the temperature of the liquefied cooling fluid. Sloshing is typically mitigated by multiple intersecting planar baffles inserted within the pressure vessel. Furthermore, the required dimensions of the pressure vessel may require compliance with specific testing requirements that address product limits for pressure and volume. Furthermore, the required dimensions of the pressure vessel may exceed the internal volume of the wind turbine nacelle available for the generator / cooling system.

[0006] In view of the above, there is a continuing need in the art for new and improved generator and cooling systems. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] US Patent Application Publication No. 2014 / 100114 Summary of the Invention

[0008] Some aspects and advantages of the disclosed techniques will be set forth in the following detailed description, and in some cases will be obvious from the detailed description, or may be learned by practice of the techniques.

[0009] In one aspect, the present disclosure relates to a generator. The generator may include a non-rotating component supporting a field winding assembly. The non-rotating component has an annular cross-sectional shape extending between a first axial position and a second axial position and surrounding an axis. The generator may also include an armature winding assembly fixed to the rotating component and rotating with and relative to the rotating component during operation of the generator. The generator may further include a cooling system operably coupled to the field winding assembly. The cooling system may include one or more reservoir units containing a cooling fluid in a liquid state. The cooling system may also include multiple expansion units containing the cooling fluid in a gaseous state fluid fluid coupled to the one or more reservoir units. The cooling system may further include a conduit network fluidly coupled to the one or more reservoir units and configured to circulate a portion of the cooling fluid adjacent to the field winding assembly to cool the field winding assembly. Further, the cooling system may include a first plurality of toroidal expansion units surrounding the axis adjacent a first axial location and a second plurality of toroidal expansion units surrounding the axis adjacent a second axial location, each toroidal expansion unit of the first and second pluralities of toroidal expansion units having an enclosed volume defined by a tubular wall, and the first and second pluralities of toroidal expansion units fluidly coupled to the conduit network.

[0010] In another aspect, the present disclosure relates to a wind turbine. The wind turbine may include a rotor having a plurality of rotor blades. A superconducting generator operably coupled to the rotor and disposed in a nacelle of the wind turbine, the superconducting generator including any of the features and / or components described herein.

[0011] These and other features, aspects, and advantages of the present invention will become better understood with reference to the following detailed description and claims. The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate various embodiments of the present invention and, together with the description, serve to explain the principles of the technology. [Brief explanation of the drawings]

[0012] The following detailed description, taken in conjunction with the accompanying drawings, fully discloses the invention, including the best mode thereof, to enable those skilled in the art to practice the invention. [Figure 1] 1 is a perspective view of an embodiment of a wind turbine having a generator in accordance with the disclosed technology; [Figure 2] 1 is a simplified cross-sectional view of a longitudinal portion of a generator for use with a wind turbine in accordance with the disclosed technology; [Figure 3] 1 shows a simplified cross-sectional view of a lateral portion of a generator for use with a wind turbine in accordance with the disclosed technology; [Figure 4] 1 is a schematic diagram of a portion of a cooling system in accordance with the disclosed technology;

[0013] Repeated use of reference numerals in the present specification and drawings represents the same or analogous features or components of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0014] Reference will now be made in detail to various embodiments of the present invention, one or more examples of which are illustrated in the drawings. Each example is intended to illustrate, not limit, the present invention. Indeed, it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the scope or spirit of the invention. For example, features illustrated or described as part of one embodiment can be used with another embodiment to yield a still further embodiment. Accordingly, the present invention covers modifications and variations that come within the scope of the appended claims and their equivalents.

[0015] Terms such as "coupled," "secured," or "attached" mean not only direct coupling, fixing, or attachment, but also indirect coupling, fixing, or attachment through one or more intermediate components or features, unless otherwise stated herein.

[0016] Generally, the present disclosure relates to cooling of windings of an electric generator. In particular, the cooling system may be a cryogenic cooling system and may include one or more reservoir units containing cooling fluid in a liquid state, as opposed to a pressure vessel containing cooling fluid in both liquid and gaseous states, and multiple expansion units containing cooling fluid in a gaseous state. Further, the cooling system may include first and second multiple toroidal expansion units surrounding the axis of the electric generator.

[0017] For example, the cooling system may be a closed-loop thermosiphon cryogenic cooling system. In this manner, the reservoir unit may be located above the generator's field winding assembly. This arrangement may facilitate gravity-feeding (e.g., in the absence of a pump) to deliver a portion of the cooling fluid to the cooling system's conduit network. In this manner, the thermosiphon cryogenic cooling system may be considered a passive cooling system, as opposed to an active cooling system that relies on one or more pumps to circulate the cooling fluid. Furthermore, multiple expansion units may be located above and adjacent to the reservoir unit. In this configuration, a quantity of heat is transferred from the field winding assembly to the cooling fluid, resulting in multiple gas bubbles being entrained by the cooling fluid, generating electrical currents in the cooling fluid toward the recondenser and ultimately toward the one or more reservoir units / multiple expansion units.

[0018] The use of a combination of one or more reservoir units and multiple expansion units may offer several advantages over the use of a pressure vessel (e.g., a single pressure tank) sized to contain both the liquid and gas portions of the cooling fluid. For example, the use of a reservoir unit containing only liquid cooling fluid can reduce or eliminate sloshing of the cooling fluid. This may mitigate the warming of the cooling fluid resulting from the conversion of mechanical energy of sloshing into heat. To the extent that the combination of a reservoir unit and multiple expansion units is not subject to sloshing, it may eliminate the need to form the unit with baffles. This may reduce the cost and complexity of the cooling system.

[0019] Additionally, the one or more reservoir units and the plurality of expansion units are sized to have a maximum pressure-volume multiplier value that is less than a pressure-volume test limit (e.g., a TÜV Rheinland test limit). By setting the maximum pressure-volume multiplier value at a level below the pressure-volume test limit, the expense and delay associated with the more rigorous testing required beyond the pressure-volume test limit can be eliminated.

[0020] Furthermore, the use of one or more reservoir units and multiple expansion units can facilitate a unit arrangement that reduces the cross-sectional area of ​​the generator compared to generators that employ pressure vessels sized to contain both liquid and gaseous cooling fluids. For example, known generators may employ a single pressure vessel as a storage tank configured to support a pressure of 10 to 15 MPa. The cross-sectional area of ​​such a generator may exceed certain spatial design limitations of the wind turbine. In other words, employing a single bulky storage tank may result in a generator that does not fit within the available space within the wind turbine nacelle. This outcome may be mitigated or eliminated by the spatial flexibility afforded by the use of an array of reservoir units / expansion units.

[0021] As previously mentioned, the cooling system can include first and second multiple toroidal expansion units. The multiple toroidal expansion units can be employed during cool-down operations when the temperature of the field winding assembly is brought into the cryogenic range. Additionally, the multiple toroidal expansion units function as a reservoir for receiving gaseous cooling fluid in the event of a cooling system malfunction. In other words, the multiple toroidal expansion units function as a safety feature that can capture and recover an unexpected portion of the gaseous cooling fluid without damaging other components of the cooling system.

[0022] In known generators, the function of the multiple toroidal expansion units is typically performed by a pair of toroidal tanks axially positioned at opposite ends of the generator. However, the size of each toroidal tank precludes cost-effective encapsulation of the toroidal tank within a thermal barrier surrounding the field winding assembly. Therefore, it may be particularly advantageous to employ a first multiple toroidal expansion unit in place of the first toroidal tank and a second multiple toroidal expansion unit in place of the second toroidal tank.

[0023] For example, the cumulative cross-sectional area of ​​multiple toroidal expansion units may replicate the cross-sectional area of ​​the corresponding toroidal tank, but may be arranged in a manner that facilitates encapsulation by a heat shield. Arranging multiple toroidal expansion units within a heat shield can increase the effectiveness of the cooling system over known cooling systems that rely on a toroidal tank. Furthermore, each toroidal expansion unit can be sized to have a maximum pressure-volume multiplication value that is less than the pressure-volume test limit. As before, setting the maximum pressure-volume at a level below the pressure-volume test limit eliminates the expense and delay associated with the more rigorous testing required beyond the pressure-volume test limit. This potentially reduces the cost of the cooling system.

[0024] Referring now to the drawings, Figure 1 illustrates a perspective view of one embodiment of a wind turbine 100 that may include a generator 300 in accordance with the disclosed technology. It should be understood that the generator 300 may be a superconducting generator having one or more superconducting windings. It should further be understood that the utilization of the generator 300 in a wind turbine 100 is provided as a non-limiting example. Thus, the generator 300 is not limited to employment in a wind turbine 100, but may be configured as any suitable generator or electric motor where cooling of the winding assembly may be desirable.

[0025] In one embodiment, the wind turbine 100 may generally include a tower 102 extending from a support surface 104. In one embodiment, the support surface may be land, such as for an onshore wind turbine. In additional embodiments, the support surface may be water or a foundation emanating from the ocean floor, such as for an offshore wind turbine. A nacelle 106 may be mounted to the tower 102 and have a rotor 108 coupled to the nacelle 106. The rotor 108 may include a rotatable hub 110 and one or more rotor blades 112 coupled to the hub 110 and extending outwardly therefrom. For example, in the illustrated embodiment, the rotor 108 includes three rotor blades 112. However, in additional embodiments, the rotor 108 may include more or fewer than three rotor blades 112. Each rotor blade 112 may be spaced circumferentially around the hub 110 to facilitate rotation of the rotor 108 to enable kinetic energy to be transferred from the wind into usable mechanical energy and subsequently into electrical energy. For example, the hub 110 may be rotatably coupled to a generator 300 so as to generate electrical energy.

[0026] 2, a simplified cross-sectional view of an upper longitudinal portion of a generator 300 is shown. The generator 300 may be coupled to a hub 110 to generate electrical power from the rotational energy generated by the rotor 108. A main shaft 114 is directly coupled to the hub 110 and supports a rotating component 302 (including one or more armature winding assemblies 304). Transfer Item 302 may be configured to rotate about axis (A) in response to rotational energy generated by rotor 108.

[0027] In one embodiment, rotating component 302 may be positioned coaxially with non-rotating component 308 about axis (A). Thus, rotating component 302 and non-rotating component 308 may be coaxial with rotor 108. In one embodiment, armature winding assembly 304 may be configured to rotate with rotating component 302 about axis (A) and radially inward of field winding assembly 310 supported by non-rotating component 308.

[0028] 2, in embodiments in which generator 300 is configured as a superconducting generator, field winding assembly 310 may be a superconducting field winding assembly 310. Thus, field winding assembly 310 may include superconducting coils 312, which may be groups of wires formed into a racetrack.

[0029] In one embodiment, the superconducting coils 312 may be constrained to maintain a racetrack shape, such as by the structure of the non-rotating part 308. As such, each superconducting coil 312 may be supported in a recess / passage 314 in the non-rotating part 308. Each recess / passage 314 may facilitate cooling of each superconducting coil 312 via a bath of helium, cryogenically, or by other methods known in the field of cryogenic engineering.

[0030] The superconducting coils 312, in one embodiment, may be arranged side by side in an annular array extending around the non-rotating component 308. The non-rotating component 308 may extend between a first axial position (A1) and a second axial position (A2). For example, 36 coils 312 may form an annular array of field windings that function as the stator field windings of the generator 300.

[0031] In one embodiment, the superconducting coils 312 may each be formed of a (NbTi or other superconducting) wire helically wound around a racetrack configuration that may include a cooling conduit for helium. The superconducting field winding assembly 310 may include a superconducting coil magnet that is enclosed in the non-rotating part 308 and receives a coolant through cooling recesses / passages 314.

[0032] 2 and further described in FIGS. 3 and 4, generator 300, in one embodiment, may include a cooling system 316. Cooling system 316 may be operably coupled to field winding assembly 310. Cooling system 316 may be configured to deliver cooling fluid 318 in a liquid state to field winding assembly 310. For example, in one embodiment, superconducting coil 312 of generator 300 may be insulated to enable cooling of superconducting coil 312 to near absolute zero, e.g., to 10 Kelvin (K), preferably below 5 K (e.g., to 4 K). In additional embodiments, superconducting coil 312 may be insulated to enable cooling of superconducting coil 312 to at least 50 K (e.g., at least 40 K).

[0033] Cooling system 316, in one embodiment, may include one or more reservoir units 320. Reservoir unit 320 may contain cooling fluid 318 in a liquid state. For example, reservoir unit 320 may contain liquid helium (He) or other similar cryogenic fluid in a liquid state. In one embodiment, substantially all of the internal volume of one or more reservoir units 320 may be filled with liquid cooling fluid 318. For example, in one embodiment, at least 95% (e.g., at least 97%, 98%, or 99%) of the internal volume of reservoir unit 320 may be filled with cooling fluid 318 in a liquid state when a desired operating temperature (e.g., less than 5 K) of field winding assembly 310 is established.

[0034] It should be appreciated that to the extent that the one or more reservoir units 320 can be substantially filled with liquid cooling fluid, warming of the cooling fluid 318 resulting from the mechanical energy of cooling fluid sloshing in the one or more reservoir units 320 can be mitigated / eliminated. Accordingly, the one or more reservoir units 320 can be formed without internal obstructions such as baffles.

[0035] Furthermore, it should be appreciated that in one embodiment, the volume of cooling fluid 318 required by cooling system 316 to achieve and maintain a desired operating temperature of field winding assembly 310 may make it desirable to employ multiple reservoir units 322. In such an embodiment, each reservoir unit 320 of the plurality of reservoir units 322 may be fluidly coupled to each additional reservoir unit 320. In such an embodiment, a first reservoir unit 324 of the plurality of reservoir units 322 may have a first volume. Additionally, a second reservoir unit 326 of the plurality of reservoir units 322 may have a second volume. In one embodiment, the first volume may be different from the second volume.

[0036] In one embodiment, the one or more reservoir units 320 may have a maximum length (L) and a maximum width (W). For example, the reservoir unit 320 may be generally cylindrical. As such, the maximum length (L) may be greater than the maximum width (W). Furthermore, the maximum length (L) may be oriented in a manner that facilitates placement of the generator 300 within the nacelle 106, for example, in accordance with spatial constraints imposed by the nacelle 106 (e.g., a maximum outer diameter of the generator 300 of less than 9.6 m). Accordingly, the maximum length (L) may be oriented parallel to the axis (A), perpendicular to the axis (A), or at any angle thereto. Additionally, the reservoir unit 320 may have a cross-sectional shape defined by a plane oriented perpendicular to the maximum length (L). In one embodiment, the one or more reservoir units 320 may have a generally circular cross-sectional shape. In additional embodiments, the one or more reservoir units 320 may have a non-circular cross-sectional shape. For example, spatial constraints of the nacelle 106 may make it desirable to form one or more reservoir units 320 to have a cross-sectional shape that is elliptical or other similar shape. Additionally, it should be understood that one or more reservoir units 320 of the plurality of reservoir units 322 may have a different cross-sectional shape and / or dimensions relative to the remaining reservoir units 320.

[0037] 2-4 , in one embodiment, the cooling system 316 may include multiple expansion units 328. The multiple expansion units 328 may be fluidly coupled to the reservoir unit 320. As such, the multiple expansion units 328 may contain a portion of the cooling fluid 318 in a gaseous state. For example, the multiple expansion units 328 may contain a portion of gaseous helium that may have evaporated from the liquid helium contained by one or more of the reservoir units 320.

[0038] In one embodiment, substantially all of the internal volumes of the multiple expansion units 328 may be filled with gaseous cooling fluid 318. For example, in one embodiment, at least 95% (e.g., at least 97%, 98%, or 99%) of the internal volumes of the multiple expansion units 328 may be filled with gaseous cooling fluid 318 when the desired operating temperature of the field winding assembly 310 is established. It should be understood that as long as the multiple expansion units 328 are substantially filled with gaseous cooling fluid 318, it may not be necessary to mitigate or eliminate warming of the portion of the cooling fluid 318 in a liquid state due to sloshing. Accordingly, the multiple expansion units 328 may be configured without internal obstructions, such as baffles. It should also be understood that the utilization of one or more reservoir units in conjunction with the multiple expansion units 328 of 320 may facilitate implementation of vibration mitigation methods, thereby mitigating / eliminating the effects of vibrational thermal loads on the cooling fluid 318.

[0039] 2 , in one embodiment, cooling system 316 may include a conduit network 330. Conduit network 330 may be fluidly coupled to one or more reservoir units 320 and configured to circulate a portion of cooling fluid 318. The portion of cooling fluid 318 may be circulated through conduit network 330 adjacent field winding assembly 310. By circulating the portion of cooling fluid 318 adjacent field winding assembly 310, cooling fluid 318 may absorb a certain amount of heat from field winding assembly 310.

[0040] In one embodiment, the cooling system 316 includes: Re The recondenser 332 may be located between the return portion 334 of the conduit network 330 and the reservoir unit 320. Re The condenser 332 may be configured to recondense the gaseous portion of the cooling fluid 318. In such an embodiment, Re The condenser 332 may include a plurality of cryocoolers 336 disposed within a corresponding plurality of liquefaction cups 338. For example, in one embodiment: Re Condenser 332 may include at least four cryocoolers 336 and corresponding liquefaction cups 338. It should be appreciated that utilization of at least four cryocoolers 336 may include one or more backup cryocoolers 336, thus facilitating continued operation of generator 300 in the event of a fault in cooling system 316. Furthermore, it should be appreciated that when employed on offshore wind turbines 100, access to repair wind turbines 100 may be limited. Thus, the ability to operate generator 300 in the presence of a cooling system failure may be particularly desirable.

[0041] As particularly depicted in the simplified cross-sectional side view of generator 300 in Figure 3, in one embodiment, cooling system 316 may be a closed-loop thermosiphon-type cryogenic cooling system. In such an embodiment, one or more reservoir units 320 may be located above field winding assembly 310 along a vertical axis (V). With one or more reservoir units 320 located vertically above field winding assembly 310, a portion of cooling fluid 318 may be introduced into conduit network 330 via gravity feed.

[0042] It should be understood that as a thermosiphon-type cryogenic cooling system, cooling system 316 may be configured as a passive cooling system, lacking the pumps (e.g., cryogenic pumps) relied upon in active cooling systems. Instead of one or more pumps of an active cooling system, gravity may be utilized by a thermosiphon-type cryogenic cooling system to introduce a portion of cooling fluid 318 into conduit network 330. Heat may be transferred from field winding assembly 310 to the portion of cooling fluid 318 such that the portion circulates adjacent to field winding assembly 310. The heat transfer may result in a plurality of gas bubbles being entrained by cooling fluid 318, establishing a flow toward recondenser 332 without the aid of a pump. Recondenser 332 may then be fluidly coupled to lower surface 340 of reservoir unit 320 to return the recondensed portion of cooling fluid 318 thereto.

[0043] In embodiments in which the cooling system 316 is configured as a thermosiphon-type cryogenic cooling system, the multiple expansion units 328 may be positioned above and adjacent to the reservoir unit 320. Positioning the multiple expansion units 328 above the reservoir unit 320 may facilitate the flow of the gaseous portion of the cooling fluid 318 from one or more reservoir units 320 to the multiple expansion bodies 328 without the assistance of a pump.

[0044] 2 and 3 , in one embodiment, the cooling system 316 may include a first plurality of toroidal expansion units 342. The first plurality of toroidal expansion units 342 surround an axis (A) adjacent a first axial location (A1). Each toroidal expansion unit of the first plurality of toroidal expansion units 342 may have an enclosed volume defined by a tubular wall 344. Additionally, the first plurality of toroidal expansion units 342 may be fluidly coupled to the conduit network 330.

[0045] In one embodiment, the cooling system 316 may include a second plurality of toroidal expansion units 346. Second plurality of toroidal expansion unit346 surrounds the axis (A) adjacent the second axial location (A2). Each toroidal expansion unit of the second plurality of toroidal expansion units 346 may have an enclosed volume defined by a tubular wall 344. Additionally, the second plurality of toroidal expansion units 346 may be fluidly coupled to the conduit network 330.

[0046] The first and / or second plurality of toroidal expansion units 342, 346 may be employed during a cool-down operation in which the temperature of the field winding assembly 310 is brought to a desired operating temperature (e.g., below 5 K). For example, in embodiments employing NbSn or other similar superconductors, the desired operating temperature may be below 10 K. Additionally, the first and / or second plurality of toroidal expansion units 342, 346 may function as reservoirs to receive a portion of the cooling fluid 318 in gaseous form if the cooling fluid 318 warms above the desired operating temperature. For example, the first and / or second plurality of toroidal expansion units 342, 346 may function as a safety feature to capture and recover an unexpected portion of the gaseous cooling fluid in response to a cooling system failure without damaging other components of the cooling system 316.

[0047] 2 and 3 , in one embodiment, generator 300 may include a vacuum vessel 348. Vacuum vessel 348 (e.g., a vacuum chamber) may enclose any or all of field winding assembly 310, reservoir unit 320, multiple expansion units 328, conduit network 330, first multiple toroidal expansion units 342, second multiple toroidal expansion units 346, and at least a portion of recondenser 332. Vacuum vessel 348 may be a chamber configured to facilitate the establishment of vacuum / near-vacuum conditions within its interior volume. It should be appreciated that the establishment of vacuum / near-vacuum conditions within vacuum vessel 348 may facilitate the establishment and maintenance of a desired operating temperature (e.g., below 4 K to 5 K) of superconducting coil 312.

[0048] In one embodiment, a heat shield 350 (e.g., a heat shield) may be disposed within vacuum vessel 348. Heat shield 350 may be configured as a multi-layer insulator. Thus, heat shield 350 may be configured to mitigate heat transfer to field winding assembly 310, which may reduce the ability of cooling system 316 to maintain a desired operating temperature of field winding assembly 310.

[0049] In one embodiment, the first and / or second plurality of toroidal expansion units 342, 346 may be disposed within the heat shield 350. It should be appreciated that utilizing multiple toroidal expansion units, as opposed to utilizing a single toroidal tank, may facilitate the placement of the first and / or second plurality of toroidal expansion units 342, 346 within the heat shield 350. For example, in embodiments where the cross-sectional area of ​​a single toroidal tank may exceed the space limitations within the heat shield 350, a reduced cross-sectional area of ​​each toroidal expansion unit of the first and / or second plurality of toroidal expansion units 342, 346 may be accommodated within the heat shield 350.

[0050] It should further be appreciated that maintaining the first and / or second plurality of toroidal expansion units 342, 346 at the desired operating temperature of the field winding assembly 310 can be beneficial to the operation of the cooling system 316. For example, the "lay time" of the generator 300 following a cooling system failure may represent the period during which the operating temperature of the field winding assembly 310 remains low enough to allow continued operation of the generator 300. To that end, maintaining the first and / or second plurality of toroidal expansion units 342, 346 at an operating temperature of 5 K or below can increase the ride-through time over the ride-through time available if the first and second plurality of toroidal expansion units 342, 346 were maintained at a higher temperature (e.g., 50 K). In other words, maintaining the first and / or second plurality of toroidal expansion units 342, 346 at the desired operating temperature may allow the generator 300 to continue operating for a longer period of time, thus increasing the opportunity to correct a cooling system failure before a system shutdown.

[0051] 2, in one embodiment, one or more toroidal expansion units 352 of the first and / or second plurality of toroidal expansion units 342, 346 may be positioned in contact with the heat shield 350. Positioning the one or more toroidal expansion units 352 in contact with the heat shield 350 may increase the stiffness of the heat shield.

[0052] In one embodiment, one or more toroidal expansion units 352 of the first and / or second plurality of toroidal expansion units 342, 346 may have a non-circular cross-sectional shape. For example, in one embodiment, the tubular wall 344 may be formed as a square tubular wall 344 having a polygonal cross-sectional shape, such as a square or rectangular cross-sectional shape.

[0053] The tubular wall 344 for each toroidal expansion unit of the first and / or second plurality of toroidal expansion units 342, 346 may have a wall thickness of 5 mm or less. In contrast, in known systems utilizing a single toroidal tank, the wall thickness of the single toroidal tank may exceed 15 mm. Therefore, utilizing toroidal expansion units with wall thicknesses of 5 mm or less may be particularly beneficial. For example, due at least in part to the reduced wall thickness, the first and / or second plurality of toroidal expansion units 342, 346 may have a lower weight per unit volume than a corresponding single toroidal tank. Furthermore, the reduced wall thickness of the toroidal expansion units may reduce the degree of technical difficulty in forming toroidal expansion units with diameters greater than 8 m (e.g., greater than 9 m) compared to the technical difficulties inherent in forming a single toroidal tank of similar dimensions with a wall thickness greater than 15 mm.

[0054] 2-4 , the design pressures and internal volumes of reservoir unit 320, multiple expansion units 328, first multiple toroidal expansion units 342, and / or second multiple toroidal expansion units 346 may correspond to various pressure-volume test limits. The various pressure-volume test limits may correspond to various maximum test pressures and test durations that may be required based on the pressure-volume multiplication values ​​of the corresponding units. The pressure-volume test limit may be the vessel pressure multiplied by the vessel volume. For example, a large-capacity pressure vessel designed to hold a fluid at a relatively high pressure may need to maintain the high pressure for a longer test duration than a large-capacity pressure vessel designed to hold a fluid at a relatively low pressure. These test limits may be aimed at reducing the risk of potential harm in the event of a vessel failure. However, this harm may be mitigated / mitigated by employing the units described herein, in which the required volume is divided among multiple units for a given pressure. It should be appreciated that each of the reservoir unit 320, the plurality of expansion units 328, the first plurality of toroidal expansion units 342 and / or the second plurality of toroidal expansion units 346 may be configured to have an initial operating pressure of 15 MPa or less (e.g., at least 8 MPa to 15 MPa or less).

[0055] By way of further example, if the initial operating pressure is 10 MPa, the test pressure may be 13 MPa. Thus, the pressure-volume multiplier for a single pressure vessel may be, for example, 10,000 (e.g., 100 bar multiplied by 100 liters). Such a pressure-volume multiplier product may classify the pressure vessel as TÜV Rheinland Test Group VI or Test Group VII, and therefore may require additional testing / inspection than is required for pressure vessels in Test Groups I through V.

[0056] Because the additional testing / inspection requirements of the exemplary configuration described above may not be desirable, it may be beneficial to establish a pressure-volume multiplier at a level below the pressure-volume test limit. For example, instead of a single 100-liter pressure vessel, ten 10-liter tanks may be employed. In such a configuration, the pressure-volume multiplier for each pressure vessel may be 1000 (e.g., 100 bar multiplied by 10 liters). Such a pressure-volume multiplier may result in the pressure vessel being classified as TÜV Rheinland Test Group III (rather than Test Group VI or Test Group VII), but would provide the same cumulative storage and pressure capacity as a single 100-liter pressure vessel. Meeting the inspection / test requirements for a Test Group III pressure vessel may be less onerous than those required for Test Groups VI or VII. It should be understood that the specific pressures and volumes described above are provided for illustrative purposes and are not intended to be limiting.

[0057] According to the present disclosure, the cooling system 316 may be configured to maintain a portion of the cooling fluid 318 at a specific operating pressure in each of the system units (e.g., the reservoir unit 320, the plurality of expansion units 328, the first plurality of toroidal expansion units 342, and / or the second plurality of toroidal expansion units 346). As such, the pressure within each system unit may be inherently constrained to a specific range. Thus, the relationship of each system unit to its pressure-volume multiplication limit is determined by the internal volume of each system unit, which in turn is determined by the dimensions of each system unit. Thus, in one embodiment, the dimensions, and therefore the volume, of each of the reservoir unit 320, the plurality of expansion units 328, the first plurality of toroidal expansion units 342, and / or the second plurality of toroidal expansion units 346, and / or the volume may be determined in consideration of the corresponding pressure-volume test limits. In other words, the volume required by the cooling system 316 for each function may be divided into multiple units (e.g., one or more reservoir units 320 and multiple expansion units 328) to eliminate exceeding the pressure-volume test limits.

[0058] For example, in one embodiment, the maximum pressure-volume multiplication value for each reservoir unit 320 or plurality of reservoir units 322 may be less than the pressure-volume test limit. In additional embodiments, the maximum pressure-volume multiplication value for each expansion unit of the plurality of expansion units 328 may be less than the pressure-volume test limit. In further embodiments, the maximum pressure-volume multiplication value for each toroidal expansion unit of the first and / or second plurality of toroidal expansion units 342, 346 may be less than the pressure-volume test limit.

[0059] In contrast to the present disclosure, it should be understood that the volume of cooling fluid 318 required by the closed-loop cooling system 316 may result in a pressure-volume multiplication value that exceeds pressure-volume test limits when a single bulky storage tank is employed in place of one or more reservoir units 320 and fluidly coupled multiple expansion units 328 as disclosed herein. Therefore, employing a single bulky storage tank may result in greater testing requirements and increased construction required to meet the testing requirements. Similarly, if a single toroidal tank is employed in place of the first and / or second multiple toroidal expansion tanks 342, 346, the larger volume of the single tank at a given pressure may require more rigorous testing and corresponding increased construction than may be required when employing the first and / or second multiple toroidal expansion tanks 342, 346.

[0060] Referring again to FIG. 4 , in one embodiment, each of the plurality of reservoir units 322 may be fluidly coupled to a respective additional reservoir unit 320. Further, in one embodiment, each of the plurality of reservoir units 322 may be fluidly coupled to a respective one of the plurality of expansion units 328. The fluid coupling between the plurality of reservoir units 322 and the plurality of expansion units 328 may be achieved, for example, via a manifold 354. In other words, the manifold 354 may connect the plurality of expansion units 328 to the plurality of reservoir units 322. In such an arrangement, the cooling system 316 may have a ratio of reservoir units 320 to expansion units 328 of at least 1.0:1.5. In other words, in one embodiment, the cooling system 316 may include at least 1.5 expansion units 328 for each reservoir unit 320 to support the required amount of cooling fluid 318 for the closed-loop cooling system 316.

[0061] Moreover, those skilled in the art will recognize the interchangeability of various features from different embodiments. Similarly, the various method steps and features described, and other known equivalents for each such method and feature, can be mixed and matched by one of ordinary skill in the art to construct additional systems and techniques in accordance with the principles of the present disclosure. Of course, it should be understood that not necessarily all such objects or advantages described above can be achieved in accordance with any particular embodiment. Thus, for example, those skilled in the art will recognize that the systems and techniques described herein can be embodied or performed in a manner that achieves or optimizes one advantage or group of advantages taught herein without necessarily achieving other objects or advantages that may be taught or suggested herein.

[0062] This specification has used examples to disclose the invention, including the best mode, and to enable those skilled in the art to practice the invention, including making and using the devices or systems and practicing the methods. The patentable scope of the invention is defined by the claims, and may include other examples that are obvious to those skilled in the art. Such other examples are within the scope of the claims if they have elements that are not literal in any way different from the claims, or equivalent elements that differ only insubstantially from the literal language of the claims.

[0063] Additional aspects of the present invention are set forth in the following embodiments. [Embodiment 1] 1. A generator comprising: a non-rotating component supporting a field winding assembly, the non-rotating component having an annular cross-sectional shape extending between a first axial position and a second axial position and surrounding an axis; an armature winding assembly secured to the rotating component for rotation therewith and relative to the non-rotating component during operation of the generator; and a cooling system operatively coupled to the field winding assembly, the cooling system including one or more reservoir units containing a cooling fluid in a liquid state, a plurality of expansion units containing a cooling fluid in a gaseous state fluidly coupled to the one or more reservoir units, and one or more a conduit network fluidly coupled to the reservoir unit above, the conduit network configured to circulate a portion of cooling fluid adjacent to the field winding assembly to cool the field winding assembly; a first plurality of toroidal expansion units surrounding the axis adjacent a first axial location; and a second plurality of toroidal expansion units surrounding the axis adjacent a second axial location, each toroidal expansion unit of the first and second pluralities having an enclosed volume defined by a tubular wall, the first and second pluralities of toroidal expansion units fluidly coupled to the conduit network. [Embodiment 2] 2. The generator of embodiment 1, wherein the generator is a superconducting generator and the field winding assembly is a superconducting field winding assembly. [Embodiment 3] A generator as described in embodiment 1 or embodiment 2, wherein the cooling system is a cryogenic cooling system, the cooling fluid is a cryogenic cooling fluid, and the cooling system further comprises a recondenser arranged between the return portion of the conduit network and one or more reservoir units and configured to recondense the gaseous portion of the cooling fluid, and a plurality of cryocoolers arranged within corresponding plurality of liquefaction cups of the recondenser. [Embodiment 4] A generator as described in any one of embodiments 1 to 3, wherein the cryogenic cooling system is a thermosiphon type cryogenic cooling system, wherein one or more reservoir units are arranged above the field winding assembly along a vertical axis so that a portion of the cooling fluid is introduced into the conduit network by gravity feed, and wherein a plurality of expansion units are arranged above and adjacent to the one or more reservoir units, and heat is transferred from the field winding assembly to a portion of the cooling fluid to generate a plurality of bubbles entrained in the cooling fluid and generate a flow toward a recondenser, and the recondenser is fluidly coupled to a lower surface of the one or more reservoir units to return a recondensed portion of the cooling fluid to the one or more reservoir units. [Embodiment 5] A generator as described in any one of embodiments 1 to 4, further comprising a vacuum vessel enclosing a field winding assembly, one or more reservoir units, a plurality of expansion units, a conduit network, a first plurality of toroidal expansion units, a second plurality of toroidal expansion units, and at least a portion of a recondenser. [Embodiment 6] A generator as described in any one of embodiments 1 to 5, further comprising a heat shield disposed within the vacuum vessel, the heat shield surrounding the field winding assembly and spaced apart from the field winding assembly, and the first and second plurality of toroidal expansion units being disposed within the heat shield. [Embodiment 7] A generator as described in any one of embodiments 1 to 6, wherein the one or more reservoir units further comprise a plurality of reservoir units, each of the plurality of reservoir units being fluidly connected to each additional reservoir unit of the plurality of reservoir units and each of the plurality of expansion units. [Embodiment 8] A generator as described in any one of embodiments 1 to 7, wherein each of the plurality of reservoir units, each of the plurality of expansion units, and each of the first and second plurality of toroidal expansion units further has a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each reservoir unit of the plurality of reservoir units, a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each expansion unit of the plurality of expansion units, and a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each toroidal expansion unit of the first and second plurality of toroidal expansion units. [Embodiment 9] A generator described in any one of embodiments 1 to 8, wherein multiple reservoir units and multiple expansion units are fluidly connected via a manifold. [Embodiment 10] A generator as described in any one of embodiments 1 to 9, wherein the plurality of reservoir units further comprises a first reservoir unit among the plurality of reservoir units having a first volume, and a second reservoir among the plurality of reservoir units having a second volume, and the first volume is different from the second volume. [Embodiment 11] A generator described in any one of embodiments 1 to 10, wherein one reservoir unit of the plurality of reservoir units has a cross-sectional shape defined by a maximum length and a plane oriented perpendicular to the maximum length, and the cross-sectional shape is non-circular. [Embodiment 12] A generator described in any one of embodiments 1 to 11, wherein each of the multiple reservoir units and each of the multiple expansion units has a single, integrated internal volume unobstructed by baffles. [Embodiment 13] A generator described in any one of embodiments 1 to 12, wherein the ratio of reservoir unit to expansion unit is at least 1.0:1.5. [Embodiment 14] A generator described in any one of embodiments 1 to 13, wherein one or more toroidal expansion units of the first plurality of toroidal expansion units or the second plurality of toroidal expansion units are arranged in contact with the heat shield to increase the rigidity of the heat shield. [Embodiment 15] A generator described in any one of embodiments 1 to 14, wherein one or more toroidal expansion units of the first plurality of toroidal expansion units or the second plurality of toroidal expansion units have a non-circular cross-sectional shape. [Embodiment 16] A generator described in any one of embodiments 1 to 15, wherein each toroidal expansion unit of the first and second plurality of toroidal expansion units has a wall thickness of 5 mm or less. [Embodiment 17] 1. A wind turbine comprising: a rotor having a plurality of rotor blades; and a superconducting generator operatively coupled to the rotor and disposed in a nacelle of the wind turbine, the superconducting generator comprising: a non-rotating component supporting a superconducting field winding assembly, the non-rotating component having an annular cross-sectional shape extending between a first axial position and a second axial position and circumscribing an axis; an armature winding assembly fixed to the rotating component and rotating with and relative to the rotating component in response to rotation of the rotor; and a closed-loop thermosiphon-type cryogenic refrigeration system (refrigeration system) operatively coupled to the superconducting field winding assembly, the refrigeration system comprising: one or more reservoir units containing a cryogenic refrigeration fluid in a liquid state; the one or more reservoir units located above the superconducting field winding assembly; and a plurality of expansion units containing a cryogenic refrigeration fluid in a gaseous state fluidly coupled to the one or more reservoir units, the plurality of expansion units being located above and adjacent to the one or more reservoir units. a conduit network fluidly coupled to one or more reservoir units to receive a portion of the cryogenic cooling fluid by gravity feed, the conduit network configured to circulate a portion of the cryogenic cooling fluid adjacent to the superconducting armature winding assembly to cool the superconducting armature winding assembly; a recondenser disposed between a return portion of the conduit network and the one or more reservoir units, the recondenser configured to recondense a gaseous portion of the cryogenic cooling fluid by removing heat, the recondenser fluid being fluidly coupled to a lower surface of the one or more reservoir units to return the recondensed portion of the cryogenic cooling fluid to the one or more reservoir units; a first plurality of toroidal expansion units surrounding the axis adjacent a first axial location; and a second plurality of toroidal expansion units surrounding the axis adjacent a second axial location, each toroidal expansion unit of the first and second plurality of toroidal expansion units having an enclosed volume defined by a tubular wall, the first and second plurality of toroidal expansion units being fluidly coupled to the conduit network. [Embodiment 18] A wind turbine as described in embodiment 17, further comprising a vacuum vessel enclosing a superconducting field winding assembly, one or more reservoir units, a plurality of expansion units, a conduit network, a first plurality of toroidal expansion units, a second plurality of toroidal expansion units, at least a portion of a recondenser, and a heat shield disposed within the vacuum vessel and surrounding the field winding assembly and spaced apart from the field winding assembly, wherein the first and second plurality of toroidal expansion units are disposed within the heat shield. [Embodiment 19] A wind turbine as described in embodiment 17 or embodiment 18, wherein the one or more reservoir units further comprise a plurality of reservoir units, each of the plurality of reservoir units being fluidly connected to each additional reservoir unit of the plurality of reservoir units and to each of the plurality of expansion units via a manifold. [Embodiment 20] A wind turbine as described in any one of embodiments 17 to 19, wherein each of the plurality of reservoir units, each of the plurality of expansion units, and each of the first and second plurality of toroidal expansion units further has a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each reservoir unit of the plurality of reservoir units, a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each expansion unit of the plurality of expansion units, and a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each toroidal expansion unit of the first and second plurality of toroidal expansion units. [Explanation of symbols]

[0064] 100 wind turbine 102 Tower 106 Nacelle 108 rotor 110 Hub 112 rotor blades 300 generator 302 Rotating parts 304 Armature Winding Assembly 308 Non-rotating parts 310 Field Winding Assembly 312 Superconducting coil 316 Cooling system 318 cooling fluid 320 Reservoir Unit 322 Multiple Reservoir Units 324 First Reservoir Unit 326 Second Reservoir Unit 328 Expansion unit 330 conduit network 332 Recondenser 334 Return section of the pipeline network 336 Cryocooler 338 Liquefaction Cup 342 First plurality of toroidal expansion units 346 Second Multiple Toroidal Expansion Units 348 vacuum container 350 heat shield 354? manifold

Claims

1. A superconducting generator (300), comprising: a non-rotating component (308) that supports a superconducting field winding assembly (310), the non-rotating component (308) having an annular cross-sectional shape that extends between a first axial position (A1) and a second axial position (A2) and surrounds the axis; an armature winding assembly (304) fixed to the rotating component (302) and rotating together with the rotating component (302) relative to the non-rotating component (308) during operation of the superconducting generator (300); a thermosiphon-type cryogenic cooling system (316) operably coupled to the superconducting field winding assembly (310); wherein the cryogenic cooling system (316) comprises: one or more reservoir units (320) containing a cryogenic cooling fluid in a liquid state; a plurality of expansion units (328) containing a cryogenic refrigerant fluid in a gaseous state fluidly coupled to the one or more reservoir units (320); a conduit network (330) fluidly coupled to the one or more reservoir units (320), the conduit network (330) configured to circulate a portion of the cryogenic cooling fluid adjacent the superconducting field winding assembly (310) to cool the superconducting field winding assembly (310); a recondenser (332) disposed between the return portion (334) of the conduit network (330) and the one or more reservoir units (320), the recondenser (332) configured to recondense a gaseous portion of the cryogenic cooling fluid; a first plurality of toroidal expansion units (342) surrounding the axis adjacent a first axial location (A1); a second plurality of toroidal expansion units (346) surrounding the axis adjacent a second axial location (A2); each toroidal expansion unit of the first and second pluralities of toroidal expansion units (342, 346) having an enclosed volume defined by a tubular wall, the first and second pluralities of toroidal expansion units (342, 346) being fluidly coupled to the conduit network (330); the one or more reservoir units (320) are positioned above the superconducting field winding assembly (310) along a vertical axis such that a portion of the cryogenic cooling fluid is introduced into the conduit network (330) by gravity feed; the plurality of expansion units (328) are disposed above and adjacent to the one or more reservoir units (320); heat is transferred from the superconducting field winding assembly (310) to a portion of the cryogenic cooling fluid to generate a plurality of gas bubbles entrained in the cryogenic cooling fluid and to generate a flow toward the recondenser (332); The superconducting generator (300), wherein the recondenser (332) is fluidly coupled to a lower surface of the one or more reservoir units (320) to return a recondensed portion of the cryogenic cooling fluid to the one or more reservoir units (320).

2. A superconducting generator (300) as described in claim 1, wherein the ultra-low temperature cooling system (316) further comprises a plurality of cryocoolers (336) arranged within corresponding plurality of liquefaction cups of the recondenser (332).

3. 10. The superconducting generator of claim 1, further comprising: a vacuum vessel enclosing the superconducting field winding assembly; the one or more reservoir units; the plurality of expansion units; the conduit network; the first plurality of toroidal expansion units; the second plurality of toroidal expansion units; and at least a portion of the recondenser.

4. 4. The superconducting generator of claim 3, further comprising a heat shield disposed within the vacuum vessel, the heat shield surrounding the superconducting field winding assembly and spaced apart from the superconducting field winding assembly, and wherein the first and second plurality of toroidal expansion units are disposed within the heat shield.

5. 4. The superconducting generator (300) of claim 3, wherein the one or more reservoir units (320) further comprise a plurality of reservoir units (322), each of the plurality of reservoir units (322) fluidly coupled to a respective additional reservoir unit of the plurality of reservoir units and to each of the plurality of expansion units (328).

6. Each of the plurality of reservoir units (322), each of the plurality of expansion units (328), and each of the first and second plurality of toroidal expansion units (342, 346) a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each reservoir unit of the plurality of reservoir units (322); a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each expansion unit of the plurality of expansion units (328); and a maximum pressure-volume multiplication value that is less than a pressure-volume test limit for each toroidal expansion unit of the first and second pluralities of toroidal expansion units (342, 346); The superconducting generator (300) of claim 5, comprising:

7. The superconducting generator (300) of claim 5, wherein the plurality of reservoir units (322) and the plurality of expansion units (328) are fluidly coupled via a manifold (354).

8. The plurality of reservoir units (322) a first reservoir unit (324) having a first volume among the plurality of reservoir units; a second reservoir unit (326) having a second volume among the plurality of reservoir units; 6. The superconducting generator of claim 5, further comprising: a first volume different from the second volume.

9. A reservoir unit of the plurality of reservoir units (322) further comprises: Maximum length, and 6. The superconducting generator (300) of claim 5, having a cross-sectional shape defined by a plane oriented perpendicular to a maximum length, said cross-sectional shape being non-circular.

10. The superconducting generator (300) of claim 5, wherein each of the plurality of reservoir units (322) and the plurality of expansion units (328) has a single, integral interior volume unobstructed by baffles.

11. The superconducting generator (300) of claim 5, wherein the ratio of reservoir unit to expansion unit is at least 1.0:1.

5.

12. 5. The superconducting generator of claim 4, wherein one or more toroidal expansion units of the first plurality of toroidal expansion units or the second plurality of toroidal expansion units are positioned in contact with the heat shield to increase stiffness of the heat shield.

13. The superconducting generator (300) of claim 4, wherein one or more toroidal expansion units of the first plurality of toroidal expansion units (342) or the second plurality of toroidal expansion units (346) have a non-circular cross-sectional shape.

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