IP Library › Granted Patent US 12,544,557
Granted Patent B2
US 12,544,557 · App. 18/312,032 · Granted Feb 10, 2026

Position detection for a circulatory support device

Inventors: Adrienne Lee (Danvers, MA); Margi Patel (Danvers, MA); Qing Tan (Danvers, MA)
Assignee: Abiomed, Inc.
A61M60/554A61M60/13A61M60/216A61M60/422A61M60/531A61M2205/18A61M2205/3331
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Quick Facts
Patent No.
US 12,544,557
App. No.
18/312,032
Granted
Feb 10, 2026
Kind
B2
Abstract

Methods and apparatus for determining whether a circulatory support device is correctly positioned in a heart of a patient are provided. The method comprises receiving a motor current signal from a motor of the circulatory support device, receiving a pressure signal from a pressure sensor arranged on the circulatory support device, generating a normalized motor current signal based, at least in part, on the pressure signal, determining a pulsatility of the normalized motor current signal, determining whether the circulatory support device is correctly positioned in the heart of the patient based, at least in part, on the pulsatility of the normalized motor current signal, and outputting an alarm when it is determined that the circulatory support device is not correctly positioned in the heart of the patient.

Claims (77)

1 . A method of determining whether a circulatory support device is correctly positioned in a heart of a patient, the method comprising:

receiving a motor current signal from a motor of the circulatory support device;

receiving a pressure signal from a pressure sensor arranged on the circulatory support device;

generating a normalized motor current signal based, at least in part, on the pressure signal;

determining a pulsatility of the normalized motor current signal;

determining whether the circulatory support device is correctly positioned in the heart of the patient based, at least in part, on the pulsatility of the normalized motor current signal; and

outputting an alarm when it is determined that the circulatory support device is not correctly positioned in the heart of the patient.

2 . The method of claim 1 , further comprising:

determining a maximum pressure value of the pressure signal within a time window of predetermined length,

wherein generating the normalized motor current signal based, at least in part, on the pressure signal comprises generating the normalized motor current signal based, at least in part, on the maximum pressure value.

3 . The method of claim 2 , wherein generating the normalized motor current signal based, at least in part, on the maximum pressure value comprises dividing values of the motor current signal by the maximum pressure value.

4 . The method of claim 1 , wherein the pressure sensor comprises an optical pressure sensor.

5 . The method of claim 1 , further comprising:

filtering the motor current signal,

wherein generating the normalized motor current signal is based, at least in part, on the filtered motor current signal.

6 . The method of claim 5 , wherein filtering the motor current signal comprises filtering the motor current signal with a bandpass filter.

7 . The method of claim 1 , further comprising:

filtering the pressure signal,

wherein generating the normalized motor current signal is based, at least in part, on the filtered pressure signal.

8 . The method of claim 7 , further comprising:

determining a maximum pressure value of the filtered pressure signal within a time window of predetermined length,

wherein generating the normalized motor current signal based, at least in part, on the filtered pressure signal comprises generating the normalized motor current signal based, at least in part, on the maximum pressure value.

9 . The method of claim 7 , wherein filtering the pressure signal comprises filtering the pressure signal with a lowpass filter.

10 . The method of claim 9 , wherein the lowpass filter is configured to cutoff frequencies above 5 Hz.

11 . The method of claim 1 , further comprising:

determining a differential pressure signal based, at least in part, on the pressure signal,

wherein determining whether the circulatory support device is correctly positioned in the heart of the patient is further based, at least in part, on the differential pressure signal.

12 . The method of claim 11 , further comprising:

determining a minimum pressure value of the pressure signal with a time window of predetermined length; and

determining that the circulatory support device is not correctly positioned in the heart of the patient when:

the pulsatility of the normalized motor current signal is greater than a first threshold value;

the minimum pressure value is less than a second threshold; and

a minimum value of the differential pressure signal within the time window is greater than a third threshold value or a maximum value of the differential pressure signal within the time window is greater than a fourth threshold value.

13 . The method of claim 1 , further comprising:

determining a pulsatility of the pressure signal,

wherein determining whether the circulatory support device is correctly positioned in the heart of the patient is further based, at least in part, on the pulsatility of the pressure signal.

14 . The method of claim 13 , further comprising:

when the pulsatility of the normalized motor current signal is less than a first threshold value and the pulsatility of the pressure signal is less than a second threshold value,

determining whether a minimum pressure value within a time window of predetermined length of the pressure signal is greater than a third threshold value; and

determining that the circulatory support device is not correctly positioned in the heart of the patient when the minimum pressure value within the time window is less than the third threshold value.

15 . The method of claim 14 , further comprising:

determining that the circulatory support device is located in an aorta of the heart of the patient when the minimum pressure value within the time window is less than the third threshold value, wherein

outputting an alarm comprising outputting an alarm that the circulatory support device is located in the aorta.

16 . The method of claim 13 , further comprising:

filtering the pressure signal,

wherein determining the pulsatility of the pressure signal comprises determining the pulsatility of the filtered pressure signal.

17 . The method of claim 1 , further comprising:

determining whether a minimum pressure value within a time window of predetermined length of the pressure signal is greater than a second threshold value; and

determining that the circulatory support device is correctly positioned in the heart of the patient when the pulsatility of the normalized motor current signal is less than a first threshold value and the minimum pressure value within the time window is greater than the second threshold value.

18 . The method of claim 17 , further comprising:

determining that the circulatory support device is not correctly positioned in the heart of the patient when the pulsatility of the normalized motor current signal is greater than the first threshold value and/or when the minimum pressure value within the time window is less than the second threshold value.

19 . A circulatory support device, comprising:

a rotor;

a motor configured to drive rotation of the rotor at one or more speeds;

a pressure sensor configured to detect a pressure signal; and

at least one controller configured to:

receive a motor current signal from the motor;

receive a pressure signal from the pressure sensor;

generate a normalized motor current signal based, at least in part, on the pressure signal;

determine a pulsatility of the normalized motor current signal;

determine whether the circulatory support device is correctly positioned in a heart of a patient based, at least in part, on the pulsatility of the normalized motor current signal; and

output an alarm when it is determined that the circulatory support device is not correctly positioned in the heart of the patient.

20 . A method of determining whether a circulatory support device is correctly positioned in a heart of a patient, the method comprising:

receiving a motor current signal from a motor of the circulatory support device;

filtering the motor current signal with a bandpass filter to generate a filtered motor current signal;

receiving a pressure signal from a pressure sensor arranged on the circulatory support device;

filtering the pressure signal to generate a filtered pressure signal;

generating a normalized motor current signal based, at least in part, on the filtered motor current signal and the filtered pressure signal;

determining a pulsatility of the normalized motor current signal;

determining a pulsatility of the filtered pressure signal;

determining a differential pressure signal based, at least in part, on the filtered pressure signal;

determining that the circulatory support device is not correctly positioned in the heart of the patient when

(i) the pulsatility of the normalized motor current signal is less than a first threshold value;

(ii) the pulsatility of the filtered pressure signal is less than a second threshold value;

(iii) a maximum value of the differential pressure signal within a time window of predetermined length is greater than a third threshold value; or

(iv) a minimum value of the differential pressure signal within the time window is greater than a fourth threshold value; and

outputting an alarm when it is determined that the circulatory support device is not correctly positioned in the heart of the patient.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 10, 2023
From: LEE, ADRIENNE; PATEL, MARGI; TAN, QING
To: ABIOMED, INC.
Reel/Frame 063598/0516 →
Continuity (2)
Provisional Application 63338471 · May 5, 2022
Related Publication 20230355958A1 · Nov 9, 2023
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Cited By (1)
US 12,741,135