System with orbiting axis for converting energy
10408193 ยท 2019-09-10
Inventors
Cpc classification
Y02E10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F03D5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/313
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F05B2260/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D15/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system with orbiting axis for converting energy from a fluid includes an inner transmission shaft and an output transmission shaft; a sectorial blade configured to exchange energy with the fluid and connected to the inner transmission shaft by a support element pivotable such that the blade is configured to rotate around an axis of the inner transmission shaft; a for synchronization and transmission of rotation-oscillation movement of the blade and including the inner transmission shaft and the output transmission shaft. The support element is hinged to the inner transmission shaft by a first rotator rigidly connected, at a first extremity, with the support element by a pin and, at a second extremity, to one of the transmission shafts, each blade being configured to perform the rotation-oscillation movement integrally with the support element and always oriented in the direction of the fluid.
Claims
1. A system with orbiting axis for converting energy from a fluid comprising: at least an inner transmission shaft and at least an output transmission shaft; at least one support element; at least one sectorial blade configured to exchange energy with the fluid, the at least one sectorial blade being connected to said at least one inner transmission shaft by the at least one support element which is pivotable such that said at least one sectorial blade is configured to rotate around an axis of the inner transmission shaft; at least one transmission group for synchronization and transmission of rotation-oscillation movement to said at least one blade, the at least one transmission group comprising: the inner transmission shaft and the output transmission shaft; at least one pin; first rotation means rigidly connected, at a first extremity, with the support element by the at least one pin and, at a second extremity, to one of the transmission shafts, the first rotation means hinging the at least one support element to the at least one inner transmission shaft, each blade being configured to perform the rotation-oscillation movement integrally to the support element and resulting always oriented in a direction of the fluid.
2. The system according to claim 1, wherein the at least one sectorial blade includes a first sectorial blade and a second sectorial blade ninety degrees out of phase with respect to the first sectorial blade, said first sectorial blade being located in a first sector of space and said second horizontal sectorial blade being located in a second sector adjacent to the first sector.
3. The system according to claim 1, wherein the inner transmission shaft has an axis perpendicular to an axis of the at least one pin.
4. The system according to claim 1, wherein said at least one transmission group comprises a first toothed wheel keyed on said transmission shaft and a second toothed wheel keyed on said output transmission shaft, said second toothed wheel being connected to a top end of said output transmission shaft and rigidly connected to the first toothed wheel.
5. The system according to claim 1, wherein: the first rotation means includes an internal hinge; and said at least one transmission group comprises a first toothed wheel coaxial with said at least one inner transmission shaft and lateral second and third toothed wheels rigidly connected to the internal hinge and meshing, every 180 alternately, the first toothed wheel.
6. The system according to claim 1, wherein: the at least one sectorial blade includes a first sectorial blade and a second sectorial blade in opposite sectors of space and rotated out of phase by 90; and the first rotation means include a first toothed wheel and a second toothed wheel respectively coupled to the first and second sectorial blades, in such a way that, rotating, the first and second sectorial blades occupy different sectors according to an orbital motion.
7. The system according to claim 1, wherein the at least one sectorial blade comprises a single sectorial blade, the system further comprising a counterweight placed at 90 or at 180 with respect to the blade.
8. The system according to claim 1, wherein the system is made in at least one material comprised in the group consisting of: metal; alloys; plastic material; composite material.
9. A fluid machine comprising the system with orbiting axis for converting energy from a fluid according to claim 1.
10. The fluid machine according to claim 9, wherein the fluid machine is a driving machine or a machine tool.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) For a better understanding of the present invention a preferred embodiment is now described, purely by way of non-limiting example, with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
(16) With reference to these figures and, in particular, to
(17) According to an aspect of the invention, a first end of the transmission shaft with internal gearing 101 is interconnected at a first end of the transmission shaft with external gearing 102 in such a way as to form a single drive shaft which determines a simultaneous motion of the blades 105. Moreover, motion synchronization and transmission group 103 comprises toothed conical gears 111a and 111b respectively keyed on the shafts 101 and 104 and which act as organs of transmission of motion. The output transmission shaft 104 is fixed at an upper end to the synchronization and transmission group of motion 103, in particular, to the toothed conical gear 111b which is rigidly connected to the conical gear 111a coupled, in turn, to a first end of the transmission shaft 101. In this way, the output transmission shaft 104 is rigidly connected to the transmission shafts 101 and 102.
(18) As shown in
(19) Advantageously according to the invention, each sectorial blade 105 is rigidly connected to the corresponding supporting structure 106, constituting a single body with this.
(20) According to an aspect of the invention, the sectorial blades 105 are rigidly interconnected by means of the interconnect device 109. In such a configuration of the system for converting energy 100, the motion synchronization and transmission group 103 has an element 110 acting as a fulcrum for generating the oscillation of the blade 105.
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(22) As even better highlighted in the
(23) According to an aspect of the invention, in order the oscillation takes place correctly, the blades 105 must be arranged at 90 between them and at a predetermined distance from each other.
(24) According to another aspect of the invention, the angle between the blades is 90 (that is the angle between their normal).
(25) Advantageously according to the invention, the blades 105, being out of phase by 90, are configured to receive the thrust of the fluid or vice versa to transmit it to the fluid for the entire excursion of blades oscillation.
(26) Advantageously according to the invention, the number of the sectorial blades 105 and of the transmission and synchronization means, such as toothed conical gears 111a and 111b, is variable and can be a multiple of two. In this case, advantageously according to the invention, more sectorial blades can be moved with an oscillatory motion through further transmission organs.
(27) Advantageously according to the invention, through the motion synchronization and transmission group 103, (which comprises the transmission shafts 101, 102, the hinges 107 and 108 and the pins 112), the blades can perform an oscillating movement under the action of a fluid, such as air. This fluid can transmit energy to the blades or receive energy from the blades.
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(29) Thus, in the first and in the second embodiment the blade only oscillates around the axis of the pins 112 or 212.
(30) Advantageously according to the invention, the blades of the system with orbiting axis for converting energy are in configuration such as to always work in the direction of the fluid, regardless of whether they are used for receiving energy or for providing energy.
(31) Advantageously according to the invention, the transmission group is provided with appropriate inputs on three sides, such as to enable the inputs/outputs of the transmission shafts and is configured in a way that allows the sectorial blades to move in the direction of the fluid flow impinging on the blades.
(32) During operation, therefore, the system with orbiting axis for converting energy, according to the invention, receives energy from a moving fluid. For example, the system is configured to receive wind power from the wind or, alternatively, to receive energy from marine or rivers water currents. At the same time, for the principle of reverse operation, the system with orbiting axis for converting energy is able to act as a driving member for generating energy, in particular by supplying energy to the blades by means of, for example, an electric motor connected to the transmission shafts. Therefore, the system with orbiting axis for converting energy performs the task of an intermediary organ capable of transferring to a shaft the kinetic energy possessed by a fluid or, conversely, to transfer to a fluid the mechanical energy possessed by a tree.
(33) More precisely, using the first embodiment of the system with orbiting axis for converting energy, the first blade that is in engaged with the fluid and which, therefore, receives or transmits the thrust useful for the purposes of the motion, isn't influenced by the other blade. In fact, since the second blade is out of phase of 90 respect to the first blade, the second blade is located in a direction parallel to the fluid and, therefore, it neither receives nor transmits thrust, namely it is discharged. Work together in every position and are always in the wind direction.
(34) Basically, due to the non-interaction between the blades, each of them is always subject to a positive push from the flow of fluid and, consequently, the system thus having a optimal efficiency.
(35) The
(36) The blades 305 are arranged so as they have the supporting structures 306, shifted from each other by 180, exiting from the plane of the conical gear 309d and having the normal to the surface at 90 one from the other, one of these displaced and operating into the sector A and the other one in the sector B.
(37) The conical gear 309d, the conical gear 309e and the shaft 302, linked via the pin 312, rotate together with respect to an axis Y2 of the shaft 302, and at the same time the conical gears 309d and 309e rotate with respect to its own axis X2 on the conical gear 310 integral with the group 303. Therefore during operation, the pair of blades 305 placed at left of the shaft 302 occupies the right half space B orbiting in this, since the Y2 axis is vertical. If Y2 was horizontal then the blades 305 would occupy the upper half-space C or lower half-space D, depending on the case.
(38) According to an aspect of the invention, the system may comprise a single sectorial blade 305, for example connected to the gear 309e operating in the sector C via the ends threaded to the seat 309da, and a counterweight placed at 180 with respect to the blade 305 in the lower half-space D.
(39) According to another aspect of the invention, the system 300 may comprise a pair of right blades and a pair of blades on the left of the shaft 302 connected respectively to the gears 309d and 309e.
(40) In more detail, as shown in
(41) Also in this third embodiment, the blades 305 are perpendicular (the two normal are at 90 degrees).
(42) According to the third embodiment, the system comprises only one pair of left blades.
(43) According to the third embodiment, the blades perform a complete rotation around the axis of the pins 312.
(44) Advantageously according to the invention, the axes X, X2 and Y1, Y2 may coincide respectively with the separation plans C-D and A-B.
(45) Advantageously according to the invention, in all the embodiments of the system with orbiting axis for converting energy the blades and the transmission shafts have the same angular velocity during operation.
(46) Advantageously according to the invention, the system with orbiting axis for converting energy may also be used in mixing machines, industrial or domestic, allowing for more efficient mixing and amalgamation of mixture to prepare.
(47) Therefore, the system with orbiting axis for converting energy according to the invention allows to orient the sectorial blades alternately, each in its own allotted space, and in an automatic way in the direction of the fluid, thus maximizing energy efficiency, both in reception in transmission.
(48) Another advantage of the system with orbiting axis for converting energy according to the invention is the simplicity of construction and assembly.
(49) Furthermore, the system with orbiting axis for converting energy according to the invention is of low cost.
(50) Finally, the system with orbiting axis for converting energy according to the invention is versatile and reconfigurable, being able to vary the number of sectorial blades and of transmission and synchronization means.
(51) Finally, it is clear that the system with orbiting shaft axis for converting energy described and illustrated here can be modified and varied without departing from the protective scope of the present invention.