A61M60/875

ATTACHMENT MECHANISM FOR ALIGNMENT GARMENT FOR USE WITH A FULLY IMPLANTABLE SYSTEM

An attachment mechanism securable to a garment for holding an external coil in a predetermined location, the attachment mechanism comprising: a body with a plurality of protrusions, the plurality of protrusions configured to be received within an aperture of the external coil; and an anchoring element configured to be secured to the garment to secure the external coil to the garment.

Mechanical gauge for estimating inductance changes in resonant power transfer systems with flexible coils for use with implanted medical devices
10940251 · 2021-03-09 · ·

Systems and devices for improving wireless power transmission are disclosed herein. The system can include an implantable medical device that can include an energy storage component and a secondary coil electrically coupled to the energy storage component. The system can include a charging device. The charging device can include a flexible housing defining an internal volume, a resonant circuit, a plurality of sensors coupled to the primary coil, and processor. The resonant circuit can include a deformable primary coil located within the internal volume of the housing. The processor can determine a deformation of the primary coil based on at least one signal received from at least one of the plurality of sensors.

DETECTING HEATING OF IMPLANTED COIL HERMETIC PACKAGE WHEN MISALIGNED

A method of monitoring heating of a hermetic package of an implanted transcutaneous energy transfer system (TETS) coil, the method includes monitoring a power transfer between the implanted TETS coil and an external TETS coil; detecting an amount of power lost during the power transfer; determining if the amount of power lost during the power transfer is above a first predetermined threshold; if the power lost is above the first predetermined threshold, determining if a misalignment between the implanted TETS coil and the external TETS coil is greater than a predetermined distance; and if the misalignment is greater than the predetermined distance, generating an alert to align the external TETS coil with the implanted TETS coil.

DETECTING HEATING OF IMPLANTED COIL HERMETIC PACKAGE WHEN MISALIGNED

A method of monitoring heating of a hermetic package of an implanted transcutaneous energy transfer system (TETS) coil, the method includes monitoring a power transfer between the implanted TETS coil and an external TETS coil; detecting an amount of power lost during the power transfer; determining if the amount of power lost during the power transfer is above a first predetermined threshold; if the power lost is above the first predetermined threshold, determining if a misalignment between the implanted TETS coil and the external TETS coil is greater than a predetermined distance; and if the misalignment is greater than the predetermined distance, generating an alert to align the external TETS coil with the implanted TETS coil.

Method of detecting presence of implanted power transfer coil

A method and apparatus related to detecting the presence of a power transfer coil implanted in a patient are disclosed. According to the aspect, an external device of a medical implant system is provided, the external device having an external coil and processing circuitry. The processing circuitry is configured to monitor a resonance frequency associated with the external coil. When the resonance frequency changes as a distance between the external coil and an expected location of an internal coil, then the processing circuitry is configured to conclude that the internal coil has been detected. When the resonance frequency ramps up to a steady state value at a rate that falls below a rate threshold, then the processing circuitry is configured to conclude that the internal coil is connected to an internal load.

Coil parameters and control
10898628 · 2021-01-26 · ·

Present embodiments are directed to measuring and calculating parameters to control and monitor a power transfer in an implanted medical device. The medical device may be implanted in a subject and typically includes an artificial heart or ventricle assist device. The system measures parameters and uses the parameters to calculate a coupling coefficient for coils that transfer power between an external primary and an implanted secondary. The system uses the calculated coupling coefficient to estimate heat flux being generated in the system. Based on the level heat flux detected, the system may issue alerts to warn the subject or control actions to mitigate the effects of the heat flux.

ALIGNMENT GARMENT FOR USE WITH A FULLY IMPLANTABLE SYSTEM

An alignment garment for holding an external coil in a predetermined location. The alignment garment may comprise an attachment mechanism for holding the external coil in the predetermined location. The alignment garment may also have a plurality of straps with a first strap in the plurality of straps being secured to the attachment mechanism and a second strap of the plurality of straps being secured to the attachment mechanism.

ALIGNMENT GARMENT FOR USE WITH A FULLY IMPLANTABLE SYSTEM

An alignment garment for holding an external coil in a predetermined location. The alignment garment may comprise an attachment mechanism for holding the external coil in the predetermined location. The alignment garment may also have a plurality of straps with a first strap in the plurality of straps being secured to the attachment mechanism and a second strap of the plurality of straps being secured to the attachment mechanism.

Transcutaneous energy transfer systems

The present disclosure relates to an improved transcutaneous energy transfer (TET) system that generates and wirelessly transmits a sufficient amount of energy to power one or more implanted devices, including a heart pump, while maintaining the system's efficiency, safety, and overall convenience of use. The disclosure further relates one or more methods of operation for the improved system.

Wireless energy transfer system and wearables

Disclosed are systems for wireless energy transfer including transcutaneous energy transfer. Embodiments are disclosed for user interface (UI) hubs to connect multiple batteries and to output system information to a patient. Embodiments are further disclosed for garments and devices to be worn by a patient requiring treatment. The garments are configured for a desired placement of a transmitter coil relative to a body of the patient and for facilitating patient comfort and quality of life. Methods for manufacturing and using the devices and the systems are also disclosed.