Flywheel system having multiple generator coils

JP2024544079A5Pending Publication Date: 2026-09-08MATTUR HOLDINGS INC
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Patent Information

Application Number
JP2024534383
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-12-07
Filing Date
2022-12-07
Publication Date
2026-09-08

AI Technical Summary

Technical Problem

Conventional flywheel systems face inefficiencies in power generation and energy storage due to suboptimal magnetic circuit configurations, leading to mismatched power output and increased energy dissipation during load variations.

Method used

A flywheel system with multiple generator coils and rotor disks, where magnets are angularly distributed and coils are arranged to sequentially overlap each magnet, allowing for customizable and efficient power generation and storage by selectively connecting coils to a load bus using a controller.

Benefits of technology

The system enables flexible, intelligent, and efficient power generation and storage by optimizing magnetic interactions, reducing energy dissipation, and adapting to load demands through selective coil connections.

✦ Generated by Eureka AI based on patent content.

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Abstract

A flywheel system having a plurality of generator coils includes a rotor disk configured to rotate about an axis of rotation, a plurality of magnets disposed within the rotor disk, the plurality of magnets being angularly distributed about the axis of rotation and magnetically aligned such that a respective north pole of each magnet of the plurality of magnets faces the same direction, and a coil disposed adjacent to the rotor disk, the coil extending axially away from the rotor disk, the coil positioned such that the coil sequentially overlaps each magnet of the plurality of magnets in response to rotation of the rotor disk about the axis of rotation.
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Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS: This disclosure claims priority to U.S. Provisional Patent Application No. 63 / 286,761, entitled "FLYWHEEL SYSTEMS WITH MULTIPLE GENERATOR COILS," filed December 7, 2021, which is incorporated herein in its entirety. The technology disclosed in this application relates to flywheel systems having multiple generator coils. [Background technology]

[0002] Generators may be used to generate electricity by converting motive power (i.e., mechanical energy) into electrical power. Some generators may generate electricity by rotating a rotor relative to a stator to subject the stator to a changing magnetic field. The changing magnetic field may then be used to induce an electrical current in the stator (e.g., via a coil, etc.).

[0003] Flywheels may be used to store energy in the form of rotational kinetic energy by spinning the rotor of the flywheel. In some flywheels, the amount of rotational energy stored in the flywheel may be related to the moment of inertia of the rotor and the rotational speed of the rotor. For example, increasing the rotational speed of the flywheel rotor may increase the amount of energy stored in the flywheel. The stored energy can then be later extracted from the rotor to, for example, drive the rotor of an electrical generator or some other system that may use or convert power from the rotating rotor of the flywheel. Summary of the Invention

[0004] The present disclosure provides new and innovative systems, devices and methods for improved power generation and energy storage.

[0005] In one example, the disclosure provides a device comprising: a rotor disk configured to rotate about an axis of rotation; a plurality of magnets disposed within the rotor disk, the plurality of magnets being angularly distributed about the axis of rotation and magnetically aligned such that a respective north pole of each magnet of the plurality of magnets faces the same direction; and a coil disposed adjacent to the rotor disk, the coil extending axially away from the rotor disk, the coil positioned such that the coil sequentially overlaps each magnet of the plurality of magnets in response to rotation of the rotor disk about the axis of rotation.

[0006] In one example, the disclosure provides a system comprising: one or more rotor disks configured to rotate about an axis of rotation, each of the one or more rotor disks including a respective plurality of magnets angularly distributed about the axis of rotation; a plurality of coils, each respective coil of the plurality of coils positioned when overlapping a magnet of the plurality of magnets on a respective rotor disk of the one or more rotor disks within a magnetic gap threshold of the magnet, each respective coil extending axially from a proximal end of the respective coil facing the respective disk to a distal end of the respective coil opposite the proximal end; a load bus configured to transfer power; a plurality of switches, each of the plurality of switches having a respective switch output electrically connected to the load bus; and a controller coupled to the plurality of switches and configured to selectively connect at least one of the plurality of coils to the load bus by operating the plurality of switches.

[0007] In one example, the disclosure provides a system comprising: a first rotor disk including a first plurality of magnets distributed at an angle with respect to the axis of rotation; and a second rotor disk including a second plurality of magnets distributed at an angle with respect to the axis of rotation; and a plurality of coils including a first coil positioned to be within a magnetic gap distance of each magnet of the first plurality of magnets; and a second coil positioned to be within a magnetic gap distance of each magnet of the second plurality of magnets, wherein the first rotor disk and the first coil are positioned relative to the second rotor disk and the second coil such that the first coil sequentially overlaps the first plurality of magnets and the second coil sequentially overlaps the second plurality of magnets while rotating the first rotor disk and the second rotor disk at a shared rotational speed about the axis of rotation.

[0008] The above examples, features and advantages are not all inclusive, and in particular many additional examples, configurations, features and advantages will be apparent to those of ordinary skill in the art in view of the drawings and descriptions in this disclosure.Furthermore, it should be noted that the terminology used herein has been selected primarily for ease of reading and descriptive purposes, and not to limit the scope of the disclosed subject matter. [Brief description of the drawings]

[0009] [Figure 1A] FIG. 1A is a diagram of an exemplary system for energy storage and power generation in accordance with an exemplary embodiment. [Figure 1B] FIG. 1B is a diagram of an exemplary system for energy storage and power generation in accordance with an exemplary embodiment. [Figure 1C] FIG. 1C is a diagram of an exemplary system for energy storage and power generation in accordance with an exemplary embodiment. [Figure 2A] FIG. 2A is a diagram of an example device including a multi-layer rotor / stator assembly, according to an example embodiment. [Figure 2B] FIG. 2B is a diagram of an example device including a multi-layer rotor / stator assembly, according to an example embodiment. [Figure 2C]FIG. 2C is a diagram of an example device including a multi-layer rotor / stator assembly, according to an example embodiment. [Figure 3A] FIG. 3A is an illustration of an exemplary rotor disk, according to an example embodiment. [Figure 3B] FIG. 3B is an illustration of an exemplary rotor disk, according to an example embodiment. [Figure 3C] FIG. 3C is an illustration of an example rotor disk in accordance with an example embodiment. [Figure 4A] FIG. 4A is a diagram of an example stator of a disk configuration, according to an example embodiment. [Figure 4B] FIG. 4B is a diagram of an example stator of a disk configuration, according to an example embodiment. [Figure 4C] FIG. 4C is a diagram of an example stator of a disk configuration, according to an example embodiment. [Figure 5A] FIG. 5A is a diagram of an additional stator configured to support one or more coils near the magnets of the rotor disk, according to an example embodiment. [Figure 5B] FIG. 5B is a diagram of an additional stator configured to support one or more coils near the magnets of the rotor disk, according to an example embodiment. [Figure 5C] FIG. 5C is a diagram of an additional stator configured to support one or more coils near the magnets of the rotor disk, according to an example embodiment. [Figure 6A] FIG. 6A is a diagram of another example stator configured to support coils facing two sides of a stator disk, according to an example embodiment. [Figure 6B] FIG. 6B is a diagram of another example stator configured to support coils facing two sides of a stator disk according to an example embodiment. [Figure 6C] FIG. 6C is a diagram of another example stator configured to support coils facing two sides of a stator disk according to an example embodiment. [Figure 7] FIG. 7 is a diagram of an example rotor / stator assembly including coils arranged to overlap and face two sides of a stator disk, according to an example embodiment. [Figure 8A] FIG. 8A is a block diagram of an example system for selectively connecting one or more generator coils of a multi-layer electric machine to a load bus in accordance with an example embodiment. [Figure 8B] FIG. 8B is a block diagram of an example system for selectively connecting one or more generator coils of a multi-layer electric machine to a load bus in accordance with an example embodiment. [Figure 9A] FIG. 9A is a conceptual diagram of interactions between elements of the systems described herein, according to an example embodiment. [Figure 9B] FIG. 9B is a conceptual diagram of interactions between elements of the systems described herein, in accordance with an exemplary embodiment. [Figure 9C] FIG. 9C is a conceptual diagram of interactions between elements of the systems described herein, in accordance with an exemplary embodiment. [Figure 9D] FIG. 9D is a conceptual diagram of interactions between elements of the systems described herein, according to an exemplary embodiment. [Figure 9E] FIG. 9E is a conceptual diagram of interactions between elements of the systems described herein, according to an example embodiment. [Figure 9F] FIG. 9F is a conceptual diagram of interactions between elements of the systems described herein, according to an exemplary embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] Some conventional flywheel designs may use a motor-generator to store energy by operating the motor-generator as a motor and extract energy by operating the motor-generator as a generator, however, in some scenarios, a particular magnetic circuit configuration (e.g., number of coil turns, magnetic circuit geometry, coil combination, rotor rotational speed, etc.) may be more suitable for a motor than a generator, or vice versa.

[0011] For example, it may be more efficient to use a smaller size or number of coils when generating power during periods of low load levels than during periods of high load levels. For example, in some scenarios, when the power output from the flywheel closely matches the current requirements, less power may be dissipated (e.g., by power electronics such as regulators) than when there is a relatively large mismatch. As another example, a particular magnetic circuit configuration (e.g., coil size, air gap, magnetic flux density, magnetic strength, etc.) may be more optimal or efficient (e.g., by capturing the appropriate density of magnetic flux in the coils, etc.) than a single magnetic circuit configuration (e.g., motor-generator) or other systems that may only provide a single or limited number of outputs and / or configurations.

[0012] To that end, disclosed herein are exemplary systems and devices that advantageously enable efficient, flexible, selective, customizable, intelligent and / or otherwise improved flywheel and generator systems and operation.

[0013] 1A-1C illustrate a system 100 for generating electricity, according to an exemplary embodiment of the present disclosure. FIG. 1A illustrates a perspective view of the system 100, and FIG. 1B illustrates a side view of the system 100. In one example, the system 100 includes a generator. In one example, the system 100 includes a flywheel 102 that rotates to store energy and / or generate electrical power output by the system 100. The generated electrical power is provided to an electrical load (not shown) of the system 100. In certain implementations, the flywheel 102 is oriented vertically in the system 100 as shown. In other implementations, the flywheel 102 may be oriented horizontally in the system 100. Other orientations of the system 100 are possible. Rotation of the flywheel 102 is driven, at least in part, by a prime mover 114. Thus, although various examples provide relative positional conditions relative to the vertical orientation of the flywheel 102, one skilled in the art can reorient the example positional conditions based on the horizontal orientation of the system 100 or other orientations (e.g., between fully vertical and fully horizontal).

[0014] In the illustrated example, the prime mover 114 is a motor. In some examples, the prime mover 114 may alternatively be implemented as any type of device configured to transfer dynamic rotational motion to the flywheel 102. In one example, the prime mover 114 may be implemented as a wind energy system that transfers the rotational motion of a windmill's blades (e.g., via gears) to rotate the flywheel 102. Additionally or alternatively, in one example, the prime mover 114 may include a gear system coupled to a water wheel that generates rotational motion based on the flow of water through the water wheel. Other types of prime movers 114 are possible as well. However, for purposes of illustration, the prime mover 114 in the example of FIG. 1 is a motor (e.g., an electric motor, a combustion engine, etc.) and may be referred to interchangeably as a prime mover or motor 114 in the examples shown herein.

[0015] The motor 114 may be located near one end of the flywheel 102. For example, as shown, the motor 114 may be located at a lower end of the system 100. In one example, the motor 114 is used to initialize the rotation of the flywheel 102. In additional or alternative implementations, the motor 114 may continue to power the rotation of the flywheel 102 after initialization. In various embodiments, the prime mover or motor 114 may be powered from an alternative energy source, such as fossil fuels, solar power, wind power, or any other energy source, and the system 100 may operate as a generator in addition to or instead of functioning as a power storage solution.

[0016] In one embodiment, the flywheel 102 is formed from one or more flywheel sections 104a-b (collectively or collectively, flywheel sections 104, only a subset of which are numbered in FIG. 1A). The flywheel sections 104 are formed from one or more rotor disks 106a-c (collectively or collectively, rotor disks 106, only a subset of which are numbered in FIG. 1A). In various examples, the flywheel 102 may include any number of disks (and / or stator / rotor levels). For example, the flywheel sections 104 may be modularly configured such that additional or fewer flywheel sections 104 can be easily stacked on top of one another to increase or decrease the power capacity of the flywheel 102. The rotor disk 106 includes magnets located near the outer edge of the disk or distributed angularly about the axis of rotation or rotor axis of the rotor disk 106. In various embodiments, the magnets are located adjacent to but completely within the outer edge of the disk. In some embodiments, the magnets are positioned to overhang the outer edge of the disk such that at least a portion of each magnet extends beyond the outer edge.

[0017] As used herein, the term "adjacent" (and variations thereof) refers to a relationship between two components and indicates that the two components are positioned within each other such that the first component can be in physical contact (e.g., zero distance) at a maximum of one body length away from the second component. The body length of a component should be understood as the greater of the two values ​​of the components in the plane in which the components are determined to be adjacent to each other. For example, a first circular magnet with a diameter (e.g., body length) of 1 centimeter (cm) is considered adjacent to a second circular magnet in the same XY plane having a diameter of 2 cm when the first and second circular magnets are positioned within 0-2 cm of each other. In another example, a first magnet with a diameter of 1 cm and a height of 0.25 cm is considered adjacent to a third magnet in a different XY plane having a diameter of 1 cm and a height of 0.125 cm when the first magnet 910a is positioned between 0-0.25 cm from the third magnet.

[0018] In some examples, a stator disk containing a coil of wire is disposed between the rotor disks 106. As the flywheel 102 rotates, the rotor disks 106 rotate between the stator disks and magnets disposed thereon induce electrical currents in the coils of the stator disks that are output by the system 100. In some examples, the rotor disks 106 are substantially hollow in design to reduce the overall weight of the flywheel 102. In some examples, the rotor disks 106 are formed from a material having sufficient mass to increase the moment of inertia of the flywheel 102 during rotation of the rotor disks 106.

[0019] In one example, the flywheel sections 104a-b are joined together to form the flywheel 102. In this manner, the flywheel sections 104a-b allow for modular construction of the flywheel 102. Such modular construction allows for customizable design and / or assembly of a generator configured for a particular power output. For example, a larger flywheel can be built by combining additional flywheel sections 104a-n to create a longer / taller, larger flywheel that can output more power without redesigning the flywheel for the larger power output.

[0020] In certain cases, the current output by system 100 is processed by a power converter (not shown). For example, the power converter receives the current output by system 100 and converts the current into power having one or more desired characteristics (e.g., a desired voltage, a desired alternating current (AC) frequency, a desired phase, etc.). In one example, the power converter converts the power generated by system 100 into a signal having a voltage between 100 volts (V) and 120 V and a frequency of 60 Hertz (Hz). In another example, the power converter converts the output power from system 100 into a power signal having a voltage of 240 V and a frequency of 50 Hz.

[0021] The system 100 also includes a top plate 120 and a side plate 118. In one example, the top plate 120 may support the flywheel 102 during operation within the system 100. To facilitate this, in the illustrated example, the top plate 120 includes bearing mounting points 122 from which the flywheel 102 may be suspended during operation. The mounting points 122 may include magnetic bearings or any other type of bearing. The top plate 120 may also be configured to protect the system 100 and associated internal components such as the flywheel 102 and rotor disk 106. The side plate 118 may additionally or alternatively be positioned to protect the internal components of the system 100 enclosed by the side plate 118. For example, when fully assembled, the system 100 may include side panels on all four sides of the system 100 (e.g., left side, right side, front side, and rear side). As shown, the system 100 may omit one of the side plates 118 to allow visibility of the internal components, such as the flywheel 102.

[0022] 1B illustrates a side view of a system 100 according to an exemplary embodiment of the present disclosure. As can be seen from the side view, the flywheel 102 includes five flywheel sections 104a-e (collectively, sections 104). Each flywheel section 104 is comprised of four rotor disks 106a-d (collectively, rotor disks 106) and five stator disks 108a-e (collectively, stator disks 108). Each of the rotor disks 106 includes a permanent magnet positioned near an outer edge of the respective disk 106. Each of the stator disks 108 includes a coil of wire in which a current is induced by the magnet from the rotor disk 106 as the flywheel 102 rotates. The stator disks 108 are fixed to a housing of the system 100 and remain stationary even as the flywheel 102 rotates.

[0023] The flywheel section 104 is assembled by joining multiple rotor disks 106. In certain cases, stator disks 108 are positioned between the rotor disks 106 during assembly. For example, in certain implementations, while the rotor disks 106 are rotating, each of the rotor disks 106 is spaced apart from its respective stator disk 108 such that the distance between the magnets in the rotor disk 106 and the coils of wire in the adjacent stator disk 108 is within a predetermined magnetic gap distance. The predetermined magnetic gap distance may vary based on the size and strength of the magnets, the size of the coils, the desired amount of current (amperes) to induce in the coils, etc. In various examples, the magnetic gap distance is 0.5 inches or less, 0.25 inches or less, 0.1 inches or less, and / or 0.05 inches or less.

[0024] As used herein, the term "proximate" and variations thereof, when applied to several members of a plurality of members, refers to a member that is considered to be immediately before or immediately after the referenced member, regardless of whether the members are in physical contact. For example, in the vertical order, rotor disk 106b is proximate to rotor disk 106a and rotor disk 106c, but rotor disk 106a is not proximate to rotor disk 106c (and vice versa) because rotor disk 106b is positioned between rotor disks 106a and 106c.

[0025] The assembled flywheel sections 104 are joined together to form a complete flywheel 102 for use in the system 100. In certain implementations, each flywheel section 104 may be implemented as a separate assembly that can be added or removed independently from the flywheel 102. For example, the rotor disks 106 are joined together to form an assembly that can remain assembled when separated from the other flywheel sections 104. In additional or alternative implementations, all flywheel sections 104 are assembled and stacked together before being joined as a single flywheel 102. In one example, the individual rotor disks 106 of the flywheel 102 can be manufactured separately (e.g., via 3D printing) and then attached to form a tree of rotor disks 106. In another example, a multi-layer rotor assembly (e.g., including all rotor disks 106 in a flywheel section 104 or in the flywheel 102) may be manufactured as a single structure (e.g., via 3D printing).

[0026] FIG. 1C illustrates a cross-sectional view of an exemplary system 100 according to an embodiment of the present disclosure. As shown, a drive shaft 124 attached to a prime mover 114 is connected to multiple rotor disks incorporating multiple magnets 130. As the prime mover 114 rotates the drive shaft 124 about the Z axis, the connected rotor disks and magnets also rotate about the Z axis. The rotor disks move relative to the multiple stator disks and the multiple coils 140a-j (collectively, coils 140) incorporated therein, inducing current in each of the coils 140. In various embodiments, the coils 140 may be wired together in various configurations and controlled by various switches to selectively connect and disconnect to an electrical load, as described in further detail with respect to FIGS. 8A and 8B.

[0027] As shown in FIG. 1C, the stator is arranged in the system 100 such that each stator disk presents two coils 140 in the cross section shown. In contrast, the various rotor disks are arranged at various angular offsets relative to one another such that the various rotor disks present different portions of the magnets 130 (or different magnets 130) based on the differential rotation of the rotor disks. As will be explained in more detail with respect to FIGS. 9A-9F, the angular offsets result in sequential overlap of the magnets 130 onto the coils 140 as the flywheel rotates, such that the coils 140 defined at different levels of the assembly have currents induced therein at different times via the same rotation imparted to the stack of rotor disks and associated magnets 130. In various embodiments, the magnets 130 may be of various sizes and shapes with different compositions depending on the size of the rotor, the stator, the designed rotational speed, and the designed currents for inducing the coils 140. Similarly, coil 140 may be made with different diameters (e.g., based on number of turns), longitudinal lengths, wire gauges, etc., depending on the size of the rotor, stator, the designed rotational speed, and the designed current to induce in coil 140. These characteristics may be adjusted according to Faraday's Law to result in a current / voltage of the desired characteristics. For example, magnet 130 may have a magnetic strength of 1 kilogauss (kG) to 4 kG to induce a current in coil 140, which may be adjusted based on the rotational speed of the rotor, the number of loops in coil 140, the area of ​​coil 140 facing the magnetic field of magnet 130, etc., to generate a specified voltage or current power.

[0028] It should be understood that the flywheel 102 shown in Figures 1A-1C is merely exemplary and that additional or alternative flywheel designs, shapes, or arrangements may be used in other implementations. For example, a particular generator may use a flywheel 102 that includes more or fewer than the five flywheel sections 104a-e shown. For example, a generator designed to output more power may include more flywheel sections (e.g., six or more flywheel sections). As another example, a generator designed to output less power may include fewer flywheel sections (e.g., four or fewer flywheel sections). In yet other implementations, the number of rotor disks 106 included in each flywheel section 104 may be different.

[0029] A particular configuration of rotor disks 106 includes magnets arranged to provide a magnetic thrust force as the flywheel rotates. In such a case, the number of rotor disks 106 may be selected to increase or maximize the magnetic thrust force while balancing the number of magnets and coils of wire in the system 100. For example, a particular implementation may include five rotor disks 106 in some flywheel sections 104 and / or three rotor disks 106 in other flywheel sections 104, or other numbers of rotor disks. Additionally, the number of rotor disks 106 may vary for a particular flywheel section 104. For example, a first flywheel section 104a may include three rotor disks 106a-c, a second flywheel section 104b may include four rotor disks 106a-d, a third flywheel section 104c may include five rotor disks 106a-e, etc.

[0030] The number of stator disks in the flywheel section 104 may also vary in various implementations. In one example, a first rotor disk 106 may be magnetically coupled to a single stator disk 108 disposed within a magnetic gap threshold distance relative to the first rotor disk 106. In one example, a second rotor disk 106 may be magnetically coupled to two stator disks 108 disposed within a magnetic gap threshold distance on two opposite sides of the second rotor disk 106. Particular implementations may differ from the illustrated configuration. For example, a particular flywheel 102 may include the same number of rotor disks 106 and stator disks 108. As another example, a particular flywheel may include fewer (e.g., one less) stator disks 108 than rotor disks 106, or fewer (e.g., one less) rotor disks 106 than stator disks 108.

[0031] To reduce friction, in some examples, the flywheel 102 may be suspended from a single point at the top and / or bottom of the system 100. In the illustrated example, the flywheel 102 is suspended from bearing attachment points 122 (e.g., magnetic bearings) positioned on the top plate 120. In some examples, supporting the flywheel 102 in this manner may reduce the overall friction imparted to the flywheel 102 during rotation, thereby increasing the power output and efficiency of the system 100. In additional or alternative examples, the flywheel 102 may be supported at multiple points (e.g., supported by multiple bearings).

[0032] 2A-2C illustrate an example device 200 including a multi-layer rotor / stator assembly, according to an example embodiment. For example, device 200 may be used in or implemented as a generator, a flywheel (e.g., flywheel 102), a flywheel section (104), and / or another type of electric machine or power system (e.g., system 100). Note that some of the components of device 200 (e.g., supports 234, 238, magnets, etc.) have been omitted from the illustrations of FIGS. 2A and / or 2B for ease of illustration.

[0033] Device 200 includes a number of stator disks 210, 212, 214, 216, 218 arranged about axis 202 (e.g., axis of rotation, rotor axis, axis of symmetry, central axis, etc.). Each stator disk 210-218 includes disk attachment points or holes (exemplified by attachment points 230, 232) that are used to attach a support member or disk mounting bracket (exemplified by support 234) configured to hold or support stator disks 210-218 in the illustrated arrangement. For example, support 234 may be connected to stator disk 210 at attachment point 230 and to stator disk 212 at attachment point 232.

[0034] Device 200 may also include multiple rotor disks 220, 222, 224, 226, 228 arranged about a common axis (e.g., axis of rotation or symmetry 202). In one example, multiple rotor disks 220-228 are actuated simultaneously (e.g., by motor 114 of system 100) to rotate simultaneously about axis 202 as a multi-layer rotor. To facilitate this, in one example, rotor disks are mounted relative to one another using one or more supports or disk mounting brackets between adjacent rotor disks (disposed in a central region of device 200 along axis of rotation 202). For example, support 238 attaches rotor disk 228 to rotor disk 226 (e.g., by bolting the supports and rotor disks via attachment points 236), and so on.

[0035] In one embodiment, rotor disks 220-228 include grooves, exemplified by grooves or indentations 240, 242, 244, 246, 248, some of which may extend to the periphery of rotor disks 220-228, as shown in side view in FIG. 2B. Grooves 240-248, etc., represent locations where magnets (not shown) are located within rotor disks 220-228. In one example, magnets (not shown) located within rotor disk 228 at grooves 248 are axially aligned with their north poles facing upwards so as to face the proximal side of stator disk 218. In one example, the side of rotor disk 228 facing stator disk 218 is separated from the proximal side 218a of the adjacent stator disk 218 by a magnetic gap (also referred to as a magnetic gap threshold distance, etc.) of 0.50 inches, 0.25-0.50 inches, 0.10-0.25 inches, 0.05-0.10 inches, etc.

[0036] 3A-3B illustrate an exemplary implementation of rotor disk 220, according to an exemplary embodiment. Note that one or more components of rotor disk 220 (e.g., magnets 320-328) have been omitted from the view of FIG. 3A for ease of illustration. FIG. 3A is a perspective view of rotor disk 220, and FIG. 3B is a top view. In particular, the top view shown in FIG. 3B corresponds to the side of rotor disk 220 facing stator disk 210 in the arrangement of device 200 shown in FIGS. 2A-2B.

[0037] FIG. 2C illustrates an isometric view of an exemplary stator disk 250, according to an embodiment of the present disclosure. The stator disk 250 has an outer periphery and has several coil holders 260a-j (collectively, coil holders 260) projecting inwardly to a central opening (through which a drive shaft from a prime mover 114 connected to the various rotor disks may pass). Each coil holder 260a-j holds an associated coil (not shown in FIG. 2C, but see FIGS. 5A-7 for a more detailed description of the coils) in a fixed position relative to other coils at a given level of the system 100 and relative to other coils at other levels of the system 100. For example, a first coil holder 260a holds an associated first coil in a first position, a second coil holder 260b holds an associated second coil in a second position, and so on. As shown, the coil holders 260 (and associated coils) are evenly spaced in an angularly distributed fashion around the inner circumference of the stator disk 250, such that for N coils, each coil is positioned at an angular offset of 360 / N degrees from its neighbors. Although shown in FIG. 2C with ten coil holders 260a-j, in various embodiments fewer coil holders 260a-j and associated coils may be included on each stator disk 250.

[0038] The stator disks 250 are arranged in layers that may include vertical stacks, horizontal rows, and other orientations based on the alignment of the system 100. The stator disks 250 include various mounting hardware that connects to other stator disks 250 in the system 100 or to the casing of the system 100, which may be included at a first edge 252a or a second edge 252b perpendicular to the periphery 254. While the prime mover 114 rotates the rotor disk, these mounting hardware hold the stator disks 250 in place (e.g., do not rotate) to maintain the coil holder 260 in a generally fixed position in the level, but allow movement of the coils in a direction generally parallel to the axis of rotation. For example, in a vertically oriented stack of stator disks 250, the coils may move up / down or tilt downward / upward, but cannot move left / right or counterclockwise / clockwise (e.g., closer / further behind other coils on the same level).

[0039] In various embodiments, the layers of stator disks 250 are arranged such that each coil holder 260 is positioned completely overlapping a coil holder 260 on a stator disk 250 on an adjacent layer. In some embodiments, the layers of stator disks 250 are arranged such that each coil holder 260 is positioned with an angular offset to partially overlap or not overlap a coil holder 260 on a stator disk 250 on an adjacent layer. For example, if a first stator disk 250 is arranged to have a first coil holder 260a of ten coil holders 260a-j positioned with a zero degree rotational offset, a second coil holder 260b is positioned with a 36 degree rotational offset, a third coil holder 260c is positioned with a 72 degree rotational offset, and so on. In a fully overlapping embodiment, the first coil holder 260a of the second stator disk 250 (adjacent to the first stator disk 250 and the third stator disk 250) and the third stator disk 250 (adjacent to the second stator disk 250) will have an angular offset of zero degrees, the second coil holder 260b will have an angular offset of 36 degrees, the third coil holder 260c will have an angular offset of 72 degrees, etc. In the case of successive overlap (including partial or no overlap between levels), if an angular offset of 4 degrees is applied between subsequent levels, then in the second stator disk 250, the first coil holder 260a is positioned with a 4 degree rotational offset, the second coil holder 260b is positioned with a 40 degree rotational offset, the third coil holder 260c is positioned with a 76 degree rotational offset, etc., while in the third stator disk 250, the first coil holder 260a is positioned with an 8 degree rotational offset, the second coil holder 260b is positioned with a 44 degree rotational offset, the third coil holder 260c is positioned with an 80 degree rotational offset, etc. Various angular offsets may be applied to achieve a sequential overlap arrangement, and the relative positions of the magnets within the rotor disks may be changed, as will be described in more detail with respect to Figures 9A-9F.

[0040] 3A-3B, rotor disk 220 includes a number of shaft attachment points, exemplified by holes or attachment points 302, 304, which may be used to couple rotor disk 220 (e.g., via bolts, etc.) to a motor or other prime mover (e.g., motor 114) that actuates rotor disks 220-228. Rotor disk 220 also includes one or more disk bracket attachment points, exemplified by attachment points 306, 308, which are configured to attach rotor disk 220 (e.g., via bolts, screws, etc.) to an adjacent rotor disk (e.g., rotor disk 222) via a disk mounting bracket or support member, which may be similar to support 238 (shown in FIG. 2B) that attaches rotor disk 228 to rotor disk 226 via disk attachment point 236 (shown in FIG. 2A).

[0041] The rotor disk 220 also includes a number of magnet mounting grooves or recesses, exemplified by recesses 310, 312, 314, 316, 318. In one embodiment, the magnet mounting grooves or recesses 310, 312, 314, 316, 318, etc. are angularly distributed about the axis of rotation 202. The rotor disk 220 may also include a number of magnets, exemplified by magnets 320, 322, 324, 326, 328 disposed (or resting) in the number of recesses 310, 312, 314, 316, 318, etc. For example, as shown, the magnets 320, 322, 324, 326, 328 may be rested (or positioned) in the recesses 310, 312, 314, 316, and 318, respectively.

[0042] In one example, each recess is shaped to receive a magnet at the recess's respective angular and radial location. For example, as shown, the magnets (e.g., magnets 320-328, etc.) disposed on rotor disk 220 may be square magnets shaped to fit into respective grooves or recesses (e.g., recesses 310-328) of the rotor disk. For example, the shape of the surface (e.g., the surface facing stator disk 210) of magnet 320 may be square. In an alternative example, one or more of the recesses (e.g., recesses 310-318, etc.) and / or magnets (e.g., magnets 320-328, etc.) disposed on a rotor disk (e.g., any of rotor disks 220-228) may have a circular, rectangular, or any other shape.

[0043] In some examples, the recesses (e.g., 310-318) of rotor disk 220 and / or the magnets (e.g., 320-328, etc.) disposed therein are angularly distributed about axis of rotation 202 according to a particular distribution pattern. For example, a particular distribution pattern may correspond to a particular combination of angular and radial positions of the magnets (e.g., 320-328) about axis 202. In one example, neighboring magnets may be angularly separated by the same angular separation (e.g., 36 degrees, etc.). As an example, if a reference angular position of magnet 320 about axis 202 is selected to correspond to a zero degree angular position about axis 202, magnet 322 may be angularly disposed at a 36 degree angle, magnet 324 may be angularly disposed at a 72 degree angle, etc. In another example, neighboring magnets such as magnets 320-328 may not necessarily be separated by the same angular separation offset, but may have different angular separation offsets for each neighboring magnet. Thus, multiple magnets may be angularly distributed around axis of rotation 202 such that they are positioned at different angles from a starting radius (e.g., shown as 0 degrees) that is X degrees on an arc from a neighboring magnet. In the illustrated example, magnet 324 can be considered a magnet that is proximate magnet 326 and magnet 322, but not proximate magnet 328 or magnet 320, when evaluated in the order in which they are angularly distributed around axis of rotation 202.

[0044] In the illustrated example, magnets 320-328 etc. are positioned at the same radial distance from rotational axis 202. In another example, one or more magnets may be positioned to have a different radial position (i.e., distance from axis 202) than one or more other magnets.

[0045] It should be noted that one or more features of rotor disks 222-228 (shown in FIGS. 2A-2B) may be similar to corresponding features of rotor disk 220. For example, one or more of rotor disks 222-228 may include disk attachment points, magnet distribution patterns, etc. similar to those of rotor disk 220.

[0046] Alternatively or additionally, in some examples, one or more features of rotor disks 222, 224, 226, and / or 228 may differ from rotor disk 220. For example, as shown preferably in FIG. 2A, rotor disk 228 may not include a motor shaft attachment point (whereas rotor disk 220 includes motor attachment points 302-304). As another example, the angular positions of the magnet mounts and / or magnets (e.g., 320-328) in a given rotor disk may be offset from the corresponding angular positions of the recesses (e.g., 310-318, etc.) and / or magnets (e.g., 320-328, etc.) of rotor disk 220. For example, as shown in FIG. 2B, magnets disposed in recesses 240-248 may be offset or misaligned (either intentionally or due to manufacturing tolerances) relative to one another about axis 202. As an example, consider a scenario in which the angular position of recess 240 (and thus the magnets disposed therein) about axis 202 corresponds to a reference angular position of 0 degrees. In this scenario, each rotor disk of device 200 is mounted at a staggered angular offset of 5 degrees from the rotor disk below it. Thus, in this scenario, the angular positions of recesses 242, 246, 248 (and thus the magnets disposed therein) may correspond to 5 degrees, 10 degrees, and 15 degrees, respectively.

[0047] FIG. 3C illustrates an embodiment of a stack 330 of six rotor disks 340a-f (collectively, rotor disks 340) with an angular offset between magnets (not shown) included in adjacent rotor disks 340 in the stack 330. In some embodiments, the magnets are held in place via various cavities or recesses (e.g., 310, 312, 314, 316, 318 in FIGS. 3A and 3B) formed in the body of the rotor disks 340 shaped according to the shape of the magnets. In some embodiments, in addition to or in lieu of using magnet-shaped recesses, the magnets may be held in place by various adapters 350a-n (collectively, adapters 350). In various embodiments, the adapters 350 may include covers secured over the openings of the recesses that secure the magnets therein, as well as plastic encapsulation of the magnets to provide alternative sizes / shapes for insertion into the recesses. In various embodiments, the magnet and / or adapter 350 may be secured in the recess via adhesive (eg, epoxy), solder, brazing, welding, friction, interlocking tabs, or the like.

[0048] In the stack 330, each rotor disk 340 positions its associated magnets to have an angular distribution relative to the axis of rotation. When evenly distributed, each magnet is positioned 360 / N degrees from each of its neighboring magnets, where N is the number of magnets contained in a given rotor disk 340. In the example shown in FIG. 3C, which has 14 magnets (secured by 14 corresponding adapters 350a-n), each magnet is positioned approximately 25.7 degrees from its neighboring magnets.

[0049] Additionally, the illustrated stack 330 shows angular offsets applied for corresponding adapters 350 (and associated magnets) between adjacent rotor disks 340 in the stack 330 to position the magnets in a sequentially offset fashion (with respect to the coils) during operation. As the order in the stack increases (or decreases), the sequential offsets are applied such that the next in the stack 330 applies an angular offset equal to its position in the stack minus one. For example, using the illustrated stack 330 of six rotor disks 340 with an angular spread of approximately 25.7 degrees between adjacent magnets (and associated adapters 350) and an angular offset of approximately 5.14 degrees applied to adjacent rotor disks 340 in the stack 330, the first rotor disk 340a applies an angular offset of 0 degrees (e.g., [1-1]*5.14 degrees), the second rotor disk 340b applies an angular offset of 5.14 degrees (e.g., [2-1]*5.14 degrees), and the third rotor disk 340c applies an angular offset of 10.28 degrees. The sixth rotor disk 340f then applies an angular offset of 25.7 degrees (e.g., [3-1]*5.14 degrees), and the sixth rotor disk 340f then applies an angular offset of 25.7 degrees (e.g., [6-1]*5.14 degrees), and so on, thereby aligning the second adapter 350b of the sixth rotor disk 340f to fully overlap the first adapter 350a of the first rotor disk 340a (the third adapter 350c of the sixth rotor disk 340f to fully overlap the second adapter 350b of the first rotor disk 340a, etc.), and restarting the pattern.

[0050] In various embodiments, the number of rotor disks included in the system may vary as well as the number of stators. In some embodiments, the number of stators may be equal to the number of rotor disks, one more than the number of rotor disks, or one less than the number of rotor disks. Additionally, in different embodiments, the number of coils carried by the stator may vary as well as the number of magnets, and in various embodiments, the relative number of coils to magnets may be equal, have many magnets, or have many coils. For example, in addition to the numbers and associated offsets shown in the illustrated figures, the system 100 may include 2-10 stator disks in each stack, which may include an angular offset between stators or rotors of 0-15 degrees, with spacing of 0.01 inches to 2 inches between adjacent stators / rotors.

[0051] 4A-4C show perspective, top, and bottom views, respectively, of an exemplary embodiment of a stator disk (e.g., stator disk 210) in accordance with an exemplary embodiment of the present disclosure. For example, the top view of FIG. 4B shows a distal side 210b of stator disk 210 aligned with the page, and the bottom view of stator disk 210 shows a proximal side 210a of stator disk 210 aligned with the page. For ease of illustration, axis 202 (extending through the page) is shown in solid line in the center of FIGS. 4B-4C.

[0052] Stator disk 210 may include one or more coils of wire, exemplified by coils 400-408, carried on and / or supported by stator disk 210 in a particular arrangement about axis 202. In an example, one or more of the coils (e.g., 400-408) carried on stator disk 210 may be positioned to sequentially overlap a number of magnets of the rotor disk (e.g., magnets 320-328 of rotor disk 220) in response to rotation of the rotor disk about axis 202. For example, coils 400-408 may be positioned at the same or a similar radial distance relative to axis 202 as magnets 320-328 of rotor disk 220 (shown in FIG. 3B ).

[0053] In an example, the coils mounted on the stator disk 210 may be arranged to extend axially away from the rotor disk (e.g., 220). For example, the coils 400-408 may be wound about respective coil axes (e.g., each coil axis may extend through the center of the respective coil in a direction perpendicular to the page of the diagrams of FIGS. 4B-4C). Thus, the coils 400-408, etc. of the stator disk 210 may each have a proximal end (as shown in FIG. 4C) that faces the rotor disk and a distal end opposite the proximal end. For example, one end of the coil 400 shown in FIG. 4B is the distal end of the coil 400, and the other end of the coil 400 shown in FIG. 4C is the proximal end of the coil 400.

[0054] Further, stator disk 210 may mount the coils (e.g., 400-408, etc.) such that the proximal end of each of the coils (shown in FIG. 4C ) facing the rotor disk (e.g., rotor disk 220) is positioned at a given distance (e.g., a magnetic gap) relative to the rotor disk and / or is within a threshold distance (e.g., a magnetic gap threshold).

[0055] In some examples, the stator disk 210 is configured to define a variable magnetic gap between the coils (e.g., 400-408) and the rotor disk (e.g., 220). For example, the stator disk 210 may be formed from a flexibly bendable material (e.g., plastic, etc.), or may flexibly mount the coils, or may itself be flexibly mounted (e.g., to a frame of the system 100, etc.) to allow for distance variation between the coils and the rotor disk. More generally, the stator disk 210 may be configured to flexibly mount the coils (e.g., 400-408), such that the coils may move (e.g., due to vibration of the device 200 or system 100 and / or due to magnetic interaction between the coils and one or more rotor disk magnets, etc.), for example, during rotation of the rotor disk about the axis 202.

[0056] Stator disk 210 may also include one or more magnetic cores (e.g., ferromagnetic cores, etc.) disposed in one or more respective coils, such as 400-408. For example, in the illustrated example, stator disk 210 may include magnetic core 410 disposed in coil 400, magnetic core 412 disposed in coil 402, etc.

[0057] The stator disk 210 may also include one or more walls disposed adjacent to the coil. For example, as shown, the walls 420 and 422 are disposed adjacent to the coil 406. The walls 420-422, etc. may be formed of a magnetic material, such as a ferromagnetic material or other magnetic material (e.g., a material having a magnetic permeability greater than 1). In some examples, the magnetic core in the coil 406 may be made of the same material (and / or have the same magnetic permeability) as the walls 420-422. In other examples, the core and the walls are formed of different materials (and / or have different magnetic permeability values). In one example, the walls 420-422 are disposed in contact with the coil 406. In alternative examples, one or more of the walls 420-422 may be separated from the coil 406 by a given distance (e.g., a small separation distance, etc.).

[0058] In some examples, one or more coils may be different from one or more other coils in stator disk 210. For example, coils 400 and 402 may have a different number of turns, different coil materials, different coil lengths, different coil sizes, different wire thicknesses, different core sizes, and / or different core materials, among other coil characteristics.

[0059] 5A-5C illustrate an exemplary stator 500 according to an exemplary embodiment. FIG. 5A is a perspective side view of the stator 500, FIG. 5B is a bottom view of the stator 500, and FIG. 5C is a see-through view of the stator 500. In some examples, the stator 500 (or one or more components thereof) may be used in place of or in addition to one or more components of a stator disk, such as any of the stator disks 210-218. The stator 500 has a proximal side 500a, which may be disposed adjacent to a rotor disk (e.g., rotor disks 220-228) similar to the proximal side 210a of the stator disk 210. In this regard, the top view of the stator 500 illustrated in FIG. 5B may be similar to the bottom view of the stator disk 210 illustrated in FIG. 4B. In particular, FIG. 5B illustrates a view of the proximal side 500a of the stator 500. In the depicted example, stator 500 includes coil 502, magnetic core 510, and walls 520-522, which may be similar to any of coils 400-408, any of cores 410-412, and walls 420-422, respectively, of stator disk 210. Stator 500 may also include one or more attachment points, exemplified by attachment point 530, which may be used to mount or position stator 500 a given distance (e.g., within a magnetic gap) from a rotor disk (e.g., rotor disks 220-228), similar to, for example, attachment point 430 described for stator disk 210.

[0060] Stator 500 may also include two stator magnets 540, 542 (e.g., permanent magnets) disposed near (and / or adjacent) walls 520, 522 (as well as coil 502 and core 510). In one example, stator magnets 540, 542 may be magnetized such that the polarity of stator magnets 540, 542 proximately facing a rotor disk (e.g., a rotor disk coupled to stator 500) is the same as the respective polarity of the magnets on the side of the rotor disk facing stator 500. For example, referring again to FIG. 3B, if stator 500 is used in conjunction with rotor disk 220 (e.g., instead of or in addition to stator disk 210) and further, the side of magnets 320-328 shown in FIG. 3B corresponds to the north pole of magnets 320-328, the proximal ends of magnets 540-542 shown in FIG. 5B also have north poles facing the north pole of rotor disk 220. This arrangement, for example, allows the magnetic flux density received by the coil 502 (and / or core 510) from the rotor disk 220 as the rotor disk 220 rotates about the axis 202 to be optimized (or increased) due to magnetic interaction between the stator magnets 540-542 of the stator 500 (adjacent to the coil 502) and the magnets 320-328 on the rotor disk.

[0061] 5C illustrates in a see-through view the components of a stator 500 as may be used in one coil holder 260 disposed around the inner circumference of a stator disk 250 with one or more other coil holders 260 (e.g., as in FIG. 2C). A mounting interface 550 (including one or more mounting points 530 connecting the coil holder 260 to the stator disk 250 or other structural element) holds the coil 502 in place and provides a wiring interface 560 for electrically connecting the coil 502 to one or more other coils 502 (e.g., at the same or different levels of the system 100) and to an electrical load (e.g., via one or more switches or buses). In various embodiments, the coil 502 may be wound around an air gap or may include a solid core extending longitudinally (completely or partially along its length) within the coil 502.

[0062] 6A-6C show perspective, top, and front views, respectively, of another exemplary stator 600, according to an exemplary embodiment. In some examples, the stator 600 (or one or more components thereof) may be used in place of or in addition to one or more components of a stator disk, such as any of the stator disks 210-218. In the illustrated example, the stator 600 includes multiple coils 602, 604, 606, which may be similar to any of the coils 400-408 and / or 502. The coils 602-606 are positioned to extend axially away from a rotor disk (e.g., similar to the rotor disks 220-228). To that end, the coils 602-606 each have a proximal end facing the rotor disk and may be separated from the stator disk by a magnetic gap (e.g., 0.5 inches, 0.1 inches, etc.) defined by the stator 600. In some examples, the magnetic gap may be a variable magnetic gap. For example, the coils 602-606 may be flexibly mounted such that the coils may oscillate or move within a threshold range of distances to the rotor disk (e.g., a variable magnetic gap) while the rotor disk spins or rotates about an axis (e.g., axis 202). This arrangement may provide increased power generation efficiency, for example, by allowing the movement of the coils to further change the magnetic flux within the coils upon rotation of a rotor disk that is magnetically coupled to the coils.

[0063] Additionally, stator 600 may include one or more coils (e.g., coils 602, 604, 606) disposed on both sides of a rotor disk, and may exhibit an alternating arrangement on either side of the rotor disk that the coils face. As shown, coil 602 faces a first side of the rotor disk, coil 606 faces a second side of the rotor disk (opposite the first side), and coil 604 faces the first side of the rotor disk. Each of coils 602 and 604 is positioned to face coil 606 (and vice versa). Thus, in this arrangement, stator 600 may be used to generate currents induced by magnetic fields from both sides of the rotor disk.

[0064] 7 illustrates an example rotor-stator assembly 700, according to an example embodiment. Assembly 700 may be similar to and / or used in conjunction with, for example, system 100, device 200, an electric machine, a flywheel system, a generator, and / or any other type of power system. For illustrative purposes, assembly 700 illustrates one embodiment of a device (e.g., a flywheel, a generator, a power system, etc.) that uses stator 600 (e.g., instead of or in addition to stator disk 210) to generate electricity based on the magnetic field of an arrangement of magnets (e.g., 320-328) rotated by rotor disk 220.

[0065] In the example of FIG. 7, stator 600 is positioned such that a top side of rotor disk 220 (e.g., the side shown in FIG. 3B) faces one or more coils 602-604 of stator 600, while a bottom side (opposite side) of the rotor disk faces one or more other coils of stator 600 (e.g., coil 606).

[0066] In some examples, the magnets (e.g., 320-328, etc.) of rotor disk 220 may be magnetically aligned in the same direction (e.g., north poles pointing in the same direction or south poles pointing in the same direction). By way of example, referring back to FIG. 3B, the magnetic poles of all magnets 320-328, etc. may be aligned to point out of the page (and vertically). In this example, the proximal ends of coils 602-604 (i.e., the ends of coils 602-604 facing the top side of the rotor disk in the view of FIG. 7) may sequentially face and overlap the north poles of the magnets as rotor disk 220 rotates about axis 202. Meanwhile, in this example, the proximal end of coil 606 (i.e., the end of coil 606 facing the bottom side of the rotor disk in the view of FIG. 7) may instead face (sequentially) the south poles of the magnets during rotation of rotor disk 220.

[0067] 8A and 8B illustrate example systems 800a-b (collectively, systems 800) for selectively providing electrical power, according to example embodiments. As shown, system 800 includes coils 802-812, a switch module 850, a controller 860, a load bus 870, a load 872, and converters 882-886. It should be noted that system 800 may additionally or alternatively include more or less components than those shown. More generally, FIGS. 8A and 8B may represent a schematic diagram of a circuit or other power system 800 for providing electrical power to a load 872 by selectively connecting the load 872 to one or more coils of a flywheel (and / or other type of power generation system), such as system 100, device 200, and / or rotor stator assembly 700. To that end, coils 802-812 may be similar to (and / or correspond to) any of coils 402, 404, 406, 408, 502, 602, 604, and / or 606.

[0068] In some examples, system 800 may include two or more coils (e.g., 802-806) electrically connected in series to provide a combined power output (e.g., power line 822). In one example, coils 802-806 may be arranged similarly to coils 602-606 of FIGS. 6A-6C, such that one or more of coils 802-806 face a first side of a rotor disk (e.g., similar to coils 602-604) and one or more other coils of coils 802-806 face a second (opposite) side of the same rotor disk (e.g., similar to coil 606). In another example, all of coils 802-806 may instead face the same side of a single rotor disk. In another example, coils 802-806 may include a combination of coils facing two or more different rotor disks. For example, referring again to FIGURE 2B, coils 802-806 may include coils from two or more of stator disks 210-218 electrically connected in series to provide a composite power line 822. Note that FIGURES 8A and 8B show a single set of three coils (e.g., 802-806) connected in series by way of example only. In some examples, system 800 may alternatively or additionally include fewer or more coils electrically connected in series and / or may include more or fewer sets of coils electrically connected in series.

[0069] Additionally or alternatively, in some examples, system 800 may include a single coil (e.g., coil 808) or multiple coils electrically wired to provide a power output (e.g., power line 824). Additionally or alternatively, in some examples, system 800 may include two or more coils (e.g., 810-812) electrically connected in parallel to provide a combined power output (e.g., power line 826). Similar to coils 802-806, coils 810-812 may include coils arranged in various ways (e.g., facing the same side of one rotor disk, facing two sides of one rotor disk, facing different rotor disks, etc.) and may alternatively or additionally include three or more coils electrically connected in parallel. Other combinations and / or circuit topologies for the electrically connected coils are also possible.

[0070] The switch module 850 may include any type of electrical signal switching device (e.g., load contactors, relays, etc.) suitable for selectively connecting one or more of the power lines 822-826 to the load bus 870. In one example, the switch module 850 may include a number of switches 852, 854, 856 connected at inputs to the power lines 822, 824, and 826, respectively. In this example, each of the switches 852-856 may be separately controlled to selectively connect a respective power line 822-826 received at its input to the load bus 870.

[0071] The controller 860 may include any combination of hardware and / or analog circuitry wired to perform the functions of the controller 860 described herein. Alternatively or additionally, the controller 860 may include one or more processors 862 and memory 864. The processor 862 represents any processing unit capable of performing or implementing the operations and procedures described herein and may include a central processing unit (CPU), a graphical processing unit (GPU), a single processor, multiple processors, a processor with multiple cores, a programmable logic array (PLA), a field programmable gate array (FPGA), an application specific integrated circuit (ASIC), a system on a chip (SoC), a microcontroller, etc. The memory 864 may include volatile, non-volatile, and / or any other type of memory device (e.g., RAM, ROM, disk storage, other data storage devices) that store program instructions that, when executed by the processor 862, cause the controller 860 to perform the functions and operations described herein.

[0072] Regardless of the implementation of the controller 860, the controller 860 is generally configured to provide control signals to control the switch module 850. In particular, the controller 860 may be configured to select which power lines 822-826 should be connected to the load bus 870 and to generate control signals that cause the switch module 850 to connect or disconnect the power lines 822-826 to the load bus 870 accordingly.

[0073] In one example, the controller 860 is configured to select one or more of the power lines 822-826 (and / or coils connected thereto) based on a measurement of a load level at the load bus. For example, if the load bus is connected to a load 872 associated with a certain amount of power and / or other power signal characteristics, the controller 860 may select one or more of the power lines 822-826 that it determines are suitable for optimal and / or efficient power delivery to the load 872.

[0074] In one example, the controller 860 is configured to select one or more of the power lines 822-826 (and / or coils connected thereto) based on expected characteristics of the load 872 connected to the load bus 870. For example, the controller 860 may employ machine learning algorithms or other types of calculations to predict expected characteristics of the load 872 and then select an appropriate combination of one or more power lines 822-826 accordingly.

[0075] In one example, the controller 860 is configured to select one or more of the power lines 822-826 (and / or the coils connected thereto) based on predetermined characteristics of the coils 802-812. For example, information regarding the characteristics of the coils connected to each power line 822-826 (e.g., series / parallel connection, number of coil turns, power generation capacity, etc.) can be used by the controller 860 as a basis for determining which of the one or more of the power lines 822-826 should be selected for optimal and / or efficient power delivery to a load (e.g., load 872) connected to the load bus 870.

[0076] In one example, the controller 860 is configured to select one or more of the power lines 822-826 (and / or coils connected thereto) based on the time of day. For example, the controller 860 may determine that peak power demand occurs periodically during certain times of the day (e.g., at night, during the day, etc.) and vice versa. The controller 860 may then control the switch module 850 to connect relatively high generator capacity (e.g., many of the power lines 852-856) to the load bus 870 during or before the anticipated peak power demand period. Alternatively or additionally, the controller 860 may control the switch module 850 to connect relatively small generator capacity (and / or disconnect excess capacity currently connected) to the load bus 870 during or in anticipation of low power demand periods.

[0077] Load bus 870 may represent any type of power transmission medium (e.g., power lines, a power grid, etc.) suitable for transmitting power generated by system 800 to one or more loads (e.g., load 872) connected to load bus 870.

[0078] Converters 882-886 may include any type of AC / DC converter configured to convert the AC current output of coils 802-812 to a direct current (DC) current that is input to load bus 870. In the illustrated example, each power line 822-826 is connected to a separate converter disposed between the power line and load bus 870. For example, as shown, converter 882 converts the AC current output from power line 822 (e.g., combination of coils 802-806) to a DC current that is input to load bus 870, and so on. In alternative examples, different numbers of converters 882-886 and / or converter locations are possible. In one example, a single converter is disposed between switch module 850 and load bus 870 to convert any or all of power lines 822, 824, and / or 826, and is connected to load bus 870 via switch module 850 instead of or in addition to converters 882-886.

[0079] 9A-9F provide conceptual diagrams of the interactions between elements of the system 100 described herein. Figures 9A-9D show several views of an example system 100 with various elements omitted in the drawings to illustrate the interactions between the coils and one or more magnets in a sequentially overlapping arrangement according to an embodiment of the present disclosure. Figures 9E and 9F show several views of the interactions between a given coil and magnet over time (e.g., during rotation of the rotor disk about the axis of rotation 202) detailing the cases when the magnets and coils are considered to overlap each other with respect to the magnetic gap distance according to an embodiment of the present disclosure.

[0080] 9A and 9B show ZX plan views of three rotor disks 220, 222, 224 arranged in a stacked manner on a shared axis of rotation 202 parallel to the Z axis, according to an embodiment of the present disclosure. Each rotor disk 220, 222, 224 is shown with four magnets 910a-d (collectively, magnets 910) angularly distributed around the axis of rotation 202, which can also be seen in FIGS. 9C and 9D, which show each of the rotor disks 220, 222, 224 in corresponding XY plan views taken at different positions on the Z axis, where each position in the Z axis may be referred to as a "level" or "layer." In some views, the third magnet 910c may be hidden.

[0081] As used herein, the term "angularly distributed" (and variations thereof) refers to an arrangement of multiple components such that each individual component is located at a predetermined distance from a reference point with uniform arc angles between neighboring components. For example, as shown in Figures 9A-9C, each rotor disk 220, 222, 224 includes four magnets 910a-d that are angularly distributed around the respective rotor disk 220, 222, 224 relative to the center of that disk (e.g., its axis of rotation). In an embodiment including N magnets 910 on a given rotor disk, each magnet 910 is angularly distributed to have an arc of 360 / N degrees between its neighboring magnets. Since there are four magnets 910 in this example, each is located at an arc of 90 degrees (e.g., 360 / 4=90) from neighboring magnets 910.

[0082] The magnets 910a-d on each rotor disk 220, 222, 224 are positioned relative to each associated stator 920, 922, 924 and associated coils 930a-c to sequentially overlap each magnet 910 of the plurality of magnets 910a-d with the associated coils 930a-c. In this example, each of the illustrated coils 930a-c are electrically connected in series with one another, such that a current induced in a first coil 930a via rotation of the first rotor disk 220 flows to a second coil 930b having an additional current induced therein via rotation of the second rotor disk 222, flows to a third coil 930c having an additional current induced therein via rotation of the third rotor disk 224, and so on. In other embodiments, two or more coils 930 on the same level may be connected in parallel with one another, and a level may include zero, one, two or more coils included in a set of coils 930 electrically connected across different levels.

[0083] As used herein, the term "sequentially overlapping" (and variations thereof) describes the arrangement of elements in a generally spiral pattern such that adjacent elements in a first level are arranged with an angular offset relative to corresponding adjacent elements in a second level. In the illustrated example, a corresponding magnet 910x (a particular one of 910a-d in each of the XY planes of levels Z1, Z2 and Z3) in each of rotor disks 220, 222, 224 is arranged to sequentially overlap a corresponding coil 930 in the series of coils 930a-c in system 100.

[0084] 9A and 9C, sequential overlap may be achieved by positioning the coils 930a-c at static XY positions at different levels of the XY plane, but providing the rotor disks 220, 222, 224 with angular offsets relative to one another. The angular offset is achieved by positioning the first magnet 910a (and all other magnets 910b-d facing their corresponding counterparts) in the first rotor disk 220 such that it does not completely overlap the first magnet 910a in the second rotor disk 222, and positioning the first magnet 910a in the second rotor disk 222 such that it does not completely overlap the first magnet 910a in the third rotor disk 224. Thus, when the rotor disks 220, 222, 224 rotate with the same angular velocity as one another during operation, the first magnet 910a of each of the rotor disks 220, 222, 224 sequentially overlaps the corresponding coils 930a-c of the set of coils 930.

[0085] As shown in Figures 9B and 9D, sequential overlap may be achieved by positioning coils 930a-c with different angular offsets relative to the axis of rotation 202 in each of the different XY planes and not providing any angular offset to the rotor disks 220, 222, 224 relative to each other. In some embodiments, the angular offset of the coils 930a-c is achieved by changing the physical location of the various stators 920, 922, 924 in the XY plane. In some embodiments, the way in which the coils 930a-c are wired between levels may affect the angular offset between the multiple coils 930, even if another coil (not part of a multiple) occupies the same XY coordinate at a different level. For example, Figure 9D shows uncoupled coils 940a-b (carried by stators 926, 928) that are not coupled in series with the coils 930a-c, but may be part of a different series of coils connected via different switches. Unlinked coils 940a-b may share XY coordinates with coils in the Z1, Z2, and Z3 planes, including members of linked coils 930a-c (e.g., third coil 930c in XY plane Z3). Similarly, each of coils 930a-c may have a corresponding counterpart with which it shares XY coordinates at a different level having a different Z coordinate. However, because these coils are not electrically connected between levels, even though rotor disks 220, 222, 224 rotate at the same angular velocity as each other during operation, the current induced by each magnet 910x at the corresponding level is generated at slightly different times, such that the first magnet 910a of each of rotor disks 220, 222, 224 sequentially overlaps with the corresponding coil 930a-c in the set of coils 930.

[0086] Although shown in Figures 9A-9D with three rotor disks 220, 222, 224, this sequential overlap continues circumferentially and may be repeated when an angular offset applied (to one or more of the position of the magnets 910 on a given level relative to another level, the position of the coils 930 on a given level relative to another level, or the routing of the coils 930 between levels) results in overlap with similar components on another level.

[0087] 9E and 9F show timing diagrams of the interaction between magnet 910 and coil 930 in isometric and plan views in the XY plane, respectively, according to an embodiment of the present disclosure. The magnet 910 is shown rotating about the Z axis in a path that places the magnet 910 in various positions relative to the coil 930. At time t -3 From time t +3 9 shows a path from time t0 to t0, where the magnet 910 is aligned concentrically (along the Z-axis) with the coil 930. In this example, the cross-sectional area of ​​the coil 930 is larger than that of the magnet 910, so the coil 930 is considered to be completely overlapping the magnet 910 at time t0, but after time t -2 , time t -1 , time t +1 , time t +2 At time t -3 and time t +3 In this embodiment, the coil 930 does not overlap the magnet 910 .

[0088] As used herein, the term "overlap" (and variations thereof) refers to a relationship between two components that are in different planes, but are located in different planes with respect to each other, such that the two components are considered to overlap when the first component occupies a set of plane coordinates (e.g., XY coordinates) that at least a portion of the second component also occupies. The first component is set to be fully overlapped by the second component when all portions of the first component occupy plane coordinates that are also occupied by the second component. The first component is set to be partially overlapped by the second component when some, but not all, portions of the first component occupy plane coordinates that are also occupied by the second component. For example, at time t0 in FIG. 4E, the coil 930 is fully overlapped by the magnet 910, but the coil 930 is partially overlapped by the magnet 910. Unless otherwise noted, overlap is determined according to a perspective of rotation of the system 100, such that the planes used to evaluate whether the various components overlap each other are all perpendicular to the axis of rotation 202 of the system 100.

[0089] The coil 930 and magnet 910 are positioned such that when they overlap, they are separated by a magnetic gap distance 950. As used herein, magnetic gap distance 950 (and variations thereof) refers to the distance between the overlapping portions of the magnet 910 and the coil 930 measured in a direction in which the coil 930 extends axially relative to the rotor (e.g., on the Z-axis in the illustrated example) and parallel to the axis of rotation 202. In various embodiments, the size of the magnetic gap distance 950 may vary based on the magnetic strength of the magnet 910 used, the size of the magnet 910 used, the desired strength of the current that the magnet 910 is designed to induce in the coil 930, the speed of rotation about the axis of rotation 202, the magnetic permeability of any intervening materials between the magnet 910 and the coil 930, etc.

[0090] Aspects of the subject matter described herein may be useful alone or in combination with one or more other aspects described herein and may be understood with reference to the following numbered clauses:

[0091] Clause 1: A device comprising: a rotor disk configured to rotate about an axis of rotation; a plurality of magnets disposed within the rotor disk, the plurality of magnets being angularly distributed about the axis of rotation and magnetically aligned such that a respective north pole of each magnet of the plurality of magnets faces the same direction; and a coil disposed adjacent to the rotor disk, the coil extending axially away from the rotor disk, the coil positioned such that the coil sequentially overlaps each magnet of the plurality of magnets in response to rotation of the rotor disk about the axis of rotation.

[0092] Clause 2: The device of any of clauses 1 and 3 to 13, further comprising a magnetic core disposed inside the coil.

[0093] Clause 3: A device described in any of clauses 1 to 2 and clauses 4 to 13, further comprising a wall disposed adjacent to the outside of the coil, the wall being formed from a magnetic material, and the wall and the magnetic core having the same magnetic permeability.

[0094] Clause 4: A device described in any of clauses 1 to 3 and clauses 5 to 13, further comprising a stator magnet, the stator magnet being arranged adjacent to the coil and extending from a proximal end facing the rotor disk to a distal end of the stator magnet opposite the proximal end of the stator magnet, and a first magnetic pole of the stator magnet being at the proximal end of the stator magnet facing the rotor disk.

[0095] Clause 5: A device described in any of clauses 1 to 4 and clauses 6 to 13, wherein the stator magnet is aligned so that the first magnetic pole has the same polarity as each of the multiple magnets facing the coil during rotation of the rotor disk about the rotation axis.

[0096] Clause 6: A device described in any of clauses 1 to 5 and clauses 7 to 13, wherein the stator magnet has a rounded shape at a proximal end of the stator magnet facing the rotor disc.

[0097] Clause 7: A device described in any of clauses 1 to 6 and clauses 8 to 13, further comprising a stator positioned adjacent to the rotor disk, the stator shaped to receive and support the coil, and positioned to define a magnetic gap distance between the coil and the rotor disk while the rotor disk rotates about the axis of rotation.

[0098] Clause 8: A device described in any of clauses 1 to 7 and clauses 9 to 13, wherein the stator is a stator disc extending around an axis of rotation.

[0099] Clause 9: A device described in any of clauses 1 to 8 and clauses 10 to 13, wherein the stator flexibly mounts the coil relative to the rotor disk to vary the magnetic gap distance in response to movement of the coil during rotation of the rotor disk about the axis of rotation.

[0100] Clause 10: A device described in any of clauses 1 to 9 and clauses 11 to 13, further comprising a plurality of coils, the plurality of coils being arranged adjacent to the rotor disk, each respective coil of the plurality of coils extending axially away from the rotor disk from a respective proximal end of the respective coil facing the rotor disk to a respective distal end of the respective coil opposite the respective proximal end, and each coil of the plurality of coils being arranged to sequentially overlap a respective magnet of the plurality of magnets in response to rotation of the rotor disk about the axis of rotation.

[0101] Clause 11: A device as described in any of clauses 1 to 10 and clauses 12 to 13, wherein the coil is a first coil of a plurality of coils, the first coil being positioned adjacent to a first side of the rotor disk, and a second coil of the plurality of coils being positioned adjacent to a second side of the rotor disk opposite the first side.

[0102] Clause 12: A device described in any of clauses 1 to 11 and clause 13, wherein the first coil is electrically connected in series with the second coil.

[0103] Clause 13: A device described in any of clauses 1 to 12, wherein the coil is electrically connected in parallel with another coil of the plurality of coils.

[0104] Clause 14: A system comprising: one or more rotor disks configured to rotate about an axis of rotation, each of the one or more rotor disks including a respective plurality of magnets angularly distributed about the axis of rotation; a plurality of coils, each respective coil of the plurality of coils positioned when overlapping a magnet of the plurality of magnets on a respective rotor disk of the one or more rotor disks within a magnetic gap threshold of the one magnet, each respective coil extending axially from a proximal end of the respective coil facing the respective disk to a distal end of the respective coil opposite the proximal end; a load bus configured to transmit power; a plurality of switches, each of the plurality of switches having a respective switch output electrically connected to the load bus; and a controller coupled to the plurality of switches and configured to selectively connect at least one of the plurality of coils to the load bus by operating the plurality of switches.

[0105] Clause 15: A system described in any of clauses 14 and 16, wherein the controller is configured to select at least one of the plurality of coils based on one or more of a measured load level on the load bus, expected characteristics of a load connected to the load bus, predetermined characteristics of the plurality of coils, and time of day.

[0106] Clause 16: A system described in any of clauses 14 to 15, further comprising a converter disposed between the load bus and at least one of the plurality of switches to convert an alternating current (AC) current output from at least one of the plurality of coils into a direct current (DC) current input to the load bus.

[0107] Clause 17: A system comprising: a first rotor disk including a first plurality of magnets distributed at an angle with respect to the axis of rotation; and a second rotor disk including a second plurality of magnets distributed at an angle with respect to the axis of rotation; and a first coil positioned to be within a magnetic gap distance of each magnet of the first plurality of magnets; and a second coil positioned to be within a magnetic gap distance of each magnet of the second plurality of magnets, wherein the first rotor disk and the first coil are positioned relative to the second rotor disk and the second coil such that the first coil sequentially overlaps the first plurality of magnets and the second coil sequentially overlaps the second plurality of magnets while rotating the first rotor disk and the second rotor disk at a shared rotational speed about the axis of rotation.

[0108] Clause 18: A system described in any of clauses 17, 19 and 20, wherein each magnet of the first plurality of magnets is positioned with a non-zero angular offset relative to a corresponding magnet from the second plurality of magnets, and the first coil completely overlaps the second coil.

[0109] Clause 19: A system described in any of Clauses 17, 18 and 20, wherein each magnet of the first plurality of magnets is positioned to completely overlap a corresponding magnet from the second plurality of magnets, and the first coil is positioned with a non-zero angular offset relative to the second coil.

[0110] Clause 20: A system as described in any of clauses 17 to 19, further comprising a third coil positioned so as to completely overlap the first coil and be within a magnetic gap distance of each magnet of the second plurality of magnets, the first coil being wired in series with the second coil and connected to the load bus via a first switch different from the second switch connecting the third coil to the load bus.

[0111] It should be understood that various changes and modifications to the examples described herein will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present subject matter and without diminishing its intended advantages. Accordingly, such changes and modifications are intended to be covered by the appended claims.

Claims

1. A rotor disk (220) configured to rotate around a rotating shaft (202), A plurality of magnets (910) are arranged on the rotor disk and dispersed at an angle around the rotation axis, wherein the plurality of magnets (910) are magnetically aligned such that the north poles of each of the plurality of magnets face the same direction, A coil (930) positioned adjacent to the rotor disk, which extends axially away from the rotor disk and is positioned to sequentially overlap each of the plurality of magnets in response to the rotation of the rotor disk around the rotation axis, It is equipped with, A device in which the coil is positioned such that, at any given time, it overlaps with one of the plurality of magnets in the rotor disk within the magnetic gap threshold of that single magnet.

2. One or more rotor disks (220) configured to rotate around a rotation axis (202), each of the one or more rotor disks including a plurality of magnets (910) distributed at an angle around the rotation axis, Multiple coils (930), Each of the plurality of coils is arranged such that, at any given time, it overlaps with a single magnet among the plurality of magnets on each of the one or more rotor disks within the magnetic gap threshold of that single magnet. Each of the aforementioned coils comprises a plurality of coils (930) that extend axially in a direction parallel to the rotation axis, from the proximal end of the coil facing the respective rotor disk to the distal end of the coil opposite to the proximal end, A load bus (870) configured to transmit power, A plurality of switches (852), each of which has a switch output electrically connected to the load bus, A controller (860) is coupled to the plurality of switches and configured to selectively connect at least one of the plurality of coils to the load bus by operating the plurality of switches, A system that is equipped with [the following].

3. The aforementioned controller The measured load level in the aforementioned load bus, The expected characteristics of the load (872) connected to the load bus, The predetermined characteristics of the plurality of coils, and time, The system according to claim 2, configured to select at least one of the plurality of coils based on one or more of the following:

4. A converter (882) is positioned between the load bus and at least one of the multiple switches in order to convert the alternating current (AC) output from at least one of the multiple coils into a direct current (DC) input to the load bus. The system according to claim 2 or claim 3, further comprising the above.

5. A plurality of rotor disks, including a first rotor disk (220) containing a first plurality of magnets (910) dispersed at an angle with respect to a rotation axis (202), and a second rotor disk (222) containing a second plurality of magnets dispersed at an angle with respect to the rotation axis, A plurality of coils including: a first coil (930a) disposed within the magnetic gap distance (950) of each of the first plurality of magnets, wherein at any given time, the first coil is positioned to overlap with a single magnet of the first plurality of magnets within the magnetic gap distance of the single magnet; and a second coil (930b) disposed within the magnetic gap distance of each of the second plurality of magnets, wherein at any given time, the second coil is positioned to overlap with a single magnet of the second plurality of magnets within the magnetic gap distance of the single magnet; It is equipped with, A system in which the first rotor disk and the second rotor disk are rotated at a shared rotational speed around the rotation axis, and the first rotor disk and the first coil are positioned relative to the second rotor disk and the second coil such that the first plurality of magnets are stacked on the first coil and the second plurality of magnets are sequentially stacked on the second coil.

6. Each of the first plurality of magnets is positioned with a non-zero angle offset from the corresponding magnet from the second plurality of magnets. The system according to claim 5, wherein the first coil completely overlaps the second coil.

7. Each of the first plurality of magnets is positioned so as to completely overlap with the corresponding magnet from the second plurality of magnets. The system according to claim 5 or 6, wherein the first coil is positioned with respect to the second coil at a non-zero angle offset.

8. A third coil (930a) that completely overlaps the first coil and is positioned within the magnetic gap distance of each of the second plurality of magnets, It further comprises, The first coil is wired in series with the second coil and connected to the load bus (870) via the first switch (852). The system according to claim 5 or 6, wherein the first switch is different from the second switch (884) that connects the third coil to the load bus.

9. Further comprising a plurality of magnetic cores, The system according to claim 5 or claim 6, wherein each magnetic core in the plurality of magnetic cores is positioned inside the coil corresponding to the magnetic core among the plurality of coils.

10. The plurality of coils further comprises walls arranged adjacent to the plurality of coils on the outside of the plurality of coils, The wall is formed from a magnetic material, The system according to claim 9, wherein the wall and the plurality of magnetic cores have the same magnetic transmittance.

11. A plurality of stator magnets, wherein each stator magnet in the plurality of stator magnets is positioned adjacent to the coil corresponding to the stator magnet among the plurality of coils, and extends from the proximal end to the distal end of the corresponding coil, The system according to claim 5 or 6, wherein the first magnetic pole of each stator magnet is located at the proximal end facing the respective rotor disk.

12. The first magnetic pole has the same polarity as the magnetic pole of each of the multiple magnets facing the multiple coils during the rotation of each of the rotor disks around the rotation axis. The system according to claim 11, wherein each stator magnet in the plurality of stator magnets is aligned.

13. A stator disposed adjacent to the rotor disk, Molded to receive and support the aforementioned plurality of coils, A stator is positioned to determine the magnetic gap distance between the plurality of coils and the rotor disk while the rotor disk rotates around the rotation axis. The system according to claim 5 or claim 6, further comprising the above.

14. The system according to claim 13, wherein the stator is a stator disk extending around the rotation axis.

15. The system according to claim 14, wherein the stator flexibly mounts the plurality of coils with respect to each rotor disk and changes the magnetic gap distance in response to the movement of the plurality of coils during the rotation of each rotor disk around the rotation axis.

16. The first coil among the plurality of coils is electrically connected in series with the second coil among the plurality of coils, The system according to claim 5 or 6, wherein the first coil and the second coil are arranged on one side of the respective rotor disks.

17. The first coil among the plurality of coils is electrically connected in series with the second coil among the plurality of coils, The system according to claim 5 or 6, wherein the first coil and the second coil are each positioned on opposite sides of the respective rotor disks.

18. The first coil among the plurality of coils is electrically connected in parallel to the second coil among the plurality of coils, The system according to claim 5 or 6, wherein the first coil and the second coil are arranged on one side of the respective rotor disks.

19. The first coil among the plurality of coils is electrically connected in parallel to the second coil among the plurality of coils, The system according to claim 5 or 6, wherein the first coil and the second coil are each positioned on opposite sides of the respective rotor disks.