SPLIT PHASE VENTILATION FOR CPR AND METHODS
A method for ventilating a patient during CPR including repeatedly compressing the patient's chest and delivering a positive pressure ventilation to the patient primarily during a decompression phase of the repeated compressions of the patient's chest.
1 . A method for ventilating a patient during CPR, the method comprising:
repeatedly compressing the patient's chest resulting in repeating compression and decompression phases of the patient's chest; and
delivering a positive pressure ventilation to the patient during only multiple successive decompression phases of the repeated compressions of the patient's chest.
2 . The method for ventilating a patient during CPR of claim 1 , further comprising:
sensing one or both of a compression phase and the decompression phase of the repeated compressions of the patient's chest, wherein delivering the positive pressure ventilation is based on the sensing.
3 . The method for ventilating a patient during CPR of claim 2 , wherein:
sensing one or both of a compression phase and the decompression phase of the repeated compressions of the patient's chest comprises using at least one of a sensor attached to the patient, an airway adjunct attached to the patient, or a compression sensor in a chest compression device that is interfaced with the patient; and
a sensed signal from at least one of the sensor, the airway adjunct, or the compression sensor triggers the positive pressure ventilation during the decompression phase.
4 . The method for ventilating a patient during CPR of claim 1 , further comprising:
actively decompressing the patient's chest between each compression of the patient's chest.
5 . The method for ventilating a patient during CPR of claim 1 , further comprising:
elevating the individual's heart, shoulders, and head relative to horizontal while repeatedly compressing the patient's chest.
6 . The method for ventilating a patient during CPR of claim 5 , wherein:
elevating the individual's heart, shoulders, and head is performed at a rate of between about 0.25°/second and about 40°/minute.
7 . A method for ventilating a patient during CPR, the method comprising:
repeatedly compressing the patient's chest resulting in repeating compression and decompression phases of the patient's chest;
detecting a decompression phase of the patient's chest; and
initiating delivery of a positive pressure ventilation to the patient based on the detected decompression phase, wherein the positive pressure ventilation is delivered at least primarily during the detected decompression phase.
8 . The method for ventilating a patient during CPR of claim 6 , further comprising:
detecting a compression phase of the patient's chest; and
ceasing the delivery of the positive pressure ventilation upon the detection of the compression phase.
9 . The method for ventilating a patient during CPR of claim 7 , further comprising:
detecting a subsequent decompression phase of the patient's chest; and
resuming the delivery of the positive pressure ventilation to the patient based on the detected subsequent decompression phase.
10 . The method for ventilating a patient during CPR of claim 6 , further comprising:
elevating the individual's heart, shoulders, and head relative to horizontal while repeatedly compressing the patient's chest.
11 . The method for ventilating a patient during CPR of claim 9 , wherein:
the individual's heart, shoulders, and head are elevated in a controlled manner over a period of time between about 20 seconds and 10 minutes.
12 . The method for ventilating a patient during CPR of claim 2 , wherein:
the positive pressure ventilation is delivered to the patient only during the multiple successive decompression phases.
13 . A system for delivering split-phase positive pressure ventilations for use in cardiopulmonary resuscitation (CPR), comprising:
a positive pressure delivery device;
at least one sensor that is configured to:
be coupled to one or both of a patient or a device that interacts with a patient during CPR; and
detect a decompression phase of CPR; and
a controller system that is coupled with the positive pressure delivery device and in communication with the at least one sensor, the controller system being configured to cause the positive pressure delivery device to deliver positive pressure ventilation primarily during the decompression phase of CPR over at least two decompression cycles.
14 . The system for delivering split-phase positive pressure ventilations for use in cardiopulmonary resuscitation (CPR), of claim 13 , wherein:
the at least one sensor is further configured to detect a compression phase of the patient's chest; and
the controller system is further configured to cease the delivery of the positive pressure ventilation base on the detection of the compression phase.
15 . The system for delivering split-phase positive pressure ventilations for use in cardiopulmonary resuscitation (CPR), of claim 13 , wherein:
the at least one sensor comprises an intrathoracic pressure sensor that is configured to detect the compression phase when an intrathoracic pressure of the individual exceeds a predetermined threshold.
16 . The system for delivering split-phase positive pressure ventilations for use in cardiopulmonary resuscitation (CPR), of claim 15 , wherein:
the predetermined threshold is about 10 mmHg.
17 . The system for delivering split-phase positive pressure ventilations for use in cardiopulmonary resuscitation (CPR), of claim 13 , further comprising:
an elevation device comprising:
a base;
an upper support coupled with the base, wherein the upper support is configured to elevate an individual's heart, shoulders, and head relative to horizontal, the upper support being moveable between a first elevated position and a second elevated position, the second elevated position having a level of elevation relative to the horizontal which is greater than that of the first elevated position;
an adjustment mechanism coupled with the upper support that is configured to adjust a level of elevation of the upper support; and
a chest compression device for performing chest compressions coupled with one or both of the base and the upper support.
18 . The system for delivering split-phase positive pressure ventilations for use in cardiopulmonary resuscitation (CPR), of claim 17 , wherein:
the chest compression device is further configured to actively decompress the individual's chest between each chest compression.
19 . The system for delivering split-phase positive pressure ventilations for use in cardiopulmonary resuscitation (CPR), of claim 17 , wherein:
the elevation device further comprises an additional controller system that is coupled with the adjustment mechanism and the chest compression device, the additional controller system being configured to:
actuate the chest compression device for a period of time with the upper support in the first elevated position;
subsequently move the upper support from the first elevated position to the second elevated position whilst the chest compression device remains actuated; and
actuate the chest compression device with the upper support in the second elevated position.
20 . The system for delivering split-phase positive pressure ventilations for use in cardiopulmonary resuscitation (CPR), of claim 13 , wherein:
the controller system and the additional controller system are the same.