Energy Transformer
20230396140 · 2023-12-07
Inventors
Cpc classification
International classification
H02K7/00
ELECTRICITY
Abstract
A system for transforming energy, the system including a spaced-apart pair of first magnets disposed along a first axis; a reciprocator including a support; a shaft disposed on the support; a pair of second magnets, each disposed on one end of the shaft, the pair of second magnets further disposed along a second axis within the spaced-apart pair of first magnets such that each the second magnet is configured to interface with one of the pair of first magnets in a magnetic field interaction, the second axis is coaxially disposed with respect to the first axis, the magnetic field interaction is dependent upon a distance along the first axis between a second magnet and a first magnet with which the second magnet interacts; and a pair of shields, a shield positioner for positioning the pair of shields and an input receiver for motivating the shield positioner.
Claims
1. A system for transforming energy from one form to another, said system comprising: (a) a spaced-apart pair of first magnets disposed along a first axis; (b) a reciprocator comprising: (i) a support; (ii) a shaft disposed on said support; and (iii) a pair of second magnets, each disposed on one end of said shaft, said pair of second magnets further disposed along a second axis within said spaced-apart pair of first magnets such that each said second magnet is configured to interface with one of said pair of first magnets in a magnetic field interaction, said second axis is coaxially disposed with respect to said first axis, said magnetic field interaction is dependent upon a distance along one of said first axis and said second axis between a second magnet and a first magnet with which said second magnet interacts; and (c) a pair of shields, a shield positioner for positioning said pair of shields and an input receiver for motivating said shield positioner, wherein each of said pair of shields is configured to be selectively placed between a second magnet and a first magnet with which said second magnet interacts, whereby a selective disposition of each of said pair of shields by said shield positioner within its respective space between a second magnet and a first magnet with which said second magnet interacts alters said magnetic field interaction, causing said reciprocator to reciprocate.
2. The system of claim 1, further comprising a power generator comprising; (a) at least one third magnet; and (b) at least one coil, wherein one of said at least one third magnet and said at least one coil is supported by at least one of said shaft and said pair of second magnets of said reciprocator and if said at least one third magnet is supported by at least one of said shaft and said pair of second magnets of said reciprocator, said at least one third magnet is moved with said reciprocator and relative to said at least one coil such that power can be generated through said at least one coil and if said at least one coil is supported by at least one of said shaft and said pair of second magnets of said reciprocator, said at least one coil is configured to be moved with said reciprocator and relative to said at least one third magnet such that power can be generated through said at least one coil, whereby said selective disposition of each of said pair of shields by said shield positioner within its respective space between a second magnet and a first magnet with which said second magnet interacts alters said magnetic field interaction, causing said reciprocator to reciprocate and a relative movement between said at least one third magnet and said at least one coil such that power is generated through said at least one coil.
3. (canceled)
4. The system of claim 1, wherein at least one of said pair of shields comprises ferrous materials.
5. The system of claim 1, wherein at least one of said pair of shields comprises a support material selected from the group consisting of carbon fiber, aluminum, plastic, fiberglass and any combinations thereof.
6. The system of claim 1, wherein said support of said reciprocator comprises a linear slide.
7. The system of claim 6, wherein said linear slide is a linear bearing slide.
8. The system of claim 1, wherein said shield positioner comprises a shaft to which said pair of shields are attached and a rotational input power receiver.
9. The system of claim 8, wherein said rotational input power receiver is a component selected from the group consisting of a gear, a propeller, a turbine configured to be attached to said shaft to which said pair of shields are attached and any combinations thereof.
10. The system of claim 9, wherein said gear is configured to be driven by a second gear coupled to a motor.
11. The system of claim 1, wherein at least one of said pair of shields comprises a shield configured in a shape of a half circle.
12. The system of claim 1, further comprising a mass configured to be attached to said reciprocator such that said mass adds to the mass of said reciprocator.
13. A system for transforming energy from one form to another, said system comprising: (a) a spaced-apart pair of first magnets disposed along a first axis; (b) a reciprocator comprising: (i) a support; (ii) a shaft disposed on said support; and (iii) a pair of second magnets, each disposed on one end of said shaft, said pair of second magnets further disposed along a second axis within said spaced-apart pair of first magnets such that each said second magnet is configured to interface with one of said pair of first magnets in a magnetic field interaction, said second axis is coaxially disposed with respect to said first axis, said magnetic field interaction is dependent upon a distance along one of said first axis and said second axis between a second magnet and a first magnet with which said second magnet interacts; (c) a pair of shields, a shield positioner for positioning said pair of shields and an input receiver for motivating said shield positioner, wherein each of said pair of shields is configured to be selectively placed between a second magnet and a first magnet with which said second magnet interacts; (d) a power generator comprising; (i) at least one third magnet; and (ii) at least one coil, wherein one of said at least one third magnet and said at least one coil is supported by at least one of said shaft and said pair of second magnets of said reciprocator and if said at least one third magnet is supported by at least one of said shaft and said pair of second magnets of said reciprocator, said at least one third magnet is moved with said reciprocator and relative to said at least one coil such that power can be generated through said at least one coil and if said at least one coil is supported by at least one of said shaft and said pair of second magnets of said reciprocator, said at least one coil is configured to be moved with said reciprocator and relative to said at least one third magnet such that power can be generated through said at least one coil; whereby a selective disposition of each of said pair of shields by said shield positioner within its respective space between a second magnet and a first magnet with which said second magnet interacts alters said magnetic field interaction causing said reciprocator to reciprocate and a relative movement between said at least one third magnet and said at least one coil such that power is generated through said at least one coil.
14. (canceled)
15. The system of claim 13, wherein at least one of said pair of shields comprises ferrous materials.
16. The system of claim 13, wherein at least one of said pair of shields comprises a support material selected from the group consisting of carbon fiber, aluminum, plastic, fiberglass and any combinations thereof.
17. The system of claim 13, wherein said support of said reciprocator comprises a linear slide.
18. The system of claim 13, wherein said shield positioner comprises a shaft to which said pair of shields are attached and a rotational input power receiver.
19. The system of claim 18, wherein said rotational input power receiver is a component selected from the group consisting of a gear, a propeller, a turbine configured to be attached to said shaft to which said pair of shields are attached and any combinations thereof.
20. The system of claim 19, wherein said gear is configured to be driven by a second gear coupled to a motor.
21. The system of claim 13, wherein at least one of said pair of shields comprises a shield configured in a shape of a half circle.
22. The system of claim 13, further comprising a mass configured to be attached to said reciprocator such that said mass adds to the mass of said reciprocator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order that the manner in which the above-recited and other advantages and objects of the invention are obtained, a more particular description of the invention briefly described above will be rendered by reference to specific embodiments thereof which are illustrated in the appended drawings. Understanding that these drawings depict only typical embodiments of the invention and are not therefore to be considered to be limiting of its scope, the invention will be described and explained with additional specificity and detail through the use of the accompanying drawings in which:
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PARTS LIST
[0039] 2—energy transformer [0040] 4—reciprocator [0041] 6—selective repulsion controller [0042] 8—blocker or shield [0043] 10—magnet [0044] 12—magnet [0045] 14—controller [0046] 16—drive gear connected to motor [0047] 18—input receiver, e.g., gear [0048] 20—reciprocating motion [0049] 22—rotary motion [0050] 24—axis [0051] 26—coil [0052] 28—magnet [0053] 30—power generator [0054] 32—rotating shaft support structure [0055] 34—shield positioner, e.g., rotating shaft connected to input receiver [0056] 36—plate [0057] 38—hole [0058] 40—nut [0059] 42—screw [0060] 44—support member [0061] 46—rectifier [0062] 48—shaft [0063] 50—support or linear slide [0064] 52—axis [0065] 54—axis [0066] 56—mass [0067] 58—propeller
PARTICULAR ADVANTAGES OF THE INVENTION
[0068] The present system provides an input receiver for motivating the shield positioner. The rate at which the input receiver receives an input determines the strokes of the reciprocator and therefore the rate of electric power generated by the power generator. Therefore, in an embodiment where a user of the system has control of the input, e.g., by controlling the rate of the input via a motor, the desired power generation can be altered simply by modifying the speed of the motor.
[0069] In one embodiment, a lighter component of the power generator, i.e., a coil, is attached to a moving part, i.e., a portion of the reciprocator, thereby enabling higher power generation density, as more coils can be used for power generator, per unit moving mass as compared to a case where a magnet configured for interaction with one or more coils is attached to the reciprocator as part of the moving mass.
DETAILED DESCRIPTION OF A PREFERRED EMBODIMENT
[0070] The term “about” is used herein to mean approximately, roughly, around, or in the region of. When the term “about” is used in conjunction with a numerical range, it modifies that range by extending the boundaries above and below the numerical values set forth. In general, the term “about” is used herein to modify a numerical value above and below the stated value by a variance of 20 percent up or down (higher or lower).
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[0072] The reciprocator 4 includes a support 50, a shaft 48 disposed on the support 50, a pair of second magnets 10, each disposed on one end of the shaft 48. The pair of second magnets 10 is further disposed along a second axis 54 within the spaced-apart pair of first magnets 12 such that each of the second magnets 10 is configured to interface with one of the pair of first magnets 12 in a magnetic field interaction. The second axis 54 is coaxially disposed with respect to the first axis 52. The magnetic field interaction is dependent upon a distance along one of the first axis 52 and the second axis 54 between a second magnet 10 and a first magnet 12 with which the second magnet 10 interacts. Each shield is configured to be selectively placed between a second magnet 10 and a first magnet 12 with which the second magnet 10 interacts. In use, an input is first provided to the shield positioner to cause a rotation to the shaft 34. Referring to
[0073] It shall be noted that, in one embodiment, upon receiving a motive force, the shaft 34 starts to rotate about axis 24, making the shields 8 rotate about the same axis. The shields 8 need not be controlled using a rotating shaft, although doing so simplifies the regulating of the placement of the shields as the shields must be advantageously placed at any moment to cause the reciprocating motion 20 of the reciprocator 4 to continue at a pace dictated by the output speed of the motor. Each shield 8 may be attached to an individual positioner instead, as long as the shields 8 are disposed in a coordinated manner where a first shield begins to serve as a blocker between a first pair of first-second magnets while a second shield begins to be rotated out of the space between a second pair of first-second magnets. Therefore, the provision of selective interactions of first and second magnets 12, 10 is not limited to a shaft to which shields are attached, the selective interactions, e.g., repulsion, of magnets can also be controlled using a selective repulsion controller 6 that controls each shield individually. In one embodiment, a controller 14 is provided to control the input to be received at the input receiver.
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[0075] Each of
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[0078] The detailed description refers to the accompanying drawings that show, by way of illustration, specific aspects and embodiments in which the present disclosed embodiments may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice aspects of the present invention. Other embodiments may be utilized, and changes may be made without departing from the scope of the disclosed embodiments. The various embodiments can be combined with one or more other embodiments to form new embodiments. The detailed description is, therefore, not to be taken in a limiting sense, and the scope of the present invention is defined only by the appended claims, with the full scope of equivalents to which they may be entitled. It will be appreciated by those of ordinary skill in the art that any arrangement that is calculated to achieve the same purpose may be substituted for the specific embodiments shown. This application is intended to cover any adaptations or variations of embodiments of the present invention. It is to be understood that the above description is intended to be illustrative, and not restrictive, and that the phraseology or terminology employed herein is for the purpose of description and not of limitation. Combinations of the above embodiments and other embodiments will be apparent to those of skill in the art upon studying the above description. The scope of the present disclosed embodiments includes any other applications in which embodiments of the above structures and fabrication methods are used. The scope of the embodiments should be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled.