Medical ventilator displaying patient's airway opening pressure

The medical ventilator addresses airway closure detection and AOP measurement in ARDS patients by controlling gas flow and analyzing pressure/volume curves, enhancing ventilation safety through precise AOP determination and PEEP adjustment.

FR3160112A1Active Publication Date: 2025-09-19AIR LIQUIDE MEDICAL
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
FR2024002621
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-15
Publication Date
2025-09-19
Estimated Expiration
2044-03-15

AI Technical Summary

Technical Problem

Existing medical ventilators struggle to accurately detect airway closure and measure airway opening pressure (AOP) in patients with acute respiratory distress syndrome (ARDS), leading to misinterpretation of respiratory mechanics and increased risk of ventilator-induced lung injury.

Method used

A medical ventilator equipped with gas supply, pressure and flow rate measurement, data processing, and display means to determine AOP by controlling respiratory gas flow at specific rates and volumes, identifying inflection points on pressure/volume curves to detect airway closure and adjust ventilation parameters.

Benefits of technology

Enables precise detection of airway closure and measurement of AOP, allowing personalized ventilation to minimize lung injury risks by adjusting PEEP pressure based on AOP, thereby improving patient safety.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

Title of the invention Medical ventilator displaying the patient's airway opening pressure The invention relates to a medical ventilator (1) comprising gas supply means (2) for supplying respiratory gas to a patient circuit (3), pressure measuring means (4), flow rate determining means (5), data processing means (10) for processing the pressure and / or flow rate measurements, display means (11), and storage means (10.3) for storing a circuit compliance pressure / volume curve (C1) representing the compliance of the respiratory circuit. The data processing means (10) are configured to perform a determination of the AOP pressure and the display means (11) display the AOP pressure value (20). The AOP pressure is used to adjust a PEEP valve (13) arranged on the patient circuit (3). Abstract figure: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

Title of the invention: Medical ventilator displaying the patient's airway opening pressure

[0001] The invention relates to a medical ventilator, that is to say a respiratory assistance device capable of supplying a respiratory gas, such as air, oxygen or an air / oxygen mixture, making it possible to determine and display the opening pressure of the patient's airways or AOP pressure (for Airways Opening Pressure in English) of a patient receiving the respiratory gas.

[0002] Acute respiratory distress syndrome (ARDS) is a common cause of mortality in humans. Its management requires the application of so-called "protective" ventilation in patients, which is generally implemented by a respiratory assistance device, also called a medical ventilator, with personalization of the ventilatory parameters for each patient, typically the flow rate, pressure and / or frequency of respiratory cycles.

[0003] A so-called airway closure phenomenon has been reported in 23 to 52% of patients with acute respiratory distress syndrome (ARDS).

[0004] Therefore, detection of airway closure and measurement of airway opening pressure are essential to adapt ventilation to each patient.

[0005] Indeed, setting a positive expiratory pressure (PEEP) lower than the airway opening pressure can alter the measurement of the patient's respiratory mechanics.

[0006] In addition, cyclical opening and closing of small airways may also occur and promote ventilator-induced lung injury.

[0007] There is therefore a risk for patients when ventilation parameters are poorly chosen or inadequately chosen.

[0008] A problem is therefore to be able to determine a possible closure of the airways in ARDS patients and to measure the airway opening pressure (AOP) when this airway closure is present in order to avoid misinterpretation of the curves and calculations of respiratory mechanics and also to personalize ventilation based on the analysis of the airway closure phenomenon, so as to avoid or minimize risks for the patients.

[0009] One solution of the invention relates to a medical ventilator, i.e. a respiratory / ventilatory assistance device, making it possible to supply a respiratory gas to a patient including: - gas supply means for supplying breathing gas, - a patient circuit supplied with respiratory gas by the gas supply means, - pressure measuring means configured to determine the gas pressure in the patient circuit, - flow rate determining means configured to determine the flow rate of respiratory gas in the patient circuit, - data processing means comprising at least one (micro)processor for processing the pressure and / or flow rate measurements carried out by the pressure measuring means and the flow rate determination means, - display means controlled by the data processing means, and - storage means for storing a pressure / volume circuit compliance curve (P-Vcircuit_patient) representing the compliance of the respiratory circuit.

[0010] In addition, the medical ventilator further comprises selection means, operable by the user to initiate a determination of the airway opening pressure (AOP), and the data processing means are configured to perform a determination of the AOP pressure in response to actuation by the user of the selection means: a. by controlling the gas supply means to supply the respiratory gas at a so-called "low" respiratory rate of between 2 and 10 ventilation cycles per minute, and at a so-called "slow" insufflation rate of between 2 and 10 L / min until an inspiratory volume of between 200 and 1500 mL or a maximum pressure (Pmax) of between 20 and 60 cmH20 is obtained, b. by controlling a display on the display means of the stored circuit compliance pressure / volume curve (P-Vcircuit_patient) and a pressure / volume curve corresponding to insufflation at “slow” flow rate (P-Vdébit_lent), the stored “slow” flow rate insufflation pressure / volume curve (P-Vcircuit_patient) being displayed superimposed on the circuit compliance pressure / volume curve (P-Vcircuit_patient), c. by searching for and locating on the pressure / volume curve of insufflation at “slow” flow (P-Vdebit_slow), an inflection point corresponding to a change in slope of said pressure / volume curve of insufflation at “slow” flow (P-Vdebit_slow) with separation of the pressure / volume curve of insufflation at “slow” flow (P-Vdebit_slow) from the pressure / volume curve of circuit compliance (P-Vcircuit_patient), and d. by determining the pressure value at the inflection point located on the “slow” flow curve (P-Vslow_flow).

[0011] In addition, the data processing means are further configured to control a display on the display means of the value of the AOP pressure, i.e. the opening pressure of the patient's airways, corresponding to the pressure value having been determined at the present inflection point of the "slow" flow rate curve (P-Vslow_flow).

[0012] Within the framework of the invention, in order to simplify understanding, the following abbreviations and / or simplifications are used: - “AOP pressure” to designate the opening pressure of the channels patient's airways; - “compliance curve” to designate the pressure / volume curve of circuit compliance (P-Vcircuit_patient); - “slow flow curve” to designate the pressure / volume curve at flow rate “slow” (P-Vdebit_slow). - “%vol.” means percentage by volume. - “O2” means oxygen. - the terms "means of" are considered to be completely equivalent and substitutable by the terms "devices of", for example the terms "information processing means" can be replaced by "information processing device", the terms "display means" can be replaced by "display device", "memorization means" can be replaced by "memorization device" ...

[0013] Depending on the embodiment considered, the medical ventilator of the invention may comprise one or more of the following characteristics: - the patient circuit includes an inspiratory branch and an expiratory branch. - the gas supply means supply the respiratory gas at the insufflation flow rate for a sufficient time to obtain the desired inspiratory volume of between 200 and 1500 mL or the desired maximum pressure (Pmax) of between 20 and 60 cmH20. - said sufficient duration results from the adjustment of the flow rate and the desired inspiratory volume. - said sufficient duration is preferably less than 60 seconds, for example of the order of 1 to 45 seconds. - the inspiratory branch and the expiratory branch are fluidically connected to a connecting piece, typically a Y-shaped piece. the patient circuit is fluidically connected to a respiratory interface, such as a respiratory mask, an endotracheal intubation tube or other, the inspiratory branch supplies the respiratory gas to the respiratory interface, the respiratory gas contains oxygen (O2) in a proportion of at least 20% vol., preferably at least 21% vol. the breathing gas is air, oxygen, or an air / oxygen mixture. the inspiratory branch is fluidically connected to the gas supply means, in particular to the gas supply outlet of a motorized turbine, the expiratory branch recovers the gas exhaled by the patient in the respiratory interface, i.e. the gas containing CO2. the means for supplying breathing gas comprises a source of breathing gas, such as a motorized turbine. alternatively, the means for supplying breathing gas comprises means for fluid connection to a source of breathing gas, such as a wall gas outlet. data processing means comprising at least one (micro)processor for determining one or more gas volumes entering or leaving the ventilator from the processing carried out on the flow measurements carried out by the flow determination means. the pressure measuring means comprise a pressure sensor, the flow rate determining means comprise a flow rate sensor, the pressure measuring means are arranged in the inspiratory branch of the patient circuit. the pressure measuring means are arranged inside the fan, i.e. in its casing. the display means are configured to operate displays, in particular one or more curves, numerical values, texts, messages, windows, icons, etc. or any other information. the data processing means are further configured to control a display on the display means of information relating to the existence of a closure of the patient's airways, i.e. in particular when an inflection point is detected and / or an AOP is determined, for example a message in text form indicating the presence / existence or not of a closure of the airways, such as for example “presence of an airway closure” or “airway closure detected” or, conversely, “absence of airway closure” or “airway open”, or any other equivalent message, the data processing means are further configured to order a display on the display means of a message in text form indicating the pressure value “x” corresponding to the determined AOP, i.e. in the event of airway closure, for example “AOP = x cmH2O”, with x typically between 1 and 30 cmH2O. data processing means comprising at least one (micro)processor implementing one or more algorithms, the data processing means comprise a microcontroller, said at least one (micro)processor is arranged on an electronic card, the data processing means are configured to determine the inspired volume and the expired volume the display means include a touch screen, i.e. a touch panel. the selection means comprise a virtual key displayed on the display means, in particular on the touch screen, i.e. a touch key, i.e. operated by pressing or digital pressure. The touch screen is color display. the “low” respiratory rate is between 3 and 7 ventilation cycles per minute, for example around 5 ventilation cycles per minute. the “slow” insufflation flow rate is between 3 and 7 L / min, for example around 5 L / min. the data processing means are configured to control a display of the AOP pressure value as a positive pressure value, preferably expressed in cmH20 or another unit. the slow flow curve is obtained from the pressure and flow values ​​processed by the microprocessor(s). the “slow” flow rate curve is a curve displayed and updated in real time, compliance (eg the stored compliance curve) is obtained before the start of patient treatment. The compliance of the patient circuit is memorized before the start of patient treatment during tests to verify the correct operation of the machine or “self tests”. This circuit compliance is then used to determine and display the compliance curve (i.e. P-Vcircuit_patient curve) superimposed on the slow flow curve (i.e. P-Vdebit_slow curve). the data processing means are further configured to determine a PEEP pressure from the AOP pressure having been determined. - the data processing means are further configured to recommend (i.e. determine) a PEP pressure higher than the AOP pressure having been determined. - the data processing means are further configured to control a display on the display means of the recommended PEEP pressure. - the AOP pressure value is between 1 and 30 cmH20. - the gas supply means include a motorized turbine controlled by the data processing means. - the pressure measuring means comprise a pressure sensor and / or the flow rate determining means comprise a flow rate sensor. - it includes a PEP valve arranged on the patient circuit, in particular on the expiratory branch. - the data processing means are configured to adjust the PEEP pressure of said PEEP valve to the recommended PEEP pressure. - the data processing means are configured to adjust the PEP pressure of said PEP valve in response to activation by the user of an adjustment confirmation means, preferably after the user has digitally pressed a virtual confirmation key displayed on the digital screen. - it includes means of supplying electrical current to the fan, such as a connection to the mains (110 / 220V) and / or a rechargeable battery.

[0014] The invention will now be better understood thanks to the following detailed description, given for illustrative but non-limiting purposes, with reference to the appended figures among which:

[0015] [Fig.l] shows schematically an embodiment of a medical ventilator according to the invention.

[0016] [Fig.2] shows a diagram of an embodiment of the display of pressure / volume curves superimposed showing the inflection point occurring when the patient's airway is closed.

[0017] [Fig.l] schematizes an embodiment of a medical ventilator 1 according to the invention, which comprises gas supply means 2 for supplying respiratory gas to a patient in need thereof, typically a person suffering from ARDS.

[0018] Here, the gas supply means 2 comprise a motorized turbine 2.1 supplied with air by an air supply duct 2.2 connected to the ambient atmosphere and with oxygen by an oxygen supply duct 2.3 which can be connected to an oxygen source (not shown), such as a pressurized oxygen cylinder or a socket hospital wall-mounted unit supplied by an oxygen supply line.

[0019] However, according to another embodiment (not shown), the gas supply means 2 comprise means for fluid connection to a source of respiratory gas, such as a wall-mounted gas outlet, and one or more controlled valves, such as solenoid valves controlled by the data processing means 10.

[0020] Typically, the breathing gas supplied by the gas supply means 2 is air, oxygen or an air / oxygen gas mixture (>20% vol. O2, preferably >21% vol. O2 approximately).

[0021] The gas supply means 2 supply a patient circuit 3 comprising an inspiratory branch 3.1 and an expiratory branch 3.2, such as gas passages or conduits, in particular flexible pipes, fluidically connected to a respiratory interface 6, such as a respiratory mask or an endotracheal tube, via a connecting piece 6, namely a Y-shaped piece or the like.

[0022] The inspiratory branch 3.1 brings the respiratory gas to the respiratory interface 6, which gas is inspired by the patient, during his inspiratory phases, while the expiratory branch 3.2 conveys the gases loaded with CO2 exhaled by the patient into the respiratory interface 6, during the expiratory phases. The expiratory branch 3.2 is connected to an evacuation outlet 9 for the exhaled gases of the ventilator 1 fluidically connected to the ambient atmosphere.

[0023] A PEEP valve 13 is arranged on the patient circuit 3, in particular on the expiratory branch 3.2. The data processing means are configured to adjust the PEEP pressure of said PEEP valve 13 to the proposed PEEP pressure, as explained below, in particular in response to the activation by the user of a setting confirmation means, preferably after the user has digitally pressed a virtual confirmation key displayed on the digital screen 11.1.

[0024] Furthermore, the patient circuit 3, in particular the inspiratory branch 3.1, comprises pressure measuring means 4, such as a pressure sensor, making it possible to measure, i.e. determine, the pressure of the gas in the inspiratory branch 3.1, and flow rate determination means 5, such as a flow rate sensor, used to determine the flow rate of respiratory gas in the patient circuit 3.

[0025] Preferably, the flow rate determining means 5 are arranged close to the outlet 2.4 of the gas supply means 2, i.e. immediately downstream of the turbine 2.1.

[0026] Furthermore, the pressure measuring means 4 are located upstream of the connecting piece 6, i.e. the Y-shaped piece.

[0027] The medical ventilator 1 comprises data processing means 10, also called control means, comprising one (or more) microprocessors 10.1 arranged on an electronic card 10.2, which make it possible to process data and to control or control elements of the fan 1, in particular the operation of the turbine 2.1, the displays on the display screen 11, preferably a touch screen 11.1, or others.

[0028] The pressure measuring means 4 and the flow rate determining means 5, i.e. the pressure and flow rate sensors, are electrically connected to the data processing means 10, typically to the (micro)processor 10.1, in order to provide them with pressure and flow rate measurements (i.e. values ​​or signals), and the data processing means 10 are configured to process the pressure and flow rate measurements coming from the pressure measuring means 4 and the flow rate determining means 5, i.e. the pressure and flow rate sensors

[0029] The data processing means 10 can for example deduce one or more gas volumes entering or leaving the ventilator 1, typically from the patient circuit 3, i.e. the respiratory gas supplied to the patient or the CO2-rich gases exhaled by the patient.

[0030] The ventilator 1 further comprises storage means 10.3, typically a computer memory, such as a flash memory, RAM or the like, used to store a curve (i.e. a curve or compliance values ​​are stored to establish such a curve) pressure / volume compliance of the circuit (P-Vcircuit_patient) representing the compliance of the respiratory circuit (i.e. curve Cl in [Fig.l]) or values ​​such as the AOP value. The storage means 10.3 are preferably arranged on the electronic card 10.2 and electrically connected to the (micro)processor 10.1

[0031] Means for supplying electrical current, such as a connection to the mains (110 / 220V), for example electric cables, and / or a rechargeable battery, supply the fan 1, in particular the turbine 2.1, the sensors 4, 5, the data processing means 10, the touch screen 11.... and the other components requiring electrical current to operate.

[0032] All or part of the different components are arranged in an external casing or shell 1.1 of the fan 1.

[0033] According to the invention, it is desired to be able to determine a possible closure of the airways in ARDS patients, who are ventilated with a medical ventilator 1, such as that described above, and to measure the opening pressure of their airways (i.e. the AOP pressure) when it is present, in order to avoid a misinterpretation of the curves and calculations of respiratory mechanics and moreover to carry out a personalization of the ventilation based on the analysis of the phenomenon of closure of the airways, and so as to avoid or minimize the risks for the patients.

[0034] To do this, the fan 1 is equipped with selection means 11.2, actuable by the user to start a determination of the airway opening pressure or AOP pressure, i.e. to start the procedure for determining a possible closure of the patient's airway of the corresponding AOP pressure, as described below.

[0035] Preferably, the selection means 11.2 comprise a selection key, in particular a virtual key, i.e. a touch key, displayed on the touch screen 11.1 on which the user presses with a finger, such as his index finger, to launch the procedure for determining an AOP pressure.

[0036] The selection key can be displayed permanently on the screen 11.1 or displayed only after the user, i.e. a healthcare worker, has made a choice of AOP pressure determination procedure within a dedicated menu displayed on the screen 11.1.

[0037] According to another embodiment, the ventilator 1 may also comprise a specific button, for example arranged on its casing 1.1, the actuation of which causes the procedure for determining the opening pressure of the respiratory tract, i.e. the AOP pressure, to start.

[0038] In all cases, in response to such actuation by the user of the selection means 11.2, the data processing means 10, typically the processor 10.1, are configured to carry out a determination of a possible closure of the patient's airways and, when they are closed, a determination of the corresponding AOP pressure, i.e. to launch an AOP pressure determination procedure.

[0039] To do this, the data processing means 10 first control the respiratory gas supply means 2, such as the motorized turbine 2.1, to supply the respiratory gas (i.e. O2 content > 20% vol.), for example air, O2 or an air / O2 mixture, at a so-called “low” respiratory rate of between 2 and 10 ventilation cycles per minute, for example of the order of 5 ventilation cycles per minute, and at a so-called “slow” insufflation rate of between 2 and 10 L / min, for example of the order of 5 L / min, and this, for a duration sufficient to obtain an inspiratory volume of between 200 and 1500 mL or a maximum pressure (Pmax) of between 20 and 60 cmH20. The flow rate and inspiratory volume settings determine the duration. Typically this duration is less than 60 seconds, for example in the order of 1 sec to 45 sec.

[0040] Furthermore, the data processing means 10 control a display on the display means 11 of the compliance pressure / volume curve (curve C1 in [Fig.2]) of the circuit (P-Vcircuit_patient) having been previously stored by the storage means 11.3 and of a pressure / volume curve (curve C2 in [Fig.2]) corresponding to the insufflation at “slow” flow rate (P-Vdebit_slow) determined during the given duration.

[0041] The pressure / volume curve for insufflation at “slow” flow (P-Vcircuit_patient) (i.e. curve C2), more simply called “slow flow curve”, is displayed superimposed on the stored compliance pressure / volume curve (P-Vcircuit_patient) (i.e. curve Cl), more simply called “compliance curve”, as illustrated in [Fig.2],

[0042] Concerning the compliance curve (P-Vcircuit_patient), it is previously determined, for example, during a self-test procedure or the like of the ventilator 1. The compliance of the patient circuit is memorized before the start of treatment of the patient during the tests making it possible to verify the correct operation of the machine or “self tests”. This compliance of the circuit is then used to determine and display the compliance curve, i.e. P-Vcircuit_patient curve, superimposed on the slow flow curve, i.e. P-Vdebit_slow curve.

[0043] Indeed, a self-test procedure of a ventilator 1 is generally carried out before ventilating, i.e. treating, a patient in order to check the correct functioning of the sensors or other components, and to take into account the characteristics of the patient circuit 3 of the ventilator 1.

[0044] To do this, a sealing plug can be inserted into the patient circuit 3, typically at the level of the Y-shaped part 7 of the patient circuit 3 so as to prevent the flow of respiratory gas, such as air, delivered by the gas supply means 2 from exiting the circuit 3 via the respiratory interface 6, e.g. mask 6 or the like.

[0045] Then, the self-test procedure itself is launched, for example via a specific selection menu displayed on the screen 11 of the fan 1.

[0046] This comprises an insufflation of a given flow rate of respiratory gas into the inspiratory branch 3.1 of the patient circuit 3 with measurement of the corresponding pressure by the pressure sensor 4, until a set maximum pressure (Pmax) is reached, for example of the order of 60 cmH20.

[0047] By integrating the gas flow rate, we can then calculate the volume of gas (Vcircuit_patient) delivered into the patient circuit 3.

[0048] The data processing means 10, typically the processor 10.1, can then determine the compliance of the circuit (Ccircuit_patient) by using the values ​​of maximum pressure set (Pmax) and volume of gas delivered thus determined (Vcircuit_patient), by carrying out the following calculation: Ccircuit_patient = Vcircuit_patient / Pmax.

[0049] In fact, we consider that the compliance is linear, so we only take two flow and pressure measurement points (including the point at zero flow and pressure). The insufflated flow is constant to obtain the volume Vcircuit_patient.

[0050] Once the circuit compliance has been determined as well as other verification procedures internal functions, the self-test procedure is stopped and the blanking plug can be removed so that ventilator 1 can be used to treat a patient.

[0051] The data processing means 10, typically the processor 10.1, are further configured to search for and locate on the slow flow rate curve, i.e. curve C2 on [Fig.2], any inflection point PI from which there is a change in the slope of the slow flow rate curve, (P-Vslow_flow) accompanied by a separation of the slow flow rate curve (i.e. curve C2) from the circuit compliance curve (P-Vpatient_circuit) (i.e. curve Cl), i.e. a sudden separation of the two curves Cl, C2 from each other, as illustrated in [Fig.2].

[0052] If no PI inflection point is found, this means that there is no closure of the patient's airways. Conversely, if a PI inflection point, i.e. PI inflection point on [Fig.2], is found and located on the slow flow curve C2, this means that the patient in question is subject to closure of his airways and the AOP pressure then corresponds to the pressure value at the PI inflection point.

[0053] The data processing means 10, typically the processor 10.1, are therefore configured to determine the pressure value at the inflection point PI having been located on the pressure / volume curve of insufflation at “slow” flow rate (P-Vdebit_slow), i.e. C2 on [Fig.2].

[0054] Once determined, the pressure value at the inflection point PI having been determined is displayed on the display screen 11.1 of the display means 11, given that the AOP pressure corresponding to the pressure value at the inflection point PI of the “slow” flow rate curve (P-Vslow_flow) ), ie C2 on [Fig.2].

[0055] [Fig.2] shows a diagram of an example of real-time monitoring of pressure / volume Cl, C2 obtained from the pressure and flow values ​​processed by the microprocessor 10.1, namely the slow flow curve (P-Vslow_flow), designated by “C2”, and the compliance curve (P-Vcircuit_patient), designated by “Cl”, obtained from the pressure values ​​processed by the microprocessor 10.1 and the circuit compliance measured during a self-test procedure, as explained above.

[0056] In particular, it is important that the gas is insufflated at a slow flow rate when establishing the slow flow curve because this makes it possible to remove the resistive component of the airway pressure, thus making it possible to detect a closure of the patient's airway by means of a location on the curves (Cl, C2) of any abrupt change in slope, i.e. the PI inflection point present in the event of airway closure but absent when the patient's airway is not closed, which PI inflection point makes it possible to determine the AOP pressure.

[0057] On the graph of [Fig.2], the abscissa axis gives pressure values, expressed in cmH20, and the ordinate axis gives volume values, expressed in mL. Of course, other units / quantities could be used.

[0058] We see that an inflection point PI appears where the two curves Cl, C2 suddenly diverge from each other, which indicates a closure of the airways of the patient considered and therefore the existence of an AOP pressure.

[0059] The AOP pressure value then corresponds to the positive pressure value at the inflection point PI, namely here a pressure of 22.9 cmH20, as indicated by the abscissa axis.

[0060] This information, namely the existence of a closure of the airways and the value of the AOP pressure, is then displayed in a dedicated display window 12 of the display screen 11.1. The display is controlled by the data processing means 10, in particular by the processor 10.1.

[0061] The display within the display window 12 may include various information useful to the healthcare personnel, namely in particular: - a text message indicating the presence / existence or absence of airway closure, such as “presence of airway closure” or “absence of airway closure”; and / or - a text message indicating the value “x” of the AOP pressure in the presence of airway closure, for example “AOP = x cmH20”, with x between 1 and 30 cmH20.

[0062] Preferably, the data processing means 10 can also be configured to determine and propose a ventilation strategy, i.e. an action to be carried out by the healthcare personnel, as a function of the value of the patient's AOP pressure having been determined.

[0063] Thus, if the PEP of the PEP valve 13 is set to a value lower than the AOP pressure value, the data processing means 10 can propose a modification of the PEP setting to a value higher than that of the AOP pressure value (to be considered preferably in association with other available clinical data) and order a display of this PEP setting recommendation on the display means 11.

[0064] For example, the data processing means 10 can command a display of a message (in text form) recommending PEEP adjustment, such as for example “maintain PEEP” or “increase PEEP”, either in the window 12 or elsewhere on the screen 11.1. The recommended PEEP value is also advantageously displayed.

[0065] Thanks to the invention, by knowing the AOP pressure value, the nursing staff can adjust the positive expiratory pressure or PEP of the PEP valve 13 to a value above the AOP pressure in order to be able to keep the airways open and this, in order to limit the risks of lung damage in the patient.

[0066] Generally speaking, according to the invention, the detection of the closure of the patient's airways and the determination of the airway opening pressure (AOP pressure) by analysis of the compliance curve and the slow flow curve (Cl, C2), as explained above, are done automatically within the medical ventilator 1.

[0067] A medical ventilator 1 according to the invention is particularly well suited to the treatment of patients, i.e. men, women or children, suffering from acute respiratory distress syndrome (ARDS). Indeed, it allows monitoring and detection, in real time, of the phenomenon of airway closure and determination of the airway opening pressure (AOP) of ventilated patients suffering from ARDS.

Claims

1. Claims Medical ventilator (1) comprising: - gas supply means (2) for supplying a breathing gas, - a patient circuit (3) supplied with respiratory gas by the gas supply means (2), - pressure measuring means (4) configured to determine the pressure of the gas in the patient circuit (3), - flow rate determining means (5) configured to determine the flow rate of respiratory gas in the patient circuit (3), - data processing means (10) comprising at least one processor (10.1) for processing the pressure and / or flow rate measurements carried out by the pressure measuring means (4) and the flow rate determination means (5), - display means (11) controlled by the data processing means (10), and - storage means (10.3) for storing a circuit compliance pressure / volume curve (Cl) representing the compliance of the respiratory circuit, characterized in that: - it further comprises selection means (11.2), operable by the user to begin a determination of the airway opening pressure (or AOP pressure), - the data processing means (10) are configured to carry out a determination of the AOP pressure in response to actuation by the user of the selection means (11.2): a. by controlling the gas supply means (2) to supply the respiratory gas at a so-called "low" respiratory rate of between 2 and 10 ventilation cycles per minute, and at a so-called "slow" insufflation rate of between 2 and 10 L / min, until an inspiratory volume of between 200 and 1500 mL or a maximum pressure (Pmax) of between 20 and 60 cmH2O, b. by controlling a display on the display means (11) of the stored circuit compliance pressure / volume curve (Cl) and of a pressure / volume curve corresponding to slow flow insufflation (C2), the slow flow insufflation pressure / volume curve (C2) being displayed superimposed on the stored circuit compliance pressure / volume curve (Cl), c. by searching for and locating on the slow flow insufflation pressure / volume curve (C2), an inflection point (PI) corresponding to a change in slope of said slow flow insufflation pressure / volume curve (C2) with separation of the slow flow insufflation pressure / volume curve (C2) from the circuit compliance pressure / volume curve (Cl), and d. by determining the pressure value at the inflection point (PI) located on the slow flow curve (Cl), - and the data processing means (10) are further configured to control a display on the display means (11), of the AOP pressure value (20) corresponding to the pressure value at the inflection point (PI) having been determined on the slow flow curve (C2).

2. Ventilator according to claim 1, characterized in that the data processing means (10) are further configured to control a display on the display means (11) of information relating to the existence of a closure of the patient's airways.

3. Fan according to claim 1, characterized in that the display means (11) comprise a touch screen (11.1).

4. Fan according to claim 1, characterized in that the selection means (11.2) comprise a virtual key displayed on the display means (11), in particular on the touch screen (11.1).

5. Fan according to claim 1, characterized in that the data processing means (10) are further configured to control a display on the display means (11) of a recommended PEEP pressure, said recommended PEEP pressure being determined from the AOP pressure (20) having been determined, preferably the recommended PEEP pressure is higher than the AOP pressure (20) having been determined.

6. Fan according to claim 1, characterized in that the pressure value of AOP (20) is between 1 and 30 cmH20.

7. Fan according to claim 1, characterized in that the gas supply means (2) comprise a motorized turbine (2.1) controlled by the data processing means (10).

8. Fan according to claim 1, characterized in that the pressure measuring means (4) comprise a pressure sensor and / or the flow rate determining means (5) comprise a flow rate sensor.

9. Ventilator according to claims 1 and 5, characterized in that it comprises a PEEP valve (13) arranged on the patient circuit (3) and the data processing means (10) are configured to adjust the PEEP pressure of said PEEP valve (13) to the recommended PEEP pressure.

10. Ventilator according to claim 1, characterized in that the data processing means (10) are configured to control the gas supply means (2) to supply the respiratory gas at a so-called "low" respiratory rate of between 3 and 7 ventilation cycles per minute and / or at a so-called "slow" insufflation rate of between 3 and 7 L / min.

Citation Information

Patent Citations

  • Medical ventilator for e.g. administering gas to patient, has control unit with data storage and / or processing unit, estimating patient's biomechanical condition based on gaseous circuit's pressure, gas flow and preset compliance value

    FR2887777A1

  • Medical ventilator with simultaneous display of multiple overlapping loop curves

    FR3137296A3

  • Method And System For Generating A Pressure Volume Loop Of A Low Flow Recruitment Maneuver

    US20110023881A1

  • Methods and systems for compensation of tubing related loss effects

    US20130255682A1

  • Display of respiratory data on a ventilator graphical user interface

    US20150100917A1