NZ526115A

Methods and apparatus for detuning a pick-up of a contactless power supply

Abstract

A power pick-up for an Inductively Coupled Power Transfer (ICPT) system is provided having a resonant pick up circuit. The natural frequency of the pick-up circuit may be varied by controlling the conductance or capacitance of a variable reactive in the resonant circuit. The load being supplied by the pick-up circuit is sensed, and the effective capacitance or inductance of the variable reactive component is controlled to vary the natural resonant frequency of the pick-up circuit to thereby control the power flow into the pick-up to satisfy the power required by the load.

NZ526115A, drawing sheet 1
Sheet 1 of 6

Term

Term ended

Projected expiry passed 23 May 2023, 3.3 years ago.

  1. Priority and filed
  2. Published
  3. Projected expiry
  4. Today

54 claims: 29 independent, 25 dependent

  1. 1
    Claims 1. An ICPT pick-up having a pick-up resonant circuit including a capacitive element and an inductive element adapted to receive power from a magnetic field associated with a primary conductive path to supply a load, sensing means to sense a condition of the load, and control means to selectively tune or de-tune the pick-up in response to the load sensed by the sensing means by varying the effective capacitance or inductance of the capacitive or the inductive element of the pick-up circuit to control the transfer of power to the pick-up dependant on the sensed load condition.
  2. 4
    A pick-up as claimed in any one of claims 1 to 3 wherein the sensing means senses the power required by the load.
  3. 5
    A pick-up as claimed in any one of claims 2 to 4 including phase sensing means to sense the phase of a voltage or current in the resonant circuit whereby the control means may actuate the switching means to allow the reactive element to be electrically connected to or disconnected from the resonant circuit dependant on the sensed phase.
  4. 9
    A pick-up as claimed in any one of claims 6 to 8 wherein the control means is adapted to activate the second switching means to connect the inductor to the resonant circuit after the predetermined time period following a voltage zero crossing has elapsed, and allow the switching means to be deactivated when the voltage again reaches substantially zero.
  5. 10
    A pick-up as claimed in any one of claims 6 to 9 wherein the control means is capable of varying the predetermined time period between substantially 0 electrical degrees and substantially 180 electrical degrees.
  6. 11
    A pick-up as claimed in any one of claims 6 to 9 wherein the control means is capable of varying the predetermined time period between substantially 90 electrical degrees and substantially 150 electrical degrees.
  7. 12
    A pick-up as claimed in any one of claims 6 to 11 wherein the inductor is connected in parallel with a tuning capacitor of the resonant circuit.
  8. 13
    A pick-up as claimed in any one of claims 6 to 12 wherein the inductor has two terminals and the second switching means comprise two controllable semiconductor switching elements, one switching element being connected between each terminal and the resonant circuit.
  9. 15
    A pick-up as claimed in claim 13 or claim 14 wherein the semiconductor switch elements comprise IGBT’s, MOSFETS, MCT’s, BJT’s. Intellectual Property Office of N.Z. 300383013 1.doc 2 0 FEB 2006 RECEIVED
  10. 20
    A pick-up as claimed in any one of claims 17 to 19 wherein the control means is adapted to activate the switching means to disconnect the capacitor from the resonant circuit after the predetermined time period following a voltage zero crossing has elapsed.
  11. 21
    A pick-up as claimed in any one of claims 17 to 20 wherein the control means is capable of varying the predetermined time period between substantially 0 electrical degrees and substantially 90 electrical degrees.
  12. 22
    A pick-up as claimed in any one of claims 17 to 21 wherein the capacitor is connected in parallel with a tuning capacitor of the resonant circuit.
  13. 24
    A pick-up as claimed in any one of claims 17 to 23 wherein the capacitor has two terminals and the switching means comprise two controllable semiconductor switching elements, one switching element being connected between each terminal and the resonant circuit.
  14. 27
    A pick-up as claimed in any one of claims 17 to 21 wherein the variable reactance comprises the tuning capacitor ofthe resonant circuit.
  15. 28
    An ICPT system including:a. A power supply comprising a resonant converter to provide alternating current to a primary conductive path of the ICPT system;b. One or more secondary pick-ups, each pick-up having a pick-up resonant circuit including a capacitive element and an inductive element adapted to receive power from a magnetic field associated with a primary conductive path to supply a load, sensing means to sense a condition ofthe load, and control means to selectively tune or de-tune the pick-up in response to the load sensed by the sensing means by varying the effective capacitance or inductance of the capacitive element or the inductive element of the pick-up circuit to control the transfer of power to the pick-up dependant on the sensed load condition.
  16. 31
    300383013 An ICPT system as claimed in claim 28 wherein the primary conductive path includes at least one region about which there is a greater magnetic field strength than one or more other regions of the path. __ Intellectual Property Office of N.Z. 2 0 FEB 2006 doc RECEIVED
  17. 33
    An ICPT system as claimed in any one of claims 28 to 32 wherein the primary conductive path is mounted adjacent to an amorphous magnetic material to provide a desired magnetic flux path.
  18. 34
    An ICPT system as claimed in any one of claims 28 to 33 wherein the pick-up includes an amorphous magnetic material adjacent to the pick-up coil to provide a desired magnetic flux path.
  19. 35
    An ICPT system as claimed in any one of claims 28 to 34 wherein the pick-up is battery-free.
  20. 36
    An ICPT system as claimed in any one of claims 28 to 34 wherein the pick-up includes a super-capacitor.
  21. 37
    A method for controlling power drawn by an ICPT pick-up, the method including the steps of sensing a load condition of the pick-up, and selectively tuning or detuning the pick-up circuit depending upon the sensed load condition.
  22. 40
    A method as claimed in any one of claims 37 to 39 including the step of sensing the frequency of a current or voltage in the resonant circuit.
  23. 42
    A method as claimed in any one of claims 37 to 41 including the steps of selectively switching a reactive element into or out of the resonant circuit to alter the apparent inductance or capacitance of the reactive element to thereby tune or de-tune the resonant circuit.
  24. 45
    A method as claimed in any one of claims 42 to 44 including sensing the frequency of the resonant circuit activating a switching means to electrically connect or disconnect the reactive element to or from the resonant circuit dependant on the sensed frequency to alter the natural resonant frequency of the resonant circuit.
  25. 46
    A method as claimed in any one of claims 42 to 45 including comparing the sensed frequency with a nominal frequency and varying the predetermined time period to tune the resonant circuit toward or away from the nominal frequency.
  26. 47
    A method as claimed in any one of claims 42 to 46 including activating a switching means to connect the reactive element to the resonant circuit after the predetermined time period following a voltage zero crossing has elapsed, and allowing the second switching means to be deactivated when the voltage again reaches substantially zero.
  27. 48
    A method as claimed in any one of claims 42 to 47 including selecting the predetermined time period from a range between substantially 0 electrical degrees and substantially 180 electrical degrees.
  28. 49
    A method as claimed in any one of claims 42 to 47 including selecting the predetermined time period from a range between substantially 90 electrical degrees and substantially 150 electrical degrees. Intellectual Property Office of N.Z. 2 0 FEB 2006 REC ΕIV E D 300383013 1.doc
  29. 52
    A pick-up substantially as herein described with reference to any one of the embodiments illustrated in figures 2 to 10 ofthe accompanying drawings.
  30. 53
    An ICPT system substantially as herein described with reference to any one of the embodiments illustrated in figures 2 to 10 ofthe accompanying drawings.
  31. 54
    A method for controlling power substantially as herein described with reference to any one ofthe embodiments illustrated in figures 2 to 10 ofthe accompanying drawings. 2 5 JUL 2006 300593794 1.DOC 1/5 2/5 Fig. 3a 3b 3c Fig. 4 3/5 Fig. 6 o Fig. 7 4/5 Fig. 8b 5/5 Fig. 10 END
Independent claims31