IP Library Patent Application 18611609
Patent Application
App. No. 18/611,609

PATIENT MONITORING AND TREATMENT SYSTEMS AND METHODS

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
18/611,609
Abstract

Non-invasive blood pressure (NIBP) systems and methods are disclosed that measure a blood pressure, and in some examples a beat-to-beat blood pressure, of a patient without restricting blood flow. The NIBP systems determine an efficacy of administered cardiopulmonary resuscitation (CPR) to the patient based on the measured blood pressure and are able to optionally output the CPR efficacy or generate user prompts based on the CPR efficacy. Further, the disclosed NIBP systems can generate user instructions to administer further treatment to the patient based on the CPR efficacy.

Claims (79)

1 - 20 . (canceled)

21 . A system, comprising:

a medical device comprising:

an emitter configured to generate a signal comprising an electromagnetic wave or a mechanical wave;

a detector configured to detect a reflection of the signal from a blood vessel of a patient;

a transmitter; and

a processor configured to:

determine a metric indicative of blood movement or blood pressure by analyzing the reflection of the signal from the blood vessel of the patient;

generate cardiopulmonary resuscitation (CPR) feedback by analyzing the metric; and

cause the transmitter to output the CPR feedback; and

a treatment device configured to:

administer chest compressions to the patient; and

alter a rate, depth, or position of the chest compressions in response to receiving the CPR feedback.

22 . The system of claim 21 , wherein the processor is configured to determine the metric indicative of blood movement or blood pressure by analyzing the reflection of the signal from the blood vessel of the patient by:

determining, by analyzing the reflection:

a pulse wave velocity of the blood vessel; and

a velocity of blood in the blood vessel; and

determining a product of the pulse wave velocity of the blood vessel, the velocity of the blood in the blood vessel, and a density of the blood in the blood vessel.

23 . The system of claim 21 , further comprising:

an output device configured to output an instruction to administer a treatment to the patient, the treatment comprising defibrillation, administration of a medication, ventilation, or intubation,

wherein the processor is further configured to generate the instruction by analyzing the CPR feedback.

24 . A medical device comprising:

an emitter configured to generate a signal comprising an electromagnetic wave or a mechanical wave;

a detector configured to detect a reflection of the signal from a blood vessel of a patient; and

a processor configured to:

determine a metric indicative of blood movement or blood pressure by analyzing the reflection of the signal from the blood vessel of the patient;

generate cardiopulmonary resuscitation (CPR) feedback by analyzing the metric; and

output the CPR feedback.

25 . The medical device of claim 24 , wherein the processor is configured to determine the metric indicative of blood movement or blood pressure by analyzing the reflection of the signal from the blood vessel of the patient by:

determining, by analyzing the reflection of the signal from the blood vessel of the patient:

a pulse wave velocity of the blood vessel; and

a velocity of blood in the blood vessel; and

determining a blood pressure of the patient as a function of a product of the pulse wave velocity and the velocity of blood flowing through the blood vessel.

26 . The medical device of claim 24 , wherein the processor is configured to determine the metric indicative of blood movement or blood pressure by analyzing the reflection of the signal from the blood vessel of the patient by:

determining, by analyzing the reflection of the signal from the blood vessel of the patient:

a velocity of blood in the blood vessel; and

a geometry of the blood vessel; and

determining an amount of the blood delivered by the blood vessel as a function of the velocity of the blood in the blood vessel and the geometry of the blood vessel.

27 . The medical device of claim 24 , wherein the processor is configured to generate the CPR feedback by analyzing the metric by:

detecting, by analyzing the metric, that the patient has a return of spontaneous circulation (ROSC).

28 . The medical device of claim 24 , further comprising:

a display,

wherein the processor is configured to output the CPR feedback by causing the display to output an instruction indicative of the CPR feedback.

29 . The medical device of claim 28 , wherein the instruction comprises a recommendation to administer a treatment to the patient, the treatment comprising administration of chest compressions, defibrillation, administration of a medication, ventilation, or intubation.

30 . The medical device of claim 24 , further comprising:

a transmitter,

wherein the processor is configured to output the CPR feedback by causing the transmitter to output the CPR feedback to an external device.

31 . The medical device of claim 30 , wherein the external device comprises a mechanical chest compression device administering chest compressions to the patient, and

wherein the CPR feedback causes the mechanical chest compression device to alter a rate, depth, or position of the chest compressions.

32 . The medical device of claim 24 , further comprising:

an ECG sensor configured to detect an ECG of the patient; and

an oxygenation sensor configured to detect a blood oxygenation of the patient,

wherein the processor is configured to generate the CPR feedback further by analyzing the ECG of the patient and the blood oxygenation of the patient.

33 . A method, comprising:

generating a signal comprising an electromagnetic wave or a mechanical wave;

detecting a reflection of the signal from a blood vessel of a patient;

determining a metric indicative of blood movement or blood pressure by analyzing the reflection of the signal from the blood vessel of the patient;

generating cardiopulmonary resuscitation (CPR) feedback by analyzing the metric; and

outputting the CPR feedback.

34 . The method of claim 33 , wherein determining the metric indicative of blood movement or blood pressure by analyzing the reflection of the signal from the blood vessel of the patient comprises:

determining, by analyzing the reflection of the signal from the blood vessel of the patient:

a pulse wave velocity of the blood vessel; and

a velocity of blood in the blood vessel; and

determining a blood pressure of the patient as a function of a product of the pulse wave velocity and the velocity of blood flowing through the blood vessel.

35 . The method of claim 33 , wherein determining the metric indicative of blood movement or blood pressure by analyzing the reflection of the signal from the blood vessel of the patient comprises:

determining, by analyzing the reflection of the signal from the blood vessel of the patient:

a velocity of blood in the blood vessel; and

a geometry of the blood vessel; and

determining an amount of the blood delivered by the blood vessel as a function of the velocity of the blood in the blood vessel and the geometry of the blood vessel.

36 . The method of claim 33 , wherein generating the CPR feedback by analyzing the metric comprises:

detecting, by analyzing the metric, that the patient has a return of spontaneous circulation (ROSC).

37 . The method of claim 33 , wherein outputting the CPR feedback comprises outputting a recommendation to administer a treatment to the patient, the treatment comprising administration of chest compressions, defibrillation, administration of a medication, ventilation, or intubation.

38 . The method of claim 33 , wherein outputting the CPR feedback comprises transmitting the CPR feedback to an external device.

39 . The method of claim 38 , wherein the external device comprises a mechanical chest compression device administering chest compressions to the patient, and

wherein outputting the CPR feedback comprises causing the mechanical chest compression device to alter a rate, depth, or position of the chest compressions.

40 . The method of claim 33 , further comprising:

detecting an ECG of the patient; and

detecting a blood oxygenation of the patient,

wherein generating the CPR feedback further comprises analyzing the ECG of the patient and the blood oxygenation of the patient.

Assignments (2)
CHANGE OF ADDRESS Recorded Dec 18, 2024
From: STRYKER CORPORATION
To: STRYKER CORPORATION
Reel/Frame 069737/0184 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 20, 2024
From: SIEDENBURG, CLINTON T.; LOUNSBERY, ARTHUR T.; SMITH, MITCHELL A.; WALKER, ROBERT G.
To: STRYKER CORPORATION
Reel/Frame 066847/0739 →