IP Library Patent Application 18909578
Patent Application
App. No. 18/909,578

MANAGING PUMP SPEED WHEN POWER CONSTRAINED IN A FULLY IMPLANTED LVAD SYSTEM

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Quick Facts
Patent No.
US None
App. No.
18/909,578
Abstract

A method of managing a speed of implantable blood pump. The implantable blood pump is in communication with an internal battery and a transcutaneous energy transfer system (TETS). The method includes starting the pump at a programmed set speed. The speed of the pump is decreased from the programmed set speed to a minimum set speed if either a capacity of the internal battery is less than a predetermined reserve level and TETS power is unavailable, or there is insufficient TETS power to maintain the programmed set speed. The speed of the pump is progressively decreased from the programmed set speed if there is insufficient power to maintain the programmed set speed.

Claims (33)

1 . A method of managing a speed of implantable blood pump, the implantable blood pump being in communication with an internal battery and a transcutaneous energy transfer system (TETS), the method comprising:

starting the pump at a programmed set speed;

decreasing the speed of the pump from the programmed set speed to a minimum set speed if either a capacity of the internal battery is less than a predetermined reserve level and TETS power is unavailable, or there is insufficient TETS power to maintain the programmed set speed; and

progressively decreasing the speed of the pump from the programmed set speed if there is insufficient power to maintain the programmed set speed.

2 . The method of claim 1 , wherein if the capacity of the internal battery is greater than the predetermined reserve level or TETS power is available, and there is sufficient TETS power headroom, the method further includes progressively increasing the speed of the pump from the minimum set speed to the programmed set speed.

3 . The method of claim 2 , wherein if the programmed set speed cannot be achieved with available power, the method further includes decreasing the speed of the pump to the minimum set speed after progressively increasing the speed of the pump from the minimum set speed.

4 . The method of claim 1 , wherein if power is sufficient to maintain the minimum set speed, the method further includes increasing the speed of the pump to the programmed set speed after progressively decreasing the speed of the pump from the minimum set speed.

5 . The method of claim 1 , wherein if the pump speed is less than a critical cutoff speed following progressively decreasing the speed of the pump, and acknowledge that the pump has stopped.

6 . The method of claim 5 , further including attempting to restart the pump after it has stopped.

7 . The method of claim 1 , wherein the pump is in communication with an implanted controller and wherein the implanted controller includes the internal battery.

8 . The method of claim 7 , wherein the internal battery is in communication with an internal coil of the TETS.

9 . The method of claim 8 , wherein the internal coil of the TETS is in communication with an external coil of the TETS, the external coil being further in communication with a power source.

10 . The method of claim 9 , wherein the power source is one from the group consisting of wall power and a battery.

11 . A control circuit for controlling a speed of an implantable blood pump, the control circuit being in communication with an internal battery and a transcutaneous energy transfer system (TETS), the control circuit comprising:

processing circuitry configured to:

start the pump to a programmed set speed;

decrease the speed of the pump from the programmed set speed to a minimum set speed if either a capacity of the internal battery is less than a predetermined reserve level and TETS power is unavailable, or there is insufficient power headroom; and

progressively decrease the speed of the pump from the programmed set speed if there is insufficient power to maintain the programmed set speed.

12 . The control circuit of claim 11 , wherein if the power level of the internal battery is greater than the predetermined reserve level or TETS power is available, and there is sufficient power headroom, the processing circuitry is further configured to progressively increase the speed of the pump from the minimum set speed to the programmed set speed.

13 . The control circuit of claim 12 , wherein if the programmed set speed cannot be achieved with available power, the processing circuitry is further configured to decrease the speed of the pump to the minimum set speed after progressively increasing the speed of the pump from the minimum set speed.

14 . The control circuit of claim 11 , wherein if power is sufficient to maintain the minimum set speed, the processing circuitry is further configured to increase the speed of the pump to the programmed set speed after progressively decreasing the speed of the pump from to the minimum set speed.

15 . The control circuit of claim 11 , wherein if the pump speed is less than a critical cutoff speed following progressively decreasing the speed of the pump, the processing circuitry is further configured to acknowledge that the pump has stopped.

16 . The control circuit of claim 15 , wherein the processing circuitry is further configured to attempt to restart the pump after the pump has stopped.

17 . The control circuit of claim 11 , wherein the pump is in communication with an implanted controller and wherein the implanted controller includes the internal battery.

18 . The control circuit of claim 17 , wherein the internal battery is in communication with an internal coil of the TETS.

19 . The control circuit of claim 18 , wherein the internal coil of the TETS is in communication with an external coil of the TETS, the external coil being further in communication with a power source, and wherein the power source is one from the group consisting of wall power and a battery.

20 . A control circuit for controlling a speed of an implantable blood pump, the control circuit being in communication with an internal battery and a transcutaneous energy transfer system (TETS), the control circuit comprising:

processing circuitry configured to:

start the pump to a programmed set speed;

decrease the speed of the pump from the programmed set speed to a minimum set speed if either a capacity of the internal battery is less than a predetermined reserve level and TETS power is unavailable, or there is insufficient TETS power to maintain the programmed set speed;

if there is insufficient power to maintain the minimum set speed, progressively decrease the speed of the pump from the minimum set speed

if power is sufficient to maintain the minimum set speed, increase the speed of the pump to the programmed set speed after progressively decreasing the speed of the pump from the minimum set speed; and

if the pump speed is less than a critical cutoff speed following progressively decreasing the speed of the pump, turn off the pump.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 29, 2025
From: MEDTRONIC, INC.
To: BOSTON SCIENTIFIC SCIMED, INC.
Reel/Frame 070046/0570 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 8, 2024
From: SCHILLING, ERIC A.; ARTMANN, JOEL B.; LEE, JASON C.; SIEGFRIED, DAVID I.
To: MEDTRONIC, INC.
Reel/Frame 068835/0332 →