IP Library › Granted Patent US 10,186,903
Granted Patent B2
US 10,186,903 · App. 14/423,723 · Granted Jan 22, 2019

Electrical breakdown protection for a capacitive wireless powering system

Inventors: Dave Willem Van Goor (Nederweert eind, NL); Theodorus Johannes Petrus Van Den Biggelaar (Veldhoven, NL); Oscar Hendrikus Hendrikus Willemsen (Den Bosch, NL); Lennart Yseboodt (Vorselaar, BE)
Assignee: PHILIPS LIGHTING HOLDING B.V.
H02J50/05B32B5/00B32B17/06B32B21/04B32B29/002H02J7/025H02J17/00H02J50/70H04B5/00B32B2307/206B32B2457/16Y10T428/2476Y10T428/24752Y10T428/24769
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,186,903
App. No.
14/423,723
Granted
Jan 22, 2019
Kind
B2
Abstract

An article of manufacture ( 130 ) for protecting a capacitive power transfer system ( 100 ) from electrical breakdowns is disclosed. The article of manufacture comprises a non-conductive layer ( 210 ) made of a first type of non-conductive material, and a protection layer ( 220 ) made of a second type of non-conductive material, wherein a breakdown voltage of the second type of non-conductive material is higher than a breakdown voltage of the first type of non-conductive material, wherein the protection layer covers only a portion of the non-conductive layer, where in the non-conductive layer and the protection layer form an insulating layer ( 130 ) of the capacitive power transfer system.

Claims (21)

1. An insulating layer for protecting a capacitive power transfer system from electrical breakdowns, comprising:

a non-conductive layer made of a first type of non-conductive material; and

a protection layer made of a second type of non-conductive material, wherein a breakdown voltage of the second type of non-conductive material is higher than a breakdown voltage of the first type of non-conductive material, wherein the protection layer covers only a portion of the non-conductive layer, wherein the non-conductive layer and the protection layer form the insulating layer of the capacitive power transfer system, wherein the protection layer is disposed between a pair of transmitter electrodes and a pair of receiver electrodes such that the protection layer electrically insulates the pair of transmitter electrodes from the pair of receiver electrodes.

2. The insulating layer of claim 1 , wherein a dielectric permittivity value of the second type of non-conductive material is higher than a dielectric permittivity value of the first type of non-conductive material.

3. The insulating layer of claim 1 , wherein the second type of non-conductive material is any one of: plastic, Mica Kapton, Metal Oxide, Silicon Oxide, and Aluminum Oxide.

4. The insulating layer of claim 1 , wherein the first type of non-conductive material is any one of paper, wood, textile, glass, DI-water, and non-conductive paint.

5. The insulating layer of claim 1 , wherein the second type of material is applied on one side of the pair of receiver electrodes of the capacitive power transfer system.

6. The insulating layer of claim 1 , wherein the non-conductive layer is applied on an infrastructure of the capacitive power transfer system and the protection layer is applied on at least one portion of the non-conductive layer.

7. The insulating layer of claim 6 , wherein the at least one portion is where capacitive coupling between the pair of receiver electrodes and the pair of transmitter electrodes of the capacitive power transfer system is formed.

8. The insulating layer of claim 1 , wherein the insulating layer allows formation of a capacitive impedance between the pair of transmitter electrodes and a pair of receiver electrodes of the capacitive power transfer system.

9. The insulating layer of claim 8 , wherein a power signal generated by a power driver is wirelessly transferred from the pair of transmitter electrodes, coupled to the insulating layer, to the pair of receiver electrodes connected to a load and an inductor in order to power the load when a frequency of the power signal substantially matches a series-resonance frequency of the inductor and the capacitive impedance.

10. A receiver used for a capacitive power transfer system designed to protect from electrical breakdowns in a capacitive power transfer system, comprising:

a pair of electrodes made of a conductive material;

a non-conductive layer made of a first type of non-conductive material that covers one side of the pair of electrodes with respect to the extending plane of the pair of electrodes; and

a protection layer made of a second type of non-conductive material that covers the other side of the pair of electrodes with respect to the extending plane of the pair of electrodes, wherein a breakdown voltage of the second type of non-conductive material is higher than a breakdown voltage of the first type of non-conductive material, wherein the non-conductive layer and the protection layer form an insulating layer of the capacitive power transfer system.

11. The receiver of claim 10 , wherein a dielectric permittivity value of the second type of non-conductive material is higher than a dielectric permittivity value of the first type of non-conductive material.

12. The receiver of claim 10 , wherein the second type of non-conductive material is any one of: plastic, Mica, Kapton, Metal Oxide, Silicon Oxide, and Aluminum Oxide.

13. The receiver of claim 10 , wherein the first type of non-conductive material is any one of paper, wood, textile, glass, DI-water, and non-conductive paint.

14. A capacitive powering system, comprising:

a pair of receiver electrodes connected to a load through an inductor, wherein the inductor is coupled to the load to resonate the system;

a pair of transmitter electrodes connected to a driver; and an insulating layer including a non-conductive layer made of a first type of non-conductive material, and a protection layer made of a second type of non-conductive material, wherein a breakdown voltage of the second type of non-conductive material is higher than a breakdown voltage of the first type of non-conductive material, the protection layer covers a portion of the non-conductive layer, wherein the pair of transmitter electrodes and the pair of receiver electrodes are located on opposite sides of the insulating layer, such that a capacitive impedance is formed between the pair of transmitter electrodes and the pair of receiver electrodes and the protection layer electrically insulates the pair of transmitter electrodes from the pair of receiver electrodes, wherein a power signal generated by the driver is wirelessly transferred from the pair of transmitter electrodes to the pair of receiver electrodes without causing electrical breakdowns in the system when a frequency of the power signal matches a series-resonance frequency of the first inductor and the capacitive impedance.

Assignments (3)
CHANGE OF NAME Recorded Oct 28, 2019
From: PHILIPS LIGHTING HOLDING B.V.
To: SIGNIFY HOLDING B.V.
Reel/Frame 050837/0576 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2016
From: KONINKLIJKE PHILIPS N.V.
To: PHILIPS LIGHTING HOLDING B.V.
Reel/Frame 040060/0009 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2015
From: VAN GOOR, DAVE WILLEM; VAN DEN BIGGELAAR, THEODORUS JOHANNES PETRUS; WILLEMSEN, OSCAR HENDRIKUS; YSEBOODT, LENNART
To: KONINKLIJKE PHILIPS ELECTRONICS N V
Reel/Frame 035023/0566 →
Continuity (2)
Provisional Application 61693959 · Aug 28, 2012
Related Publication 20150263570A1 · Sep 17, 2015