EP3661040B1

Method and apparatus for transferring electrical power by means of capacitive coupling

Abstract

This record has no abstract on file.

EP3661040B1, drawing sheet 1
Sheet 1 of 4

Term

6.5 yearsleft in the term

Expires 19 March 2033.

  1. Priority and filed
  2. Granted
  3. Today
  4. Expires

14 claims: 7 independent, 7 dependent

  1. 1
    A method for transferring electric power to an electrical load (105), comprising steps of:converting an direct electric tension into an electric tension wave, applying the electric tension wave at the inlet to at least a couple of electrical galvanic isolation capacitors (125, 130) including a first capacitor (125) and a second capacitor (130), supplying the electrical load (105) connected in series between said galvanic isolation capacitors (125, 130) with the electric tension at the outlet from the said galvanic isolation capacitors (125, 130), wherein the conversion step comprises: alternatingly switching a first active switch (155), preferably a single active switch (155), on and off, and lowering the electrical power dissipated by the first active switch (155) to a substantially nil value during each transition step of the first active switch (155) by means of a reactive circuit (145);the method further comprises the step of temporarily deviating the electric tension wave at the outlet onto an electrical line set in parallel to the electrical load (105), wherein the electric line comprises a second active switch (190) and characterized by the electric line further comprising a third capacitor (185) connected in series with the second active switch and having a capacitor value that is sufficiently high to be considered a short-circuit with respect to the electric load (105), e.g. a charging device, when the second active switch is switched on and generating an electric pilot signal for switching on and off the second active switch (190) alternatingly.
  2. 6
    An apparatus (100) for transferring electric power to an electrical load (105), comprising:at least a pair of electrical galvanic isolation capacitors (125, 130) including a first capacitor (125) and a second capacitor (130), means for converting (135) a direct electric tension into an electric tension wave, means for applying the electric tension wave at the inlet to the galvanic isolation capacitors (125, 130), means for supplying the electrical load (105) connected in series between said galvanic isolation capacitors (125, 130) with the electric tension at the outlet from the galvanic isolation capacitors (125, 130), wherein said means for converting (135) comprise a switching circuit provided at least with: a first active switch (155), preferably a single active switch (155), means (160) for generating an electrical pilot signal suitable for switching the first active switch (155) on and off, and a reactive circuit (145) set up such as to lower the electrical power dissipated by the first active switch (155) to a substantially nil value, during each transition step of the first active switch (155), and the apparatus further comprises means (185, 190) configured to temporarily deviate the electric tension wave at the outlet from the galvanic isolation capacitors (125, 130) onto an electrical line set in parallel to the electrical load (105), wherein the means for deviating the electric tension wave at the outlet from the galvanic isolation capacitors (125, 130) comprise a second active switch (190), and characterized in that the means for deviating the electric tension wave further comprise a third electric capacitor (185) arranged in series to the second active switch (190) along the electric line, and means configured to generate an electrical pilot signal for switching on and off the second active switch (190) alternatingly, the third electric capacitor (185) having a sufficiently high value to be considered as a short circuit with respect to the load (105), when the second active switch is on.
  3. 9
    The apparatus (100) of any one of the claims from 6 to 8, wherein the reactive circuit (145) is configured as a passband filter for the electric tension wave , and is set up so as to pass one or more of the fundamental frequencies of the electric tension wave chosen among the group constituted by:the first fundamental frequency of the electric tension, the third fundamental frequency of the electric tension wave, or other odd harmonics of a higher order.
  4. 10
    The apparatus (100) of any one of the claims from 6 to 9, comprising means (160) for controlling the electrical pilot signal of the first active switch (155), the control means being configured for:- inhibiting or modifying the generating of the electrical pilot signal, such as to prevent or alter one or more consecutive switching on and off cycles of the first active switch (155).
  5. 12
    The apparatus of any one of the claims from 6 to 11, comprising a control circuit configured for:measuring an electric parameter characteristic of the electric power transferred to the load (105), calculating the difference between the measurement of the electric parameter characteristic of the electric power and a predetermined reference value, and regulating the duty-cycle of the electric pilot signal of the second active switch (190), such as to minimise the difference.
  6. 13
    The apparatus (100) of any one of the claims from 6 to 12, comprising:means (200) configured for regulating the direct electric tension.
  7. 14
    The apparatus (100) of any one of the claims from 6 to 13, wherein each of the galvanic isolation capacitors (125, 130) is a pre-assembled component, and wherein the galvanic isolation capacitors (125, 130) are installed in a same device (250).