IP Library Granted Patent US 10,271,756
Granted Patent B2
US 10,271,756 · App. 15/966,910 · Granted Apr 30, 2019

Monitor recorder optimized for electrocardiographic signal processing

Inventors: Jason Felix (Vashon Island, WA); Jon Mikalson Bishay (Lexington, KY); Gust H. Bardy (Carnation, WA)
Assignee: BARDY DIAGNOSTICS, INC.
A61B5/04325A61B5/0404A61B5/0452A61B5/04085A61B5/04087A61B5/6823A61B5/725A61B5/7232
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Quick Facts
Patent No.
US 10,271,756
App. No.
15/966,910
Granted
Apr 30, 2019
Kind
B2
Abstract

Physiological monitoring can be provided through a lightweight wearable monitor that includes two components, a flexible extended wear electrode patch and a reusable monitor recorder that removably snaps into a receptacle on the electrode patch. The wearable monitor sits centrally (in the midline) on the patient's chest along the sternum oriented top-to-bottom. The placement of the wearable monitor in a location at the sternal midline, with its unique narrow “hourglass”-like shape, significantly improves the ability of the wearable monitor to cutaneously sense cardiac electrical potential signals, particularly the P-wave and, to a lesser extent, the QRS interval signals indicating ventricular activity in the ECG waveforms. Additionally, the monitor recorder includes an ECG sensing circuit that measures raw cutaneous electrical signals and performs signal processing prior to outputting the processed signals for sampling and storage.

Claims (53)

1. A monitor recorder optimized for electrocardiographic signal processing, comprising:

a wearable housing adapted to be coupled to a pair of electrocardiographic electrodes that are fitted for dermal placement along a sternal midline; and

an electronic circuitry provided within the wearable housing and comprising:

an electrocardiographic front end circuit under the control of a low-power micro-controller and configured to sense electrocardiographic potentials through the electrocardiographic electrodes and to output the sensed electrocardiographic potentials as electrocardiographic signals representative of cardiac activation wave front amplitudes, comprising:

an AC coupling capacitor, a termination resistor, and a filter capacitor through which at least a portion of the electrocardiographic potentials sequentially pass prior to reaching an operational amplifier, the AC coupling capacitor being directly interfaced to the termination resistor; and

the operational amplifier operable to amplify a current of the sensed electrocardiographic potentials prior to the output of the electrocardiographic potentials as the electrocardiographic signals;

the low-power micro-controller operable to execute over an extended period under modular micro program control as specified in firmware and further operable to acquire samples of the output electrocardiographic signals; and

a non-volatile memory electrically interfaced with the low-power micro-controller and operable to continuously store the samples of the electrocardiographic signals throughout the extended period.

2. A monitor recorder in accordance with claim 1 , further comprising:

the low-power micro-controller further configured to overwrite in the non-volatile memory at least some of the samples of the electrocardiographic signals stored in the memory earlier by the samples of the electrocardiographic signals stored in the memory later upon the memory being filled.

3. A monitor recorder in accordance with claim 1 , further comprising:

the low-power micro-controller configured to store the samples of the electrocardiographic signals until the non-volatile memory is filled.

4. A monitor recorder in accordance with claim 1 , wherein the low-power micro-controller is further operable to perform an authentication of a disposable extended wear electrode patch using a cryptographic circuit provided on the extended wear electrode patch when the housing is coupled to the pair of electrocardiographic electrodes located on the extended wear electrode patch.

5. A monitor recorder in accordance with claim 1 , further comprising:

an analog-to-digital converter operable to convert the electrocardiographic signals into digital representations of the cardiac activation wave front amplitudes;

at least one low pass filter comprised in the firmware; and

at least one high pass filter comprised in the firmware,

wherein the cardiac activation wave front amplitudes are passed through the at least one low pass filter and the at least one high pass filter following conversion into the digital representations.

6. A monitor recorder in accordance with claim 1 , wherein the low-power micro-controller is further interfaced to one or more physiology sensors, the low-power micro-controller further configured to store data received from the one or more physiology sensors in the non-volatile memory.

7. A monitor recorder in accordance with claim 6 , wherein the one or more physiology sensors are comprised on the monitor recorder and comprise one of an SpO 2 sensor, blood pressure sensor, temperature sensor, respiratory rate sensor, glucose sensor, airflow sensor, and volumetric pressure sensor.

8. A monitor recorder in accordance with claim 1 , further comprising:

a wireless-transceiver interfaced with the low-power micro-controller and operable to wirelessly interface with an external wireless-enabled device.

9. A monitor recorder in accordance with claim 8 , wherein the low-power micro-controller offloads the stored samples of the electrocardiographic signals to the external wireless-enabled device.

10. A monitor optimized for electrocardiographic signal processing, comprising:

a disposable extended wear electrode patch, comprising:

a flexible backing comprising stretchable material defined as an elongated strip with a narrow longitudinal midsection;

a pair of electrocardiographic electrodes comprised on a contact surface of each end of the flexible backing, each electrocardiographic electrode conductively exposed for dermal adhesion and adapted to be positioned axially along a midline of the sternum for capturing propagation of electrocardiographic potentials;

a non-conductive receptacle affixed to a non-contacting surface of the flexible backing and comprising an electro mechanical docking interface; and

a pair of flexible circuit traces affixed at each end of the flexible backing with each circuit trace connecting one of the electrocardiographic electrodes to the docking interface; and

an ambulatory electrocardiography monitor recorder, comprising:

a wearable housing adapted to be coupled to the non-conductive receptacle; and

an electronic circuitry provided within the wearable housing and comprising:

an electrocardiographic front end circuit under the control of a low-power micro-controller and configured to sense the electrocardiographic potentials through the electrocardiographic electrodes and to output the sensed electrocardiographic potentials as electrocardiographic signals representative of cardiac activation wave front amplitudes, comprising:

an AC coupling capacitor, a termination resistor, and a filter capacitor through which at least a portion of the electrocardiographic potentials sequentially pass prior to reaching an operational amplifier, the AC coupling capacitor being directly interfaced to the termination resistor; and

the operational amplifier operable to amplify a current of the sensed electrocardiographic potentials prior to the output of the electrocardiographic potentials as the electrocardiographic signals;

the low-power micro-controller operable to execute over an extended period under modular micro program control as specified in firmware and further operable to acquire samples of the output electrocardiographic signals; and

a non-volatile memory electrically interfaced with the low-power micro-controller and operable to continuously store the samples of the electrocardiographic signals throughout the extended period.

11. A monitor in accordance with claim 10 , further comprising:

the low-power micro-controller further configured to overwrite in the non-volatile memory at least some of the samples of the electrocardiographic signals recorded in the memory earlier by the samples of the electrocardiographic signals recorded in the memory later upon the memory being filled.

12. A monitor in accordance with claim 10 , further comprising:

the low-power micro-controller configured to record the samples of the electrocardiographic signals until the non-volatile memory is filled.

13. A monitor in accordance with claim 10 , further comprising:

the low-power micro-controller further operable to perform an authentication of the disposable extended wear electrode patch using a cryptographic circuit provided on the extended wear electrode patch.

14. A monitor in accordance with claim 10 , further comprising:

an analog-to-digital converter operable to convert the electrocardiographic signals into digital representations of the cardiac activation wave front amplitudes;

at least one low pass filter comprised in the firmware; and

at least one high pass filter comprised in the firmware,

wherein the cardiac activation wave front amplitudes are passed through the at least one low pass filter and the at least one high pass filter following conversion into the digital representations.

15. A monitor in accordance with claim 10 , wherein the low-power micro-controller is further interfaced to one or more one physiology sensors comprised on one or more of the disposable extended wear electrode patch and the wearable housing, the low-power micro-controller further configured to store data received from the one or more physiology sensors in the non-volatile memory.

16. A monitor in accordance with claim 15 , wherein the one or more physiology sensors comprise one of an SpO 2 sensor, blood pressure sensor, temperature sensor, respiratory rate sensor, glucose sensor, airflow sensor, and volumetric pressure sensor.

17. A monitor in accordance with claim 10 , further comprising:

a wireless-transceiver interfaced with the low-power micro-controller and operable to wirelessly interface with an external wireless-enabled device.

18. A monitor in accordance with claim 17 , wherein the low-power micro-controller offloads the stored samples of the electrocardiographic signals to the external wireless-enabled device.

Assignments (2)
RELEASE OF SECURITY INTEREST (SENT FOR RECORDAL OCTOBER 25, 2021) Recorded Dec 14, 2021
From: JPMORGAN CHASE BANK, N.A.
To: BREATHE TECHNOLOGIES, INC.; HILL-ROM SERVICES, INC.; ALLEN MEDICAL SYSTEMS, INC.; WELCH ALLYN, INC.; HILL-ROM, INC.; VOALTE, INC.; BARDY DIAGNOSTICS, INC.; HILL-ROM HOLDINGS, INC.
Reel/Frame 058516/0312 →
SECURITY AGREEMENT SUPPLEMENT Recorded Oct 25, 2021
From: BARDY DIAGNOSTICS, INC.
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 058567/0677 →
Continuity (5)
Continuation 15483142 · Apr 10, 2017
Continuation 14488247 · Sep 16, 2014
Continuation In Part 14080725 · Nov 14, 2013
Provisional Application 61882403 · Sep 25, 2013
Related Publication 20180249924A1 · Sep 6, 2018
Cited By (15)
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