Electric motors and electric generators are examples of electric machines. An electric motor uses electrical energy to produce mechanical energy. The reverse process that uses mechanical energy to produce electrical energy is accomplished by a generator or alternator. Electric motor and electric generator have stationary and rotary part—the stationary part is a stator, and non-stationary part is a rotor. Stator and rotor are coupled electromagnetically, through magnetic fields that are formed on stator and rotor. Depending on the configuration of a spinning electromotive device the stator may act as the field winding, interacting with the armature to create motion, or it may act as the armature, receiving its influence from moving magnetic field on the rotor.
Features of exemplary implementations of the invention will become apparent from the description, the claims, and the accompanying drawings in which:
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The stator 102 in an example comprises one or more coils 108, one or more stator conveyors 126, and a stator support 114. The stator conveyor 126 serves to carry the coolant 104. The coil 108 comprises a winding 110 and a hollow spool 112. The rotor 106 in an example comprises one or more rotor rails 118, carrying a plurality of permanent magnets 116, and a rotor support 120. The rotor 106 in an example is electromagnetically coupled to the stator 102. The electromagnetic coupling is provided through magnetic fields created via one or more of the coils 108 on the stator 102 and the plurality of permanent magnets 116 on the rotor 106.
The electromagnetic coupling in an example comprises two or more coils 108, the coolant 104, and at least one permanent magnet 116 of the plurality of permanent magnets 116. The two or more coils 108, the coolant 104, and at least one permanent magnet 116 in an example comprise electromagnetically complementary shapes. Complementary shapes in an example means that at least one coil 108 and at least one permanent magnet 116 comprise facing surfaces that are spaced apart substantially uniformly. For example,
Complementary in an example means that at least one coil 108, the coolant 104, and the at least one permanent magnet 116 serve to create an electromagnetic coupling that is substantially uniform. Exemplary uniformity in the magnetic field causes a majority of the magnetic field coming from the rotor 106 to be coupled with the stator 102.
The winding 110 in an example comprises a material that conducts electricity. The hollow spool 112 in an example comprises magnetic and/or non-magnetic material. At least one coil 108 in an example comprises a plurality of windings 110 about the hollow spool 112. The plurality of windings 110 in an example has each winding 110 disconnected from a remainder of the plurality of windings. For example, the plurality of winding 110 is placed in the space directly and/or right across one or more permanent magnets 116. For example, one to fifteen windings 110 may be located in the space right across one or more permanent magnets 116. For example,
The winding 110 in an example comprises a plurality of turns around the hollow spool 112. One or more implementations may employ a variety of ranges of turns of the winding 110 about the hollow spool 112. There can be different ranges or sub-ranges of numbers of turns of the winding 110 about the hollow spool 112; for example, a first range or sub-range is between 1 and 1,500 turns; for example, a second range or sub-range is between 1,501 and 4,500 turns; for example, a third range or sub-range is between 4,501 and 10,000 turns; for example, a fourth range or sub-range is between 10,001 and 50,000 turns; for example, a fifth range or sub-range is between 50,001 and 150,000 turns.
The hollow spool 112 in an example comprises one or more stator conveyors 126. The stator conveyor 126 in an example comprises continuous and/or discrete portions that comprise one or more windings 110 and the coolant 104. For example,
The coolant 104 comprises one or more of gas, air, liquid, water, solid, magnetic material, and/or iron. Gas, air, liquid, and/or water may be circulating naturally, or supplied by an external source (not shown), as will be appreciated by those skilled in the art. The coolant 104 may reside inside the hollow spool 112 or within the stator conveyor 126. For example,
The coolant 104 as gas, air, liquid and/or water may serve to decrease the temperature of the hollow spool 112 and one or more windings 110. The coolant 104 as magnetic material and/or iron may serve to change the frequency and the amplitude of magnetic flux and magnetic field between the stator 102 and the rotor 106.
One or more implementations of the stator support 114 may comprise magnetic and/or non-magnetic material of different shapes that may be coordinated with the targeted surrounding and/or environment of the apparatus 100. For example,
The rotor rail 118 in an example comprises magnetic and/or non-magnetic material. Permanent magnets 116 are located on the one or more rotor rails 118. There can be different range in number of permanent magnets 116. For example, the range is between two and one hundred permanent magnets 116 on each rotor rail 118. For example,
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Another implementation in an example may comprise a first permanent magnet 116 and a second permanent magnet 116, wherein the first permanent magnet 116 and the second permanent magnet 116 comprise an opposite polarity. One or more implementations of the rotor support 120 may comprise one or more rotor rails 118 and a shaft 124. The rotor support 120 comprises magnet and/or non-magnetic materials of different shapes that may be coordinated with the targeted surrounding and/or environment of the apparatus 100. For example,
A magnetic field is providing electromagnetic coupling between the stator 102 and the rotor 106. Magnetic field is the result of the current in the winding 108 and rotation of the permanent magnets 116. The frequency and the amplitude of this magnetic field change with the change of the current in the windings 110 of the stator 102, and the change of the rotational speed of the permanent magnets 116 mounted on the rotor rails 118. The amplitude of the magnetic field can be increased because of the coolant 104; for example, the coolant 104 that comprises gas, air, liquid, and/or water provides possibilities for higher amplitudes of current in the windings 110 of the stator 102; for example, the coolant 104 that comprises magnetic material provides possibilities for higher magnetic field through the coolant 104.
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In an example, the feedback signal 132 is received at the controller 128 from the power converter 130, the stator 102 and/or the rotor 106. The feedback signal 132 represents a status of one or more windings 110 of the stator 102 and the coolant 104. The feedback signal 132 is employed at the controller 128 to adjust the control signal 134. The control signal 134 is sent from the controller 128 to the power converter 130. The control signal 134 is employed at the power converter 130 to turn ON or turn OFF a current in the one or more windings 110 of the stator 102. A rotation of the rotor 106 and the current in the one or more windings 110 of the stator 102 serve to create an electromagnetic coupling between the stator 102 and the rotor 106.
The feedback signal is employed at the controller to adjust a control signal. The control signal 134 is sent from the controller to a power converter. The control signal is employed at the power converter to turn ON or turn OFF a current in the one or more windings of the stator. A rotation of the rotor and the current in the one or more windings of the stator serve to create magnetic fields that provide electromagnetic coupling between the stator 102 and the rotor 106.
For example, one implementation of apparatus 100 comprises of a stator 102, a stator conveyor 126, a coolant 104, a rotor 106, and a rotor rail 118. The stator 102 comprises plurality of coils 108. The rotor 106 comprises plurality of permanent magnets 116. The coolant 104 comprises iron. The rotor rail 118 comprises iron. Permanent magnets 116 comprise the first and the second permanent magnet, wherein the first permanent magnet and the second permanent magnet comprise opposite magnetization. The coolant 104, the coil 108 and permanent magnet 116 have complementary curved surfaces. The coil 108 comprises plurality of windings 110, wherein each winding 110 of the plurality of windings is disconnected from a remainder of the plurality of windings. The number of disconnected windings 110 is in the range between 1 and 15. The number of permanent magnets 116 is in the range between 8 and 128. The number of coils 128 is in the range between 1 and 128. The number of windings 110 is in the range between 3 and 384. For example,
An implementation of the apparatus 100 comprises a plurality of components such as one or more of electronic components, chemical components, organic components, mechanical components, hardware components, optical components, and/or computer software components. A number of such components can be combined or divided in an implementation of the apparatus 100. In one or more exemplary implementations, one or more features described herein in connection with one or more components and/or one or more parts thereof are applicable and/or extendible analogously to one or more other instances of the particular component and/or other components in the apparatus 100. In one or more exemplary implementations, one or more features described herein in connection with one or more components and/or one or more parts thereof may be omitted from or modified in one or more other instances of the particular component and/or other components in the apparatus 100. An exemplary technical effect is one or more exemplary and/or desirable functions, approaches, and/or procedures. An exemplary component of an implementation of the apparatus 100 employs and/or comprises a set and/or series of computer instructions written in or implemented with any of a number of programming languages, as will be appreciated by those skilled in the art. An implementation of the apparatus 100 comprises any (e.g., horizontal, oblique, angled, or vertical) orientation, with the description and figures herein illustrating an exemplary orientation of an exemplary implementation of the apparatus 100, for explanatory purposes.
The steps or operations described herein are examples. There may be variations to these steps or operations without departing from the spirit of the invention. For example, the steps may be performed in a differing order, or steps may be added, deleted, or modified.
Although exemplary implementation of the invention has been depicted and described in detail herein, it will be apparent to those skilled in the relevant art that various modifications, additions, substitutions, and the like can be made without departing from the spirit of the invention and these are therefore considered to be within the scope of the invention as defined in the following claims.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US09/35472 | 2/27/2009 | WO | 00 | 8/26/2011 |