Inductive link arrangement
The present disclosure relates to an inductive coil arrangement for a transcutaneous inductive link arrangement, to devices incorporating the inductive coil arrangement and to a method of transmitting power and data using the inductive coil arrangement.
1 . An inductive coil arrangement for delivering a power signal and a communication signal over a transcutaneous link, the inductive coil arrangement comprising:
a power signal transmitter coil for transmitting a power signal;
a communication signal transmitter coil for transmitting a communication signal, wherein the communication signal transmitter coil is magnetically decoupled from the power signal transmitter coil;
a power signal receiver coil for receiving the power signal from the power signal transmitter coil, wherein the power signal receiver coil is magnetically coupled to the power signal transmitter coil, but is magnetically decoupled from the communication signal transmitter coil; and
a communication signal receiver coil for receiving the communication signal from the communication signal transmitter coil, wherein the communication signal receiver coil is magnetically coupled to the communication signal transmitter coil, but is magnetically decoupled from the power signal receiver coil,
wherein the power signal transmitter coil is independent from the communication signal transmitter coil and the power signal receiver coil is independent from the communication signal receiver coil, and wherein, in use, delivery of the power signal over the transcutaneous link is independent of delivery of the communication signal over the transcutaneous link.
2 . The inductive coil arrangement of claim 1 , wherein the communication signal transmitter coil and the power signal transmitter coil are arranged in an at least partially overlapping spatial relationship.
3 . The inductive coil arrangement of claim 2 , wherein the power signal transmitter coil has a planar curved shape, and the communication signal transmitter coil has a generally cylindrical shape.
4 . The inductive coil arrangement of claim 1 , wherein respective receiver coils are planar coils arranged parallel to one another in a partially overlapping spatial relationship.
5 . The inductive coil arrangement of claim 1 , wherein the receiver coils are air-core coils arranged with respective central axes orthogonally to one another and in an overlapping spatial relationship, wherein the communication signal receiver coil is positioned within the perimeter defined by the power signal receiver coil, or the power signal receiver coil is positioned within the perimeter defined by the communication signal receiver coil.
6 . The inductive coil arrangement of claim 1 , wherein the communication signal transmitter coil and the power signal transmitter coil are arranged in an at least partially overlapping spatial relationship, and the central axis of the communication signal transmitter coil is substantially parallel to or tilted at an angle with respect to the central axis of the power signal transmitter coil.
7 . The inductive coil arrangement of claim 6 , wherein the communication signal transmitter coil is a circular planar coil and the power signal transmitter coil is a planar curved coil that has a curvature that complements a portion of the circumference of the circular communication signal transmitter coil to allow the power signal transmitter coil to overlap the communication signal transmitter coil at least partially.
8 . The inductive coil arrangement of claim 6 , wherein the angle may be varied to reduce coupling between the communication signal transmitter coil and the power signal transmitter coil.
9 . The inductive coil arrangement of claim 7 , wherein the longitudinal position of the planar communication signal transmitter coil along the length of the power transmitter coil may be varied to reduce coupling between the communication signal transmitter coil and the power signal transmitter coil.
10 . The inductive coil arrangement of claim 1 , wherein the power signal transmitter coil and/or the communication signal transmitter coil include one or more segmentation capacitors.
11 . The inductive coil arrangement of claim 1 , wherein the communication signal receiver coil and/or the power signal receiver coil include one or more segmentation capacitors.
12 . The inductive coil arrangement of claim 1 , wherein the communication signal transmitter coil comprises a first plurality of wire loops and a second plurality of wire loops arranged in series, and wherein the first plurality of wire loops and the second plurality of wire loops are capacitively coupled and arranged in a spaced relationship with one another.
13 . The inductive coil arrangement of claim 1 , wherein the power signal transmitter coil may be configured to transmit a power signal to the power signal receiver coil at a frequency that is approximately two to three times higher than a frequency at which the communication signal transmitter coil is configured to transmit the communication signal to the communication signal receiver coil.
14 . The inductive coil arrangement of claim 1 , wherein the power signal transmitter coil may be configured to transmit a power signal to the power signal receiver coil at a frequency that is separated by at least 10 MHz from the frequency at which the communication signal transmitter coil is configured to transmit a communication signal to the communication signal receiver coil.
15 . An implantable medical system comprising an inductive coil arrangement as claimed in claim 1 .
16 . A cochlear implant system comprising an inductive coil arrangement as claimed in claim 1 , wherein the system comprises an external sound processor comprising the power signal transmitter coil and the communication signal transmitter coil, and an implantable receiver/stimulator comprising the power signal receiver coil and the communication signal receiver coil.
17 . A cochlear implant according to claim 16 , wherein the sound processor takes the form of one of a) an earbud for insertion into an ear canal of a patient or b) a behind the ear component.
18 . A method of transmitting a power signal and a communication signal independently over a transcutaneous link, the method comprising providing an inductive coil arrangement as claimed claim 1 , and transmitting a power signal from the power signal transmitter coil to the power signal receiver coil and transmitting a communication signal from the communication signal transmitter coil to the communication signal receiver coil.
19 . A method for delivering a power signal and a communication signal over a transcutaneous link using an inductive coil arrangement, the method comprising:
transmitting a power signal via a power signal transmitter coil;
transmitting a communication signal via a communication signal transmitter coil, wherein the communication signal transmitter coil is magnetically decoupled from the power signal transmitter coil;
receiving, at a power signal receiver coil, the power signal from the power signal transmitter coil, wherein the power signal receiver coil is magnetically coupled to the power signal transmitter coil, but is magnetically decoupled from the communication signal transmitter coil; and
receiving, at a communication signal receiver coil, the communication signal from the communication signal transmitter coil, wherein the communication signal receiver coil is magnetically coupled to the communication signal transmitter coil, but is magnetically decoupled from the power signal receiver coil,
wherein the power signal transmitter coil is independent from the communication signal transmitter coil and the power signal receiver coil is independent from the communication signal receiver coil, and wherein, in use, delivery of the power signal over the transcutaneous link is independent of delivery of the communication signal over the transcutaneous link.
20 . The method of claim 19 , wherein the communication signal transmitter coil and the power signal transmitter coil are arranged in an at least partially overlapping spatial relationship.