A magnetic interaction system between multiple rotating bodies for the generation and storage of kinetic energy.

The magnetic interaction system between rotating bodies addresses inefficiencies in flywheel energy storage by using neodymium magnets and optimized platforms to induce and store kinetic energy, achieving significantly higher energy conversion rates and reduced mechanical losses.

JP7853997B2Active Publication Date: 2026-04-30NEODYMOTORS GMBH
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
NEODYMOTORS GMBH
Filing Date
2022-02-02
Publication Date
2026-04-30

AI Technical Summary

Technical Problem

Existing energy storage systems using flywheels require mechanical coupling to a motor-generator for converting rotational kinetic energy, which is inefficient and limits energy storage capacity.

Method used

A magnetic interaction system between a primary rotating body and multiple secondary rotating bodies, where rotational motion is induced and stored through magnetic interactions without mechanical coupling, utilizing neodymium magnets and optimized platform arrangements to enhance energy generation and storage.

Benefits of technology

The system efficiently generates and stores rotational kinetic energy in secondary rotating bodies, achieving higher energy conversion rates and reduced mechanical losses, with secondary bodies generating up to 700-2100% more energy than the primary body through magnetic induction.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention describes a magnetic interaction system between multiple rotating bodies for the generation and storage of kinetic energy. The disclosed system comprises a primary rotating body including a first set of magnets and mechanically adapted to at least one platform by a rotation axis, and at least three secondary rotating bodies mechanically adapted to said at least one platform by independent rotation axes equidistant from said rotation axis of said primary rotating body, each of said at least three secondary rotating bodies comprising at least two overlapping platforms on the same rotation axis, on said at least two overlapping platforms a second set of magnets is adapted.
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Description

Detailed Description of the Invention

[0001] (Technical Field) The present invention describes a magnetic interaction system between a plurality of rotating bodies for the generation and storage of kinetic energy.

[0002] (Background Art) Currently, a mechanism that enables energy storage by means of a flywheel is known as the state of the art.

[0003] This type of mechanism promotes the conservation of angular momentum in order to store rotational energy. Rotational energy is a form of kinetic energy that is proportional to the product of the moment of inertia and the squared angular velocity, and is mathematically calculated as follows: Rotational kinetic energy = 0.5 × I × ω 2 Where I = inertia and ω = angular velocity.

[0004] A typical energy storage system using a flywheel comprises a circular-based flywheel supported by bearings via a rotating shaft mechanically coupled to a mechanical drive system (motor / generator). When the mechanical drive system is in operation, the flywheel begins to rotate on the shaft and starts storing energy in the form of kinetic energy during its rotation, and then converts this rotational kinetic energy into electrical energy. However, in order to facilitate this conversion, the currently considered systems need to rely on a motor-generator that is mechanically adapted to the shaft by the flywheel.

[0005] The present invention aims to explain the innovation in the above state-of-the-art approach by providing an effective and highly efficient system through magnetic interaction between a plurality of rotating bodies for the generation and storage of rotational kinetic energy.

[0006] According to the present invention, it is possible to generate and store rotational kinetic energy within a set of secondary rotating bodies arranged around a primary rotating body in an efficient and optimized manner, without requiring multiple motors or any external devices coupled to the axes of multiple secondary rotating bodies.

[0007] (Summary) The present invention describes a magnetic interaction system between multiple rotating bodies for generating and storing kinetic energy, comprising: a primary rotating body having a first set of magnets and mechanically fitted to at least one platform by a rotation axis; and at least three secondary rotating bodies having independent rotation axes equidistant from the rotation axis of the primary rotating body and mechanically fitted to the at least one platform, wherein each of the at least three secondary rotating bodies has at least two overlapping platforms on the same rotation axis, and a second set of magnets is fitted on the at least two overlapping platforms.

[0008] In a possible embodiment of the present invention, each of the at least three secondary rotating bodies includes one intermediate platform between the at least two overlapping platforms.

[0009] In another possible embodiment of the present invention, the at least two overlapping platforms and the intermediate platform are ring-shaped.

[0010] In another possible embodiment of the present invention, the second set of magnets fitted to the at least two overlapping platforms includes a gap.

[0011] In another possible embodiment of the present invention, the gap between the second set of magnets is occupied by the intermediate platform.

[0012] In another possible embodiment of the present invention, the primary rotating body includes a closed circular cover dimensionally fitted to house the first set of magnets, the circular cover exhibiting constitutive properties that do not interfere with the magnetic fields of the first set of magnets and the second set of magnets, and that facilitates improved aerodynamic performance of the primary rotating body.

[0013] In another possible embodiment of the present invention, the first set of magnets is fitted to the primary rotating body by a platform positioned centrally on the axis of rotation.

[0014] In another possible embodiment of the present invention, the first set of magnets includes a cross arrangement.

[0015] In another possible embodiment of the present invention, the first set of magnets includes two primary magnets A and B arranged magnetically on the narrower side surface of the platform located centrally on the axis of rotation, and secondary magnets A and B mounted laterally and opposite to each other in a cross shape, so as to coincide with the point of connection between the two primary magnets A and B and the axis of rotation.

[0016] In another possible embodiment of the present invention, the at least two overlapping platforms comprise one lower support platform and one upper support platform.

[0017] In another possible embodiment of the present invention, the second set of magnets includes a set of lower magnets mounted on the edge of the lower support platform and a set of upper magnets mounted on the edge of the upper support platform, wherein the set of upper magnets is separated from the set of lower magnets by the upper support platform.

[0018] In another possible embodiment of the present invention, the platform of the primary rotating body, positioned at the center of the rotation axis, is aligned with the height of the intermediate platform of the secondary rotating body with respect to the at least one platform to which the primary and secondary rotating bodies are mechanically fitted.

[0019] In another possible embodiment of the present invention, the primary rotating body and the at least three secondary rotating bodies are cylindrical in shape and include magnetic rotating shaft bearings mechanically fitted to the at least one platform to facilitate suspension in a sealed vacuum environment.

[0020] In another possible embodiment of the present invention, the primary rotating body and the at least three secondary rotating bodies include a cylindrical shape to which the first set of magnets and the second set of magnets are attached.

[0021] In another possible embodiment of the present invention, the system includes, to optimize space and energy production performance, at least one set of overlapping and suspended primary rotating bodies and at least one set of overlapping and suspended secondary rotating bodies, mechanically adapted to at least one platform.

[0022] In another possible embodiment of the present invention, each of the at least three secondary rotating bodies includes having a diameter greater than the diameter of the primary rotating body, and each of the at least three secondary rotating bodies includes having an angular velocity greater than the angular velocity of the primary rotating body.

[0023] (Brief explanation) The present invention relates to a magnetic interaction system between multiple rotating bodies for generating and storing kinetic energy.

[0024] The systems disclosed herein aim to optimize the production and storage of kinetic energy through magnetic interaction between a primary central rotating body and at least one secondary peripheral rotating body arranged around the primary rotating body. However, the systems described below demonstrate higher efficiency when implemented using a primary central rotating body and three or four secondary rotating bodies arranged around the primary central rotating body. Both the primary rotating body and the plurality of secondary rotating bodies are circular, and the plurality of secondary rotating bodies are circular in addition to ideally having a ring shape, and the diameter and mass of the primary rotating body are different from the diameters and masses of the plurality of secondary rotating bodies which are dimensionally adapted for the purposes of the present invention. Both the primary rotating body and the plurality of secondary rotating bodies rely on the use of at least one support platform to ensure proper placement on a rotating shaft that is mounted on a technically adapted bearing system and mechanically connected in order to minimize the effects caused by friction between the plurality of rotating parts.

[0025] The motion of multiple secondary rotating bodies that facilitate the generation and storage of rotational kinetic energy is induced / manifested by magnetic interactions between them and primary rotating bodies, and the rotational motion of the primary rotating bodies is ensured by the presence of a mechanical system that guarantees its correct operation. For example, when a primary rotating body is driven by such a mechanical system as an electric motor or powertrain mechanically fitted to its axis of rotation, it immediately induces / manifests the rotational motion of multiple secondary rotating bodies mounted around it via the interaction of magnetic fields between the multiple rotating bodies.

[0026] The complete and precise magnetic interaction between the primary rotating body and the multiple secondary rotating bodies, which enables the complete and highly efficient operation of the system, is achieved in each of the rotating bodies through a set of magnets of appropriate size and placement.

[0027] In order to obtain a complete magnetic interaction between the plurality of magnets of the primary rotating body and the plurality of magnets of the secondary rotating body, the trigger of the rotational movement in the primary rotating body should be carried out slowly and progressively in order to transmit continuous movement and progressive speed to the plurality of secondary rotating bodies via the existing magnetic interaction between the plurality of rotating bodies.

[0028] For example, as the rotational speed of the primary rotating body increases by gradually increasing the voltage applied to an electric motor mechanically adapted to the primary rotating body axis, the increase in the rotational speed of the plurality of secondary rotating bodies is proportionally induced via the correct magnetic interaction between the plurality of rotating bodies. The increase in the rotational speed in the primary rotating body and the induction in the plurality of secondary rotating bodies are carried out continuously and gradually until the set of rotating bodies reaches the desired rotational speed. The magnetic interaction between the plurality of rotating bodies (primary and secondary) of the system is carried out by magnetic induction / interaction rather than by magnetic coupling. In fact, in the developed prototype model, it takes about 120 seconds to reach the intended rotational speed in both the primary rotating body and the plurality of secondary rotating bodies from the starting point in the stationary state until the intended rotational speed is reached. Within the system, within the primary rotating body, and within the plurality of secondary rotating bodies, once the intended rotational speed is reached due to the complete magnetic interaction between the plurality of rotating parts, the rotational speed of the set remains constant and is not interrupted as long as a constant speed is guaranteed in the primary rotating body. Thus, thanks to this magnetic interaction between the plurality of rotating bodies, it is possible to generate and store rotational kinetic energy within the set of secondary rotating bodies in an optimized way without the need for any type of motor or any external device coupled to the axis of the secondary rotating bodies, and thus convert the potential energy of the position of the set of secondary rotating bodies into rotational kinetic energy.

[0029] Note that there is no physical connection or mechanical transmission / interaction for the transmission of rotational movement between the primary rotating body and any of the plurality of secondary rotating bodies. The transmission of rotational movement between the primary rotating body and the plurality of secondary rotating bodies of the system is ensured only by the complete magnetic ratio / interaction between the rotating bodies that are part of this system.

[0030] In the present magnetic interaction system between multiple rotors for generating and storing kinetic energy, it is possible to enhance the generation and storage of kinetic energy by using a single primary rotor. The system promotes the rotational kinetic energy within a set of secondary rotors, which converts the potential energy within the set of secondary rotors into rotational kinetic energy through the induction / interaction of magnetic forces existing within the multiple rotors, and stores the energy efficiently. In the developed structural architecture, the use of mechanical origins is minimized in all existing moving parts, so it is also possible to minimize the loss of mechanical origins.

[0031] (Brief Description of Drawings) For easier understanding of the present application, drawings representing embodiments that do not intend to limit the technology disclosed herein are attached to this specification.

[0032] FIG. 1 shows a three-dimensional view of an embodiment of a magnetic interaction system between multiple rotors for generating and storing rotational kinetic energy, including a primary rotor and three secondary rotors. The reference numbers are: 100 Magnetic interaction system between multiple rotors for generating and storing kinetic energy; 10 Primary rotor; 20 Secondary rotor; 21 Lower support platform of the secondary rotor; 22 Intermediate platform of the secondary rotor; 23 Upper support platform of the secondary rotor; 24 Lower magnet of the secondary rotor; 25 Upper magnet of the secondary rotor; 26 Rotation axis of the secondary rotor; 30 Horizontal support platform of the rotor structure.

[0033] FIG. 2 shows a second three-dimensional view of an embodiment of a magnetic interaction system between multiple rotors for generating and storing rotational kinetic energy, including a primary rotor and three secondary rotors. The reference numbers are: 100 Magnetic interaction systems between multiple rotating bodies for the generation and storage of kinetic energy; 10. Solids of revolution (first order); 11. Primary magnet A of a primary rotating body; 12. Secondary magnet A of a primary rotating body; 13. Secondary magnet B of a primary rotating body; 14. Axis of rotation of a primary rotating body; 15. Primary magnet B of a primary rotating body; 16. Support platform for primary rotational bodies; 20. A solid of revolution in quadratic order.

[0034] Figure 3 shows a third three-dimensional view of one embodiment of a magnetic interaction system between multiple rotating bodies for the generation and storage of rotational kinetic energy, including a primary rotating body and three secondary rotating bodies, with reference numerals: 100 Magnetic interaction systems between multiple rotating bodies for the generation and storage of kinetic energy; 10. Solids of revolution (first order); 11. Primary magnet A of a primary rotating body; 12. Secondary magnet A of a primary rotating body; 13. Secondary magnet B of a primary rotating body; 15. Primary magnet B of a primary rotating body; 20. Quadratic solid of revolution; 21 Lower support platform for the secondary rotating body; 22. Intermediate platform for a quadratic rotating body; 23. Upper support platform for the secondary rotating body; 24. Lower magnet of a secondary rotating body; 25. Upper magnet of a secondary rotating body; 26. The axis of rotation of a quadratic rotating body; 30. Horizontal support platform with a rotating structure; 40. Support columns for horizontal platforms; 60. Rotary shaft bearing for secondary rotating body.

[0035] Figure 4 shows a fourth three-dimensional view of one embodiment of a magnetic interaction system between multiple rotating bodies for the generation and storage of rotational kinetic energy, including a primary rotating body and three secondary rotating bodies, with reference numerals: 100 Magnetic interaction systems between multiple rotating bodies for the generation and storage of kinetic energy; 10. Solids of revolution (first order); 11. Primary magnet A of a primary rotating body; 12. Secondary magnet A of a primary rotating body; 13. Secondary magnet B of a primary rotating body; 16. Support platform for primary rotational bodies; 20. Quadratic solid of revolution; 21 Lower support platform for the secondary rotating body; 22. Intermediate platform for a quadratic rotating body; 23. Upper support platform for the secondary rotating body; 24. Lower magnet of a secondary rotating body; 25. Upper magnet of a secondary rotating body; 30. Horizontal support platform with a rotating structure; 40. Support columns for horizontal platforms; 50. Mechanical propeller of a primary rotating body; 51. Rotating shaft bearing for a primary rotating body; 60. Rotary shaft bearing for secondary rotating body.

[0036] Figure 5 shows a three-dimensional view of a further embodiment of a magnetic interaction system between multiple rotating bodies for the generation and storage of rotational kinetic energy, including a primary rotating body and four secondary rotating bodies, with reference numerals: 100 Magnetic interaction systems between multiple rotating bodies for the generation and storage of kinetic energy; 10. Solids of revolution (first order); 20. Quadratic solid of revolution; 30. Horizontal support platform with a rotating structure; 40. Support columns for horizontal platforms; 60. Rotary shaft bearing for secondary rotating body.

[0037] Figure 6 shows a second three-dimensional view of a further embodiment of a magnetic interaction system between multiple rotating bodies for the generation and storage of rotational kinetic energy, including a primary rotating body and four secondary rotating bodies, with reference numerals: 100 Magnetic interaction systems between multiple rotating bodies for the generation and storage of kinetic energy; 10. Solids of revolution (first order); 11. Primary magnet A of a primary rotating body; 12. Secondary magnet A of a primary rotating body; 13. Secondary magnet B of a primary rotating body; 15. Primary magnet B of a primary rotating body; 16. Support platform for primary rotational bodies; 20. Quadratic solid of revolution; 21 Lower support platform for the secondary rotating body; 22. Intermediate platform for a quadratic rotating body; 23. Upper support platform for the secondary rotating body; 24. Lower magnet of a secondary rotating body; 25. Upper magnet of a secondary rotating body; 26. The axis of rotation of a quadratic rotating body; 50. Mechanical propeller of a primary rotating body; 51. Rotating shaft bearing for a primary rotating body; 60. Rotary shaft bearing for secondary rotating body.

[0038] Figure 7 shows a third three-dimensional view of a further embodiment of a magnetic interaction system between multiple rotating bodies for the generation and storage of rotational kinetic energy, including a primary rotating body and four secondary rotating bodies, with reference numerals: 100 Magnetic interaction systems between multiple rotating bodies for the generation and storage of kinetic energy; 10. Solids of revolution (first order); 11. Primary magnet A of a primary rotating body; 12. Secondary magnet A of a primary rotating body; 13. Secondary magnet B of a primary rotating body; 14. Axis of rotation of a primary rotating body; 15. Primary magnet B of a primary rotating body; 16. Support platform for primary rotational bodies; 20. Quadratic solid of revolution; 23. Upper support platform for the secondary rotating body; 25. Upper magnet of a secondary rotating body; 60. Rotary shaft bearing for secondary rotating body.

[0039] Figure 8 shows a fourth three-dimensional view of a further embodiment of a magnetic interaction system between multiple rotating bodies for the generation and storage of rotational kinetic energy, including a primary rotating body and four secondary rotating bodies, with reference numerals: 100 Magnetic interaction systems between multiple rotating bodies for the generation and storage of kinetic energy; 10. Solids of revolution (first order); 11. Primary magnet A of a primary rotating body; 12. Secondary magnet A of a primary rotating body; 13. Secondary magnet B of a primary rotating body; 20. Quadratic solid of revolution; 26. The axis of rotation of a quadratic rotating body; 30. Horizontal support platform with a rotating structure; 40. Support columns for horizontal platforms; 50. Mechanical propeller of a primary rotating body; 51. Rotating shaft bearing for a primary rotating body; 60. Rotary shaft bearing for secondary rotating body.

[0040] Figure 9 shows a top view of a possible embodiment of multiple magnets mounted on a platform of a primary rotating body, with reference numerals: 11. Primary magnet A of a primary rotating body; 12. Secondary magnet A of a primary rotating body; 13. Secondary magnet B of a primary rotating body; 14. Axis of rotation of a primary rotating body; 15. Primary magnet B of a primary rotating body; 16. Support platform for a primary rotation body.

[0041] Figure 10 shows a side cross-sectional view of a possible embodiment in which multiple magnets can be arranged on the upper, lower, and intermediate platforms of multiple secondary rotating bodies, with reference numerals: 21 Lower support platform for the secondary rotating body; 22. Intermediate platform for a quadratic rotating body; 23. Upper support platform for the secondary rotating body; 24. Lower magnet of a secondary rotating body; 25. Upper magnet of a secondary rotating body.

[0042] Figure 11 shows a top view of multiple magnets on a primary rotating body (10), and the magnetic fields from the arrangement of the multiple magnets are shown: primary A of primary rotating body (11), secondary A of primary rotating body (12), secondary B of primary rotating body (13), and primary B of primary rotating body (15).

[0043] Figure 12 shows a side cross-sectional view of the secondary rotating body (20), illustrating the magnetic fields from the arrangement of multiple magnets: below the secondary rotating body (24) and above the secondary rotating body (25).

[0044] (Description of the embodiment) Several embodiments will be described in more detail with reference to the drawings, but these embodiments are not intended to limit the scope of the present application.

[0045] This invention describes a magnetic interaction system between multiple rotating bodies for generating and storing rotational kinetic energy.

[0046] One preferred embodiment proposed with respect to the system (100) involves the use of a support platform (30) on which a support structure for a primary rotating body (10) rotating on an axis (14, 26) and a support structure for a plurality of secondary rotating bodies (20) are arranged. The platform (30) comprises a bearing (51) that is mechanically fitted to ensure support for the axis (14) of rotation of the primary rotating body (10) of the system (100). The axis (14) of rotation of the primary rotating body (10) is connected to a mechanical propeller (50), which may be an electric motor, a generator motor, a motor-propeller, or one of other mechanisms, that is mechanically fitted and provided to ensure that the primary rotating body (10) can supply rotational motion to the axis (14).

[0047] The primary rotating body (10) is comprised of a platform (16), which in one preferred embodiment is configured in a disk shape and adapted to rotate on its axis (14) and has the property of not affecting the magnetic field of the magnets based on it. A set of first magnets (11, 12, 13, 15) is mounted on the upper surface of the disk (16). In one preferred embodiment, the arrangement of the set of parallelepiped magnets (11, 12, 13, 15) is made in a cross shape. As described above, both the primary magnets A and B (11, 15) and the secondary magnets B (12, 13) of the primary rotating body (10) have a parallelepiped shape, as shown in Figure 9, and have a longitudinal magnetic arrangement with respect to the major axis of the parallelepiped. Therefore, in order to obtain the aforementioned cross shape, both primary magnets A and B (11, 15) of the primary rotating body (10) are positioned on its narrow side to ensure magnetic separation between multiple N poles and multiple S poles perpendicular to the rotation plane of the disk (16) of the primary rotating body (10), and also to ensure combinations between N-S poles and S-N poles between primary magnets A and B (11, 15). The central junction of primary magnets A and B (11, 15) is positioned in the center so as to coincide with the rotation axis (14) of the primary rotating body (10).

[0048] To obtain the cross shape, the attachment of the remaining magnets to the disk (16) of the primary rotating body (10) is achieved by connecting the longitudinal axes of the secondary magnets A and B (12, 13) to the longitudinal centers of the joints of the two primary magnets A and B (11, 15). Thus, the longitudinal surface of the north pole of the secondary magnet A (12) is magnetically joined to the longitudinal surface of the south pole of the primary magnet A (11), and the longitudinal surface of the south pole of the secondary magnet A (12) is magnetically joined to the longitudinal surface of the north pole of the primary magnet B (15).

[0049] The same applies to the secondary magnet B(13) of the primary rotating body (10): the longitudinal surface of the north pole of the secondary magnet B(13) is magnetically joined to the longitudinal surface of the south pole of the primary magnet B(15), and the longitudinal surface of the south pole of the secondary magnet B(13) is magnetically joined to the longitudinal surface of the north pole of the primary magnet A(11).

[0050] According to one of the proposed embodiments shown in Figures 1 to 4, further relating to the platform (30) and around the primary body of rotation (10), three secondary bodies of rotation (20) are mounted equidistant from the axis of rotation (14) of the primary body of rotation (10), and their axes of rotation (26) are equidistant from the axis of rotation (14) of the primary body of rotation (10), in addition to having an equilateral triangular arrangement.

[0051] Here, each of the three secondary rotating bodies (20) is coupled to the platform (30) by bearings (60) mechanically fitted to the axis of rotation (26) of the secondary rotating body (20) to ensure its correct mounting to the platform (30). To ensure greater stability of the secondary rotating body (20) relative to the axis of rotation (26), and for the rotational speeds involved, it may be coupled to two or more platforms (30) arranged adjacent to each other and supported by additional multiple supports (40) by additional multiple bearings (60). Both the bearings of the axis of rotation of the primary rotating body (51) and the bearings of the axis of rotation of the secondary rotating body (60) may further use support boxes to minimize vibration from the high rotational speeds to be reached, thus minimizing the generation of gaps between the bearings and the support base of the axes, i.e., the platform (30).

[0052] Each of the three secondary rotating bodies (20) is composed of three platforms (21, 22, 23), or preferably a ring-shaped disk, wherein the lower support disk (21) is circular, the intermediate disk (22) is circular, and the upper support disk (23) is circular, and the disks (21, 22, 23) are mechanically fitted to the top of the central rotation axis (26) of the secondary rotating body (20), which is mechanically fitted to the bearing (60). Each of these disks (21, 22, 23) constituting the secondary rotating body (20) has a ring shape and is mounted in the center around each of the rotation axes (26). The disks must be made of a non-magnetic material, or a material that does not interfere with the magnetic field generated between the rotating bodies (10, 20) of the system (100), such as brass and wood. Both the lower and upper support platforms (21, 23) include mounting of a set of magnets (24, 25) arranged radially at equidistant intervals around the circumference of a ring shape, in a continuous sequence of multiple N / S poles.

[0053] In one of the preferred embodiments, the magnets (24, 25) mounted on the surface of the support platform (21, 23) have a cylindrical shape and a magnetic arrangement having an axial shape with respect to its axis, with one of their faces being an N pole (N) and the opposite face being an S pole (S). Figure 10 shows one of the preferred embodiments of the present invention, supporting the description listed above, in which the polarity arrangement of the upper magnet (25) and the lower magnet (24) is made up of N / S (N / S) poles, so that the S (S) pole of the lower magnet (24) is located on the upper surface of the lower support disk of the secondary rotating body (21) and has an N (N) pole in contact with the lower surface of the upper support disk (23). Next, the upper magnet (25) has an S pole (S) in contact with the upper surface of the upper support disk (23). A magnetic attraction exists between the lower magnet (24) and the upper magnet (25), but the upper support base (23) ensures physical separation from the magnets (24, 25), thereby avoiding direct contact between the lower magnet (24) and the upper magnet (25) due to the polarity of the aggregate and arrangement. The substantial ring shape of the multiple support disks (21, 22, 23) promotes a greater concentration of the mass of the secondary rotating body (20) on its outer edge, and thus substantially increases the inertia of the set of secondary rotating bodies (20). The intermediate disk (22) occupies the gaps between each of the lower magnets (24) that are mounted equidistantly on the edge of the lower support disk (21), and its function increases the mass of the secondary rotating body (20). In a particular case of implementing a system using three secondary rotating bodies (20), each lower support disk (21) and each upper support disk (23) includes having 14 magnets applied to their surface, more specifically, the lower support disk (21) has 14 lower magnets (24) mounted on the edge of its ring, and the upper support disk (23) has 14 upper magnets (25) mounted on its ring edge. Thus, each secondary rotating body (20) includes the use of 28 neodymium magnets in one of the proposed embodiments of the present invention.The use of multiple magnets of this type, and the way they are arranged radially along a ring forming multiple secondary rotating bodies (20), allows the rotational motion of the primary rotating body (10), mechanically provided by the mechanical propeller (50), to act on the motion of the secondary rotating bodies (20), and due to the interaction and interlocking of magnetic forces present within the rotating bodies (10, 20), it is possible to move them in a constant, uninterrupted, and synchronized manner, albeit in opposite directions of rotation.

[0054] The arrangement and superposition of the magnets (24, 25) on the secondary rotating body (20), combined with the specific arrangement of the four magnets (11, 12, 13, 15) on the cross-shaped primary rotating body (10), enables precise, uniform, and effective interaction of multiple magnetic fields, resulting in perfect synchronization between the primary rotating body (10) and the multiple secondary rotating bodies (20).

[0055] To minimize the effects of air friction on the parallelepiped (11, 12, 13, 15) primary magnets, the primary magnets (11, 15) are mounted on a narrower surface of the disk (16) of the primary rotating body (10) when it is rotating around the axis (14) by the operation of a mechanical propeller (50). A closed circular cover, dimensionally fitted to the dimensions of the primary rotating body (10), is used to incorporate the primary magnets (11, 12, 13, 15) inside, and does not interfere with the magnetic field generated within the system (100). In one preferred embodiment of the present invention, the primary rotating body disk (16) is aligned in terms of height with respect to the secondary rotating body intermediate disk (22) with respect to the platform (30), and this alignment allows for better rotational performance induced by the primary rotating body (10) on multiple secondary rotating bodies (20). It should be noted that ferrite magnets do not function correctly in system (100), which is why neodymium magnets, with their high magnetic field, small size, and long service life, are used in one of the preferred embodiments of system (100). In the near future, alternatives may be used, such as 100% synthetic neodymium magnets, electromagnets, magnetic superconductors, or nanomagnets, which have the same magnetic properties in a similar or better manner than the neodymium magnets suggested herein.

[0056] In both the embodiments proposed in Figures 1-4 and the embodiments proposed in Figures 5-8, the arrangement and spacing of the secondary rotating bodies (20) with respect to their rotation axes (26) ensures that the magnetic forces generated from the magnets (24, 25) attached to the edges of their disks (21, 22, 23) do not affect the pairs. That is, in the arrangement of the secondary rotating bodies (20) proposed in both embodiments, the rotational motion of an independent secondary rotating body (20) does not affect the rotational motion of an adjacent secondary rotating body (20). Therefore, the operation of the multiple secondary rotating bodies (20) functions only under the influence of the rotational motion of the primary rotating body (10), thus ensuring the optimization of energy loss in the system.

[0057] In one non-limiting embodiment proposed for the present invention, as demonstrated in Figures 1 to 4, the diameter of the secondary rotating body (20) is about 125% larger than the diameter of the primary rotating body (10). The same is true for the mass of the secondary rotating body (20), which is about 250% larger than the mass of the primary rotating body (10). Due to these dimensional ratios, once the intended rotational speed in the primary rotating body (10) is reached, the system (100) maintains a rotational speed about 75% higher than the rotational speed of the multiple secondary rotating bodies (20). However, due to the dimensions (diameters) of the multiple secondary rotating bodies (20), the circular motion of the secondary rotating bodies (20) with tangential velocity is about 30% greater than the circular motion of the primary rotating body (10) with tangential velocity, due to their larger diameters. Considering these parameters, it is clear and mathematically verifiable that, during the operation of the system (100) comprising a primary rotating body (10) and three secondary rotating bodies (20), each secondary rotating body (20) generates rotational kinetic energy approximately 700% greater than that generated by the primary rotating body (10) via a mechanical propeller (50) coupled to its axis of rotation (14), which converts the rotational kinetic energy in the set of three secondary rotating bodies (20) at a higher rate than that generated by the primary rotating body (10), approximately 2200% or more. These percentage values ​​are achieved by the performance of the system presented herein, which innovates the latest technology and can convert the potential energy present in the secondary rotating bodies into rotational kinetic energy. This transformation is brought about by several factors, including the use of highly efficient bearings that enable very low friction of the shafts (14, 26) in the primary rotating body (10) and the secondary rotating body (20), respectively, and is ensured by the structural characteristics and features of the rotating shaft bearings of the primary rotating body (51) and the rotating shaft bearings of the multiple secondary rotating bodies (60).

[0058] Another key factor of the primary rotating body (10) is that, in addition to physical aspects such as a smaller diameter and smaller mass, it has lower inertia than the multiple secondary rotating bodies (20), which is related to the arrangement and the distribution of most of its mass. Most of its mass is located at the center of its axis (14). In this way, several energy requirements for promoting the rotational motion of its set formed by the primary rotating body (10) are reduced. Furthermore, the base (16) of the primary rotating body (10) has a disc shape that reduces its inertia. On the other hand, the multiple secondary rotating bodies (20) have greater inertia not only due to physical aspects such as a larger diameter and larger mass, but also because most of their mass is distributed on the edge of their ring shape, and therefore their inertia is increased by the arrangement of the lower and upper magnets (24, 25) around the edge of the ring. However, the effect of the amount of energy required to rotate the multiple secondary rotating bodies (20) is minimized by the aforementioned interaction and mutual interlock of magnetic forces between the magnets (11, 12, 13, 15) of the primary rotating body (10) and the magnets (24, 25) of the multiple secondary rotating bodies (20). This magnetic interlock ensures that the energy required to generate rotational motion in the multiple secondary rotating bodies is applied point-to-point to each magnet constituting the multiple secondary rotating bodies. This enables very low energy consumption and high efficiency through precise magnetic interactions between the primary and secondary rotating bodies.

[0059] Even when the diameters and masses of multiple secondary rotating bodies (20) are equal to the diameters and masses of the primary inductor rotating body (10), the rotational kinetic energy generated by a set of secondary rotating bodies (20) is greater than the rotational kinetic energy of the primary rotating body (10).

[0060] The system (100) described above makes it possible to convert potential energy present within the system (100) into rotational kinetic energy. This generated rotational kinetic energy can be stored or used directly. The system (100) makes it possible to generate and store kinetic energy in the multiple secondary rotating bodies (20) that is greater than the rotational kinetic energy required to operate the system (100) via the primary rotating body (10).

[0061] The primary rotating body (10) can ultimately incorporate an elevator that allows for fine-tuning of the height defined by the sets of magnets (11, 12, 13, 15) for each set of magnets (24, 25) present within the secondary rotating body (20). This adjustment can ultimately lead to improved system performance (100) with respect to increased generation capacity, system kinetic energy intake and storage, and higher efficiency.

[0062] Furthermore, in yet another embodiment of the present invention, the system (100) of magnetic interactions between rotating bodies (10, 20) for generating and storing kinetic energy includes the use of an additional secondary rotating body (20), i.e., the use of a total of four secondary rotating bodies (20). In this case, the arrangement of the multiple secondary rotating bodies (20) around the primary rotating body (10) is carried out according to a diamond-shaped configuration in which the centers of rotation of the multiple secondary rotating bodies (20) are distributed equally apart from the primary rotating body (10).

[0063] In this particular case, the proposed configuration shown in Figures 5, 6, 7, and 8 differs slightly, non-limitingly in dimensions, as a total of 16 magnets (24, 25) are stacked on each secondary rotating body (20), and only 8 sets of magnets (24, 25) are considered for use on each disk (21, 23) of each secondary rotating body (20). In this configuration, the multiple secondary rotating bodies (20) have diameters approximately 40% larger than the diameter of the primary rotating body (10), and their masses are approximately 112% larger than the mass of the primary rotating body (10). With these dimensional ratios, the rotational speed induced in the multiple secondary rotating bodies (20) is the same as that of the primary rotating body (10) via magnetic interactions in the system (100), i.e., the ratio of rotational speed levels is 1:1. However, due to the dimensions (diameters) of the multiple quadratic bodies (20), the circular motion of the multiple quadratic bodies (20) with tangential velocity is approximately 40% greater than the circular motion of the primary body (10) with tangential velocity.

[0064] Considering these parameters, it is clear and mathematically verifiable that, during the operation of the system (100) consisting of a primary rotating body (10) and four secondary rotating bodies (20) proposed in this embodiment, the rotational kinetic energy generated in each of the four secondary rotating bodies (20) is converted at a ratio greater than 2100% than the rotational kinetic energy generated by the primary rotating body (10), and is approximately 470% greater than the rotational kinetic energy generated by the primary rotating body (10).

[0065] In both approaches proposed for the system (100) using three or four secondary rotating bodies (20), the ability of the system to convert potential energy (100) into rotational kinetic energy is always substantially greater than the rotational kinetic energy supplied to the system (100) via the primary rotating body (10). In both proposed embodiments of the system (100), it is possible to verify and demonstrate that there are no physical and / or mechanical connections between the primary rotating body (10) and the multiple secondary rotating bodies (20) or between the multiple secondary rotating bodies (20) for the transfer of rotational kinetic energy.

[0066] The generation of kinetic energy in the multiple secondary rotating bodies (20) is carried out solely and exclusively by the existing magnetic ratio and the materials used in the developed system (100). The magnetic ratio of this system (100) allows the multiple secondary rotating bodies (20) to continuously maintain a tangential velocity higher than that of the primary rotating body (10), even though the multiple secondary rotating bodies (20) have larger diameters and masses than those of the primary rotating body (10).

[0067] To further optimize these results, this system (100) can be incorporated in a suspension structure and a vacuum-sealed structure using cylinders for the rotating bodies (10, 20), and the bearings (51, 60) used may be magnetic to minimize frictional losses.

[0068] This description is, of course, not limited to the embodiments presented herein and will provide many possibilities for modification without departing from the general concepts defined in the claims for those skilled in the art. The preferred embodiments described above are obviously combinable with respect to each other. The following claims further define the preferred embodiments. [Brief explanation of the drawing]

[0069] [Figure 1]A three-dimensional diagram is shown of one embodiment of a magnetic interaction system between multiple rotating bodies for generating and storing rotational kinetic energy, including a primary rotating body and three secondary rotating bodies. [Figure 2] A second three-dimensional diagram is shown of one embodiment of a magnetic interaction system between multiple rotating bodies for generating and storing rotational kinetic energy, including a primary rotating body and three secondary rotating bodies. [Figure 3] A third three-dimensional diagram is shown of one embodiment of a magnetic interaction system between multiple rotating bodies for the generation and storage of rotational kinetic energy, including a primary rotating body and three secondary rotating bodies. [Figure 4] A fourth three-dimensional diagram is shown of one embodiment of a magnetic interaction system between multiple rotating bodies for generating and storing rotational kinetic energy, including a primary rotating body and three secondary rotating bodies. [Figure 5] A three-dimensional diagram is shown of a further embodiment of a magnetic interaction system between multiple rotating bodies for generating and storing rotational kinetic energy, including a primary rotating body and four secondary rotating bodies. [Figure 6] A second three-dimensional diagram shows a further embodiment of a magnetic interaction system between multiple rotating bodies for generating and storing rotational kinetic energy, including a primary rotating body and four secondary rotating bodies. [Figure 7] A third three-dimensional diagram is shown of a further embodiment of a magnetic interaction system between multiple rotating bodies for generating and storing rotational kinetic energy, including a primary rotating body and four secondary rotating bodies. [Figure 8] A fourth three-dimensional diagram shows a further embodiment of a magnetic interaction system between multiple rotating bodies for generating and storing rotational kinetic energy, including a primary rotating body and four secondary rotating bodies. [Figure 9] A top view of a possible embodiment of multiple magnets mounted on a platform of a primary rotating body is shown. [Figure 10] The diagram shows a side cross-sectional view of an embodiment in which multiple magnets can be arranged on the upper, lower, and intermediate platforms of multiple secondary rotating bodies. [Figure 11] This shows a top view of multiple magnets in a primary rotating body. [Figure 12] A side cross-sectional view of a quadratic rotating body is shown.

Claims

1. A primary rotating body (10) comprising a first set of magnets, mechanically fitted to at least one platform (30) by a rotating shaft (14), wherein the first set of magnets is connected to a mechanism enabling rotational motion, and fitted via a platform (16) positioned centrally on the rotating shaft (14), The system comprises at least three secondary rotating bodies (20) mechanically fitted to the at least one platform (30) by rotating shafts (26) that are independent of and equidistant from the rotation shaft (14) of the primary rotating body (10), Each of the at least three secondary rotating bodies (20) includes at least two overlapping platforms that are ring-shaped on the same axis of rotation (26), the at least two overlapping platforms including one lower support platform (21) and one upper support platform (23), a second set of magnets fitted on the at least two overlapping platforms, the second set of magnets including a set of lower magnets (24) mounted on the edge of the lower support platform (21), The upper support platform (23) comprises a set of upper magnets (25) mounted on its edge, the set of upper magnets (25) being separated from the set of lower magnets (24) by the upper support platform (23), It includes an intermediate platform (22) which is ring-shaped and occupies the gap between the at least two overlapping platforms and the second set of magnets, A magnetic interaction system (100) between multiple rotating bodies for generating and storing kinetic energy, characterized in that the platform (16) is aligned with the height of the intermediate platform (22) with respect to at least one platform (30).

2. The primary rotating body (10) includes a closed circular cover dimensionally fitted to house the first set of magnets inside, The magnetic interaction system (100) between multiple rotating bodies for generating and storing kinetic energy according to claim 1, characterized in that the circular cover exhibits constitutive properties that do not interfere with the magnetic fields of the first set of magnets and the second set of magnets, and promotes improvement of the aerodynamic performance of the primary rotating body (10).

3. A magnetic interaction system (100) between multiple rotating bodies for generating and storing kinetic energy according to claim 1 or 2, characterized in that the first set of magnets includes a cross arrangement.

4. A magnetic interaction system (100) between multiple rotating bodies for generating and storing kinetic energy according to any one of claims 1 to 3, characterized in that the first set of magnets comprises two primary magnets A and B (11, 15) arranged on the surface of the platform (16) centrally located on the axis of rotation, magnetically joined to its narrower side, and secondary magnets A (12) and B (13) mounted laterally and opposite to each other in a cross shape, so as to coincide with the point of joining between the two primary magnets A and B (11, 15) and the axis of rotation (14).

5. A magnetic interaction system (100) between multiple rotating bodies for generating and storing kinetic energy according to any one of claims 1 and 2, characterized in that the primary rotating body (10) and the at least three secondary rotating bodies (20) are cylindrical in shape and include magnetic rotating shaft bearings (51, 60) mechanically fitted to the at least one platform (30) to facilitate suspension in a sealed vacuum environment.

6. A magnetic interaction system (100) between multiple rotating bodies for generating and storing kinetic energy according to any one of claims 1, 2, and 5, characterized in that the primary rotating body (10) and the at least three secondary rotating bodies (20) include a cylindrical shape in which the first set of magnets and the second set of magnets are mounted inside.

7. A magnetic interaction system (100) between multiple rotating bodies for generating and storing kinetic energy according to any one of claims 1 to 6, comprising at least one set of overlapping and suspended primary rotating bodies (10) and at least one set of overlapping and suspended secondary rotating bodies (20), mechanically fitted to at least one platform (30) in order to optimize spatial and energy generation performance.

8. A magnetic interaction system (100) between multiple rotating bodies for generating and storing kinetic energy according to any one of claims 1, 5, and 6, characterized in that each of the at least three secondary rotating bodies (20) has a diameter greater than the diameter of the primary rotating body (10), and each of the at least three secondary rotating bodies (20) has an angular velocity greater than the angular velocity of the primary rotating body (10).

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