MONITORING DEVICE AND SYSTEM
20220362497 ยท 2022-11-17
Inventors
- ANDRES BERNAL DUQUE (Rionegro, CO)
- JUAN DAVID RENDON VELASQUEZ (Rionegro, CO)
- JUAN DANIEL ISAZA BETANCOURT (Rionegro, CO)
Cpc classification
A61B5/0002
HUMAN NECESSITIES
A61M16/0003
HUMAN NECESSITIES
A61M16/024
HUMAN NECESSITIES
A61M16/1005
HUMAN NECESSITIES
International classification
A61M16/00
HUMAN NECESSITIES
A61M16/08
HUMAN NECESSITIES
Abstract
The present disclosure relates to a monitoring device for measuring and monitoring breathing parameters and, optionally, oxygenation and/or vital sign parameters of a mechanically ventilated patient, the monitoring device being removably arrangeable at a portion of a ventilator breathing circuit provided between and in fluid connection with a mechanical ventilator and an airway of the patient. The monitoring device comprises a first sensor arrangeable at the fluid connection for measuring parameters related to an airflow in the fluid connection to obtain measurement data; a processor adapted to receive the measurement data from the first sensor and configured to process the measurement data into at least one breathing parameter; and a transmitter adapted to transmit data comprising the at least one breathing parameter to an external device.
Claims
1. A monitoring device for measuring and monitoring breathing parameters and, optionally, oxygenation and/or vital sign parameters of a mechanically ventilated patient, the monitoring device being removably arrangeable at a portion of a ventilator breathing circuit provided between and in fluid connection with a mechanical ventilator and an airway of the patient, the monitoring device comprising: a first sensor arrangeable at the fluid connection for measuring at least one parameter related to an airflow in the fluid connection to obtain measurement data; a processor adapted to receive the measurement data from the first sensor and configured to process the measurement data into at least one breathing parameter; and a transmitter adapted to transmit data comprising the at least one breathing parameter to an external device.
2. The monitoring device according to claim 1, wherein the first sensor is a flow sensor.
3. The monitoring device according to claim 2, wherein the flow sensor is a differential pressure flow sensor.
4. The monitoring device according to claim 1, wherein the at least one breathing parameter comprises ventilatory mechanics data.
5. The monitoring device according to claim 4, wherein the ventilator mechanics data comprises at least one of airway pressure, gas flow, respiratory rate, inhale to exhale ratio, inspiratory time, expiratory time, tidal volume, peak inspiratory pressure, positive end expiratory pressure, and fraction of inspired oxygen.
6. The monitoring device according to claim 1, further comprising a second sensor arrangeable at the fluid connection for measuring at least one parameter related to an airflow in the fluid connection to obtain second measurement data, and wherein the processor is adapted to receive the second measurement data from the second sensor and configured to process the second measurement data into at least one breathing parameter.
7. The monitoring device according to claim 6, wherein the second sensor is a capnography sensor.
8. The monitoring device according to claim 6, wherein the second sensor is an oxygen sensor.
9. The monitoring device according to claim 7, further comprising a third sensor arrangeable at the ventilator breathing circuit for measuring at least one parameter related to an airflow therein to obtain third measurement data, and wherein the processor is adapted to receive the third measurement data from the third sensor and configured to process the third measurement data into at least one breathing parameter, and wherein the third sensor is an oxygen sensor.
10. The monitoring device according to claim 1, further comprising an internal sensor which is arranged in a housing of the monitoring device and adapted to receive a gas sample from the ventilator breathing circuit for measuring at least one parameter related to the gas sample to obtain measurement data, and wherein the processor is adapted to receive the measurement data from the internal sensor and configured to process the measurement data into at least one breathing parameter.
11. The monitoring device according to claim 1, further comprising a pulse oximeter for measuring at least one parameter related to pulse and/or oxygenation of the patient to obtain fourth measurement data, and wherein the processor is adapted to receive the fourth measurement data from the pulse oximeter and process the fourth measurement data into at least one oxygenation parameter, and wherein the transmitter is adapted to transmit data comprising the at least one oxygenation parameter.
12. The monitoring device according to claim 1, wherein the portion of the ventilator breathing circuit at which the measuring device is removably arrangeable is the patient end of a y-piece of the ventilator breathing circuit, the inspiration limb of the ventilator breathing circuit, and/or the expiration limb of the ventilator breathing circuit.
13. The monitoring device according to claim 1, wherein any of the first sensor, the second sensor, the third sensor, and the pulse oximeter is releasably connected to the processor.
14. The monitoring device according to claim 1, wherein the processor comprises an encryptor for encrypting the at least one breathing parameter and/or the at least one oxygenation parameter to encrypted data, and wherein the transmitter is adapted to transmit the encrypted data to the external device.
15. A system for measuring and remote monitoring of breathing parameters and, optionally, oxygenation and/or vital sign parameters of a mechanically ventilated patient, the system comprising: a monitoring device according to any one of the preceding claims associated with the patient, an external device configured to receive data from the monitoring device, the external device comprising a network server, and an intermediary device connected to the network server and comprising a user interface for displaying the breathing parameters and, optionally, oxygenation and/or vital sign parameters.
16. The system according to claim 15, further comprising an external storage device adapted to receive and store data transmitted from the transmitter of the monitoring device.
17. The system according to claim 15, comprising a plurality of monitoring devices, each associated with a respective patient, and wherein the external device is configured to receive data from the plurality of monitoring devices.
18. The system according to claim 17, wherein the user interface is configured to display vital parameters for a plurality of patients.
19. The system according to claim 15, comprising a plurality of intermediary devices connected to the network server.
20. A method for measuring and remote monitoring of breathing parameters and, optionally, oxygenation and/or vital sign parameters of a mechanically ventilated patient, the method comprising the steps of: removably arranging a first sensor at a portion of a ventilator breathing circuit provided between and in fluid connection with a mechanical ventilator and the airway of the patient; obtaining measurement data, via the first sensor, related to an airflow and an airway pressure in the fluid connection; receiving, by a processor, the measurement data from the first sensor; processing, by the processor, the measurement data into at least one first breathing parameter; and transmitting, by a transmitter connected to the processor, data comprising the at least one first breathing parameter to an external device.
21. The method according to claim 20, further comprising removably arranging a second sensor at the portion of the ventilator breathing circuit; obtaining second measurement data, via the second sensor, related to the airflow in the fluid connection; receiving, by the processor, the second measurement data from the second sensor; processing, by the processor, the measurement data into at least one second breathing parameter; and wherein the transmitting comprises transmitting data comprising the first and the second breathing parameters to an external device.
22. The method according to claim 20, further comprising removably arranging a fourth sensor at a body of the patient; obtaining fourth measurement data, via the fourth sensor, related to a pulse and/or an oxygenation and/or a vital sign of the patient; receiving, by the processor, the fourth measurement data from the fourth sensor; processing, by the processor, the measurement data into at least one oxygenation or vital sign parameter; and wherein the transmitting comprises transmitting data comprising the first and the second breathing parameters, and the at least one oxygenation and/or vital sign parameter to an external device.
23. The method according to claim 20, further comprising encrypting the at least one first breathing parameter, the at least one second breathing parameter, the at least one oxygenation parameter, and/or the data before the transmitting to the external device.
24. The method according to claim 23, further comprising decrypting, by the external device, data received from the transmitter.
25. The method according to claim 20, wherein the first sensor is a differential pressure flow sensor.
26. The method according to claim 21, wherein the second sensor is one of a capnography sensor and an oxygen sensor.
27. The method according to claim 22, wherein the fourth sensor is a pulse oximeter.
28. The method according to claim 20, further comprising receiving, by an intermediary device connected to the external device, data related to a user interface for displaying the breathing parameters and, optionally, the oxygenation and/or vital sign parameters; and displaying, by the intermediary device, the user interface.
29. The method according to claim 28, wherein the user interface is configured to display vital parameters for a plurality of patients.
30. A computer program product comprising a computer-readable storage medium with instructions adapted to carry out the method of claim 20 when executed by a device having processing capability.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0053] The disclosure will by way of example be described in more detail with reference to the appended schematic drawings, which show presently preferred embodiments of the disclosure.
[0054]
[0055]
[0056]
[0057]
[0058]
[0059]
[0060]
DESCRIPTION OF EMBODIMENTS
[0061] The present disclosure will now be described more fully hereinafter with reference to the accompanying drawings, in which currently preferred embodiments of the disclosure are shown. This disclosure may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided for thoroughness and completeness, and to fully convey the scope of the disclosure to the skilled person.
[0062]
[0063] The monitoring device 7 further comprises a processor 7A adapted to receive the measurement data from the first sensor 6. The processor 7A is configured to process the measurement data into at least one breathing parameter. In some examples, the processor is configured to process the measurement data into a plurality of breathing parameters.
[0064] The monitoring device 7 also comprises a transmitter 7D adapted to transmit data comprising the breathing parameter(s) to an external device 10A. According to this embodiment, the processor 7A and the transmitter 7D are arranged in a housing 7E. The housing 7E is provided with first connection ports (described in more detail with reference to
[0065] Further, with reference to the embodiment shown in
[0066] According to an embodiment, the monitoring device 7 further comprises a pulse oximeter 4 for measuring parameters related to the pulse and/or oxygenation of the patient to obtain fourth measurement data. The pulse oximeter 4 is arrangeable at a body of the patient 1, typically a fingertip of the patient 1. In this embodiment, the processor 7A is further adapted to receive the fourth measurement data from the pulse oximeter 4 and process this into an oxygenation parameter or a plurality of oxygenation parameters. Further, the transmitter 7D is adapted to transmit data further comprising the oxygenation parameter(s) to the external device 10. The housing 7E comprising the processor 7A and the transmitter 7D is in this example further provided with a third connection port (not shown) for the pulse oximeter 4, through which the pulse oximeter 4 is releasably connected to the processor 7A.
[0067] Finally, with regards to the monitoring device 7, according to an embodiment it further comprises an encryptor 7C for encrypting the breathing parameters and, optionally, the oxygenation parameters to encrypted data. The transmitter 7D is in this example adapted to transmit the encrypted data to the external device 10A. The encryptor 7C may be comprised in the processor 7A or provided separately from and communicatively connected to the processor 7A. The encryption may be performed using an encryption key, and the external device 10A may have access to a corresponding decryption key for decrypting the encrypted data.
[0068] Continuing with reference to the system 100 shown in
[0069] Also shown in dashed lines, representing devices individually optionally comprised by the system 100, are an external storage device 8 connected to the monitoring device 7 and/or to the external device 10A, and a second level encryptor system 113 comprised by the external device 10A. Thus, according to an embodiment, the system 100 comprises an external storage device 8 adapted to receive and store data transmitted from the transmitter 7D of the monitoring device 7. Data stored in the external storage device 8 can then be transferred to the network server 10 comprised in the external device 10A. The data may be further transmitted to and displayed in the user interface 13 as described above.
[0070] According to an embodiment of a system 100 comprising a monitoring device 7 comprising an encryptor 7C, the system 100 further comprises a second level encryptor system 113. The encryptor system 113 is comprised in the external device 10A for double encryption of the data encrypted by the encryptor 7C. The encryptor system 113 may be configured to double encrypt the encrypted data when stored in the network server 10. In those embodiments, the network server 10 may be further configured to decrypt, by the encryptor system 113, the double encryption of the data before transmitting it to the intermediary device 11, and the intermediary device 11 may be configured to decrypt the data before displaying it in the user interface 13. The encryption method used at the monitoring device, may, for example be hardware accelerated Advanced Encryption Standard (AES)-512 symmetric keys. The encryption method used when storing the data may, for example, be Amazon S3-managed encryption keys (SSE-S3). The encryption method used when encoding data to be transmitted to the intermediary device may, for example, be Transport Layer Security, or TLS.
[0071] In a further embodiment of the system 100 comprising an encryptor 7C and an external storage device 8, the external storage device 8 is adapted to receive and store the encrypted data transmitted from the transmitter 7D. The storage device 8 may further have access to a decryption key corresponding to the encryption key with which the data was encrypted.
[0072] With reference to
[0073] The monitoring device 7 shown in
[0074] The housing 7E further comprises external user feedback interfaces 19A, 19B, 19C to provide feedback of the status of the monitoring device 7. In this exemplifying embodiment, the external user feedback interfaces 19A, 19B, 19C are LED indicators used for local user feedback. In alternative embodiments, the user output interfaces 19A, 19B, 19C may be replaced by for example screens, visible alarms, or any other interface for user feedback. The skilled person would understand, in light of the present disclosure, that the number of user output interfaces may be adapted to the need of the monitoring device 7, and may thus be more than three.
[0075] The housing 7E also includes an Ethernet Jack 16A for a wired connection to the communication network 9, an external storage port 17A for the external storage device 8 (shown in
[0076] Referring to
[0077] The zeroing valves 21, 22 are normally closed 3/2 way valves for allowing venting the differential pressure sensors 20, 23 to the atmosphere for zeroing calibration. Within the concept of the present disclosure, the zeroing method described can be also performed by sensors 20, 23 with auto zero features, be performed by a software, or by any other method suitable for providing zeroing calibration.
[0078] The monitoring device 7 further has two pneumatic ports 6A, 6B for respective hoses, both of which are connected to the flow sensor 6. The flow sensor 6 is a differential pressure flow sensor 6 through which a gas flow passes, creating a differential pressure between two measuring ports included in the sensor 6.
[0079] With the purpose of off-site monitoring, the processor 35 also connects with two built-in modems 31, 33. Built-in modem 33 connects to a female ethernet jack 16A so that the user has the possibility of connecting a wired network connection 16 to provide network connection to the monitoring device 7. Built-in modem 31 connects to a wireless network chip 32. The wireless chip 32 and the wired network connection 16 allow data transmission from the processor 35 to the external device 10A (not shown here). The processing embedded system 35 connects to an external storage port 17A to allow an external storage device to be connected to the monitoring device 7. In this example, the encryptor may be stored as a computer program or computer program instructions in the internal memory 34 and executed by the processing embedded system 35.
[0080] Furthermore, the I/O interface 30 connects to the external user input interfaces 18A, 18B, 18C for receiving user input, to buzzer 27 (an audible alarm), to ambient conditions sensor 28 (barometric sensor also sensing temperature and humidity) and to the user feedback interfaces 19A, 19B, 19C.
[0081] The processing embedded system 35 also connects to a serial communication module 24 which receives and transmits the signal input in serial communication protocol from a pulse oximetry module 4B, which in turn connects to the third connection port 4A. An optional external pulse oximeter 4 can be connected to the third connection port 4A for heart rate and oxygenation monitoring of the patient 1.
[0082] The processing embedded system 35 further connects to a second serial communication module 25 which receives and transmits the signal input in serial communication protocol from a second sensor module 5B which in turn is connected to the second connection port 5A. An optional external second sensor 5, here a capnography sensor, can be connected to the second connection port 5A for monitoring expired CO.sub.2 from the patient.
[0083] Finally, serial communication protocols and modules 24 and 25 are only one of the possible methods that can be used for communicating the second sensor module 5B and the pulse oximetry module 4B with the processor 35.
[0084] Reference is now made to
[0085] In this embodiment, the network server 10 is capable of communicating data from multiple monitoring devices 7 and transmit that information to more than one intermediary device 11 through a communication network 9. An intermediary device 11 may be any electronic device capable of displaying data received from the network server 10. In some examples, the intermediary devices is/are adapted for displaying a webpage, capable of navigating inside that webpage, capable of connecting to the communication network 9, and capable of receiving and/or requesting data from the network server 10. As a non-limiting example, the intermediary device 11 may be a personal computer with a web browser 12 installed and a connection to the internet. Thus, the network server may transmit the received vital parameters to the intermediary devices 11 for displaying to a clinician 14.
[0086] With further reference to
[0087] An example of a setup system and procedure for the system shown in
[0088] Referring to
[0089] The monitoring device 70 is further similar to the embodiment described with reference to
[0090] The monitoring device 70 also comprises a transmitter 7D adapted to transmit data comprising the breathing parameter(s) to an external device. The processor 7A and the transmitter 7D are here arranged in a housing 7E. The monitoring device 70 also optionally comprises a second sensor 5, a pulse oximeter 4, and/or an encryptor 7C, all drawn in dashed lines and arrangeable as explained with reference to
[0091] Finally, the monitoring device 70 further comprises an internal sensor 40 arranged in the housing 7E and adapted to receive a gas sample from the patient circuit 2 for measuring at least one parameter related to the gas sample to obtain measurement data. The internal sensor is here in fluid connection with the patient circuit 2 through a tubing 41, which extends between a portion of the patient circuit 2 and a port of the housing 7E which is fluidly connected with the internal sensor 40. The processor 7A is here further adapted to receive the measurement data from the internal sensor and configured to process the measurement data into at least one breathing parameter.
[0092] Referring to
[0093] Finally, with reference to
[0094] The person skilled in the art realizes that the present disclosure by no means is limited to the preferred embodiments described above. On the contrary, many modifications and variations are possible within the scope of the appended claims.
[0095] Additionally, variations to the disclosed embodiments can be understood and effected by the skilled person in practicing the claimed disclosure, from a study of the drawings, the disclosure, and the appended claims.