Phrenic nerve stimulation
US-2024173074-A1 · May 30, 2024 · US
US10086195B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10086195-B2 |
| Application number | US-201715841275-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 13, 2017 |
| Priority date | Apr 19, 2014 |
| Publication date | Oct 2, 2018 |
| Grant date | Oct 2, 2018 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
Implantable medical systems include implantable medical leads that have magnetic orientation-independent magnetically actuated switches that are placed in the conduction path to the electrode of the lead. Thus, regardless of the orientation of a substantial magnetic field like that from an MRI machine to the lead and switch within the lead, the switch opens when in the presence of that substantial magnetic field. The switch may be placed in close proximity to the electrode such that the opening of the switch disconnects the electrode from the majority of the conduction path which thereby produces a high impedance for RF current and reduces the amount of heating that may occur at the electrode when in the presence of substantial levels of RF electromagnetic energy as may occur within an MRI machine.
Opening claim text (preview).
What is claimed is: 1. A method of creating a high impedance within a conduction path of an implantable medical lead, comprising: providing a first magnetically responsive actuator that when in a presence of a magnetic field of an MRI scanner that is not oriented normal to a direction of movement of the first actuator moves from a first start position toward a first stop position; providing a second magnetically responsive actuator that when in the presence of the magnetic field that is not oriented parallel to a direction of movement of the second actuator moves from a second start position toward a second stop position; and providing at least one switch in series with the conduction path, the at least one switch being coupled to both the first actuator and the second actuator, wherein the at least one switch resides in a closed state and achieves an open state to create the high impedance when the first actuator moves toward the first stop position and/or when the second actuator moves toward the second stop position. 2. The method of claim 1 , wherein providing at least one switch comprises providing one switch that achieves the open state to create the high impedance when the first actuator moves toward the first stop position and/or when the second actuator moves toward the second stop position. 3. The method of claim 1 , wherein providing at least one switch comprises providing a first switch that is coupled to the first actuator and that achieves the open state to create the open circuit when the first actuator moves toward the first stop position and providing a second switch that is coupled to the second actuator and that achieves the open state to create the high impedance when the second actuator moves toward the second stop position. 4. The method of claim 1 , wherein a force from the magnetic field acting on the first actuator is at a maximum when a force from the magnetic field acting on the second actuator is at a minimum. 5. The method of claim 1 , wherein providing the first actuator comprises positioning the first actuator coaxially with the second actuator and within a bore of the second actuator. 6. The method of claim 1 , wherein providing the first actuator comprises providing a pin attached to a first piece of ferromagnetic material and a cylinder that surrounds the pin and is attached to a second piece of ferromagnetic material, wherein the first piece and the second piece are separated by a distance when the first actuator is in the first start position and wherein the distance decreases as the first actuator moves toward the first stop position. 7. The method of claim 1 , wherein providing the second actuator comprises providing a cylinder that comprises alternating layers of ferromagnetic material and non-ferromagnetic material and providing an outer cylinder that surrounds the cylinder and comprises alternating layers of ferromagnetic material, such that the ferromagnetic material of the cylinder has a position in the direction of movement of the second actuator that is unaligned with a position in the direction of movement of the second actuator of the ferromagnetic material of the outer cylinder when the second actuator is in the second start position and wherein the position of the ferromagnetic material of the cylinder becomes more aligned in the direction of movement of the second actuator with the position of the ferromagnetic material of the outer cylinder as the second actuator moves toward the second stop position. 8. The method of claim 1 , wherein the direction of movement of the first actuator is parallel to the direction of movement of the second actuator. 9. An implantable medical lead, comprising: a lead body; at least one conductor surrounded by the lead body; at least one electrode coupled to the lead body on the distal end of the lead body; a first magnetically responsive actuator within the lead body that comprises a pin attached to a first piece of ferromagnetic material and a cylinder that surrounds the pin and is attached to a second piece of ferromagnetic material, wherein the first piece and the second piece are separated by a distance when the first actuator is in a first start position and wherein the distance decreases as the first actuator moves toward a first stop position; a second magnetically responsive actuator within the lead body that comprises a cylinder that comprises alternating layers of ferromagnetic material and non-ferromagnetic material and an outer cylinder that surrounds the cylinder and comprises alternating layers of ferromagnetic material, such that the ferromagnetic material of the cylinder has a position in the direction of movement of the second actuator that is unaligned with a position in the direction of movement of the second actuator of the ferromagnetic material of the outer cylinder when the second actuator is in a second start position and wherein the position of the ferromagnetic material of the cylinder becomes more aligned in the direction of movement of the second actuator with the position of the ferromagnetic material of the outer cylinder as the second actuator moves toward a second stop position; and at least one switch within the lead body that is coupled to the first and second actuators so as to be opened by movement of the first and/or second actuators when in a presence of a magnetic field of an MRI scanner, the at least one switch being in series between the conductor and the electrode on the distal end of the lead body, the at least one switch residing in a closed state and achieving an open state to create a high impedance between the conductor and the electrode on the distal end of the lead body when the first actuator reaches the first stop position and/or when the second actuator reaches the second stop position. 10. The implantable medical lead of claim 9 , wherein the first actuator is positioned coaxially with the second actuator and within a bore of the second actuator. 11. A medical system, comprising: a pulse generator; and an implantable medical lead that comprises: a lead body; at least one conductor surrounded by the lead body, the at least one conductor being electrically coupled to the pulse generator; at least one electrode coupled to the lead body on the distal end of the lead body; a first magnetically responsive actuator within the lead body that comprises a pin attached to a first piece of ferromagnetic material and a cylinder that surrounds the pin and is attached to a second piece of ferromagnetic material, wherein the first piece and the second piece are separated by a distance when the first actuator is in a first start position and wherein the distance decreases as the first actuator moves toward a first stop position; a second magnetically responsive actuator within the lead body that comprises a cylinder that comprises alternating layers of ferromagnetic material and non-ferromagnetic material and an outer cylinder that surrounds the cylinder and comprises alternating layers of ferromagnetic material, such that the ferromagnetic material of the cylinder has a position in the direction of movement of the second actuator that is unaligned with a position in the direction of movement of the second actuator of the ferromagnetic material of the outer cylinder when the second actuator is in a second start position and wherein the position of the ferromagnetic material of the cylinder becomes more aligned in the direction of movement of the second actuator with the position of the ferromagnetic material of the outer cylinder as the second actuator moves toward a second stop position; and at least one switch within the lead body that is coupled to the first and second actuators
Spinal or peripheral nerve electrodes · CPC title
for implantation or insertion into the body, e.g. heart electrode (A61N1/06 takes precedence) · CPC title
Magnetic resonance imaging [MRI] compatible leads · CPC title
Arrangements or circuits for monitoring, protecting, controlling or indicating {(for external stimulators A61N1/3603; for implantable neurostimulators A61N1/36128; for heart stimulators A61N1/37; for defibrillators A61N1/3925)} · CPC title
Apparatus or processes specially adapted to the manufacture of relays or parts thereof · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.