HAND MOUNTED CPR CHEST COMPRESSION MONITOR
20170042762 ยท 2017-02-16
Inventors
Cpc classification
G06F2200/1633
PHYSICS
G06F1/1694
PHYSICS
A61H2201/5041
HUMAN NECESSITIES
G06F2200/1637
PHYSICS
A61B2560/0431
HUMAN NECESSITIES
A61H2201/5015
HUMAN NECESSITIES
A61H31/00
HUMAN NECESSITIES
G06F1/1626
PHYSICS
A61H2201/501
HUMAN NECESSITIES
International classification
Abstract
A chest compression monitor for measuring the depth of chest compressions achieved during CPR. A displacement detector produces a displacement signal indicative of the displacement of the CPR recipient's chest toward the recipient's spine. A signaling mechanism provides chest compression indication signals prompting a CPR provider to provide a chest compression force at a desired depth and rate. The device is held to the dorsal surface of the hand during use and provides a display for feedback, which is readily visible to the CPR provider.
Claims
1. A compression monitor associated with a member of a rapid response team (RRT) in a hospital environment, the compression monitor comprising: one or more sensors configured to generate signals indicative of chest compressions; a processor configured to determine chest compression parameters based on the signals indicative of the chest compressions; a memory configured to store the chest compression parameters; communications hardware configured to transmit information from the compression monitor and receive information at the compression monitor, wherein the information comprises the chest compression parameters; and a housing configured to secure the compression monitor to a hand of the member of the RRT, wherein the compression monitor is a first compression monitor of a plurality of compression monitors associated with the RRT, the plurality of compression monitors comprising the first compression monitor and one or more second compression monitors.
2. The compression monitor of claim 1 wherein the first compression monitor is configured to coordinate communications amongst the plurality of compression monitors associated with the RRT.
3. The compression monitor of claim 1 wherein the compression monitor is configured to communicate with a central control system associated with the plurality of compression monitors associated with the RRT.
4. The compression monitor of claim 1 wherein the communications hardware is configured to transmit the information to one or more of a bedside monitor and a remote monitor.
5. The compression monitor of claim 1 wherein the processor is configured to store historical chest compression parameters in the memory.
6. The compression monitor of claim 5 wherein the determined chest compression parameters are current chest compression parameters and further wherein the processor is configured to compare the historical chest compression parameters with the current chest compression parameters and determine CPR effectiveness information.
7. The compression monitor of claim 5 wherein the communications hardware is configured to transmit the historical chest compression parameters to a central control system associated with the plurality of compression monitors associated with the RRT.
8. The compression monitor of claim 1 wherein the communications hardware is configured to receive texts, preprogrammed responses, and audio responses from the plurality of compression monitors associated with the RRT.
9. The compression monitor of claim 1 wherein the information further comprises hospital information, RRT member identification information, RRT member location information, CPR guideline information, and patient information.
10. The compression monitor of claim 9 wherein the hospital information includes a hospital code and a response to the hospital code from at least one compression monitor of the plurality of compression monitors associated with the RRT.
11. The compression monitor of claim 1 wherein the stored chest compression parameters comprise historical chest compression parameters.
12. The compression monitor of claim 1 wherein the communications hardware supports at least one of universal serial bus (USB) communication and Bluetooth communication.
13. The compression monitor of claim 1 further wherein the housing comprises a strap configured to secure the compression monitor to the dorsal surface of the hand of the member of the RRT at least while the member of the RRT is manually compressing the chest of a patient.
14. The compression monitor of claim 1 wherein the compression monitor comprises at least one of a smart phone, an identification card, and a security badge.
15. The compression monitor of claim 1 wherein the one or more sensors comprise one or more accelerometers.
16. The compression monitor of claim 15 wherein the chest compression parameters comprise an acceleration of the chest of a patient, a depth of chest compression, an average depth of chest compression, a rate of chest compression, a timing of ventilation pauses, a start and end of each compression, a zero-point of acceleration, a velocity, and a change in a direction of the velocity.
17. The compression monitor of claim 1 wherein the communications hardware is configured to communicate according to authentication protocols.
18. The compression monitor of claim 1 wherein the communications hardware is compatible with one or more of proximity sensors and identification sensors in the hospital environment.
19. The compression monitor of claim 1 wherein the compression monitor is configured to provide security system information to an access control system for at least one of a particular hospital space, an ambulance, an emergency vehicle, emergency medical equipment, and a defibrillator.
20. A hospital system for use by a rapid response team (RRT) in a hospital environment, the hospital system comprising: a plurality of devices wherein at least one of the plurality of devices is configured to coordinate communications amongst the plurality of devices, the plurality of devices including at least one compression monitor, and further wherein the at least one compression monitor comprises: one or more sensors configured to generate signals indicative of chest compressions; a processor configured to determine chest compression parameters based on the signals indicative of chest compressions; a memory configured to store the chest compression parameters; communications hardware configured to transmit information from the at least one compression monitor to one or more of the plurality of devices, wherein the information comprises the chest compression parameters; and a housing configured to secure the at least one compression monitor to a hand of a member of the RRT.
Description
DESCRIPTION OF DRAWINGS
[0010]
[0011]
[0012]
[0013]
DETAILED DESCRIPTION
[0014]
[0015] The system accurately determines compression depth without reference to any data derived from fixed sources, and floats freely with the CPR provider's hands. The microprocessor is programmed to determining the start of a compression without reference to a signal derived from a source external to the module, and thereafter calculate downward displacement of the chest using the acceleration signal; said microprocessor further programmed to output a compression signal. The microprocessor is also programmed to determine the start and end of each compression based on the acceleration signal, a zero-point of acceleration and changes in the direction of velocity of the module.
[0016]
[0017] For use with a watch-like chest compression monitor, the strap may be an easily expandable silicone band. The strap in this case should be elastic enough such that, when fully relaxed it fits closely to the wrist of the CPR provider, yet may be stretched to encompass the hand securely yet comfortably. The strap may also be adjustable between a first size that maintains the housing on the wrist without excess slack and a second larger size that maintains the housing on the back of the hand without excess slack.
[0018] The housing, whether a pre-existing smart phone, programmable watch, or dedicated chest compression monitor, houses the microprocessor, accelerometer, display, speaker or enunciator, and necessary input mechanisms (where discrete input mechanisms are used, rather than a touch screen with touch-operable input icons). The accelerometer produces an acceleration signal corresponding to the acceleration of the chest compression monitor, which is output to the microprocessor which produces and outputs a displacement signal indicative of the displacement of a CPR recipient's chest toward the recipient's spine. The microprocessor is also programmed to operate the speaker or enunciator to provide audible signals communicating the sufficiency or insufficiency of compressions, or prompting the CPR provider with audible pacing signals to help the CPR provider maintain the desired rate of compressions.
[0019]
[0020] Additional features may be incorporated into the system. Memory may be provided so that the processor can store historical compression data. Removable flash memory may be used, from which compression data can be retrieved by any computer, and communications hardware (USB, Bluetooth, etc.) may be provided so that compression data may be retrieved directly from the device. Chest compression data can then be retrieved by a general purpose computer and analyzed as desired to determine the effectiveness of compressions and comparing the historical compression data with other parameters measured during CPR. Communications hardware and associated software may be used to transmit chest compression data (or other CPR related data) to a bedside monitor or a remote monitor, which may in turn be programmed to notify additional potential responders that CPR is in progress. The device or the remote monitor can also be programmed to coordinate communications with the typical hospital rapid response team. Provided that a device is in the possession of a number of RRT members, one device or a central control system can be programmed to communicate with devices held by members of the RRT, and those members can use communications capabilities of the device to learn of cardiac arrest within the hospital, and respond with text, preprogrammed responses, or audio, indicating their ability to respond and provide aspects of cardiac arrest therapy. If most or all hospital employees possess a device, other important employee notifications and hospital specific codes can be provided through the system, and desired response to various codes can be transmitted from the device to the central control system, thereby quickly confirming that necessary responses to various codes have occurred.
[0021] The housing may be combined also with personnel identification card used by hospital employees, and, where the benefits of prefabricated housing/accelerometer/microprocessor are not desired, the components may be incorporated into a badge-like or card-like device that takes the place of ID tags currently used. The device may be used to track the location of hospital staff, which is particularly important to ensure, for example, that ICU's are adequately staffed. The device may be combined with authentication protocols and security information, and may be used in combination with security systems that control access to spaces within the hospital, security systems that control access to ambulances and emergency vehicles, and security systems that control access to emergency medical equipment such as defibrillators, as described in U.S. Pat. No. 7,666,154 to Bystrom. In hospital, the device may be used in conjunction with proximity sensors or ID sensors to track employee working hours.
[0022] The memory and microprocessor within the device can also be used to store and display instructions for common hospital procedures, including various codes. ACLS guidelines, hospital-specific cardiac arrest procedures, instructions for responding to Code Red, Code Pink, and other codes can be provided for convenient review by users.
[0023] While the preferred embodiments of the devices and methods have been described in reference to the environment in which they were developed, they are merely illustrative of the principles of the inventions. The elements of the various embodiments may be incorporated into each of the other species to obtain the benefits of those elements in combination with such other species, and the various beneficial features may be employed in embodiments alone or in combination with each other. Other embodiments and configurations may be devised without departing from the spirit of the inventions and the scope of the appended claims.