Efficient and robust wireless energy transfer

US9368974B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9368974-B2
Application numberUS-201113582512-A
CountryUS
Kind codeB2
Filing dateMar 3, 2011
Priority dateMar 4, 2010
Publication dateJun 14, 2016
Grant dateJun 14, 2016

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A method or apparatus for wireless transferring energy between a source coil and a drain coil, comprises selling an initial resonant frequency of the source coil as a first condition; setting the source coil and said drain coil in positions relative to each other to define an initial coupling coefficient therebetween, so that the initial coupling coefficient comprises a second condition; and adiabatically changing one or both of the conditions while pumping energy into the source coil. The source coil energy is transferred to the drain coil over the course of the adiabatic change.

First claim

Opening claim text (preview).

What is claimed is: 1. A method of transferring energy between a source coil and a drain coil, comprising: setting an initial resonant frequency of said source coil as a first condition; setting said source coil and said drain coil in positions relative to each other to define an initial coupling coefficient therebetween, said initial coupling coefficient defining a second condition; and adiabatically changing at least one member of the group consisting of a value of said first condition and a value of said second condition while pumping energy into said source coil, thereby to transfer said pumped energy to said drain coil; and varying said resonant frequency of said source coil by an amount of up to ten percent over a period of between one and three milliseconds. 2. The method of transferring energy of claim 1 , wherein both of said first condition and said second condition are adiabatically changed. 3. The method of transferring energy of claim 1 , wherein said first condition is adiabatically changed. 4. The method of transferring energy of claim 1 , wherein said second condition is adiabatically changed. 5. The method of transferring energy of claim 1 , wherein said source coil is part of a resonant circuit having variable components to allow said initial resonant frequency to be changed. 6. The method of transferring energy of claim 1 , wherein said source and drain coils are mobile with respect to each other, thereby to allow changing of said initial coupling coefficient. 7. A method of transferring energy between a source coil and a drain coil, comprising: setting an initial resonant frequency of said source coil as a first condition; setting said source coil and said drain coil in positions relative to each other to define an initial coupling coefficient therebetween, said initial coupling coefficient defining a second condition; and adiabatically changing at least one member of the group consisting of a value of said first condition and a value of said second condition while pumping energy into said source coil, thereby to transfer said pumped energy to said drain coil; wherein both of said first condition and said second condition are adiabatically changed, and wherein at any given time of said adiabatic changing there is a detuning value, said detuning value being the difference between a current value of the resonant frequency of the source coil and the resonant frequency of the drain coil, said adiabatic changing providing a smooth time dependence of the coupling coefficient (κ(t)) and the detuning value (Δ(t). 8. The method of transferring energy of claim 7 , wherein said adiabatic changing comprises fulfilling an adiabatic condition relating said coupling coefficient and said detuning value: |{dot over (κ)}( t )Δ( t )−κ( t ){dot over (Δ)}( t )|<<[4κ 2 ( t )+Δ 2 ( t )] 3/2 . 9. The method of transferring energy of claim 7 , wherein the coupling coefficient κ(t) is relatively larger than a loss rate (Γ), and wherein an initial and a final detuning are both relatively larger than the coupling coefficient, (Γ<κ<Δ). 10. A method of transferring energy between a source coil and a drain coil, comprising: setting an initial resonant frequency of said source coil as a first condition; setting said source coil and said drain coil in positions relative to each other to define an initial coupling coefficient therebetween, said initial coupling coefficient defining a second condition; and adiabatically changing at least one member of the group consisting of a value of said first condition and a value of said second condition while pumping energy into said source coil, thereby to transfer said pumped energy to said drain coil; the method further comprising varying the resonant frequency of the source coil such that a detuning value (Δ(t)), said detuning value being a difference between the resonant frequency of the source coil and the resonant frequency of the drain coil, sweeps slowly from a negative value, said negative value being larger than the coupling between said source coil and said drain coil, to a positive value being larger than said coupling between said source coil and said drain coil. 11. A method of transferring energy between a source coil and a drain coil, comprising: setting an initial resonant frequency of said source coil as a first condition; setting said source coil and said drain coil in positions relative toe ach other to define an initial coupling coefficient therebetween, said initial coupling coefficient defining a second condition; and adiabatically changing at least one member of the group consisting of a value of said first condition and a value of said second condition while pumping energy into said source coil, thereby to transfer said pumped energy to said drain coil; the method further comprising modifying said changing to reduce an amount of time that energy is retained in said source coil. 12. A method of transferring energy between a source coil and a drain coil, comprising: setting an initial resonant frequency of said source coil as a first condition; setting said source coil and said drain coil in positions relative toe ach other to define an initial coupling coefficient therebetween, said initial coupling coefficient defining a second condition; and adiabatically changing at least one member of the group consisting of a value of said first condition and a value of said second condition while pumping energy into said source coil, thereby to transfer said pumped energy to said drain coil; the method further comprising varying said resonant frequency of said source coil by an amount of up to ten percent over a period exceeding two milliseconds. 13. The method of claim 12 , further comprising varying said coupling coefficient over said period. 14. Apparatus for transferring energy comprising: a source coil having resonance variation circuitry for varying a resonant frequency of said source coil; a position unit for varying a position or orientation of said source coil so as to vary a coupling coefficient of said source coil with a respective drain coil to which said source coil is wirelessly coupled; and a controller configured to adiabatically vary at least one of said resonant frequency and said coupling coefficient while pumping energy into said source coil, thereby to transfer said pumped energy to said drain coil wherein said controller is configured to vary the resonant frequency of the source coil such that a detuning value (Δ(t)), said detuning value being a difference between the resonant frequency of the source coil and the resonant frequency of the drain coil, sweeps slowly from a negative value, said negative value being larger than the coupling between said source coil and said drain coil, to a positive value being larger than said coupling between said source coil and said drain coil. 15. The apparatus of claim 14 , wherein both of said resonant frequency and said coupling coefficient are adiabatically changed. 16. The apparatus of transferring energy of claim 14 , wherein said resonant frequency is adiabatically changed. 17. The apparatus of claim 14 , wherein said coupling coefficient is adiabatically changed. 18. The apparatus of claim 14 , wherein said locating unit is operative to rotate said source coil, thereby to allow said adiabatic changing of said initial coupling coefficient. 19. Apparatus for transferring energy comprising: a source coil having resonance variation circuitry for varying a resonant frequency of said source coil; a position unit for var

Assignees

Inventors

Classifications

  • H02J50/12Primary

    of the resonant type · CPC title

  • Inductive couplings {(for wireless supply or distribution of electric power using inductive coupling H02J50/10)} · CPC title

  • H02J5/005Primary

    Electricity · mapped topic

  • involving detection or optimisation of position, e.g. alignment · CPC title

  • for data transfer in combination with power transfer · CPC title

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What does patent US9368974B2 cover?
A method or apparatus for wireless transferring energy between a source coil and a drain coil, comprises selling an initial resonant frequency of the source coil as a first condition; setting the source coil and said drain coil in positions relative to each other to define an initial coupling coefficient therebetween, so that the initial coupling coefficient comprises a second condition; and ad…
Who is the assignee on this patent?
Silberberg Yaron, Suchowski Haim, Vitanov Nikolay V, and 2 more
What technology area does this patent fall under?
Primary CPC classification H02J50/12. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jun 14 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).