Power Architecture for an Implantable Medical Device Having a Non-Rechargeable Battery
Abstract
An improved architecture for an implantable medical device using a primary battery is disclosed which reduces the need for boosting the voltage of the primary battery, and hence reduces the power draw in the implant. The architecture includes a boost converter for boosting the voltage of the primary battery and for supplying that boosted voltage to certain of the circuit blocks, which is particularly useful if the battery voltage is necessarily lower than the minimal input power supply voltage necessary for the circuit blocks to operate. However, circuitry capable of operation even at low battery voltages—including the telemetry tank circuitry and the compliance voltage generator—receives the battery voltage directly without boosting, thus saving power.
Claims
exact text as granted — not AI-modifiedWhat is claimed is:
1 . Circuitry for an implantable medical device, comprising:
at least one electrode configured to pass a therapeutic current through a patient's tissue; a battery outputting a battery voltage; boosting circuitry configured to boost the battery voltage to a boosted voltage; first circuitry powered by the boosted voltage; a digital-to-analog converter configured to produce a therapeutic current at the at least one electrode; and a DC-DC converter powered by the battery voltage and configured to produce a compliance voltage for powering the digital-to-analog converter.
2 . The circuitry of claim 1 , further comprising tank circuitry including a telemetry coil configured to communicate data wirelessly with an external device.
3 . The circuitry of claim 1 , wherein the tank circuitry is powered by the battery voltage.
4 . The circuitry of claim 1 , wherein the battery is non-rechargeable.
5 . The circuitry of claim 1 , wherein the first circuitry comprises one or more regulators.
6 . The circuitry of claim 5 , wherein the first circuitry further comprises at least one circuit element, wherein each of the one or more regulators produces from the boosted voltage a power supply voltage to power the at least one circuit element of the implantable medical device.
7 . The circuitry of claim 6 , wherein one of the circuit elements is an analog circuit.
8 . The circuitry of claim 6 , wherein one of the circuit elements is a digital circuit.
9 . The circuitry of claim 6 , wherein one of the circuit elements is a memory.
10 . The circuitry of claim 5 , wherein the one or more regulators require a minimum input power supply voltage to operate, and wherein the battery voltage is less than the minimum input power supply voltage.
11 . The circuitry of claim 1 , wherein the first circuitry is integrated on a single integrated circuit.
12 . The circuitry of claim 1 , wherein the first circuitry comprises a plurality of regulators and a plurality of circuit elements, wherein each regulator produces from the boosted voltage a power supply voltage for one of the plurality of circuit elements in the implantable medical device.
13 . The circuitry of claim 12 , wherein the circuit elements comprise an analog circuit and a digital circuit, and wherein one of the regulators is configured to produce an analog power supply voltage for the analog circuit, and wherein one of the regulators is configured to produce a digital power supply voltage for the digital circuit.
14 . The circuitry of claim 13 , wherein the digital circuit comprises one or more of a microcontroller and timer circuitry.
15 . The circuitry of claim 13 , wherein the analog circuitry comprises one or more of a thermistor, a band gap voltage reference, an oscillator, a clock circuit, modulation and demodulation circuitry that sends data to and receives data from circuitry telemetry antenna, and analog measurement circuitry.
16 . The circuitry of claim 13 , wherein the circuit elements further comprise a memory, and wherein one of the regulators is configured to produce a memory power supply voltage for the memory.Join the waitlist — get patent alerts
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