USRE46449E1 - Electromagnetic machine with independent removable coils, modular parts and self sustained passive magnetic bearing - Google Patents

Electromagnetic machine with independent removable coils, modular parts and self sustained passive magnetic bearing Download PDF

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USRE46449E1
USRE46449E1 US14/447,523 US200814447523A USRE46449E US RE46449 E1 USRE46449 E1 US RE46449E1 US 200814447523 A US200814447523 A US 200814447523A US RE46449 E USRE46449 E US RE46449E
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machine
coils
axle
magnets
electromagnetic
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Dumitru Bojiuc
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Clearwater Holdings Ltd
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Clearwater Holdings Ltd
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K23/00DC commutator motors or generators having mechanical commutator; Universal AC/DC commutator motors
    • H02K23/02DC commutator motors or generators having mechanical commutator; Universal AC/DC commutator motors characterised by arrangement for exciting
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K21/00Synchronous motors having permanent magnets; Synchronous generators having permanent magnets
    • H02K21/02Details
    • H02K21/10Rotating armatures
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K41/00Propulsion systems in which a rigid body is moved along a path due to dynamo-electric interaction between the body and a magnetic field travelling along the path
    • H02K41/02Linear motors; Sectional motors
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/003Couplings; Details of shafts
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K2213/00Specific aspects, not otherwise provided for and not covered by codes H02K2201/00 - H02K2211/00
    • H02K2213/12Machines characterised by the modularity of some components

Definitions

  • This invention relates generally to electric motors and generators and more particularly to such an electromagnetic machine with novel structure and operation.
  • Tu et al, US 2004/0135452 discloses a flat rotary electric generator that includes at least one toroidal coil structure for cutting magnetic lines to induce a current and at least one disc-shaped magnetic pole structure oriented parallel to the helical coil structure. If multiple toroidal coil structures and disc-shaped magnetic coil structures are included, the toroidal coil structures and disc-shaped magnetic coil structures are arranged in alternating manner. The toroidal coil structure and disc-shaped magnetic pole structure are not provided with a permeable material. When either the toroidal coil structures or the at least one disc-shaped magnetic pole structure is rotated by an external force, the toroidal coil structure cuts the magnetic lines passing therethrough to generate an induced current.
  • Neal, US 2002/0135263, discloses a plurality of stator arc segments that form a toroidal core for a stator assembly used to make a motor.
  • a plurality of magnetic fields is created when electrical current is conducted through wire wound around poles on the toroidal core.
  • a monolithic body of phase change material substantially encapsulates the conductors and holds the stator arc segments in contact with each other in the toroidal core.
  • Hard disc drives using the motor, and methods of constructing the motor and hard disc drives are also disclosed.
  • Rose, U.S. Pat. No. 6,803,691 discloses an electrical machine that comprises a magnetically permeable ring-shaped core centered on an axis of rotation and having two axially-opposite sides. Coils are wound toroidally about the core and disposed sequentially along the circumferential direction. Each coil includes two side legs extending radially alongside respectively sides of the core. Coil-free spaces exist between adjacent side legs.
  • a bracket has first and second side flanges that are connected by a bridging structure and respectively abut the first and second sides of the coil.
  • Mohler U.S. Pat. No. 6,507,257 discloses a bi-directional latching actuator that is comprised of an output shaft with one or more rotors fixedly mounted thereon.
  • the shaft and rotor are mounted for rotation in a magnetically conductive housing having a cylindrical coil mounted therein and is closed by conductive end caps.
  • the end caps have stator pole pieces mounted thereon.
  • the rotor has at least two oppositely magnetized permanent magnets which are asymmetrically mounted, i.e., they are adjacent at one side and separated by a non-magnetic void on the other side.
  • the stator pole piece has asymmetric flux conductivity and in one embodiment is axially thicker than the remaining portion of the pole piece.
  • An abutment prevents the rotor from swinging to the neutral position (where the rotor magnets are axially aligned with the higher conductivity portion of the pole piece).
  • the rotor is magnetically latched in one of two positions being drawn towards the neutral position.
  • Energization of the coil with an opposite polarity current causes the rotor to rotate towards its opposite latching position whereupon it is magnetically latched in that position.
  • U.S. Pat. No. 5,337,030 discloses a permanent magnet brushless torque actuator that is comprised of an electromagnetic core capable of generating an elongated toroidally shaped magnet flux field when energized.
  • an outer housing Outside the generally cylindrical coil is an outer housing with upper and lower end plates at each end.
  • stator pole pieces Mounted to the end plates and extending towards each other are stator pole pieces separated from its opposing pole piece by an air gap.
  • a permanent magnet rotor is disposed in the air gap and mounted on a shaft which in turn is rotatably mounted in each of the end plates.
  • the permanent magnet rotor comprises at least two permanent magnets, each covering an arcuate portion of the rotor and having opposite polarities.
  • Energization of the coil with current in one direction magnetizes the pole pieces such that each of the two pole pieces attracts one of the magnets of the rotor and repels the other magnet of the rotor resulting in a torque generated by the output shaft. Reversal of the current flow results in a reversal of the torque and rotation of the rotor in the opposite direction.
  • Preferred embodiments are disclosed having multiple cells, i.e. a plurality of stator rotor stator combinations and/or cells in which there are a plurality of pole pieces at each stator pole plane.
  • Kloosterhouse et al U.S. Pat. No. 5,191,255, discloses an electromagnetic motor that includes a rotor having a plurality of magnets mounted along a perimeter of the rotor. Preferably, adjacent magnets have opposite poles facing outward.
  • One or more electromagnets are disposed adjacent to the perimeter of the rotor so that as the rotor rotates, the magnets mounted on the rotor are carried near the poles of the electromagnets.
  • the drive circuit includes a photosensitive device which produces a signal whose value varies according to whether the device is receiving light reflected from the reflective material. The signal is amplified to produce drive current for the electromagnets.
  • U.S. Pat. No. 4,565,938 discloses an electromechanical device which can be used as a motor or as a generator.
  • the device has a housing, including bearing means to support a rotatable shaft.
  • Disc magnet means are provided, and poled to have alternating polarity and are mounted on the shaft to define a rotor.
  • the device includes at least one first pole shoe in contact with the magnet means, having a portion extending radially therefrom to define a virtual pole chamber, of a first polarity.
  • at least one second pole shoe in contact with the magnet and having a portion extending radially therefrom to define a virtual pole chamber of the other polarity.
  • a toroid stator is mounted on the housing and has windings thereon.
  • the stator is positioned annularly around the disc magnets such that the virtual pole chambers of the first and second pole shoes surround portions of said windings with circumferentially alternating fields of alternating polarity.
  • Means are provided for electrical contact with the stator to draw off current when the device is operated as a generator, or provide current to operate the device as a motor.
  • U.S. Pat. No. 4,459,501 discloses an electromechanical device which can be used as a motor or as a generator that has a housing, including bearing means to support a rotatable shaft.
  • a pair of disc magnets are poled to have opposite polarity on the two faces of each.
  • the magnets are mounted face to face together on the shaft to define a rotor.
  • the device includes at least one first pole shoe in contact with one face of each magnet, and having a portion extending radially therefrom to define, in its preferred form, a pair of virtual pole chambers, of the same polarity as said one face.
  • At least one second pole shoe in contact with the other face of each magnet and having a portion extending radially therefrom to define in its preferred form a pair of virtual pole chambers of the same polarity as the other face.
  • a toroid stator is mounted on the housing and has windings thereon. The stator is positioned annularly around the disc magnets such that the virtual pole chambers of the first and second pole shoes surround portions of said windings with circumferentially alternating fields of alternating polarity.
  • Means for electrical contact with the stator draw off current when the device is operated as a generator, or provide current to operate the device as a motor.
  • the present invention teaches certain benefits in construction and use which give rise to the objectives described below.
  • the present invention functions as an electric motor, in a second embodiment it functions as a rotating electric generator, and in a third embodiment it functions as a rotating transformer.
  • the present invention may operate as a linear machine rather than rotating.
  • the machine may be operated as an AC machine or a DC machine.
  • the machine operates by coupling a moving electromagnetic field to magnets in attraction and also in repulsion.
  • primary electromagnets produce a field which couples to secondary magnets, which may be permanent magnets or electromagnets, with either the primary or the secondary magnets functioning as part of a stator structure of the machine, i.e., neither rotating nor translating.
  • a primary objective of the present invention is to provide an apparatus and method of use of such apparatus that yields advantages not taught by the prior art.
  • Another objective of the invention is to produce a machine as described herein having a high electromagnetic field density.
  • a further objective of the invention is the elimination of the need for a commutator.
  • a further objective of the invention is the establishment of low losses including losses derived from hysteresis, heat, radiation and eddy currents, which reduce the efficiency of typical machines of the present type.
  • a further objective of the invention is to produce a rotating machine with a compact, modular structure.
  • a further objective of the invention is to provide a rotating machine with open access to the interior of its central shaft on its axis of rotation.
  • a further objective of the invention is to provide rotating and translating machines with self sustained passive magnetic bearings as part of their integrated construction.
  • FIG. 1 is a schematic diagram of the present invention shown in cross-section
  • FIG. 2 is a side view of a rotational tubular axle of the present invention shown with bearing sets 20 , bearing securing fitting 15 , mounting rings 30 A, coil interconnection ring 30 C, magnetic bearing aluminum ring sweep surface 10 ′, and commutator 80 ;
  • FIG. 3 is a perspective view of a circuit common ring 30 B
  • FIG. 4 is a perspective end view thereof as seen with the bearing securing fitting detached;
  • FIG. 5 is an end view thereof as seen from the bearing securing fitting and showing proximal ends of connecting bars;
  • FIG. 6 is a perspective end view thereof as seen from the commutator
  • FIG. 7 is a perspective view of one of the connecting bars
  • FIG. 8 is a perspective view thereof showing the two half coil housings mounted on the mounting rings as seen from the bearing securing fitting end;
  • FIG. 9 is a close up partial side perspective view thereof showing the mounting interface between a coil housing and the mounting rings;
  • FIG. 10 is a partial side perspective view thereof showing a coil as mounted within a coil housing
  • FIG. 11 is a perspective view thereof of a coil either wire or tape as wound onto a coil form on a magnetic or non-magnetic material core like steel or aluminum, and a coil housing showing coil form mounting surfaces;
  • FIG. 12 is a side view of the coil housing thereof with coil and coil form in place;
  • FIGS. 13 and 14 are perspective views thereof showing a commutator housing positioned over the commutator;
  • FIGS. 15 and 16 are perspective views of system housing plates thereof
  • FIG. 17 is a partial side perspective view of the presently described apparatus showing physical relationships between coil housings, peripheral angle cut magnets adjacent to the ferromagnetic core's shape and the system housing plates;
  • FIGS. 18-20 are conceptual diagrams of an advanced electromagnet coil thereof.
  • FIG. 1 is a schematic diagram of the present invention shown in cross-section which shows some of the major constructional features of this machine.
  • FIG. 1 shows the machine's tubular axle 10 , bearing sets 20 , mounting rings 30 A, coil housings 40 , coil housing bolts 42 , peripheral magnets 50 , sector magnets 60 , system housing plates 70 and peripheral plates 72 .
  • FIG. 2 is a side view of the rotational tubular axle 10 and its magnetic bearing aluminum swept surface 10 ′, showing bearing sets 20 , bearing securing fitting 15 , commutator 80 , mounting rings 30 A and coil input ring 30 C.
  • system housing plates 70 is are mounted on bearing sets 20 through adaptors 74 . Either the system housing plates 70 or axle 10 may act as stator with the other member rotating.
  • FIG. 3 is a perspective view of coil common ring 30 B which is constructed in two pieces and is independently removable from axle 10 , whereas mounting rings 30 A are an integral part of axle 10 .
  • FIG. 4 is a perspective end view of axle 10 with the securing fitting 15 detached.
  • FIG. 6 is a perspective end view thereof as seen from the commutator end of the machine, showing distal ends 94 of connecting bars 90 .
  • FIG. 7 is a perspective view of one of the connecting bars 90 , as detached, showing the proximal 92 and distal 94 ends.
  • a lateral rod 96 joined to bar 90 at the distal end 94 commutes between bar 90 and one segment 82 of commutator 80 and is secured by screws 84 as shown in FIG. 6 .
  • the distal end 94 is joined with lateral plate 98 which is covered with an insulator wrap 99 and secured to coil input ring 30 C through slots 12 in axle 10 , as shown in FIG. 2 , using tab 32 and screw 34 .
  • Screw 36 is available for securing coil wires as will be described presently.
  • Bars 90 including rods 96 , plates 98 and tabs 32 form the necessary electrical path between electromagnet coils of the machine (to be described), and the commutator 80 .
  • coils 110 are wired in parallel with current introduced from the commutator 80 through lateral rods 96 , bars 90 , plate 98 to insulated segments (tabs 32 ) mounted on input ring 30 C.
  • One end of each of the coils 110 are attached to each of tabs 32 respectively, at screws 36 .
  • the other end of each of the coils 110 are attached to the screws on common ring 30 B which acts as a ground back to the commutator 80 .
  • FIG. 8 shows two coil housings 100 mounted on the rings 30 A by coil housing bolts 42 ( FIG. 1 ) fastened into threaded holes.
  • FIG. 9 is a close up showing the novel mounting interface between coil housings 100 and the mounting rings 30 A. In this mounting it is noticed that the interfacing surfaces of the coil housings 100 abut rings 30 A and are close to rings 30 B and 30 C.
  • FIG. 10 shows part of the coil housing 100 removed revealing a portion of a coil 110 as mounted within the coil housing 100 .
  • FIG. 11 shows the coil 110 detached from the coil housing 100 and shows, too, coilform 120 upon which coil 110 is wound.
  • coil 110 is wound with common insulated wire 112 , however, coil 110 may also be wound with metal strip wherein such strip would have a thickness approximately equal to the diameter of wire 112 and a width W equal to the width of coil 110 , or of the ferromagnetic housing cell's width as shown in FIG. 11 . It is noticed that coil 110 has an axis 114 of the windings that is positioned tangential to the direction of rotation of the electromagnetic field of this machine when the coil is mounted within the coil housing 120 100. This may be best seen in FIG.
  • coil 110 is shown mounted within coil housing 120 100, and housing 120 100 is shown in its mounted position on ring 30 A Only two coil housings 120 100 are shown in the figures, but in the completely assembled machine, the coil housings 120 100 form a full circle around tubular axle 110 10.
  • FIGS. 13 and 14 show a commutator housing 85 positioned over the commutator 80 .
  • Housing 85 provides the wipers that frictionally contact the blades of commutator 80 .
  • FIGS. 15 and 16 are views of the system housing plates 70 which are shown in their assembled positions in FIG. 1 . Plates 70 are engaged with the outer bearing races of bearing sets 20 through adaptors 74 shown in schematic representation in FIG. 1 .
  • FIG. 17 shows the finished machine as a side view with two peripheral plates 72 , commonly known as “biscuits,” removed, to show the locations of peripheral magnets 50 and coil housings 100 . The axis 5 of rotation of the rotating magnetic field is depicted in FIG. 17 .
  • FIGS. 18-20 show an alternative embodiment of coil 110 .
  • Previously coil 110 was described as constructed by windings of common insulated electrical conductor wire 112 as is well known in the art, and alternatively using flexible insulated conductive metal strip stock.
  • coil 110 may also be advantageously constructed from a solid block of conductive metal.
  • FIG. 18 is shown a schematic diagram of such a coil 110 wherein the lines 110 A represent conductive paths and the spaces between the lines represent material that is cut away from the solid block of conductive metal. This may be accomplished using electrical discharge machining, also known by the acronym EDM.
  • EDM electrical discharge machining
  • EDM is used to cut into the solid block of electrically conductive material such as copper, aluminum or steel, but most preferably, iron, and the cuts are directed as shown in FIG. 18 .
  • the solid block has been reduced to a single continuous coil where the coil's windings are strips having the desired width W ( FIG. 19 ), i.e., the width of the original solid block.
  • FIG. 19 shows the cut block in perspective with plus (+) and minus ( ⁇ ) electrodes attached for connecting the coil 110 into a circuit of the present machine.
  • FIG. 20 shows the same cut block as FIG. 19 , but partially cut-away to better illustrate the layers of the windings.
  • no space is shown separating the windings, however, these figures are conceptual diagrams where the spaces between adjacent windings are considerably less wide than the windings themselves, and the spaces may be filled with an electrical insulator using an electro-chemical process such as electroplating.
  • the coil housing 100 may also be advantageously constructed in the same manner as the coil shown in FIGS.
  • the housing 100 may be sectioned using EDM to establish a coil-like configuration while maintaining the housing in the form shown in FIGS. 8-12 .
  • the establishment of coil 110 and coil housing 100 in the above manner provide significant advantages including low eddy current loss, less resistance to AC and to DC current flow, and smaller size.

Abstract

A rotating electromagnetic machine has a tubular axle with mounting rings, a common ring, a coil input ring, and at least one bearing set mounted on it. A fitting is secured at a distal end of the tubular axle, and a commutator is secured at the proximal end. A housing is mounted on the bearing sets through adaptors. Connecting bars extend axially within the axle with lateral rods joined to the connecting bars at their distal ends, the bars commuting between segments of the commutator electromagnetic coils. A plurality of the electromagnetic coils are secured to the coil input ring. The coils are formed of spiral turns of a single flat strip electrically conductive material. A plurality of peripheral and sector magnets are mounted adjacent to the electromagnetic coils with electromagnetic interaction when relative motion occurs between the coils and the magnets.

Description

FIELD OF THE INVENTION
This invention relates generally to electric motors and generators and more particularly to such an electromagnetic machine with novel structure and operation.
DESCRIPTION OF THE RELATED ART
Tu et al, US 2004/0135452, discloses a flat rotary electric generator that includes at least one toroidal coil structure for cutting magnetic lines to induce a current and at least one disc-shaped magnetic pole structure oriented parallel to the helical coil structure. If multiple toroidal coil structures and disc-shaped magnetic coil structures are included, the toroidal coil structures and disc-shaped magnetic coil structures are arranged in alternating manner. The toroidal coil structure and disc-shaped magnetic pole structure are not provided with a permeable material. When either the toroidal coil structures or the at least one disc-shaped magnetic pole structure is rotated by an external force, the toroidal coil structure cuts the magnetic lines passing therethrough to generate an induced current.
Neal, US 2002/0135263, discloses a plurality of stator arc segments that form a toroidal core for a stator assembly used to make a motor. In a preferred embodiment, a plurality of magnetic fields is created when electrical current is conducted through wire wound around poles on the toroidal core. A monolithic body of phase change material substantially encapsulates the conductors and holds the stator arc segments in contact with each other in the toroidal core. Hard disc drives using the motor, and methods of constructing the motor and hard disc drives are also disclosed.
Rose, U.S. Pat. No. 6,803,691, discloses an electrical machine that comprises a magnetically permeable ring-shaped core centered on an axis of rotation and having two axially-opposite sides. Coils are wound toroidally about the core and disposed sequentially along the circumferential direction. Each coil includes two side legs extending radially alongside respectively sides of the core. Coil-free spaces exist between adjacent side legs. A bracket has first and second side flanges that are connected by a bridging structure and respectively abut the first and second sides of the coil.
Mohler, U.S. Pat. No. 6,507,257, discloses a bi-directional latching actuator that is comprised of an output shaft with one or more rotors fixedly mounted thereon. The shaft and rotor are mounted for rotation in a magnetically conductive housing having a cylindrical coil mounted therein and is closed by conductive end caps. The end caps have stator pole pieces mounted thereon. In one embodiment, the rotor has at least two oppositely magnetized permanent magnets which are asymmetrically mounted, i.e., they are adjacent at one side and separated by a non-magnetic void on the other side. The stator pole piece has asymmetric flux conductivity and in one embodiment is axially thicker than the remaining portion of the pole piece. An abutment prevents the rotor from swinging to the neutral position (where the rotor magnets are axially aligned with the higher conductivity portion of the pole piece). Thus, the rotor is magnetically latched in one of two positions being drawn towards the neutral position. Energization of the coil with an opposite polarity current causes the rotor to rotate towards its opposite latching position whereupon it is magnetically latched in that position.
Mohler, U.S. Pat. No. 5,337,030, discloses a permanent magnet brushless torque actuator that is comprised of an electromagnetic core capable of generating an elongated toroidally shaped magnet flux field when energized. Outside the generally cylindrical coil is an outer housing with upper and lower end plates at each end. Mounted to the end plates and extending towards each other are stator pole pieces separated from its opposing pole piece by an air gap. A permanent magnet rotor is disposed in the air gap and mounted on a shaft which in turn is rotatably mounted in each of the end plates. The permanent magnet rotor comprises at least two permanent magnets, each covering an arcuate portion of the rotor and having opposite polarities. Energization of the coil with current in one direction magnetizes the pole pieces such that each of the two pole pieces attracts one of the magnets of the rotor and repels the other magnet of the rotor resulting in a torque generated by the output shaft. Reversal of the current flow results in a reversal of the torque and rotation of the rotor in the opposite direction. Preferred embodiments are disclosed having multiple cells, i.e. a plurality of stator rotor stator combinations and/or cells in which there are a plurality of pole pieces at each stator pole plane.
Kloosterhouse et al, U.S. Pat. No. 5,191,255, discloses an electromagnetic motor that includes a rotor having a plurality of magnets mounted along a perimeter of the rotor. Preferably, adjacent magnets have opposite poles facing outward. One or more electromagnets are disposed adjacent to the perimeter of the rotor so that as the rotor rotates, the magnets mounted on the rotor are carried near the poles of the electromagnets. Current is supplied to the electromagnets by a drive circuit in a predetermined phase relationship with the rotation of the rotor such that, for substantially all angular positions of the rotor, magnetic attraction and repulsion between the poles of the electromagnets and the magnets mounted on the rotor urge the rotor to rotate in a desired direction. Reflective material is mounted on the rotor in predetermined angular positions. The drive circuit includes a photosensitive device which produces a signal whose value varies according to whether the device is receiving light reflected from the reflective material. The signal is amplified to produce drive current for the electromagnets.
Westley, U.S. Pat. No. 4,623,809, discloses a stepper motor housing a pole structure in which a pair of identical stator plates, each having a plurality of poles, are positioned back to back with the poles projecting in opposite directions, the stator plates being positioned between a pair of substantially identical stator cups, each stator cup having a plurality of poles projecting inwardly from a back wall with a peripheral side wall terminating in an outwardly extending flange. A major surface of each flange is in contact with a face on one of the stator plates so as to assure a low reluctance magnetic path.
Fawzy, U.S. Pat. No. 4,565,938, discloses an electromechanical device which can be used as a motor or as a generator. The device has a housing, including bearing means to support a rotatable shaft. Disc magnet means are provided, and poled to have alternating polarity and are mounted on the shaft to define a rotor. The device includes at least one first pole shoe in contact with the magnet means, having a portion extending radially therefrom to define a virtual pole chamber, of a first polarity. Also included is at least one second pole shoe in contact with the magnet and having a portion extending radially therefrom to define a virtual pole chamber of the other polarity. A toroid stator is mounted on the housing and has windings thereon. The stator is positioned annularly around the disc magnets such that the virtual pole chambers of the first and second pole shoes surround portions of said windings with circumferentially alternating fields of alternating polarity. Means are provided for electrical contact with the stator to draw off current when the device is operated as a generator, or provide current to operate the device as a motor.
Fawzy, U.S. Pat. No. 4,459,501, discloses an electromechanical device which can be used as a motor or as a generator that has a housing, including bearing means to support a rotatable shaft. A pair of disc magnets are poled to have opposite polarity on the two faces of each. The magnets are mounted face to face together on the shaft to define a rotor. The device includes at least one first pole shoe in contact with one face of each magnet, and having a portion extending radially therefrom to define, in its preferred form, a pair of virtual pole chambers, of the same polarity as said one face. Also included is at least one second pole shoe in contact with the other face of each magnet and having a portion extending radially therefrom to define in its preferred form a pair of virtual pole chambers of the same polarity as the other face. A toroid stator is mounted on the housing and has windings thereon. The stator is positioned annularly around the disc magnets such that the virtual pole chambers of the first and second pole shoes surround portions of said windings with circumferentially alternating fields of alternating polarity. Means for electrical contact with the stator draw off current when the device is operated as a generator, or provide current to operate the device as a motor.
SUMMARY OF THE INVENTION
The present invention teaches certain benefits in construction and use which give rise to the objectives described below. In one embodiment, the present invention functions as an electric motor, in a second embodiment it functions as a rotating electric generator, and in a third embodiment it functions as a rotating transformer. In further embodiments, the present invention may operate as a linear machine rather than rotating. In each of these embodiments, the machine may be operated as an AC machine or a DC machine. The machine operates by coupling a moving electromagnetic field to magnets in attraction and also in repulsion. In each embodiment, primary electromagnets produce a field which couples to secondary magnets, which may be permanent magnets or electromagnets, with either the primary or the secondary magnets functioning as part of a stator structure of the machine, i.e., neither rotating nor translating. An important aspect of the present invention, in one structural embodiment, pertinent to the embodiments previously defined, is a novel electromagnetic coil structure wound or formed as spiral turns of a single flat strip of an either ferromagnetic or non-ferromagnetic material. A further important aspect of the present invention is the modularity of the entire construction by use of coil special shape housings of ferromagnetic material which is separated into a plurality of segments magnetically isolated from each other but in mutual electrical continuity and hence minimizing hysteresis effects. Another important aspect of the present invention is the incorporated sell sustained passive magnetic bearing as a result of the permanent magnets sweeping a portion of the aluminum shaft ring beneath the permanent magnets and located between the guiding ball bearing and the electromagnets ferromagnetic core. Another important aspect of the present invention is the permanent magnets edges cut in a distinct angle, such as at 45 degrees, or triangular in shape which allows a continuous magnetic one pole face and avoids the alternating magnetic end effect at both ends of the permanent magnet. Another important aspect of the present invention is the useful capture of induced eddy currents of each ferromagnetic segment and sent back in the electrical circuit of the power supply.
A primary objective of the present invention is to provide an apparatus and method of use of such apparatus that yields advantages not taught by the prior art.
Another objective of the invention is to produce a machine as described herein having a high electromagnetic field density.
A further objective of the invention is the elimination of the need for a commutator.
A further objective of the invention is the establishment of low losses including losses derived from hysteresis, heat, radiation and eddy currents, which reduce the efficiency of typical machines of the present type.
A further objective of the invention is to produce a rotating machine with a compact, modular structure.
A further objective of the invention is to provide a rotating machine with open access to the interior of its central shaft on its axis of rotation.
A further objective of the invention is to provide rotating and translating machines with self sustained passive magnetic bearings as part of their integrated construction.
Other features and advantages of the embodiments of the present invention will become apparent from the following more detailed description, taken in conjunction with the accompanying drawings, which illustrate, by way of example, the principles of at least one of the possible embodiments of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
The accompanying drawings illustrate the embodiments of the present invention. In such drawings:
FIG. 1 is a schematic diagram of the present invention shown in cross-section;
FIG. 2 is a side view of a rotational tubular axle of the present invention shown with bearing sets 20, bearing securing fitting 15, mounting rings 30A, coil interconnection ring 30C, magnetic bearing aluminum ring sweep surface 10′, and commutator 80;
FIG. 3 is a perspective view of a circuit common ring 30B;
FIG. 4 is a perspective end view thereof as seen with the bearing securing fitting detached;
FIG. 5 is an end view thereof as seen from the bearing securing fitting and showing proximal ends of connecting bars;
FIG. 6 is a perspective end view thereof as seen from the commutator;
FIG. 7 is a perspective view of one of the connecting bars;
FIG. 8 is a perspective view thereof showing the two half coil housings mounted on the mounting rings as seen from the bearing securing fitting end;
FIG. 9 is a close up partial side perspective view thereof showing the mounting interface between a coil housing and the mounting rings;
FIG. 10 is a partial side perspective view thereof showing a coil as mounted within a coil housing;
FIG. 11 is a perspective view thereof of a coil either wire or tape as wound onto a coil form on a magnetic or non-magnetic material core like steel or aluminum, and a coil housing showing coil form mounting surfaces;
FIG. 12 is a side view of the coil housing thereof with coil and coil form in place;
FIGS. 13 and 14 are perspective views thereof showing a commutator housing positioned over the commutator;
FIGS. 15 and 16 are perspective views of system housing plates thereof;
FIG. 17 is a partial side perspective view of the presently described apparatus showing physical relationships between coil housings, peripheral angle cut magnets adjacent to the ferromagnetic core's shape and the system housing plates; and
FIGS. 18-20 are conceptual diagrams of an advanced electromagnet coil thereof.
DETAILED DESCRIPTION OF THE INVENTION
The above described drawing figures illustrate the present invention in at least one of its preferred embodiments, which is further defined in detail in the following description. Those having ordinary skill in the art may be able to make alterations and modifications in the present invention without departing from its spirit and scope. Therefore, it must be understood that the illustrated embodiments have been set forth only for the purposes of example and that they should not be taken as limiting the invention as defined in the following.
The present invention is a rotating electromagnetic machine which may be used in several ways as described above as is familiar to those of skill in the art. The physical construction especially that of the electromagnetic coils and the coil housings, the manner of interconnecting the coils to the commutator and most of the structural configurations of this machine are novel. FIG. 1 is a schematic diagram of the present invention shown in cross-section which shows some of the major constructional features of this machine. FIG. 1 shows the machine's tubular axle 10, bearing sets 20, mounting rings 30A, coil housings 40, coil housing bolts 42, peripheral magnets 50, sector magnets 60, system housing plates 70 and peripheral plates 72. These components will be described in detail in the following referring to the attached pictorials where numerals shown thereon are found in this text.
FIG. 2 is a side view of the rotational tubular axle 10 and its magnetic bearing aluminum swept surface 10′, showing bearing sets 20, bearing securing fitting 15, commutator 80, mounting rings 30A and coil input ring 30C. In FIG. 1 it is seen that system housing plates 70 is are mounted on bearing sets 20 through adaptors 74. Either the system housing plates 70 or axle 10 may act as stator with the other member rotating. FIG. 3 is a perspective view of coil common ring 30B which is constructed in two pieces and is independently removable from axle 10, whereas mounting rings 30A are an integral part of axle 10. FIG. 4 is a perspective end view of axle 10 with the securing fitting 15 detached.
What is not depicted in FIG. 1, but is shown in FIG. 5; an end view from the securing fitting side, is proximal ends 92 of connecting bars 90 which extend axially within axle 10 as will be further shown. FIG. 6 is a perspective end view thereof as seen from the commutator end of the machine, showing distal ends 94 of connecting bars 90. FIG. 7 is a perspective view of one of the connecting bars 90, as detached, showing the proximal 92 and distal 94 ends. A lateral rod 96 joined to bar 90 at the distal end 94, commutes between bar 90 and one segment 82 of commutator 80 and is secured by screws 84 as shown in FIG. 6. The distal end 94 is joined with lateral plate 98 which is covered with an insulator wrap 99 and secured to coil input ring 30C through slots 12 in axle 10, as shown in FIG. 2, using tab 32 and screw 34. Screw 36 is available for securing coil wires as will be described presently. Bars 90, including rods 96, plates 98 and tabs 32 form the necessary electrical path between electromagnet coils of the machine (to be described), and the commutator 80. In the preferred embodiment, coils 110 are wired in parallel with current introduced from the commutator 80 through lateral rods 96, bars 90, plate 98 to insulated segments (tabs 32) mounted on input ring 30C. One end of each of the coils 110 are attached to each of tabs 32 respectively, at screws 36. The other end of each of the coils 110 are attached to the screws on common ring 30B which acts as a ground back to the commutator 80.
FIG. 8 shows two coil housings 100 mounted on the rings 30A by coil housing bolts 42 (FIG. 1) fastened into threaded holes. FIG. 9 is a close up showing the novel mounting interface between coil housings 100 and the mounting rings 30A. In this mounting it is noticed that the interfacing surfaces of the coil housings 100 abut rings 30A and are close to rings 30B and 30C. FIG. 10 shows part of the coil housing 100 removed revealing a portion of a coil 110 as mounted within the coil housing 100. FIG. 11 shows the coil 110 detached from the coil housing 100 and shows, too, coilform 120 upon which coil 110 is wound. In this embodiment coil 110 is wound with common insulated wire 112, however, coil 110 may also be wound with metal strip wherein such strip would have a thickness approximately equal to the diameter of wire 112 and a width W equal to the width of coil 110, or of the ferromagnetic housing cell's width as shown in FIG. 11. It is noticed that coil 110 has an axis 114 of the windings that is positioned tangential to the direction of rotation of the electromagnetic field of this machine when the coil is mounted within the coil housing 120 100. This may be best seen in FIG. 12 where coil 110 is shown mounted within coil housing 120 100, and housing 120 100 is shown in its mounted position on ring 30A Only two coil housings 120 100 are shown in the figures, but in the completely assembled machine, the coil housings 120 100 form a full circle around tubular axle 110 10.
FIGS. 13 and 14 show a commutator housing 85 positioned over the commutator 80. Housing 85 provides the wipers that frictionally contact the blades of commutator 80. FIGS. 15 and 16 are views of the system housing plates 70 which are shown in their assembled positions in FIG. 1. Plates 70 are engaged with the outer bearing races of bearing sets 20 through adaptors 74 shown in schematic representation in FIG. 1. FIG. 17 shows the finished machine as a side view with two peripheral plates 72, commonly known as “biscuits,” removed, to show the locations of peripheral magnets 50 and coil housings 100. The axis 5 of rotation of the rotating magnetic field is depicted in FIG. 17.
FIGS. 18-20 show an alternative embodiment of coil 110. Previously coil 110 was described as constructed by windings of common insulated electrical conductor wire 112 as is well known in the art, and alternatively using flexible insulated conductive metal strip stock. However, it has been discovered that coil 110 may also be advantageously constructed from a solid block of conductive metal. In FIG. 18 is shown a schematic diagram of such a coil 110 wherein the lines 110A represent conductive paths and the spaces between the lines represent material that is cut away from the solid block of conductive metal. This may be accomplished using electrical discharge machining, also known by the acronym EDM. In this process EDM is used to cut into the solid block of electrically conductive material such as copper, aluminum or steel, but most preferably, iron, and the cuts are directed as shown in FIG. 18. When the cutting is complete, the solid block has been reduced to a single continuous coil where the coil's windings are strips having the desired width W (FIG. 19), i.e., the width of the original solid block.
FIG. 19 shows the cut block in perspective with plus (+) and minus (−) electrodes attached for connecting the coil 110 into a circuit of the present machine. FIG. 20 shows the same cut block as FIG. 19, but partially cut-away to better illustrate the layers of the windings. In FIGS. 19 and 20 no space is shown separating the windings, however, these figures are conceptual diagrams where the spaces between adjacent windings are considerably less wide than the windings themselves, and the spaces may be filled with an electrical insulator using an electro-chemical process such as electroplating. The coil housing 100 may also be advantageously constructed in the same manner as the coil shown in FIGS. 18-20, that is, the housing 100 may be sectioned using EDM to establish a coil-like configuration while maintaining the housing in the form shown in FIGS. 8-12. The establishment of coil 110 and coil housing 100 in the above manner provide significant advantages including low eddy current loss, less resistance to AC and to DC current flow, and smaller size.
The enablements described in detail above are considered novel over the prior art of record and are considered critical to the operation of at least one aspect of one best mode embodiment of the instant invention and to the achievement of the above described objectives. The words used in this specification to describe the instant embodiments are to be understood not only in the sense of their commonly defined meanings, but to include by special definition in this specification: structure, material or acts beyond the scope of the commonly defined meanings. Thus if an element can be understood in the context of this specification as including more than one meaning, then its use must be understood as being generic to all possible meanings supported by the specification and by the word or words describing the element.
The definitions of the words or elements of the embodiments of the herein described invention and its related embodiments not described are, therefore, defined in this specification to include not only the combination of elements which are literally set forth, but all equivalent structure, material or acts for performing substantially the same function in substantially the same way to obtain substantially the same result. In this sense it is therefore contemplated that an equivalent substitution of two or more elements may be made for any one of the elements in the invention and its various embodiments or that a single element may be substituted for two or more elements.
Changes from the described subject matter as viewed by a person with ordinary skill in the art, now known or later devised, are expressly contemplated as being equivalents within the scope of the invention and its various embodiments. Therefore, obvious substitutions now or later known to one with ordinary skill in the art are defined to be within the scope of the defined elements. The invention and its various embodiments are thus to be understood to include what is specifically illustrated and described above, what is conceptually equivalent, what can be obviously substituted, and also what essentially incorporates the essential idea of the invention.
While the invention has been described with reference to at least one preferred embodiment, it is to be clearly understood by those skilled in the art that the invention is not limited thereto.

Claims (20)

What is claimed is:
1. A rotating electromagnetic machine comprising:
a tubular axle defining a distal and a proximal ends thereof, and mounted medially thereon, a pair of mounting rings, a common ring, a coil input ring, and at least one bearing set; a fitting is secured at the distal end of the tubular axle, and a commutator is secured at the proximal end of the tubular axle;
a housing mounted on the bearing sets through adaptors; the common ring constructed in two pieces and independently removable from axle,
connecting bars extending axially within axle; lateral rods joined to connecting bars at distal end thereof, the lateral rods commuting between bars and segments of commutator with distal ends joined with lateral plates;
a plurality of electromagnetic coils secured to the mounting rings, the coils formed of spiral turns of a single flat strip electrically conductive material; and
a plurality of peripheral and sector magnets mounted adjacent to the electromagnetic coils.
2. The rotating electromagnetic machine of claim 1 assembled with a modular construction with coil housings of a ferromagnetic material separated into a plurality of magnetically isolated segments in mutual electrical continuity, whereby hysteresis is minimized.
3. The rotating electromagnetic machine of claim 1 wherein each of the peripheral and sector magnets has edges cut in a shape that enables a continuous magnetic pole face and avoids an alternating magnetic end effect at opposing ends of the magnet, whereby, induced eddy currents of the ferromagnetic segments are returned to the electrical circuit thereof.
4. A rotating electromagnetic machine comprising:
an axle;
a plurality of electromagnetic coils, each mounted on a separate core, and wherein each of the plurality of electromagnetic coils are mounted on separate coil housings of ferromagnetic material which are separated in into a plurality of segments magnetically isolated from each other but in electrical continuity, wherein the coil housings are mounted on the axle, wherein each of said coils has a winding axis tangential to a direction of rotation of the machine;
a plurality of sets of peripheral and sector magnets, said magnet sets positioned adjacent to the coils wherein each said magnet set has two of said sector magnets in mutually opposing and facing positions and at least one of said peripheral magnets positioned orthogonal to the sector magnets;
wherein said plurality of electromagnetic coils and said plurality of magnet sets are engaged for relative rotation between the coils and the sets of magnets.
5. The machine of claim 4 wherein the magnet sets are mounted in a housing, said housing secured on bearing sets engaged with said axle thereby enabling relative rotation between the housing and the axle.
6. The machine of claim 4 wherein the peripheral magnets each have at least two opposing chamfered edges.
7. A rotating electromagnetic machine comprising:
an axle;
a plurality of electromagnetic coils, each mounted on separate cores, and wherein each of the plurality of electromagnetic coils are mounted on separate coil housings of ferromagnetic material which are magnetically isolated from each other but in electrical continuity, wherein the coil housings are mounted circularly on the axle, wherein each of said coils has a winding axis tangential to a direction of rotation of the machine;
a plurality of sets of peripheral and sector magnets, said magnet sets mounted circularly and positioned adjacent to the coils with each magnet set having pole faces of two of said peripheral magnets facing radially and orthogonal to the sector magnets; and
wherein said plurality of electromagnetic coils and said plurality of magnet sets are engaged for relative rotation there between.
8. The machine of claim 7 wherein the magnet sets are mounted in a housing, said housing secured on bearing sets engaged with said axle thereby enabling relative rotation between the housings and the axle.
9. The machine of claim 7 wherein the coils are engaged with the axle.
10. The machine of claim 7 wherein the peripheral magnets each have at least two chamfered edges.
11. A rotating electromagnetic machine comprising:
an axle;
a plurality of electromagnetic coils, each with separate cores, and wherein each of the plurality of electromagnetic coils are mounted on coil housings of ferromagnetic material magnetically isolated from each other but in electrical continuity, wherein the coil housings are mounted on the axle, wherein each of said coils has a winding axis tangential to a direction of rotation of the machine;
a plurality of sets of peripheral and sector magnets, said magnet sets positioned adjacent to the coils and at least one of said peripheral magnets positioned orthogonal to the sector magnets;
wherein said plurality of electromagnetic coils and said plurality of magnet sets are engaged for relative rotation between the coils and the sets of magnets.
12. The machine of claim 11 wherein each said magnet sets has two of said sector magnets in mutually opposing and facing positions.
13. The machine of claim 11 configured as a motor.
14. The machine of claim 11 configured as a generator.
15. The machine of claim 11 wherein the electromagnetic coils are wound with insulated conductive wire.
16. The machine of claim 11 wherein the electromagnetic coils are wound with insulated flat conductive strip.
17. The machine of claim 11 wherein the electromagnetic coils are joined in electrical parallel interconnection.
18. The machine of claim 11 wherein the electromagnetic coils are formed from a solid block of conductive material.
19. The machine of claim 11 wherein the electromagnetic coils are mounted on one of the rotating and non-rotating aspects of the machine.
20. The machine of claim 11 wherein the magnet sets are mounted on one of the rotating and the non-rotating aspects of the machine.
US14/447,523 2007-07-09 2008-07-09 Electromagnetic machine with independent removable coils, modular parts and self sustained passive magnetic bearing Active 2029-01-22 USRE46449E1 (en)

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Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10256680B2 (en) 2012-03-20 2019-04-09 Linear Labs, LLC Multi-tunnel electric motor/generator
US10263480B2 (en) 2012-03-20 2019-04-16 Linear Labs, LLC Brushless electric motor/generator
US10284029B2 (en) 2012-03-20 2019-05-07 Linear Labs, LLC Brushed electric motor/generator
US10447103B2 (en) 2015-06-28 2019-10-15 Linear Labs, LLC Multi-tunnel electric motor/generator
US10476362B2 (en) 2015-06-28 2019-11-12 Linear Labs, LLC Multi-tunnel electric motor/generator segment
USRE48211E1 (en) 2007-07-09 2020-09-15 Clearwater Holdings, Ltd. Electromagnetic machine with independent removable coils, modular parts and self-sustained passive magnetic bearing
US11159076B2 (en) 2015-10-20 2021-10-26 Linear Labs, Inc. Circumferential flux electric machine with field weakening mechanisms and methods of use
US11218046B2 (en) 2012-03-20 2022-01-04 Linear Labs, Inc. DC electric motor/generator with enhanced permanent magnet flux densities
US11277062B2 (en) 2019-08-19 2022-03-15 Linear Labs, Inc. System and method for an electric motor/generator with a multi-layer stator/rotor assembly
US11309778B2 (en) 2016-09-05 2022-04-19 Linear Labs, Inc. Multi-tunnel electric motor/generator

Families Citing this family (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10230292B2 (en) 2008-09-26 2019-03-12 Clearwater Holdings, Ltd Permanent magnet operating machine
US10505412B2 (en) 2013-01-24 2019-12-10 Clearwater Holdings, Ltd. Flux machine
US20140354106A1 (en) * 2013-06-03 2014-12-04 Hamilton Sundstrand Corporation Reduction of leakage flux in electrical machines
CN103393436B (en) * 2013-07-31 2015-09-16 深圳先进技术研究院 The fan-shaped pendulous device of machinery
AU2015292613A1 (en) 2014-07-23 2017-01-19 Clearwater Holdings, Ltd. Flux machine
EP3669391A4 (en) 2017-09-08 2021-05-26 Clearwater Holdings, Ltd. Systems and methods for enhancing electric storage
CN116436188A (en) 2017-10-29 2023-07-14 清水控股有限公司 Modular electromagnetic machine and method of use and manufacture thereof
KR102506864B1 (en) 2017-12-12 2023-03-08 현대자동차주식회사 Apparatus for varying a transparency of window glass using wireless power transfer

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4458228A (en) * 1980-10-29 1984-07-03 Pierburg Gmbh & Co. Kg. Rotary positioning apparatus and associated methods, such as for a carburetor choke valve
US5894902A (en) 1996-09-05 1999-04-20 The United States Of America As Represented By The Secretary Of The Navy Self-propelled wheel for wheeled vehicles
US5977684A (en) * 1998-06-12 1999-11-02 Lin; Ted T. Rotating machine configurable as true DC generator or motor
US6011339A (en) * 1996-01-18 2000-01-04 Shibaura Engineering Works Co., Ltd. Motor mounted in a vehicle
US6414408B1 (en) * 1992-04-06 2002-07-02 General Electric Company Integral motor and control
US20040061397A1 (en) 2001-08-06 2004-04-01 Mitchell Rose Ring-shaped motor core
US20070228860A1 (en) * 2006-03-31 2007-10-04 Rao Dantam K Three-gapped motor with outer rotor and stationary shaft
US7633198B2 (en) * 2005-03-16 2009-12-15 Robert Ernest Kirkman 50 DN alternator stator terminal insulator apparatus
US7755244B2 (en) * 2007-05-11 2010-07-13 Uqm Technologies, Inc. Stator for permanent magnet electric motor using soft magnetic composites

Family Cites Families (159)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR1464391A (en) 1965-01-21 1966-12-30 Lloyd Dynamowerke Gmbh Electric disc machine
JPS4934082B1 (en) 1969-08-05 1974-09-11
JPS4934082A (en) 1972-07-31 1974-03-29
US4185366A (en) 1973-12-06 1980-01-29 Wickman Machine Tool Sales Ltd. Spindle drives for multi spindle lathes
FR2425751A1 (en) 1978-05-11 1979-12-07 Valbrev Sarl CONTINUOUS CURRENT MOTOR UNIT WITHOUT COLLECTOR
DE2822315A1 (en) 1978-05-22 1979-12-06 Papst Motoren Kg COLLECTORLESS DC MOTOR
US4626751A (en) 1978-05-22 1986-12-02 Papst-Motoren Gmbh & Co Kg Direct-current motor without commutator
US4185365A (en) * 1978-09-08 1980-01-29 General Electric Company Method of making stationary anode x-ray tube with brazed anode assembly
JPS55160964A (en) 1979-06-01 1980-12-15 Kenkichi Tsukamoto Dc motor
JPS5725151A (en) 1980-07-22 1982-02-09 Matsushita Electric Ind Co Ltd Linear motor
US4441043A (en) 1980-11-24 1984-04-03 Decesare Dominic Compound interaction/induction electric rotating machine
DE3142913A1 (en) * 1981-10-29 1983-05-11 Herbert Prof. Dr.-Ing. 3300 Braunschweig Weh Electrical machine having an annular winding armature and permanently excited rotors
DE3342031B4 (en) 1982-11-23 2005-01-13 Papst Licensing Gmbh & Co. Kg Circuit arrangement for speed control of an electric motor
IT1198556B (en) 1983-04-15 1988-12-21 Giampiero Tassinario DIRECT CURRENT MOTOR WITHOUT ELECTRONICALLY COMMUTED MANIFOLD
JPS61161952A (en) 1985-01-09 1986-07-22 Yaskawa Electric Mfg Co Ltd 3-phase linear inductor type motor
US4802690A (en) 1986-11-12 1989-02-07 Raidel John E Suspension assembly for steer axle with single air spring mounted directly over the axle
DE3705089A1 (en) 1987-02-13 1988-08-25 Weh Herbert TRANSVERSAL FLOWING MACHINE IN COLLECTOR ARRANGEMENT
US4924156A (en) 1987-05-27 1990-05-08 Papst-Motoren Gmbh & Co. Kg Driver circuit for a D.C. motor without commutator
KR910002245B1 (en) 1988-07-29 1991-04-08 삼성전기 주식회사 Brushless coreless dc motor
JPH0756605Y2 (en) * 1989-10-31 1995-12-25 神鋼電機株式会社 Inductor type multi-pole AC motor for driving unmanned vehicles
US5130583A (en) 1989-11-13 1992-07-14 Ricoh Company, Ltd. Linear motor
US5280209A (en) * 1989-11-14 1994-01-18 The United States Of America As Represented By The Secretary Of The Army Permanent magnet structure for use in electric machinery
SE463061B (en) 1989-11-20 1990-10-01 Svante Gustav Adolf Von Zweygb PERMANENT MAGNETIZED SYNCHRON MACHINE DESIGNED ACCORDING TO THE PRINCIPAL TRANSFORM FLOW PRINCIPLE
KR0130755B1 (en) 1990-01-25 1998-04-14 요시유키 나이토 Broadband wave absorber
FR2664105B1 (en) 1990-07-02 1995-06-09 Radio Energie ROTARY STEPPER MOTOR WITH VARIABLE RELUCTANCE WITH TRANSVERSE FLOW.
US5142181A (en) 1990-07-09 1992-08-25 Newell Stanley E Direct current dynamo
JPH04359656A (en) 1990-07-31 1992-12-11 Sony Corp Rotor yoke
JPH05504045A (en) 1990-11-23 1993-06-24 ヨツト、エム、フオイト、ゲーエムベーハー electric machine
US5128570A (en) 1991-06-24 1992-07-07 Japan Servo Co., Ltd. Permanent magnet type stepping motor
US5751089A (en) 1992-01-29 1998-05-12 Stridsberg Innovation Ab Brushless DC motors/generators
JP3834068B2 (en) 1992-06-18 2006-10-18 アキレス株式会社 Manufacturing method of static eliminator
US5474799A (en) 1992-10-13 1995-12-12 Reliance Electric Industrial Company Apparatus and method for coating an electromagnetic coil
US5625241A (en) 1994-07-28 1997-04-29 Energy Research Corporation Carousel electric generator
DE19522382C1 (en) 1995-06-23 1996-12-19 Voith Gmbh J M Transversal flux machine for use in a direct drive for vehicles, in particular rail drive
US5708310A (en) 1995-07-24 1998-01-13 Japan Servo Co., Ltd. Permanent magnet type stepping motor
GB2305021A (en) 1995-08-29 1997-03-26 Custom Dev Ltd Stator winding lay-out for an electric motor
US5942828A (en) 1995-12-16 1999-08-24 Hill; Wolfgang Transverse flux machine
JP2000508878A (en) * 1996-04-18 2000-07-11 シラー,ヘルムート DC electric machine
JPH09322518A (en) 1996-05-28 1997-12-12 Mitsubishi Electric Corp Synchronous linear motor using permanent magnet
US6043579A (en) 1996-07-03 2000-03-28 Hill; Wolfgang Permanently excited transverse flux machine
US5973436A (en) 1996-08-08 1999-10-26 Rolls-Royce Power Engineering Plc Electrical machine
RU2131637C1 (en) 1998-02-04 1999-06-10 Караваев Виктор Терентьевич Electric machine
KR19990013313A (en) 1998-02-11 1999-02-25 이이수 Variable Voltage Outputless Rectifier DC Motor
US6222287B1 (en) 1998-11-06 2001-04-24 Canon Kabushiki Kaisha Motor
DE29903907U1 (en) * 1999-03-05 2000-07-13 Schiller Helmut Electric DC machine
GB0001121D0 (en) 2000-01-19 2000-03-08 Rolls Royce Plc Rotor disc
US6492758B1 (en) 2000-02-25 2002-12-10 Fisher & Paykel Limited Polyphase transverse flux motor
US6611078B1 (en) 2000-07-19 2003-08-26 Tri-Seven Research, Inc. Flux diode motor
JP3983509B2 (en) * 2000-08-01 2007-09-26 Ntn株式会社 Wheel bearing device
DE10037787B4 (en) 2000-08-03 2005-04-14 Landert-Motoren-AG, Bülach Permanent magnet synchronous machine
DE10062073A1 (en) 2000-12-13 2002-06-20 Bosch Gmbh Robert Unipolar transverse flux
US6952068B2 (en) 2000-12-18 2005-10-04 Otis Elevator Company Fabricated components of transverse flux electric motors
JP2001211623A (en) 2000-12-21 2001-08-03 Nitto Zoki Kk Flat motor
GB2372157B (en) 2001-02-09 2005-07-06 Rolls Royce Plc A gas turbine with an electrical machine
JP2002325421A (en) 2001-02-23 2002-11-08 Canon Inc Linear motor, stage apparatus using the same aligner, and device manufacturing method
DE10109774A1 (en) 2001-03-01 2002-09-05 Deere & Co Transversalflussantrieb
US6879149B2 (en) * 2001-03-13 2005-04-12 Ntn Corporation Wheel support bearing assembly
US7312549B2 (en) 2001-05-08 2007-12-25 Aalborg Universitet Transverse flux machine with stator made of e-shaped laminates
US6522035B1 (en) 2001-07-05 2003-02-18 Anorad Corporation Forcer and associated three phase linear motor system
JP3694659B2 (en) 2001-07-16 2005-09-14 株式会社日立製作所 Magnet, magnetic field adjusting method thereof, and magnetic resonance imaging apparatus
US6605886B2 (en) 2001-07-31 2003-08-12 General Electric Company High temperature superconductor synchronous rotor coil support insulator
DE10140303A1 (en) 2001-08-16 2003-02-27 Bosch Gmbh Robert Unipolar transversal flux machine has rotor module provided by rotor rings with outer teeth fitted around permanent magnet rings magnetized radially in opposite directions
KR100440389B1 (en) 2001-12-26 2004-07-14 한국전기연구원 A 2-phase Transverse Flux Linear Motor With Permanent Magnet Excitation
WO2003065554A1 (en) 2002-01-25 2003-08-07 California Linear Devices, Inc. Bearing surface layer for magnetic motor
DE10215251A1 (en) 2002-04-06 2003-10-16 Bosch Gmbh Robert Electrical machine, in particular permanent magnet excited motors
US6891306B1 (en) 2002-04-30 2005-05-10 Wavecrest Laboratories, Llc. Rotary electric motor having both radial and axial air gap flux paths between stator and rotor segments
CN100358225C (en) 2002-06-26 2007-12-26 阿莫泰克有限公司 Brushless direct-current motor of radial core type having a structure of double rotors and method for making the same
JP2004129339A (en) * 2002-09-30 2004-04-22 Mitsubishi Electric Corp Dc motor and manufacturing method thereof
CN1714493B (en) 2002-11-18 2010-10-06 精工爱普生株式会社 Magnetic structure and motor ,driver comprising said motor and method for driving magnetic structure
GB0228642D0 (en) 2002-12-07 2003-01-15 Rolls Royce Plc An electrical machine
AU2003297550A1 (en) * 2003-01-02 2004-07-29 Joseph Ronald Segal Electric motor
JP4194383B2 (en) 2003-02-13 2008-12-10 キヤノン株式会社 Linear motor
JP2006526375A (en) 2003-05-27 2006-11-16 オーチス エレベータ カンパニー Modular transverse flux motor with integrated brake
US6924574B2 (en) 2003-05-30 2005-08-02 Wisconsin Alumni Research Foundation Dual-rotor, radial-flux, toroidally-wound, permanent-magnet machine
US20080246362A1 (en) 2003-06-12 2008-10-09 Hirzel Andrew D Radial airgap, transverse flux machine
US20040251759A1 (en) 2003-06-12 2004-12-16 Hirzel Andrew D. Radial airgap, transverse flux motor
JP4292050B2 (en) * 2003-10-27 2009-07-08 本田技研工業株式会社 Rotating electric machine stator
JP2005150305A (en) 2003-11-13 2005-06-09 Smc Corp Electromagnetic actuator
JP2005151725A (en) 2003-11-17 2005-06-09 Equos Research Co Ltd Axial gap rotary electric machine
US8110950B2 (en) 2003-12-09 2012-02-07 Toshiba Kikai Kabushiki Kaisha Coreless linear motor having a non-magnetic reinforcing member
JP2005261135A (en) 2004-03-12 2005-09-22 Seiko Epson Corp Motor and drive control system of the same
JP2005287103A (en) 2004-03-26 2005-10-13 Ceremo:Kk Power generator
GB0412085D0 (en) 2004-05-29 2004-06-30 Univ Durham Axial-flux, permanent magnet electrical machine
JP4112535B2 (en) 2004-07-30 2008-07-02 株式会社一宮電機 Stator and brushless motor
US7081696B2 (en) 2004-08-12 2006-07-25 Exro Technologies Inc. Polyphasic multi-coil generator
US20060038456A1 (en) * 2004-08-20 2006-02-23 Dumitru Bojiuc Monopole field electric motor generator
JP2006067650A (en) 2004-08-25 2006-03-09 Fujitsu General Ltd Axial gap motor
JP2006280066A (en) 2005-03-29 2006-10-12 Toyota Motor Corp Stator and rotary electric machine
DE102005020952A1 (en) 2005-05-04 2006-11-16 Bosch Rexroth Aktiengesellschaft Phase module for a transverse flux machine
AU2006264181B2 (en) 2005-06-29 2011-01-27 Eocycle Technologies Inc. Transverse flux electrical machine with segmented core stator
CN1734881A (en) 2005-06-29 2006-02-15 陆孝庭 Brushless rotary motor
US8159104B1 (en) 2005-08-22 2012-04-17 Clearwater Holdings, Ltd DC induction electric motor-generator with magnetic gap self commutating laminated ferromagnetic rotating core
US8074922B2 (en) 2005-08-22 2011-12-13 Dumitru Bojiuc Discoidal flying craft
DE102006012215A1 (en) 2006-03-16 2007-09-20 Mtu Aero Engines Gmbh Transverse flux machine and turbomachinery with such Transversalflussmaschie
KR100663641B1 (en) 2006-04-06 2007-01-05 주식회사 아모텍 Method for making integrated stator, brushless direct current motor of radial core type having a structure of double rotors and method for making the same using the method
DE102006022836A1 (en) 2006-05-16 2007-11-22 Minebea Co., Ltd. Stator arrangement and rotor arrangement for a transverse flux machine
US7443642B2 (en) 2006-05-26 2008-10-28 Pratt & Whitney Canada Corp. Electric motor control
GB2438443A (en) 2006-05-27 2007-11-28 Converteam Ltd Rotor magnet retaining arrangement suitable for low-speed large-diameter electrical generators
JP2009540776A (en) 2006-06-08 2009-11-19 エクスロ テクノロジーズ インコーポレイテッド Multiphase multiple coil generator
WO2008005170A2 (en) 2006-06-13 2008-01-10 Board Of Regents, The University Of Texas System Rotor assembly and method of assembling a rotor of a high speed electric machine
US7719147B2 (en) 2006-07-26 2010-05-18 Millennial Research Corporation Electric motor
JP2008035604A (en) 2006-07-27 2008-02-14 Sumitomo Heavy Ind Ltd Gm freezer, pulse tube freezer, cryopump, mri device, super-conductive magnet system, nmr device, and freezer for cooling of semiconductor
JP4887128B2 (en) 2006-12-07 2012-02-29 日立オートモティブシステムズ株式会社 Rotating electric machine
KR100860606B1 (en) 2006-12-28 2008-09-26 한국전기연구원 Inner rotor type permanent magnet excited transverse flux motor
DE102006062613A1 (en) 2006-12-29 2008-07-03 Thoms, Michael, Dr. Permanent magnet machine e.g. synchronous motor, for e.g. separating air/liquid/solid mixtures, has rotor sided permanent magnets with number of poles for each number of revolution, and stator-sided armature windings extending over rotors
US20100101879A1 (en) 2007-02-14 2010-04-29 Mcvickers Jack C Motor Battery Systems
US7492074B1 (en) 2007-03-30 2009-02-17 Norman Rittenhouse High-efficiency wheel-motor utilizing molded magnetic flux channels with transverse-flux stator
US8283813B2 (en) 2007-06-27 2012-10-09 Brooks Automation, Inc. Robot drive with magnetic spindle bearings
USRE48211E1 (en) 2007-07-09 2020-09-15 Clearwater Holdings, Ltd. Electromagnetic machine with independent removable coils, modular parts and self-sustained passive magnetic bearing
US20090026869A1 (en) 2007-07-24 2009-01-29 Christian Kaehler Transverse flux reluctance machine and method for manufacturing same
CA2692732A1 (en) 2007-07-27 2009-02-05 Mark T. Holtzapple Short-flux path motors / generators
TW200919903A (en) 2007-08-11 2009-05-01 Clearwater Holdings Ltd Electrical commutator with segmented brushes
GB0717746D0 (en) 2007-09-12 2007-10-24 Univ Edinburgh Magnetic flux conducting unit
US8288916B2 (en) 2007-09-13 2012-10-16 Eric Stephane Quere Composite electromechanical machines with uniform magnets
JP5033552B2 (en) 2007-09-14 2012-09-26 信越化学工業株式会社 Axial gap type coreless rotating machine
US7880356B2 (en) 2007-10-02 2011-02-01 Seiko Epson Corporation Brushless electric machine
US8264120B2 (en) 2007-11-20 2012-09-11 Ut-Battelle, Llc Permanent-magnet-less synchronous reluctance system
US8110961B2 (en) 2007-11-20 2012-02-07 Ut-Battelle, Llc Permanent-magnet-less machine having an enclosed air gap
EP2063114A1 (en) 2007-11-26 2009-05-27 Siemens Aktiengesellschaft Wind turbine
EP2063116B1 (en) 2007-11-26 2016-12-28 Siemens Aktiengesellschaft Direct drive generator and wind turbine
US7772741B1 (en) 2007-11-30 2010-08-10 Rittenhouse Norman P Wind turbine generator
CA2710706C (en) 2007-12-28 2013-03-05 Clean Current Power Systems Incorporated Hybrid electric power system with distributed segmented generator/motor
US7579742B1 (en) 2008-01-17 2009-08-25 Norman Rittenhouse High-efficiency parallel-pole molded-magnetic flux channels transverse wound motor-dynamo
EP2081276A1 (en) 2008-01-21 2009-07-22 Marco Cipriani Electro-magnetical device with reversible generator-motor operation
JP5221966B2 (en) 2008-01-31 2013-06-26 本田技研工業株式会社 Coil assembly for rotating electrical machine, stator for rotating electrical machine, and rotating electrical machine
KR100943701B1 (en) 2008-02-05 2010-02-25 성삼경 Electric motor
JP5161612B2 (en) 2008-02-22 2013-03-13 株式会社東芝 Permanent magnet type rotating electrical machine, method for assembling permanent magnet type rotating electrical machine, and method for disassembling permanent magnet type rotating electrical machine
JP4926107B2 (en) 2008-03-28 2012-05-09 株式会社豊田中央研究所 Rotating electric machine
WO2009139278A1 (en) 2008-05-14 2009-11-19 三菱電機株式会社 Magnetic inductor type rotary machine, and fluid transfer device using the rotary machine
JP4505524B2 (en) 2008-07-22 2010-07-21 本田技研工業株式会社 Power equipment
JP5105201B2 (en) 2008-07-30 2012-12-26 Tdk株式会社 Angle detection apparatus and angle detection method
GB0814400D0 (en) 2008-08-08 2008-09-10 Rolls Royce Plc Magnetic gear arrangement
IT1392883B1 (en) 2008-09-03 2012-04-02 Lenzi METHOD FOR ASSEMBLY OF THE ROTOR OF A ROTATING ELECTRIC MACHINE
IT1391500B1 (en) 2008-09-03 2011-12-30 Lenzi ROTATING ELECTRIC MACHINE
EP2164154A1 (en) 2008-09-15 2010-03-17 Siemens Aktiengesellschaft Stator arrangement, generator and wind turbine
JP5556000B2 (en) 2008-10-15 2014-07-23 パナソニック株式会社 Dual rotor motor
US7812500B1 (en) 2008-11-12 2010-10-12 Demetrius Calvin Ham Generator / electric motor
US8390168B2 (en) 2008-11-20 2013-03-05 Ut-Battelle, Llc Permanent-magnet-less machine having an enclosed air gap
GB0900022D0 (en) 2009-01-05 2009-02-11 Rolls Royce Plc Management gear arrangement
US8188633B2 (en) 2009-01-05 2012-05-29 Eric Stephane Quere Integrated composite electromechanical machines
WO2010081560A1 (en) 2009-01-14 2010-07-22 Amsc Windtec Gmbh Generator, nacelle, and mounting method of a nacelle of a wind energy converter
GB0904434D0 (en) 2009-03-13 2009-04-29 Switched Reluctance Drives Ltd An electrical machine with dual radial airgaps
US7791245B1 (en) 2009-03-24 2010-09-07 Gm Global Technology Operations, Inc. Optimized electric machine for smart actuators
CN101867071B (en) 2009-04-16 2013-04-24 深圳富泰宏精密工业有限公司 Charging device
US8207644B2 (en) 2009-07-14 2012-06-26 Hamilton Sundstrand Corporation Hybrid cascading lubrication and cooling system
US8373319B1 (en) 2009-09-25 2013-02-12 Jerry Barnes Method and apparatus for a pancake-type motor/generator
JP5507967B2 (en) 2009-11-09 2014-05-28 株式会社日立製作所 Rotating electric machine
CN101741223A (en) 2009-11-10 2010-06-16 王元昌 Induced variable-reluctance alternating-current generator
US20120299430A1 (en) 2009-12-22 2012-11-29 Hoganas Ab (Publ) Rotor for modulated pole machine
WO2011080357A1 (en) 2009-12-30 2011-07-07 Fundacion Robotiker Direct-action superconducting synchronous generator for a wind turbine
JP5146698B2 (en) 2010-03-16 2013-02-20 株式会社安川電機 Rotating electric machine
US8847451B2 (en) 2010-03-23 2014-09-30 Calnetix Technologies, L.L.C. Combination radial/axial electromagnetic actuator with an improved axial frequency response
TWI388108B (en) 2010-05-06 2013-03-01 Ind Tech Res Inst Adjustable axial-flux thin-plate motor
US20130270955A1 (en) 2010-10-08 2013-10-17 Global Motors Invent Pty Ltd Electromagnetic machine
US20120228977A1 (en) 2011-03-09 2012-09-13 Nova Torque, Inc. Rotor-stator structures with an outer rotor for electrodynamic machines
CN102801265B (en) 2011-05-26 2016-12-14 德昌电机(深圳)有限公司 Motor
FR3000851B1 (en) 2013-01-09 2015-02-13 Eurocopter France ELECTRICAL MACHINE WITH SEVERAL INTERFERS AND 3D MAGNETIC FLUX
US10505412B2 (en) 2013-01-24 2019-12-10 Clearwater Holdings, Ltd. Flux machine
AU2015292613A1 (en) 2014-07-23 2017-01-19 Clearwater Holdings, Ltd. Flux machine

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4458228A (en) * 1980-10-29 1984-07-03 Pierburg Gmbh & Co. Kg. Rotary positioning apparatus and associated methods, such as for a carburetor choke valve
US6414408B1 (en) * 1992-04-06 2002-07-02 General Electric Company Integral motor and control
US6011339A (en) * 1996-01-18 2000-01-04 Shibaura Engineering Works Co., Ltd. Motor mounted in a vehicle
US5894902A (en) 1996-09-05 1999-04-20 The United States Of America As Represented By The Secretary Of The Navy Self-propelled wheel for wheeled vehicles
US5977684A (en) * 1998-06-12 1999-11-02 Lin; Ted T. Rotating machine configurable as true DC generator or motor
US20040061397A1 (en) 2001-08-06 2004-04-01 Mitchell Rose Ring-shaped motor core
US7633198B2 (en) * 2005-03-16 2009-12-15 Robert Ernest Kirkman 50 DN alternator stator terminal insulator apparatus
US20070228860A1 (en) * 2006-03-31 2007-10-04 Rao Dantam K Three-gapped motor with outer rotor and stationary shaft
US7755244B2 (en) * 2007-05-11 2010-07-13 Uqm Technologies, Inc. Stator for permanent magnet electric motor using soft magnetic composites

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
Decision of Rejection mailed Jan. 1, 2016. Japanese Patent Application No. JP2014-111950.
Decision of Rejection mailed Jan. 26, 2016. Japanese Patent Application No. JP2014-111950.

Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USRE49413E1 (en) 2007-07-09 2023-02-07 Clearwater Holdings, Ltd. Electromagnetic machine with independent removable coils, modular parts and self-sustained passive magnetic bearing
USRE48211E1 (en) 2007-07-09 2020-09-15 Clearwater Holdings, Ltd. Electromagnetic machine with independent removable coils, modular parts and self-sustained passive magnetic bearing
US20220190661A1 (en) * 2012-03-20 2022-06-16 Linear Labs, Inc. Dc electric motor/generator with enhanced permanent magnet flux densities
US10263480B2 (en) 2012-03-20 2019-04-16 Linear Labs, LLC Brushless electric motor/generator
US10284029B2 (en) 2012-03-20 2019-05-07 Linear Labs, LLC Brushed electric motor/generator
US10439452B2 (en) 2012-03-20 2019-10-08 Linear Labs, LLC Multi-tunnel electric motor/generator
US10256680B2 (en) 2012-03-20 2019-04-09 Linear Labs, LLC Multi-tunnel electric motor/generator
US11387692B2 (en) 2012-03-20 2022-07-12 Linear Labs, Inc. Brushed electric motor/generator
US11218038B2 (en) 2012-03-20 2022-01-04 Linear Labs, Inc. Control system for an electric motor/generator
US11218046B2 (en) 2012-03-20 2022-01-04 Linear Labs, Inc. DC electric motor/generator with enhanced permanent magnet flux densities
US11374442B2 (en) 2012-03-20 2022-06-28 Linear Labs, LLC Multi-tunnel electric motor/generator
US10447103B2 (en) 2015-06-28 2019-10-15 Linear Labs, LLC Multi-tunnel electric motor/generator
US11258320B2 (en) 2015-06-28 2022-02-22 Linear Labs, Inc. Multi-tunnel electric motor/generator
US10476362B2 (en) 2015-06-28 2019-11-12 Linear Labs, LLC Multi-tunnel electric motor/generator segment
US11159076B2 (en) 2015-10-20 2021-10-26 Linear Labs, Inc. Circumferential flux electric machine with field weakening mechanisms and methods of use
US11309778B2 (en) 2016-09-05 2022-04-19 Linear Labs, Inc. Multi-tunnel electric motor/generator
US11277062B2 (en) 2019-08-19 2022-03-15 Linear Labs, Inc. System and method for an electric motor/generator with a multi-layer stator/rotor assembly

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