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US20150164417A1 - Medical radar system for guiding cardiac resuscitation - Google Patents

Medical radar system for guiding cardiac resuscitation
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Publication number
US20150164417A1
US20150164417A1US14/404,386US201314404386AUS2015164417A1US 20150164417 A1US20150164417 A1US 20150164417A1US 201314404386 AUS201314404386 AUS 201314404386AUS 2015164417 A1US2015164417 A1US 2015164417A1
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Prior art keywords
patient
energy
blood pressure
chest
reflected
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Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
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US14/404,386
Inventor
Joe Paul Tupin, Jr.
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LifeWave Inc
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LifeWave Inc
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Publication date
Application filed by LifeWave IncfiledCriticalLifeWave Inc
Priority to US14/404,386priorityCriticalpatent/US20150164417A1/en
Publication of US20150164417A1publicationCriticalpatent/US20150164417A1/en
Abandonedlegal-statusCriticalCurrent

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Abstract

Medical radar devices, including ultra-wideband (UWB) devices, for use in assisting and/or guiding cardiopulmonary resuscitation (CPR) by indicating one or more of: compression depth, compression frequency, and a return to spontaneous circulation. The devices and methods described herein may use reflected energy applied to a patient's chest to determine cardiac motion and/or chest compression and provide feedback to the person applying the CPR. In some variations the device is incorporated as a part of another resuscitation device, such as a defibrillator or automatic compression device.

Description

Claims (28)

What is claimed is:
1. A device for determining the return of spontaneous circulation (ROSC) when applying cardiopulmonary resuscitation (CPR), the device comprising:
a surface configured to be placed against a patient's chest;
an energy emitter and energy detector configured to emit energy from the surface into the patient;
a processor coupled to the energy detector and energy emitter and configured to evaluate blood pressure from energy returning from the patient after being emitted into the patient; and
an output configured to indicate the ROSC based on the blood pressure evaluation of the processor.
2. The device ofclaim 1, further comprising a sealed housing including the surface.
3. The device ofclaim 1, wherein the energy emitter and detector comprise an ultra-wideband (UWB) transmitter and receiver configured to emit energy into a patient and to receive reflected energy.
4. The device ofclaim 1, wherein the emitter and receiver comprise a single antenna.
5. The device ofclaim 1, wherein the emitter and receiver comprise separate transmitting and receiving antennas.
6. The device ofclaim 1, wherein the processor is configured to evaluate blood pressure based on the time-of-flight of energy returning from the patient after being emitted into the patient.
7. The device ofclaim 1, wherein the processor evaluates blood pressure by determining an estimate of pulse strength from the energy returning from the patient after being emitted into the patient and compares this estimate to a threshold correlated with a known blood pressure.
8. The device ofclaim 1, wherein the processor is configured to evaluate blood pressure by determining one or more regions showing cardiac activity based on the power spectral density of the regions and using these regions to evaluate blood pressure.
9. The device ofclaim 1, wherein the processor is further configured to determine compression rate based on energy returning from the patient after being emitted into the patient.
10. The device ofclaim 1, wherein the processor is further configured to determine compression depth based on energy returning from the patient after being emitted into the patient.
11. The device ofclaim 1, wherein the processor is configured to automatically evaluate blood pressure when compressions are not being applied.
12. The device ofclaim 1, wherein the output comprises a notification that that the patient has or has not returned to spontaneous circulation.
13. The device ofclaim 1, wherein the output comprises one or more of: a visual output, an audible output or a tactile output.
14. The device ofclaim 1, wherein the output comprises one or more visual indicators.
15. The device ofclaim 1, wherein the device is configured as a defibrillator.
16. The device ofclaim 1, wherein the device is configured as a mechanical compression device.
17. A device for determining the return of spontaneous circulation (ROSC) when applying cardiopulmonary resuscitation (CPR), the device comprising:
a surface configured to be placed against a patient's chest;
an energy emitter and energy detector configured to emit energy from the surface into the patient;
a processor coupled to the energy detector and energy emitter and configured to evaluate blood pressure from energy returning from the patient after being emitted into the patient; and
an output configured to indicate the ROSC and to guide compression based on the processor's evaluation of energy returning from the patient after being emitted into the patient.
18. A device for determining the return of spontaneous circulation (ROSC) when applying cardiopulmonary resuscitation (CPR), the device comprising:
an ultra-wideband (UWB) transmitter and receiver configured to emit energy into a patient and to receive reflected energy;
a processor coupled to the UWB transmitter and receiver detector and energy emitter and configured to evaluate blood pressure based on the time-of-flight of the reflected energy returning from the patient; and
an output configured to indicate the ROSC and to guide compression based on the processor's evaluation of the time-of-flight of the reflected energy.
19. A method of determining the return of spontaneous circulation (ROSC) when applying cardiopulmonary resuscitation (CPR), the method comprising:
placing a device against the patient's chest, wherein the device comprises an energy emitter and energy detector configured to emit energy from the surface into the patient and a processor coupled to the energy detector and energy emitter;
performing CPR on the patient;
emitting energy from the device into the patient's chest;
detecting energy reflected from the patient's chest;
evaluating the patient's blood pressure from the energy reflected from the patient's chest; and
indicating based on the evaluated blood pressure if the patient has returned to spontaneous circulation.
20. The method ofclaim 19, wherein placing the device comprises placing the device on the patient's chest before initiating CPR.
21. The method ofclaim 19, wherein emitting energy from the device comprises emitting ultra-wideband radio frequency energy into the patient.
22. The method ofclaim 19, wherein detecting energy reflected from the patient's chest comprises sampling a different times to determine values at different depths into the body.
23. The method ofclaim 19, wherein evaluating the patient's blood pressure comprises determining time-of-flight of the reflected energy.
24. The method ofclaim 19, wherein evaluating the patient's blood pressure from the energy reflected from the patient's chest comprises estimating when compressions are not being applied.
25. The method ofclaim 19, wherein evaluating the patient's blood pressure from the energy reflected from the patient's chest comprises determining an estimate of pulse strength from the reflected energy and comparing the estimate of pulse strength to a threshold correlated with a known blood pressure.
26. The method ofclaim 19, wherein evaluating the patient's blood pressure from the energy reflected from the patient's chest comprises evaluating blood pressure by determining one or more regions showing cardiac activity based on the power spectral density of the regions and using these regions to evaluate blood pressure.
27. The method ofclaim 19, further comprising determining compression rate based on the reflected energy, and outputting an indicator of compression rate.
28. The device ofclaim 19, further comprising determining compression depth based on the reflected energy, and outputting an indicator of compression depth.
US14/404,3862012-05-312013-05-30Medical radar system for guiding cardiac resuscitationAbandonedUS20150164417A1 (en)

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US14/404,386US20150164417A1 (en)2012-05-312013-05-30Medical radar system for guiding cardiac resuscitation

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US201261653724P2012-05-312012-05-31
US14/404,386US20150164417A1 (en)2012-05-312013-05-30Medical radar system for guiding cardiac resuscitation
PCT/US2013/043337WO2013181376A1 (en)2012-05-312013-05-30Medical radar system for guiding cardiac resuscitation

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US15/354,905ContinuationUS11039785B2 (en)2012-05-312016-11-17Medical radar system for guiding cardiac resuscitation

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US15/354,905ActiveUS11039785B2 (en)2012-05-312016-11-17Medical radar system for guiding cardiac resuscitation
US17/351,673Active2035-09-17US12268518B2 (en)2012-05-312021-06-18Medical radar system for guiding cardiac resuscitation

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US17/351,673Active2035-09-17US12268518B2 (en)2012-05-312021-06-18Medical radar system for guiding cardiac resuscitation

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USD1022729S1 (en)2020-07-272024-04-16Masimo CorporationWearable temperature measurement device
USD974193S1 (en)2020-07-272023-01-03Masimo CorporationWearable temperature measurement device
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USD1000975S1 (en)2021-09-222023-10-10Masimo CorporationWearable temperature measurement device
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Also Published As

Publication numberPublication date
WO2013181376A1 (en)2013-12-05
US20210307685A1 (en)2021-10-07
US20170281015A1 (en)2017-10-05
US11039785B2 (en)2021-06-22
US12268518B2 (en)2025-04-08

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