FLUID TURBINE ASSEMBLY AND METHOD OF ACTUATION OF A FLUID TURBINE
20240229756 ยท 2024-07-11
Inventors
Cpc classification
F05B2240/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2220/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A fluid turbine assembly (1), comprising: at least a main rotation shaft (2) being configured to rotate around a longitudinal rotation axis (X), a main rotor (3) comprising a central portion and an outer portion, the main rotor (3) being installed on the main rotation shaft (2) in such a way to bring the main rotation shaft (2) in rotation with the main rotor (3), at least an auxiliary rotation shaft (2x), a secondary rotor (10), the secondary rotor (10) being installed on the auxiliary rotation shaft (2x) in such a way to bring the auxiliary rotation shaft (2x) in rotation with the secondary rotor (10), an inlet assembly (4) for a fluid, said inlet assembly (4) being configured to drive a fluid to the main rotor (3) and/or to the secondary rotor (10),
wherein at least the main rotor (3) and the secondary rotor (10) have different mechanical characteristics and/or inertia and/or wherein at least the main rotor (3) is configured for delivering a first power and the secondary rotor (10) is configured for delivering a second power,
the fluid turbine assembly (1) being configured to provide rotation power and/or torque to the main rotation shaft (2) through the main rotor (3) and/or to the auxiliary rotation shaft (2x) through the secondary rotor (10) or to select the rotation power and/or torque distribution from said main rotation shaft (2) and/or from the auxiliary rotation shaft (2x) according to a predetermined and automatically selectable criterion of selection of rotation power and/or torque transmission from at least one between said main rotor (3) or said secondary rotor (10).
Claims
1. A fluid turbine assembly, comprising: at least a main rotation shaft being configured to rotate around a longitudinal rotation axis, a main rotor comprising a central portion and an outer portion, the main rotor being installed on the main rotation shaft in such a way to bring the main rotation shaft in rotation with the main rotor, at least an auxiliary rotation shaft, a secondary rotor, the secondary rotor being installed on the auxiliary rotation shaft in such a way to bring the auxiliary rotation shaft in rotation with the secondary rotor, an inlet assembly for a fluid, said inlet assembly being configured to drive a fluid to the main rotor and/or to the secondary rotor, wherein at least the main rotor and the secondary rotor have different mechanical characteristics and/or inertia and/or wherein at least the main rotor is configured for delivering a first power and the secondary rotor is configured for delivering a second power, the fluid turbine assembly being configured to provide rotation power and/or torque to the main rotation shaft through the main rotor and/or to the auxiliary rotation shaft through the secondary rotor or to select the rotation power and/or torque distribution from said main rotation shaft and/or from the auxiliary rotation shaft according to a predetermined and automatically selectable criterion of selection of rotation power and/or torque transmission from at least one between said main rotor or said secondary rotor.
2. The fluid turbine assembly according to claim 1, wherein the inlet assembly is configured to be fed at least by a fluid reservoir, in particular at least by a fluid reservoir arranged at an altitude higher than the altitude at which the fluid turbine assembly is arranged, and/or is configured to be fed by a penstock where, in use, water coming from a reservoir is made to flow.
3. The fluid turbine assembly according to claim 1, comprising a selection element configured to provide the rotation power and/or torque to the main rotation shaft through the main rotor and/or to the auxiliary rotation shaft through the secondary rotor or to select the rotation power and/or torque distribution from said main rotation shaft and/or from the auxiliary rotation shaft according to a predetermined and automatically selectable criterion of selection; the selection element comprising: a selection valve comprising at least a first outlet and a second outlet, said first outlet and said second outlet being respectively configured to feed the main rotor and the secondary rotor and/or coupling elements configured to select alternatively or in combination the rotation power and/or torque from the main rotation shaft and/or from the auxiliary rotation shaft; the fluid turbine comprising a power output shaft and the coupling elements being configured to alternatively or simultaneously couple the main rotation shaft and/or the auxiliary rotation shaft to the power output shaft.
4. (canceled)
5. The fluid turbine assembly according to claim 1, being configured to receive a control signal for selecting which, between the main rotor and/or the secondary rotor, shall be coupled to the main rotation shaft and/or to the auxiliary rotation shaft, and/or for selecting which between the main rotation shaft and the auxiliary rotation shaft shall provide said rotation power and/or torque, and/or wherein said criterion of selection includes at least one between a power demand, or a fluid head feeding the main rotor and/or the secondary rotor, or the flow rate of the fluid feeding, in use, the main rotor and/or the secondary rotor.
6. (canceled)
7. The fluid turbine assembly according to claim 1, further comprising a data processing unit configured to control the selection of the feeding of fluid through the fluid inlet to the main rotor and/or to the secondary rotor according to said criterion, or to control the selection of rotation power or torque distribution elements from said main rotor and/or said secondary rotor according to said criterion.
8. The fluid turbine assembly according to claim 1, wherein the main rotor is a centrally fed rotor, and/or wherein the inlet assembly is configured to feed fluid to the main rotor from the central portion thereof, the main rotor comprises a plurality of hollow arms at least partially arranged along a radial direction, said plurality of hollow arms realizing a plurality of fluid distribution conduits configured to allow, in use, the distribution of fluid from the central portion of the main rotor to the outer portion of the main rotor, optionally wherein the plurality of hollow arms is configured to distribute the fluid uniformly along a plurality of directions, each direction being associated to at least one of said hollow arms, each arm of the plurality of hollow arms comprising a central portion, and a distal portion substantially positioned at the outer portion of the main rotor, said distal portion being arranged in a direction substantially inclined with respect to a radial direction and to said longitudinal rotation axis, optionally being configured to direct, in use, fluid to a predetermined direction to cause the rotation of the main rotor by means of a reaction force, preferably wherein the main rotor is configured to distribute the fluid at least partially by means of a centrifugal force on said fluid due to the rotation of the main rotor around the longitudinal rotation axis, in particular being configured to distribute the fluid at least partially by means of a centrifugal force on said fluid due to the rotation of the hollow arms of the main rotor around said longitudinal rotation axis.
9. (canceled)
10. The fluid turbine assembly according to claim 1, wherein: the auxiliary rotation shaft rotates around an axis which is parallel to said longitudinal rotation axis, and/or the auxiliary rotation shaft is co-axial with the main rotation shaft, the auxiliary rotation shaft being hollow and comprising a through hole configured to house part of the main rotation shaft, and/or the through hole is axially aligned with the longitudinal rotation axis and/or wherein the secondary rotor is an annular rotor laying outside the main rotor, the secondary rotor being centered on said longitudinal rotation axis, and/or wherein the secondary rotor is configured to rotate freely from the main rotor and/or with respect to the main rotor.
11. (canceled)
12. The fluid turbine assembly according to claim 1, wherein said inlet assembly comprises a Venturi conduit comprising a first inlet configured to be connected to, and to be fed in use with, a pressurized primary fluid source, and a second inlet configured to be submerged into, and to drag fluid from, a secondary fluid source to the rotor under the dragging effect caused by the fluid flowing in said first inlet.
13. The fluid turbine assembly according to claim 1, wherein the fluid turbine assembly is configured to re-use at least partially the fluid discharged by the main rotor or used to feed said main rotor, optionally in the secondary fluid source, to feed said first inlet.
14. A method of actuation of a fluid turbine assembly, optionally a fluid turbine assembly according to claim 1, the method comprising: a step of providing rotation power and/or torque by putting in rotation at least one between a main rotation shaft and an auxiliary rotation shaft of the fluid turbine assembly, said step of providing rotation power and/or torque comprising providing fluid to a main rotor and/or to a secondary rotor of the fluid turbine assembly by means of an inlet assembly and selecting, according to a predetermined and automatically selectable criterion of selection, the feeding, by the inlet assembly, of, or of the power provided by: a main rotor comprising a central portion and an outer portion, the main rotor being installed on the main rotation shaft configured to rotate around an own longitudinal rotation axis, in such a way to bring the main rotation shaft in rotation with the main rotor, the main rotor having a first inertia, and/or first mechanical characteristics and/or being configured to deliver a first power, and/or a secondary rotor, the secondary rotor being installed on an auxiliary rotation shaft, said auxiliary rotation shaft being configured to rotate around an own longitudinal rotation axis, in such a way to bring the auxiliary rotation shaft in rotation with the secondary rotor, the secondary rotor having a second inertia, and/or second mechanical characteristics and/or being configured to deliver a second power.
15. The method of claim 14, comprising feeding the inlet assembly at least by a fluid reservoir, in particular at least by a fluid reservoir arranged at an altitude higher than the altitude at which the fluid turbine assembly is arranged, and/or by a penstock where, in use, water coming from a reservoir is made to flow.
16. The method according to claim 15, wherein selecting, according to the predetermined and automatically selectable criterion of selection, the feeding, by the inlet assembly, of the main rotor and/or of the secondary rotor, or the power provided by the main rotor and/or the secondary rotor comprises activating a selection element configured to provide the rotation power and/or torque to the main rotation shaft through the main rotor and/or to the auxiliary rotation shaft through the secondary rotor or to select the rotation power and/or torque distribution from said main rotation shaft and/or from the auxiliary rotation shaft according to a predetermined and automatically selectable criterion of selection, in particular wherein selecting, according to the predetermined and automatically selectable criterion of selection, the feeding, by the inlet assembly, of, or of the power provided by, the main rotor comprises: activating a selection valve for feeding the main rotor with a first out of the selection valve and/or for feeding the secondary rotor with a second outlet of the selection valve, and/or activating coupling elements and selecting alternatively or in combination the rotation power and/or torque from the main rotation shaft and/or from the auxiliary rotation shaft through the coupling elements.
17. The method according to claim 16, wherein the fluid turbine assembly comprises a power output shaft and selecting alternatively or in combination the rotation power and/or torque from the main rotation shaft and/or from the auxiliary rotation shaft through the coupling elements comprises feeding power and/or torque to the power output shaft from at least one between main rotation shaft and/or the auxiliary rotation shaft.
18. The method according to claim 14, comprising a step of receiving a control signal for selecting which, between the main rotor and/or the secondary rotor, shall be coupled to the main rotation shaft and/or to the auxiliary rotation shaft, and/or for selecting which between the main rotation shaft and the auxiliary rotation shaft shall provide said rotation power and/or torque, and/or wherein the method further comprises a step of coupling at least one between the main rotor and/or the secondary rotor to the main rotation shaft and/or to the auxiliary rotation shaft, and/or further comprising selecting which, between the main rotation shaft and the auxiliary rotation shaft provides said rotation power and/or torque.
19. (canceled)
20. The method according to claim 14, the method comprising receiving said control signal on a data processing unit and controlling the selection of the feeding of fluid through the fluid inlet to the main rotor and/or to the secondary rotor according to said criterion, or controlling the selection of the rotation power or torque distribution elements from the main rotor and/or from the secondary rotor according to said criterion.
21. The method according to one claim 14, wherein the step of providing fluid to the inlet assembly causes the step of making a main rotor rotate by feeding said main rotor centrally and/or from the central portion thereof, the main rotor comprises a plurality of hollow arms at least partially arranged along a radial direction, said plurality of hollow arms realizing a plurality of fluid distribution conduits, and providing fluid to the main rotor by means of the inlet assembly causes distributing fluid from the central portion of the main rotor to the outer portion of the main rotor by means of the plurality of hollow arms, and wherein providing fluid to the main rotor by means of the inlet assembly causes a uniform distribution of fluid along a plurality of directions through said hollow arms, each direction being associated to at least one of said hollow arms.
22. The method according to claim 21, wherein the rotation of the main rotor around said longitudinal rotation axis causes a distribution of fluid realized at least partially by means of a centrifugal force exerted on the fluid by the rotation of the main rotor, in particular by the rotation of the plurality of hollow arms of the main rotor.
23. The method according to claim 14, wherein putting in rotation the auxiliary rotation shaft implies making said auxiliary rotation shaft rotate around an axis which is parallel to said longitudinal rotation axis, and/or putting in rotation the auxiliary rotation shaft implies making said auxiliary rotation shaft rotate co-axially with the main rotation shaft, said auxiliary rotation shaft being hollow and comprises a through hole configured to house part of the main rotation shaft, and/or the method comprises aligning axially the through hole with the longitudinal rotation axis.
24. The method according to claim 14, further comprising a step of making a secondary rotor of the fluid turbine assembly rotate by feeding the secondary rotor with fluid coming from the main rotor, putting in rotation an auxiliary rotation shaft operatively coupled to said secondary rotor; and/or comprising a step of providing fluid to at least the main rotor and the step of providing fluid to at least the main rotor comprises feeding the fluid to a Venturi conduit of the inlet assembly by feeding a first inlet with a pressurized primary fluid source, and by feeding a second inlet with fluid dragged from a secondary fluid source in such a way that the fluid dragged from the secondary fluid source by the second inlet can be driven to the rotor under the dragging effect caused by the fluid flowing in said first inlet, preferably wherein the step of feeding the fluid to a Venturi conduit by submersing the Venturi conduit in the fluid, is such that at least the second inlet lies below a fluid level of said secondary fluid source and/or is such that the second inlet drags only fluid from said secondary fluid source, or wherein feeding the first inlet with the pressurized primary water source is a step of feeding the first inlet by a fluid reservoir and/or by at least part of a penstock fed by a fluid reservoir, optionally wherein feeding the first inlet comprises feeding said inlet with a fluid coming from a water source arranged at an altitude higher than the altitude at which the fluid turbine assembly is installed.
25. (canceled)
26. (canceled)
27. The method according to claim 25, wherein feeding the first inlet with the pressurized primary water source is a step of feeding the first inlet by a fluid reservoir and/or by at least part of a penstock fed by a fluid reservoir, optionally wherein feeding the first inlet comprises feeding said inlet with a fluid coming from a water source arranged at an altitude higher than the altitude at which the fluid turbine assembly is installed, the method comprising discharging the fluid provided to the main rotor through the inlet assembly in said secondary fluid source and/or comprising at least partially re-using the fluid discharged by the main rotor for feeding the second inlet with the fluid discharged by the main rotor, optionally for feeding the second inlet with the fluid discharged by the main rotor in said secondary fluid source.
28. (canceled)
29. (canceled)
Description
FIGURES
[0235] Some particular and non-limiting embodiments of the fluid turbine here disclosed are presented in the following detailed description. The detailed description makes reference to the annexed figures, a brief description thereof being hereinafter provided.
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DETAILED DESCRIPTION
[0252] The Applicant has found that a particular way of increasing the efficiency of a fluid turbine lays in allowing at least one, or both, a main rotor 3 and an secondary rotor 10 of a fluid turbine assembly 1 be used in providing rotation power and/or torque.
[0253] In a preferred, albeit non-limiting, embodiment, the fluid herein described is water, or comprises water. Nonetheless, it shall be intended that the fluid may comprise a gas, which is known to be a fluid without an own defined volume and which is compressible.
[0254] As it will be clearer by reading the following portions of the description, the applicant has conceived several embodiments of the fluid turbine assembly 1, and several embodiments of the method of actuation of a fluid turbine, all having a common concept for which the fluid turbine 1 is configured to provide rotation power and/or torque to a main rotation shaft 2 through the main rotor 3 and/or to an auxiliary rotation shaft 2x through the secondary rotor 10 or to select the rotation power and/or torque distribution from the main rotation shaft 2 and/or from the auxiliary rotation shaft 2x according to a predetermined and automatically selectable criterion of selection of rotation power and/or torque transmission from at least one between said main rotor 3 or said secondary rotor 10.
[0255] For this purpose the fluid turbine assembly 1 herein described comprises a selection element configured to provide the rotation power and/or torque to the main rotation shaft 2 through the main rotor 3 and/or to the auxiliary rotation shaft 2x through the secondary rotor 10 or to select the rotation power and/or torque distribution from said main rotation shaft 2 and/or from the auxiliary rotation shaft 2x according to a predetermined and automatically selectable criterion of selection.
[0256] In
[0257] In the embodiment of
[0258] An inlet assembly 4 is configured to drive the fluid to the main rotor 3 and to the secondary rotor 10. In detail the inlet assembly 4 is provided with a first outlet 4u feeding the main rotor 3 and a second outlet 4u feeding the secondary rotor 10.
[0259] The inlet assembly 4 is provided with a selection valve 4s that allows to feed fluid to the first outlet 4u of the inlet assembly 4, or to the second outlet 4u of the inlet assembly 4 or to both (simultaneously) the first and the second outlet 4u, 4u of the inlet assembly.
[0260] In
[0261] The fluid turbine assembly 1 shown in
[0262] In use, when only the main rotor 3 is fed with fluid, rotation power and/or torque are provided to the main rotation axis 2 only. In contrast, when only the secondary rotor 10 is fed with fluid, rotation power and/or torque is provided to the auxiliary rotation axis 2x only. Finally when both the main rotor 3 and the secondary rotor 10 are both simultaneously fed with fluid, rotation power and/or torque are provided to the main rotation axis 2 and to the auxiliary rotation axis.
[0263]
[0264] In the embodiment of
[0265] An inlet assembly 4 is configured to drive the fluid to the main rotor 3 through its outlet 4u. In the second embodiment shown in
[0266] In
[0267] The fluid turbine assembly 1 shown in
[0268] The Applicant specifically points out that a clutching mechanisms, in particular albeit in a non-limiting extent electrically controlled or actuated, may be used to couple at least part of the power or torque of the main rotation shaft 2 with at least part of the power or torque of the auxiliary rotation shaft 2x. This clutching mechanism may be present in embodiments wherein the main rotation shaft 2 and the auxiliary rotation shaft 2x are co-axial, and embodiments wherein such main rotation shaft and auxiliary rotation shaft are not co-axial.
[0269] Another embodiment of fluid turbine 1 assembly is shown in
[0270] The secondary rotor 10 is installed on the auxiliary rotation shaft 2x in such a way to bring the auxiliary rotation shaft 2x in rotation with the secondary rotor 10. The embodiment of
[0271] In the embodiment of
[0272] An inlet assembly 4 is configured to drive the fluid to the main rotor 3 and to the secondary rotor 10. In detail the inlet assembly 4 is provided with a first outlet 4u feeding the main rotor 3 and a second outlet 4u feeding the secondary rotor 10.
[0273] The inlet assembly 4 is provided with a selection valve 4s that allows to feed fluid to the first outlet 4u of the inlet assembly 4, or to the second outlet 4u of the inlet assembly 4 or to both (simultaneously) the first and the second outlet 4u, 4u of the inlet assembly.
[0274] The fluid turbine assembly 1 shown in
[0275] In use, when only the main rotor 3 is fed with fluid, rotation power and/or torque are provided to the main rotation axis 2 only. In contrast, when only the secondary rotor 10 is fed with fluid, rotation power and/or torque is provided to the auxiliary rotation axis 2x only. Finally when both the main rotor 3 and the secondary rotor 10 are both simultaneously fed with fluid, rotation power and/or torque are provided to the main rotation axis 2 and to the auxiliary rotation axis.
[0276] It may be noted that the specifically disclosed embodiments of the fluid turbine assembly 1 are here provided with the purpose of showing that the selection of the power deriving from at least one between the main rotor 3, the secondary rotor 10 or deriving from the main rotor 3 and the secondary rotor 10 is not limited to a specific configuration of turbine.
[0277] As it appears from the description above, it may be understood that in general terms the fluid turbine 1 is configured to provide rotation power and/or torque to the main rotation shaft 2 through the main rotor 3 and/or to the auxiliary rotation shaft 2x through the secondary rotor 10 or to select the rotation power and/or torque distribution from said main rotation shaft 2 and/or from the auxiliary rotation shaft 2x according to a predetermined and automatically selectable criterion of selection of rotation power and/or torque transmission from at least one between said main rotor 3 or said secondary rotor 10.
[0278] In fact, at least the main rotor 3 and the secondary rotor 10 have different mechanical characteristics and/or inertia and/or the main rotor 3 is configured for delivering a first power while the secondary rotor 10 is configured for delivering a second power. The Applicant considered that even if particular designs of turbine may in general optimize the energetic efficiency thereof, the selection of the power and/or torque provided by the main rotor 3 or the secondary rotor 10 or both may be advantageously useful to increase the overall efficiency of the fluid turbine assembly 1 in a wide variety of operative configurations of feeding and/or of power demands. More specifically, the criterion of selection includes at least one between a power demand, or a fluid head feeding the main rotor 3 and/or the secondary rotor 10, or the flow rate of the fluid feeding, in use, the main rotor 3 and/or the secondary rotor 10.
[0279] In a specific and non-limiting embodiment a control signal S is transmitted to the data processing unit governing the operation of the fluid turbine assembly 1. When much power is requested, the control signal S carries data that causes the data processing unit to select power and/or torque coming from the main rotor 3 and the secondary rotor 10. When less power is requested the control signal S carries data that causes the data processing unit to select power and/or torque coming from one between the main rotor 3 or the secondary rotor 10. In this latter case, the selection of which between the main rotor 3 and the secondary rotor 10 may be used to provide power and/or torque may vary case by case in accordance to the specific mechanical construction of each rotor. The data processing unit disclosed above is thus configured to receive a control signal S for selecting which, between the main rotor 3 and/or the secondary rotor 10, shall be coupled to the main rotation shaft 2 and/or to the auxiliary rotation shaft 2x, and/or for selecting which between the main rotation shaft 2 and the auxiliary rotation shaft 2x shall provide said rotation power and/or torque.
[0280] It is thus clear that the present disclosure discloses a method of actuation of a fluid turbine assembly 1, that first of all comprises a step of providing rotation power and/or torque by putting in rotation at least one between a main rotation shaft 2 and an auxiliary rotation shaft 2x of the fluid turbine assembly 1.
[0281] The step of providing rotation power and/or torque comprises providing fluid to a main rotor 3 and/or to a secondary rotor 10 of the fluid turbine assembly 1 by means of an inlet assembly 4 and selecting, according to a predetermined and automatically selectable criterion of selection, feeding, by the inlet assembly 4, of, or the power provided by: [0282] a main rotor 3 comprising a central portion and an outer portion, the main rotor 3 being installed on the main rotation shaft 2 configured to rotate around an own longitudinal rotation axis X, in such a way to bring the main rotation shaft 2 in rotation with the main rotor 3, the main rotor 3 having a first inertia, and/or first mechanical characteristics and/or being configured to deliver a first power, and/or [0283] a secondary rotor 10, the secondary rotor 10 being installed on an auxiliary rotation shaft 2x, said auxiliary rotation shaft being configured to rotate around an own longitudinal rotation axis, in such a way to bring the auxiliary rotation shaft 2x in rotation with the secondary rotor 10, the secondary rotor 10 having a second inertia, and/or second mechanical characteristics and/or being configured to deliver a second power.
[0284] The fluid turbine assembly 1 may thus be used with increased efficiency to situations wherein even a very well designed and optimized turbine without such control capability would operate less efficiently.
[0285] As schematically represented in
[0288] The Applicant has conceived a particular way of actuation for the fluid turbine assembly 1 by means of a Venturi conduit 5 that in use is substantially submersed. The Venturi conduit 5 is configured in such a way to be fed only by means of the fluid, in particular by the water of the secondary fluid source 6, without dragging unwanted air. This means that the second inlet 5b lies below a fluid level of the secondary source 6 and/or this means that, in use, the second inlet drags only fluid from said secondary fluid source 6.
[0289] In any case, even if the first inlet 5a is fed by a pressurized primary fluid source, and thus there is less risk that such first inlet 5a drags unwanted air, it is preferable that this first inlet 5a only drags fluid from the pressurized primary fluid source. This may mean that also the first inlet 5a lies below the fluid level of the pressurized primary fluid source. This may further mean that the entire inlet assembly 4 may lies below the fluid level of the secondary fluid source 6.
[0290] The Applicant has discovered that such configuration helps in achieving a high level of efficiency for the fluid turbine herein disclosed.
[0291] The secondary fluid source tank constitutes a secondary fluid source 6 for the wat 1, and such secondary fluid source is configured to feed fluid to the second inlet 5b of the venture conduit 5 by making fluid reach said second inlet 5b. Thus the actuation of the turbine assembly herein disclosed further comprises a step of providing fluid in or to the secondary fluid source 6, and in particular may comprise filling or keeping filled the secondary fluid source 6 with fluid in such a way that the fluid contained in the secondary fluid source 6 reaches at least the second inlet 5b and, preferably also the level of the first inlet 5a.
[0292] Among several configurations of turbine assemblies which can be controlled with the aforementioned criterion of selection of the power and/or torque deriving from the main rotor 3 and/or the secondary rotor 10, the Applicant has conceived a particular embodiment of fluid turbine assembly which is here disclosed in detail.
[0293] In a specific embodiment, the fluid turbine assembly 1 comprises a protective case, identified by the reference number 1c, which in a preferred and non-limiting embodiment is substantially tubular with circular cross-section. The fluid turbine assembly 1, as it will be described more in detail hereinafter, is configured to be at least partially submerged in fluid, and thus the protective case 1c is at least partially submerged once the turbine is operative.
[0294] The fluid turbine assembly 1 according to the present disclosure at least comprises a main rotation shaft 2, rotating around a longitudinal rotation axis X, which in the annexed figures, and in a real construction, is arranged substantially vertically.
[0295] The fluid turbine assembly 1 further comprises a main rotor 3; the main rotor 3 comprises a central portion and an outer portion, and is installed on the main rotation shaft 2 in such a way to bring the main rotation shaft 2 in rotation with the main rotor 3. In particular, it is noted that the main rotor 3 is fixed on the main rotation shaft 2 in such a way to solidly rotate therewith. The outer portion of the main rotor 3 circumscribes a diameter which is significantly greater than the diameter which circumscribes the central portion of the main rotor 3. Preferably, the main rotor 3 rotates on a plane which is substantially horizontal.
[0296] The fluid turbine 1 herein disclosed may be configured to lay into a secondary fluid source tank, and for this purpose may be provided with a plurality of supporting legs 501. The legs 501, in a preferred and non-limiting embodiment, are four and are arranged at a predetermined distance from the longitudinal rotation axis in order to provide suitable stability for the fluid turbine assembly 1.
[0297] In one embodiment, that is the embodiment shown in the annexed figures, the fluid turbine assembly 1 further comprises a supporting frame 50 configured to sustain the main rotor 3 at a predetermined height from a bottom plane on which the fluid turbine assembly 1 is configured to stay. In an embodiment the supporting frame 50 comprises: [0298] at least a supporting plate 50p, [0299] at least one leg 501, preferably a plurality of legs 501.
[0300] The supporting plate 50p sustains at least the main rotor 3 and is arranged on a plane substantially parallel, optionally coinciding, with the plane on which the main rotor 3 rotates. The at least one leg 501 is rigidly fixed on the supporting plate 50p. In the embodiment shown in the annexed figures, there are four legs supporting the main rotor 3; clearly, the number of legs shall not be considered as limiting.
[0301] In particular, the pressurized primary water source may be a pressurized water source. In an embodiment the pressurized water source may comprise a water reservoir arranged at an altitude higher than the altitude at which the fluid turbine assembly is arranged, and/or may comprise a penstock where, in use, water coming from a reservoir is made to flow to the inlet assembly.
[0302] The secondary fluid source may be in particular a secondary water source a draining pool of an hydroelectric plant. Such draining pool is thus clearly fed, albeit indirectly, by the penstock. In an embodiment, thus, the second inlet 5b is configured to be fed by water discharged from at least the main rotor 3, and the main rotor 3 is configured to discharge the fluid, optionally water, in said secondary fluid source 6.
[0303] It is thus clear that the present disclosure further concerns a hydroelectric power plant, comprising at least a fluid reservoir, a penstock connected to the fluid reservoir, a draining pool for collecting water extracted from the fluid reservoir through the penstock, wherein the hydroelectric power plant comprises a fluid turbine assembly 1. The assembly formed by the fluid reservoir and the penstock realizes the pressurized primary fluid source and the draining pool realizes the secondary fluid source 6. The fluid reservoir is a natural or an artificial water reservoir (if the case may be provided or defined at least partially by means of a barrage) and the fluid reservoir is arranged at an altitude higher than the altitude at which the turbine assembly is substantially arranged. Preferably the turbine is arranged substantially at the height of the draining pool.
[0304] In addition to the main rotor 3 also a secondary rotor 10 is present, and this secondary rotor 10 provides rotation power and/or torque to an auxiliary rotation axis 2x. Preferably, the secondary rotor 10 is configured to rotate on a plane which is substantially horizontal. Thus the main rotor 3 and the secondary rotor 10 rotate on parallel planes or even on a same plane.
[0305] The inlet assembly 4 feeds the secondary rotor 10 indirectly: as it will be clearer by reading the following part of the description, the secondary rotor 10 is fed by the fluid provided by, and exiting from, the main rotor 3. Thus the actuation method herein disclosed comprises a step of making a secondary rotor 10 of the fluid turbine 1 rotate by feeding the secondary rotor 10 with fluid coming from the main rotor 3.
[0306] The Applicant has conceived a particular way of actuation for the fluid turbine assembly 1 by means of a Venturi conduit 5 that in use is substantially submersed. The Venturi conduit 5 is configured in such a way to be fed only by means of fluid, without dragging unwanted air. This means that the second inlet 5b lies below a fluid level of the secondary source 6 and/or this means that, in use, the second inlet drags only fluid from said secondary fluid source 6.
[0307] In any case, even if the first inlet 5a is fed by a pressurized primary fluid source, and thus there is less risk that such first inlet 5a drags unwanted air, it is preferable that this first inlet 5a only drags fluid from the pressurized primary fluid source. This may mean that also the first inlet 5a lies below the fluid level of the pressurized primary fluid source. This may further mean that the entire inlet assembly 4 may lies below the fluid level of the secondary fluid source 6.
[0308] The Applicant has discovered that such configuration helps in achieving a high level of efficiency for the fluid turbine herein disclosed.
[0309] The secondary fluid source tank constitutes a secondary fluid source 6 for the fluid turbine assembly 1, and such secondary fluid source is configured to feed fluid to the second inlet 5b of the venture conduit 5 by making fluid reach said second inlet 5b. Thus the actuation of the turbine assembly herein disclosed further comprises a step of providing fluid in or to the secondary fluid source 6, and in particular may comprise filling or keeping filled the secondary fluid source 6 with fluid in such a way that the fluid contained in the secondary fluid source 6 reaches at least the second inlet 5b and, preferably also the level of the first inlet 5a.
[0310] Coherently with the previous paragraphs, feeding the first inlet 5a with a pressurized fluid source may in particular comprise feeding the first inlet 5a with a pressurized water source and, more in detail, may comprise feeding the first inlet 5a with water coming from a water reservoir arranged at an altitude higher than the altitude at which the fluid turbine assembly is installed, and/or comprises feeding water to the first inlet 5a with a penstock where, in use, water coming from a reservoir is made to flow.
[0311] As well, feeding the second inlet 5b with fluid dragged from a secondary fluid source 6 comprises feeding the second inlet 5b with water dragged from a secondary water source 6 that, in an embodiment, may be a draining pool of an hydroelectric plant.
[0312] It may be further noted that in use the fluid turbine assembly 1 herein described may be configured to discharge the fluid that has fed the main rotor 3 in the secondary fluid source. In particular, the fluid turbine assembly 1 may be configured to discharge the water that has fed the main rotor 3 in the secondary water source. Thus, the fluid turbine assembly 1 herein described may be advantageously configured to re-use at least partially the discharged fluid, in particular the discharged water, to the feed the Venturi conduit 5 at the second inlet 5b. This implies that the method of actuation of the fluid turbine assembly 1, in particular of actuation of the water turbine assembly 1, comprises re-using a discharged fluid, in particular a discharged water, used for feeding the main rotor 3, to feed the Venturi conduit 5 at the second inlet 5b.
[0313] In an embodiment, the aforementioned method comprises a step of discharging the fluid (in particular, the water) used for putting the main rotor 3 in rotation to the secondary fluid source 6, and comprises re-using at least part of the water discharged from the main rotor 3 to feed the second inlet 5b.
[0314] It is thus clear that the first inlet 5a is configured to be fed by a water reservoir, in particular by a water reservoir arranged at an altitude higher than the altitude at which the fluid turbine assembly is arranged, and/or is configured to be fed by a penstock where, in use, water coming from a reservoir is made to flow to the first inlet 5a and that the second inlet 5b is configured to be fed by a draining pool, in particular by a draining pool of a hydroelectric plant.
[0315] Re-using part of the water used for putting the main rotor 3 in rotation helps saving water and thus makes the operation of the present turbine more ecologically friendly.
[0316] Albeit this specific feature is not to be considered as compulsory, as it may be noted from the annexed figures the Venturi conduit 5 is substantially aligned, in particular axially aligned, with the main rotation shaft 2. More in detail, the first inlet 5a is substantially aligned, in particular axially aligned, with the main rotation shaft 2. This allows to reduce the pressure drops when feeding the main rotor 3 with fluid.
[0317] The second inlet 5b annularly surrounds at least a part of the first inlet 5a and/or has a funnel-type shape; the funnel-type shape is configured to draw fluid from around, in particular perimetrally around, at least one portion of the first inlet 5a. This allows to have a uniform drawing of fluid from the entire surface surrounding the part of conduit which realizes the first inlet 5a. A grille may be present at the second inlet 5b in order to avoid that in use solid parts may be sucked into the Venturi conduit 5 and rest stuck therein or into the main rotor 3.
[0318] The Venturi conduit 5 comprises an outlet 5u fed in use by the first and the second inlet 5a, 5b. In use, substantially, the outlet 5u receives the fluid from the pressurized fluid source feeding the first inlet 5a and also receives the fluid which is drawn from the second inlet 5b due to the Venturi effect. In use, thus, when the fluid turbine assembly 1 is operated, feeding the fluid to the Venturi conduit 5 causes a drawing fluid from around, in particular perimetrally around, at least one portion of the first inlet 5a, and such feeding the fluid to the Venturi conduit 5 causes feeding the outlet 5u of the Venturi conduit 5 by means of, and with fluid coming from, the first and the second inlet 5a, 5b.
[0319] In an embodiment, the first inlet 5a of the Venturi conduit 5 comprises a tapered portion comprising an inner cross-section of a progressively reduced size when getting closer to an end thereof. Feeding the first inlet 5a with a pressurized fluid source causes fluid to increase its speed (while reducing its pressure) by passing into the tapered portion of the first inlet 5a of the Venturi conduit 5.
[0320] The Applicant noticed that the effect of such Venturi conduit 5 significantly increases the efficiency of any turbine, even if in a type of a single rotor, and in particular increases the efficiency of a centrally fed, single or double rotor turbine, especially when the turbine is a reaction turbine.
[0321] Turning back to the disclosure of the main rotor 3, it may be noted that this latter is a centrally fed rotor, and this means that the inlet assembly 4 is configured to feed fluid to the main rotor 3 from the central portion thereof. The main rotor 3 thus spreads fluid to its external portion and this is due to a combination of effects: the pressure coming from the pressurized fluid source and/or from the auxiliary fluid source 6, and the drawing effect that the rotation of the main rotor 3 causes on the fluid therein present, that as it will be clearer from the following part of the description, draws fluid from the central portion of the main rotor 3 and leads it to exit from a plurality of nozzles arranged at a perimetral end of the plurality of hollow arms 3a of the main rotor 3.
[0322] For achieving the aforementioned technical effect, the main rotor 3 comprises a plurality of hollow arms 3a at least partially arranged along a radial direction. The radial direction is considered with respect to the longitudinal rotation axis X. The plurality of hollow arms 3a realizes a plurality of fluid distribution conduits configured to allow, in use, the distribution of fluid from the central portion of the main rotor 3 to the outer portion of the main rotor 3.
[0323] In other words, in use, the step of providing fluid to the inlet assembly 4 causes the step of making the main rotor 3 rotate by feeding said main rotor 3 from the central portion thereof.
[0324] As the main rotor 3 comprises a plurality of hollow arms 3a at least partially arranged along a radial direction, said plurality of hollow arms 3a realizing a plurality of fluid distribution conduits, the provision of fluid to the main rotor 3 by means of the inlet assembly 4, and in particular through the Venturi conduit 5, causes distributing fluid from the central portion of the main rotor 3 to the outer portion of the main rotor 3 by means of the plurality of hollow arms 3a, and this distribution is realized at least partially by means of a centrifugal force exerted on the fluid by the rotation of the main rotor 3, in particular by the rotation of the plurality of hollow arms 3a of the main rotor 3. This rotation thus causes a fluid drawing from the central portion of the main rotor 3 to the outer portion of the main rotor 3, and thus also from the Venturi conduit 5. Such drawing causes a depression at least in the second inlet 5b sufficient to win the difference in height from the second inlet 5b (or, thus, from the fluid level of the secondary fluid source 6) to the main rotor's height.
[0325] As it is clearly shown in the annexed figures, each arm of the plurality of hollow arms 3a comprises a central portion, and a distal portion 3d substantially positioned at the outer portion of the main rotor 3.
[0326] The distal portion is arranged in a direction substantially inclined with respect to a radial direction and to the longitudinal rotation axis X, being configured to direct, in use, fluid to a predetermined direction to cause the rotation of the main rotor 3 by means of a reaction force.
[0327] Preferably, albeit in a non-limiting extent, the plurality of hollow arms 3a is configured to distribute the fluid uniformly along a plurality of directions, each direction being associated to at least one of said hollow arms 3a. Each direction of the plurality of directions is substantially inclined with respect to the direction along which the main rotation axis lies.
[0328] This means that each arm of such plurality of hollow arms 3a is provided with a same cross-section, optionally the same diameter, in such a way that such diameter allows a mass flow rate that is equivalent for each arm of the plurality of hollow arms 3a. It is noted that the hollow arms 3a are equally distributed along the 360? of the zenithal plane of the main rotor 3. The Applicant notices that the use of the wording being associated to at least one of said hollow arms 3a means that in at least one embodiment the main rotor 3 may have a plurality of superimposed hollow arms, e.g. a plurality of couples of superimposed hollow arms 3a, wherein each couple comprises two hollow arms which are configured to distribute the fluid along a substantially same direction.
[0329] Thus in an embodiment the direction substantially inclined with respect to a radial direction that each distal portion 3d has, is arranged substantially on a plane of rotation of the main rotor 3 and the distal portion 3d is substantially oriented backwardly with respect to a direction of rotation of the main rotor 3.
[0330] As it may be noted by the annexed figures, in a preferred and non-limiting embodiment, the distal portion 3d has a cross-section of a first size and the central portion has a cross-section of a second size, the first size being smaller than the second size. The purpose of the reduction of the cross-section is allowing to increase an outlet fluid flow speed (s) for the fluid exiting the main rotor 3. This cross-section reduction thus cooperates with the centrifugal force of the rotation of the main rotor 3 to accelerate the fluid flow exiting from each of the hollow arms 3a.
[0331] It may be noted that preferably each of the hollow arms 3a has a circular cross-section, and thus the first size may actually be a first diameter and the second size may actually be a second diameter. The use of a circular conduit for realizing the hollow arms 3a is thus not compulsory and the represented shape of the hollow arms 3a shall not be considered as limiting.
[0332] The main rotor 3 comprises a central distributor 7 comprising an inlet opening 7a and a plurality of outlets 7b connected in a fluid-tight connection each with a respective arm of said plurality of hollow arms 3a. In detail, the inlet opening 7a is arranged at a bottom portion of the central distributor 7 and the plurality of outlets 7b is arranged at a height greater than the height at which, in use, the inlet opening 7a lies; the plurality of outlets 7b is arranged radially on a lateral wall of the central distributor.
[0333] In use, thus when fluid is provided to the main rotor 3, there is a feeding of the inlet opening 7a of the central distributor 7 and a redirection of the fluid provided to the main rotor 3 from an axial direction associated to the inlet opening 7a to a plurality of substantially radial directions associated to the plurality of outlets 7b; the axial direction is substantially parallel to the direction of the longitudinal rotation axis X.
[0334] Albeit this feature shall not be considered as limiting, the shape of the outlets 7b matches with the shape of cavity of the hollow arms 3a. In the annexed
[0335] In a preferred, non-limiting, embodiment, the central distributor 7 is closed upwardly and is provided with a flow directing surface 7d which protrudes inwardly in the inner cavity 7c of the central distributor 7. This flow directing surface, when cut on any plane parallel to the longitudinal rotation axis X has the most protruding portion substantially aligned with the longitudinal rotation axis X, and if cut on a plane laying on the longitudinal rotation axis X underlines a cuspid-shaped profile centered on the longitudinal rotation axis X. In an embodiment the shape assumed by the section of the flow directing surface 7d may be substantially Gaussian-like. It results thatdue to the presence of the flow directing surface 7dthe inner cavity of the central distributor 7 assumes a substantially annular shape.
[0336] Thus in use, when the fluid coming from the outlet 5u of the Venturi conduit 5 strikes the flow directing surface 7d, centrally strikes a substantially pointed profile wall that directs the fluid along a curved profile towards the outlets 7b of the central distributor 7. This again helps to reduce the pressure and speed drops of the fluid and thus helps in obtaining a high energy efficiency of the fluid turbine assembly 1.
[0337] The flow directing surface 7d may be a domed or a pointed surface; the flow directing surface 7d has a lower apex point that is centered on the rotation axis X. The flow directing surface 7d is substantially the surface of a solid of revolution, realized by means of a revolution along an axis coinciding with the rotation axis X.
[0338] In an embodiment, not shown in the annexed
[0339] In an embodiment, the central distributor 7 may be realized as a single piece, or integral, element.
[0340] In another embodiment, shown in the annexed
[0343] In the embodiment of the annexed
[0344] It is further noted that the first portion is removably connected to the second portion by means of a plurality of connection elements (not shown in the annexed figures). Those connection elements may comprise screws. For this purpose, the first portion 7 comprises a flanged portion 7f configured for allowing the connection with the second portion 7. The flanged portion 7f is provided with a plurality of holes 7w arranged at a predetermined distance one with respect to the other, and the holes of the flanged portion 7f are arranged in such a way to match holes 7w arranged in a coupling portion 7y of the second portion. The coupling portion of the second portion is substantially planar. The holes 7w of the first portion 7 and of the second portion 7 have respective axes which are parallel to the longitudinal rotation axis X.
[0345] At its top, the first portion 7 comprises an annular recess 7r, axially aligned on the rotation axis X, which is limited, at its bottom, by a supporting wall arranged on a plane substantially orthogonal to the rotation axis X.
[0346] The supporting wall is provided with a plurality of holes configured to match with holes of a bottom plate 2m or flange of the main rotation shaft 2. The bottom plate 2m or flange extends on a plane which is substantially orthogonal to the direction defined by the rotation axis X. The bottom plate 2m or flange is provided with a bottom wall substantially planar which extends on a plane being substantially orthogonal to the direction defined by the rotation axis X.
[0347] The holes of the bottom plate 2m and of the supporting wall are axially aligned to the rotation axis X, and preferably are equally spaced along the entire azimuthal development of the supporting wall.
[0348] Once the main rotation shaft 2 is assembled to the first portion 7, the bottom wall of the bottom plate 2m or flange contacts the supporting wall of the recess 7r and connection elements, in particular screws or bolts are introduce in the holes of the bottom plate 2m to pass therein and to reach, and partially be introduced into, the holes present on the supporting wall.
[0349] Preferably, albeit in a non-limiting extent, the aforementioned holes are provided with a circular cross-section. This specific shape shall not be intended as limiting. The central distributor 7 is rigidly connected with the plurality of hollow arms 3a; this rigid connection allows for realizing a very solid main rotor 3 structure.
[0350] In a preferred, and non-limiting, embodiment, the structure of the main rotor 3, and in particular of the central distributor 7 and of the hollow arms 3a is realized, in particular fully realized, in metal. This allows to have proper resistance to withstand the relevant forces that the fluid turbine assembly 1 of the present disclosure in use develops.
[0351] The secondary rotor 10 is configured to be fed by the fluid coming from, and in particular sprayed by, the main rotor 3. The fluid turbine assembly 1 further comprises an auxiliary rotation shaft 2x which is operatively coupled to the secondary rotor 10 and put in rotation, in particular solidly, by means of this latter secondary rotor 10.
[0352] In a specific and non-limiting configuration, the main rotor 3 is configured to discharge fluid to the secondary fluid source 6 through the secondary rotor. This implies that is actually the secondary rotor 10 that, eventually, discharges the fluid used for its rotation to the secondary fluid source. It is thus clear that the method herein described comprises discharging the fluid used for putting the secondary rotor 10 in rotation in the secondary fluid source 6.
[0353] As clearly shown e.g. in
[0354] As shown in the annexed figures, in an embodiment this secondary rotor 10 is annular and lays outside the main rotor 3. The two rotors 3, 10 rotate substantially co-planarly around a same axis which corresponds to the longitudinal rotation axis X of the main rotor 3. This means that the secondary rotor 10 is centered on said longitudinal rotation axis X. When fluid is fed to the main rotor 3, the fluid that exits the distal portion 3d of each of the hollow arms 3a is directed to the secondary rotor 10 and forces it to rotate.
[0355] The actuation method above described further comprises putting in rotation an auxiliary rotation shaft 2x of the turbine, wherein the auxiliary rotation shaft 2x is operatively coupled, and in particular directly connected, to said secondary rotor 10. Putting in rotation the auxiliary rotation shaft 2x implies making the auxiliary rotation shaft 2x rotate around an axis which is parallel to said longitudinal rotation axis X.
[0356] This causes the secondary rotor 10, being an annular rotor laying outside the main rotor 3, to rotate outside the main rotor 3. More precisely, the step of making the secondary rotor 10 of the fluid turbine 1 rotate causes a rotation of the secondary rotor 10 on a rotation axis which is centered on the longitudinal rotation axis X and, in the specific embodiment shown in the annexed figures, causes a rotation of the secondary rotor 10 on a substantially same plane on which the main rotor 3 lays. Albeit this shall not be considered in a limiting way, the step of making a secondary rotor 10 of the fluid turbine 1 rotate causes a rotation of the secondary rotor 10 at least partially co-planarly with the main rotor 3.
[0357] The secondary rotor 10 comprises a plurality of blades 10b defining, each one, a striking surface 10s for the fluid coming, in use, from the main rotor 3 and in particular for the fluid flowing, in use, from the plurality of hollow arms 3a. This means that in use when the secondary rotor 10 is made to rotate by means of the fluid coming from the main rotor 3, this fluid strikes the blades 10b of the secondary rotor 10 by hitting the striking surface and is hence subsequently redirected therefrom.
[0358] Albeit the striking surface 10s may assume several shapes, in a preferred and non-limiting embodiment the striking surface 10s defines a substantially curved wall extending mainly on a plane which is substantially orthogonal to the rotation plane of the secondary rotor 10 and is configured to deviate a fluid flow along a substantially curved path at least partially extending radially with respect to the longitudinal rotation axis X. This shall not be considered as limiting, as in another embodiment (not shown in the annexed figures), the striking surface 10s may assume a substantially planar shape. An outer portion 10p of each of the blades is arranged substantially orthogonally with respect to the striking surface 10s. In use, thus, when the secondary rotor 10 of the fluid turbine 1 is put in rotation by the fluid flowing from the plurality of hollow arms 3a of the main rotor 3, this fluid strikes the plurality of blades 10b of the secondary rotor 10, in such a way that each blade of the plurality of blades 10b defines a striking surface for the fluid coming from the main rotor 3, in particular for the fluid flowing, in use, from the plurality of hollow arms 3a. More precisely, the fluid that strikes the plurality of blades 10b strikes a striking surface 10s that defines a substantially curved wall extending mainly on a plane which is substantially orthogonal to the rotation plane of the secondary rotor 10 and is deviated along a substantially curved path at least partially extending radially with respect to the longitudinal rotation axis X.
[0359] Due to the reaction force that is created on the striking surface 10s of each of the blades, it is thus clear that the step of making a secondary rotor 10 of the fluid turbine 1 rotate causes said secondary rotor 10 to rotate in a direction which is opposite to the direction of rotation of the main rotor 3. It is thus clear that the secondary rotor 10 is configured to rotate in a direction that is opposite to the rotation direction of the main rotor 3.
[0360] The annexed figures, and in particular at least
[0361]
[0362] In the specific configuration disclosed in
[0363] Specifically, in the embodiment shown in
[0364] It is further noted that the embodiment of
[0365] In detail, the flow return preventing element 5v is arranged substantially in correspondence of the second inlet 5b and preferably comprises a plurality of sheet elements overall defining a substantially helical or vortex shape. This shape contrasts the reverse flow of the fluid in case of low rotation speeds for the main rotor 3 and which may be originated by the substantially vertical arrangement of the Venturi conduit. The flow return preventing element 5v substantially protrudes outwardly the second inlet 5b.
[0366] The secondary rotor 10 is installed, in particular is fixed, on a flange 35, which is configured to support the secondary rotor 10. This flange 35 is ring-shaped and is centered on the longitudinal rotation axis X. The flange 35 rotates solidly with the secondary rotor 10. The flange 35 is preferably realized in metal. The flange 35 is connected to the auxiliary rotation shaft 2x.
[0367] In the embodiment shown in the annexed
[0368] The secondary rotor 10 is configured to rotate independently and/or freely with respect to the main rotor 3. For this purpose, at least one bearing 36, preferably a plurality of bearings 36, is installed on the main rotation shaft 2 (which, it is recalled, is fixedly connected to the main rotor 3 in such a way to be put in rigid rotation therewith). The plurality of bearings comprises at least two superimposed bearings. The inner opening of the bearing 36 allows the passage of the main rotation shaft 2 and the outer portion of the bearing 36 is fixed to the flange 35. This allows the substantially least possible friction force between the (inner) main rotor 3 and the (outer) secondary rotor 10 while rotating.
[0369] It is noted that in use the inertia of the flange 35 allows this latter to act as a free wheel for the fluid turbine assembly 1.
[0370] The fluid turbine assembly 1 of the present disclosure may be connected to a generator, for producing e.g. electric current. In the annexed
[0371] The fluid turbine assembly 1 is further configured to be connected to a second generator 30. This particular configuration is associated to the embodiments of the fluid turbine assembly 1 wherein there is the secondary rotor 10. In detail, the second generator 30 is connected to the auxiliary rotation shaft identified by the reference number 2x. Thus in an embodiment the fluid turbine assembly 1 may comprise two, preferably independent, generators. This allows to increase the flexibility of energy production. In use, the method of actuation of the fluid turbine assembly 1 herein disclosed thus comprises providing torque to an auxiliary rotation shaft 2x, and such torque is generated by the secondary rotor 10. Thus torque is provided to the second generator.
[0372] In this specific embodiment the rotation power and/or torque provided to the main rotation shaft 2 and to the auxiliary rotation shaft 2x can be alternatively selected by means of the aforementioned criterion. In a particular embodiment, at least one of the generators of the list comprising the main generator and the auxiliary generator may be connected to the electric power network according to the predetermined criterion.
[0373] In an embodiment, the first generator 20 may be installed coaxially on the main rotation shaft. In an embodiment, the fluid turbine assembly 1 may comprise a torque sensing device 70 arranged on the main rotation shaft 14 in order to provide indication about how much power is provided by the main rotor.
[0374] In another embodiment, the fluid turbine assembly 1 herein disclosed may comprise a main gearing assembly 90 configured to provide torque on an auxiliary shaft which is sensibly inclined with respect to the main rotation shaft 2. In this latter case, as represented in the annexed figures, the main gearing assembly 90 may comprise a cover and at least a couple of gears in use rotating on two substantially orthogonal planes. The cover may comprise an opening 90h for allowing the coupling of said auxiliary shaft to the gears of the gearing assembly. In a preferred and non-limiting embodiment, the opening 90h is arranged on a lateral wall of the main gearing assembly 90, for allowing the connection of an output shaft not axially aligned with the main rotation shaft 2. In the specific embodiment of the figure, the output shaft connects the main rotation shaft 2 at a direction substantially orthogonal thereto. In detail, and as shown in
[0375] The fluid turbine assembly 1 according to the present disclosure is very efficient, and thus can overcome the overall efficiency that is typical of the turbines of the known art in a plurality of conditions.
[0376] The rotation power or torque that the fluid turbine assembly of the present disclosure can provide may be selected effectively, and this allows to efficiently exploit the presently described fluid turbine assembly 1 in a plurality of conditions wherein the known turbines would not be so efficiently applicable.
[0377] When being applied to a hydroelectric power plant, the fluid turbine assembly 1 herein described can satisfy efficiently high and low power demands with high or low flow rates and fluid heads.
[0378] It is noted that in the present disclosure reference was made to a data processing unit. Several types of data processing units may be provided. In an embodiment, the data processing unit comprises a general-purpose processor that runs a specific software program which is stored in a non-volatile memory of the data processing unit or, alternatively, accessible by the data processing unit, in particular electrically connected to the data processing unit. In another embodiment, the data processing unit comprises a specific-purpose processor, configured to run a specific software program. In yet another embodiment, the data processing unit comprises an FPGA, that is programmed to cause the execution of the steps above described. In yet another embodiment, the data processing unit comprises a programmable logic controller (PLC) that is programmed to cause the execution of the steps above described.
[0379] It is herewith noted that the disclosure is not limited to the embodiments shown in the annexed figures. For such reasons, when in the following claims technical elements of the fluid turbine assembly 1 are followed by reference signs or numbers arranged between parentheses, such reference signs or numbers are provided for the sole purpose of increasing the intelligibility of the claims, and thus shall not be considered as limiting.