Rotor having a plurality of spiral pathways to pass liquid or gas therethrough to increase power thereof
12129856 ยท 2024-10-29
Inventors
Cpc classification
F04D29/2255
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotor having spiral pathways to enable liquid or gas to flow from a center to an exterior thereof. The spiral pathways increases power generated (input force) as liquid/gas travels therethrough. The spiral pathway rotor includes an inner disk and an outer disk. Inner disk includes a central opening for receiving the liquid/gas and is connected to a plurality of pathways that extend toward an outer edge in a spiral manner. Nozzles may be utilized to expel the liquid/gas. Outer disk includes an open interior having a plurality of teeth formed on an interior surface. The teeth are configured to receive the liquid/gas expelled from inner disk which causes the rotor to rotate and thus increases the input force thereof. The input force is amplified to an output force on a shaft connected thereto.
Claims
1. A rotor comprising: an inner disk having a centrally located receptacle, an outer edge and a plurality of spiral pathways traversing within the inner disk from the centrally located receptacle to the outer edge, wherein the receptacle, the outer edge and the plurality of spiral pathways are coplanar, wherein the centrally located receptacle includes an outer surface, wherein the outer edge has a first diameter and the centrally located receptacle outer surface has a second diameter that is substantially smaller than the first diameter, wherein the centrally located receptacle outer surface includes a corresponding plurality of receptacle openings, wherein the outer edge includes a corresponding plurality of edge openings, wherein each of the plurality of spiral pathways are connected to a receptacle and an edge opening, wherein the centrally located receptacle is configured to receive a liquid or a gas and provide the liquid or the gas to the plurality of spiral pathways via the plurality of receptacle openings, wherein the plurality of spiral pathways are configured to pass the liquid or the gas therethrough and provide the liquid or the gas to the plurality of edge openings, and wherein the liquid or the gas traversing the plurality of spiral pathways cause the rotor to rotate; an outer disk having an open interior that provides an inner edge, wherein the inner edge includes a plurality of teeth formed therein, wherein the inner disk is located within the open interior of the outer disk so that the plurality of edge openings face the plurality of teeth; and a plurality of nozzles located in the plurality of edge openings, wherein the plurality of nozzles are configured to expel the liquid or the gas that traversed the plurality of spiral pathways as a jet of pressurized liquid or gas in a direction to contact a subset of the plurality of teeth and further cause the rotor to rotate.
2. The rotor of claim 1, wherein the plurality of nozzles are angled.
3. The rotor of claim 1, wherein the plurality of spiral pathways are a plurality of tubes.
4. The rotor of claim 1, wherein the plurality of spiral pathways are a plurality of hollow sections, wherein each hollow section has a varying width as it traverses from a receptacle to an edge opening and includes an expanded central portion and a narrow end portion connecting to the edge opening.
5. The rotor of claim 1, wherein the centrally located receptacle is configured to receive the liquid or the gas via a pump.
6. The rotor of claim 1, wherein the centrally located receptacle is configured to receive a continuous flow of the liquid or the gas.
7. A rotor comprising: an outer disk having an open interior providing an inner edge having a plurality of teeth formed therein; an inner disk located within the open interior of the outer disk, wherein the inner disk includes a receptacle centrally located, an outer edge, and a plurality of spiral pathways traversing within the inner disk from the receptacle to the outer edge, wherein the receptacle, the outer edge and the plurality of spiral pathways are coplanar, wherein the receptacle includes an outer surface, wherein the outer edge has a first diameter and the outer surface of the receptacle has a second diameter that is substantially smaller than the first diameter, wherein the outer surface of the receptacle includes a corresponding plurality of receptacle openings and the outer edge includes a corresponding plurality of edge openings, and wherein each of the plurality of spiral pathways includes a first side connecting to a corresponding one of the plurality of receptacle openings and a second side connecting to a corresponding one of the plurality of edge openings; and a plurality of nozzles located in the plurality of edge openings, wherein the receptacle is configured to receive a liquid or a gas and provide the liquid or the gas to the plurality of spiral pathways via the plurality of receptacle openings, the plurality of spiral pathways are configured to pass the liquid or the gas therethrough and provide the liquid or the gas to the plurality of nozzles, the plurality of nozzles are configured to expel the liquid or the gas as a jet of pressurized liquid or gas in a direction to contact a subset of the plurality of teeth, and the liquid or the gas traversing the plurality of spiral pathways and the jet of pressurized liquid or gas contacting the subset of the plurality of teeth cause the rotor to rotate.
8. The rotor of claim 7, wherein the plurality of spiral pathways are a plurality of tubes.
9. The rotor of claim 7, wherein the plurality of spiral pathways are a plurality of hollow sections, wherein each hollow section has a varying width as it traverses from a receptacle to an edge opening and includes an expanded central portion and a narrow end portion connecting to the edge opening.
10. The rotor of claim 7, wherein the receptacle is configured to receive the liquid or the gas via a pump.
11. The rotor of claim 7, wherein the receptacle is configured to receive a continuous flow of the liquid or the gas.
12. A system comprising a shaft; a hub mounted to the shaft, wherein the hub includes a pathway to enable a liquid or a gas to flow therethrough; and a rotor mounted to the hub, wherein the rotor includes: an outer disk having an open interior and an inner edge having a plurality of teeth formed therein; an inner disk located within the open interior of the outer disk, wherein the inner disk includes a receptacle centrally located, an outer edge, and a plurality of spiral pathways traversing within the inner disk from the receptacle to the outer edge, wherein the receptacle, the outer edge and the plurality of spiral pathways are coplanar, wherein the receptacle includes an outer surface, wherein the outer edge has a first diameter and the outer surface of the receptacle has a second diameter that is substantially smaller than the first diameter, wherein the outer surface of the receptacle includes a plurality of receptacle openings and the outer edge includes a corresponding plurality of edge openings, and wherein the plurality of spiral pathways connect corresponding ones of the plurality of receptacle openings to the corresponding ones of the plurality of edge openings; and a plurality of nozzles located in the plurality of edge openings; wherein the liquid or the gas traverses the pathway to the receptacle, enters the plurality of spiral pathways via the plurality of receptacle openings, traverses the plurality of spiral pathways and is expelled from the plurality of nozzles as a jet of pressurized liquid or gas in a direction to contact a subset of the plurality of teeth, and wherein the liquid or the gas traversing the plurality of spiral pathways and the jet of pressurized liquid or gas contacting the subset of the plurality of teeth cause the rotor to rotate, and wherein rotation of the rotor causes rotation of the shaft.
13. The system of claim 12, further comprising a pump to pump the liquid or the gas through the pathway in the hub to the receptacle.
14. The system of claim 12, further comprising a gear mounted to the shaft to rotate with the shaft and transfer a force associated with the rotation of the shaft to another device.
15. The system of claim 12, further comprising a kinetic disk mounted to the shaft to rotate with the shaft and increase a force associated with the rotation of the shaft.
16. The system of claim 12, wherein the plurality of spiral pathways are a plurality of tubes.
17. The system of claim 12, wherein the plurality of spiral pathways are a plurality of hollow sections, wherein each hollow section has a varying width as it traverses from a receptacle to an edge opening and includes an expanded central portion and a narrow end portion connecting to the edge opening.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The features and advantages of the various embodiments will become apparent from the following detailed description in which:
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DETAILED DESCRIPTION
(6)
(7) The central receptacle 220 includes a plurality of openings (4 illustrated) that connect to a plurality of pipes 230 (4 illustrated) that extend therefrom toward an outer edge of the inner disk 210 in a spiral manner. The outer edge of the inner disk 210 includes openings (not identified) that the pipes 230 connect to. Nozzles 240 are located at the end of the pipes 230 in the openings in the outer edge. The liquid/gas is received at the opening 220 and then passes through the pipes 230 and is expelled out the nozzles 240 as a pressurized jet of liquid/gas 250. It should be noted that the number of pipes 230 is not limited to any specific number. Furthermore, the pipes 230 are not intended to be limited to any size and the exact configuration of the spiral is not limited to any specific angle. Rather, these parameters may change based on the specific use without departing from the current scope.
(8) The outer disk 260 includes an open interior where an interior surface thereof is a gear having a plurality of teeth (blades) 270. The teeth 270 are configured to receive the jet 250 that exits the nozzles 240 so that the jet 250 additionally causes the rotor 200 to rotate and increases the input force. The number, shape and size of the teeth 270 is not intended to be limited in any manner. The teeth 270 may be configured such that one tooth 270 receives the entire jet 250 or so that a plurality of teeth 270 receive the jet 250. As illustrated, a plurality of teeth 270 are receiving the jet 250 from each nozzle 240. The distance the teeth 270 are from the nozzles 240 may be calculated such that the most efficient use of the jet 250 is obtained. This may be the point where the pressure from the jet 250 is the strongest.
(9) It should be noted that as illustrated the teeth 270 are included on the entire inner surface of the outer disk 260. The outer disk 260 may be modified so as to only include teeth 270 in alignment with the nozzles 240 and where the associated jets 250 may be applied without departing from the current scope.
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(11) The rotors 330 may include an inner disk 340 and an outer disk 350. The inner disk 340 may include a plurality of pathways 345 from the center thereof to openings in an exterior thereof. The liquid/gas may flow into the pathways 345 via the openings 328 and travel through the pathways 345 to the exterior thereof. The openings 328 in the exterior may include nozzles (not illustrated) to eject the liquid/gas therefrom. The pathways 345 are simply illustrated as a plurality of circles (tubes) in the cross-sectional view. Each of the circles may be a separate pathway 345 or several circles may make up a single pathway 345. As illustrated in
(12) The outer disk 350 includes an open interior to enable the inner disk 340 to fit therewithin. The interior surface of the outer disk is a gear having a plurality of teeth (blades) formed therein 355 (a single blade is illustrated on each side). The liquid/gas expelled from the inner disk 340 will engage with the teeth 355 and further cause the rotor 330 to rotate.
(13) The rotation of the rotor 330 causes the hub 320 to rotate and the hub 320 causes the shaft 310 to rotate. The law of levers provides that the force on the shaft 310 is greater than the force on the exterior of the rotor 330. As previously discussed the increase in force is based on the difference in the radius of the shaft 310 and the radius of the rotor 330. To utilize the force of the shaft 310 a gear 370 may be located on the shaft 310.
(14) It should be noted that once the rotor 330 is fully operational a vacuum may be created within the system (pathway from pump 360 to rotor 330, and pathways 345 within rotor 330) and that at that point the power required to operate the pump 360 could be reduced. According to one embodiment, the system 300 may include a kinetic disk 390 mounted to the hub 320. The kinetic disk 390 rotates with the hub 320 and increase the force (power) of the shaft 310 by rotating its mass on the shaft 310.
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(16) The liquid/gas is received at the central receptacle 420 and then passes through the hollow spiral sections 440 and is repulsed out of the nozzles 450 as a pressurized jet of liquid/gas. It should be noted that the number of walls 430 and sections 440 is not limited to any specific number. Furthermore, the sections 440 are not intended to be limited to any size or shape and the exact configuration of the spiral of the walls 430 and sections 440 is not limited to any specific angle. Rather, these parameters may change based on the specific use without departing from the current scope.
(17) The invention has been disclosed as utilizing a pump to provide the liquid/gas to operate the spiral pathway rotors (e.g., 200, 330, 400). However, the rotors could be operated without a pump if the liquid/gas could be received at a center point thereof without needing the assistance thereof. For example, if the rotors were located where a consistent flow of liquid (e.g., water) was available to be provided to a center portion thereof. The liquid could be traverse the pathways to the outer edge and out the jets so as to engage the teeth and provide necessary rotation.
(18) The spiral pathway rotors could be utilized in various systems as one skilled in the art would recognize.
(19) Although the disclosure has been illustrated by reference to specific embodiments, it will be apparent that the disclosure is not limited thereto as various changes and modifications may be made thereto without departing from the scope. The various embodiments are intended to be protected broadly within the spirit and scope of the appended claims.