VENTILATOR AND PROCESS FOR OPERATING A VENTILATOR
20210196913 · 2021-07-01
Inventors
Cpc classification
A61M16/208
HUMAN NECESSITIES
A61M16/024
HUMAN NECESSITIES
A61M16/20
HUMAN NECESSITIES
International classification
Abstract
A respiratory device (10) includes at least one expiration valve (12) and/or at least one inspiration valve (14) with a valve drive (18) that is configured to influence a position of a closure element (20) of each valve (12, 14). A method for operating such a respiratory device (10) is also provided. The valve drive (18) acts on a valve chamber (24) and a volume in the valve chamber (24) determines the position of the closure element (20). The valve drive (18) includes a plurality of piezo pumps (40, 42), with at least one regular piezo pump (40) with a direction of action towards the valve chamber (24) and at least one inverse piezo pump (42) with a reverse direction of action.
Claims
1. A ventilator comprising at least one exhalation and/or inhalation valve comprising: a valve drive; and a closing body, wherein the valve drive is configured to influence a position of the closing body; the valve drive is configured to act on a valve chamber; a volume within the valve chamber determines the position of the closing body; and the valve drive comprises a plurality of piezo pumps, including at least one piezo pump with a direction of action towards the valve chamber and at least one piezo pump with a direction of action away from the valve chamber.
2. A ventilator in accordance with claim 1, wherein the at least one piezo pump with a direction of action towards the valve chamber as well as the at least one piezo pump with a direction of action away from the valve chamber are in a series arrangement.
3. A ventilator in accordance with claim 1, wherein the at least one piezo pump with a direction of action towards the valve chamber as well as the at least one piezo pump with a direction of action away from the valve chamber are in a parallel arrangement.
4. A ventilator in accordance with claim 1, wherein the valve drive of a valve, functioning as exhalation valve or as inhalation valve comprises exactly one piezo pump with a direction of action away from the valve chamber and a plurality of piezo pumps with a direction of action towards the valve chamber.
5. A ventilator in accordance with claim 3, wherein a nonreturn valve is arranged in the valve drive at the at least one piezo pump with the direction of action towards the valve chamber such that no escape of the volume from the valve chamber against the direction of action is made possible.
6. A ventilator in accordance with claim 3, wherein a nonreturn valve is arranged in the valve drive at the at least one piezo pump with a direction of action away from the valve chamber such that no escape of the volume from the valve chamber against the direction of action is made possible.
7. A process for operating a ventilator, the process comprising the steps of: providing the ventilator with a valve comprising a valve drive and a closing body, wherein the valve drive is configured to influence a position of the closing body, the valve drive is configured to act on a valve chamber, a volume within the valve chamber determines the position of the closing body and the valve comprises at least one piezo pump with a direction of action away from the valve chamber; and actively opening the valve, by means of the at least one piezo pump with a direction of action away from the valve chamber.
8. A process in accordance with claim 7, further comprising the steps of: providing a pressure sensor; and detecting a measured pressure value with the pressure sensor assigned in space to a valve of the ventilator; and regulating a position of the closing body of the valve by means of the measured pressure value as an actual value and by means of a predefined or predefinable pressure value as a desired value.
9. A process) in accordance with claim 7, wherein when the valve functions as an exhalation valve with the at least one piezo pump with a direction of action away from the valve chamber, the exhalation valve is actively opened by means of the at least one piezo pump with a direction of action away from the valve chamber.
10. A process in accordance with claim 9, wherein the exhalation valve is actively opened at the beginning of an expiratory phase.
11. A process in accordance with claim 10, wherein the exhalation valve is actively opened at the beginning of the expiratory phase for a predefined or predefinable duration.
12. A process in accordance with claim 11, wherein the exhalation valve is actively opened at the beginning of the expiratory phase and remains opened until a measured pressure value detected by means of a pressure sensor assigned in space to the exhalation valve falls below a predefined or predefinable threshold value.
13. A process according to claim 7, wherein a computer program with program code means carries out at least some of the steps when the control program is run on a control device for the ventilator.
14. A ventilator comprising: a valve comprising: a closing body and a valve chamber partially defined by the closing body, a volume within the valve chamber determining a position of the closing body; and a valve drive configured to influence a position of the closing body by acting on the valve chamber, the valve drive comprising a plurality of piezo pumps, including at least one piezo pump with a direction of action towards the valve chamber and at least one piezo pump with a direction of action away from the valve chamber; and a control unit configured to control the at least one piezo pump with a direction of action away from the valve chamber to actively open the valve.
15. A ventilator in accordance with claim 14, wherein the at least one piezo pump with a direction of action towards the valve chamber as well as the at least one piezo pump with a direction of action away from the valve chamber are in a series arrangement or in a parallel arrangement.
16. A ventilator in accordance with claim 14, wherein the valve drive, with the valve functioning as exhalation valve or as inhalation valve comprises exactly one piezo pump with a direction of action away from the valve chamber and a plurality of piezo pumps with a direction of action towards the valve chamber.
17. A ventilator in accordance with claim 16, further comprising: a nonreturn valve arranged in the valve drive at the at least one piezo pump with the direction of action towards the valve chamber such that there is no escape of the volume from the valve chamber against the direction of action; or a nonreturn valve is arranged in the valve drive at the at least one piezo pump with a direction of action away from the valve chamber such that there is no escape of the volume from the valve chamber against the direction of action; or a nonreturn valve arranged in the valve drive at the at least one piezo pump with the direction of action towards the valve chamber such that there is no escape of the volume from the valve chamber against the direction of action and a nonreturn valve is arranged in the valve drive at the at least one piezo pump with a direction of action away from the valve chamber such that there is no escape of the volume from the valve chamber against the direction of action.
18. A ventilator in accordance with claim 14, further comprising a pressure sensor, wherein: the pressure sensor detects a pressure value of the volume; and the control unit is configured to control the at least one piezo pump with a direction of action away from the valve chamber by regulating a position of the closing body of the valve by means of the measured pressure value as an actual value and by means of a predefined or predefinable pressure value as a desired value.
19. A ventilator in accordance with claim 14, wherein the valve functions as an exhalation valve with the exhalation valve actively opened by means of the at least one piezo pump with a direction of action away from the valve chamber.
20. A ventilator in accordance with claim 14, wherein the exhalation valve is actively opened at the beginning of an expiratory phase.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] In the drawings:
[0030]
[0031]
[0032]
[0033]
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[0035]
[0036]
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DESCRIPTION OF PREFERRED EMBODIMENTS
[0046] Referring to the drawings, the view in
[0047] A valve housing 16 and a valve drive 18 belong to each valve device 12, 14 that is comprised by the ventilator 10. A closing body 20, for example, a disk-shaped closing body 20 (valve plate), can be moved by means of the valve drive 18 in the valve housing 16. The closing body 20 is held by means of a diaphragm 22, especially by means of a diaphragm 22 laterally adjoining this closing body 20 along a circumferential line of the closing body 20, and the closing body 20 together with the diagram 22 encloses a volume which is designated below as valve chamber 24. A gas, for example, ambient air, is pumped into this valve chamber 24 or pumped out of the valve chamber 24 by means of the valve drive 18. The quantity of gas in the interior of the valve chamber 24 determines the position of the closing body 20 and accordingly determines whether the valve 12, 14 is opened or closed or partially open or partially closed. The valve is closed if the closing body 20 is in contact with an edge of an end of a line section reaching into the valve housing 16, which edge is called a crater 26.
[0048] Each valve 12, 14 has a closing body 20, a diaphragm 22 holding the closing body 20 as well as a valve chamber 24 formed with the closing body 20 and the diaphragm 22, and an end of a line section closable by means of the closing body 20 protrudes into each valve housing 16, the end of which line section is designated as crater 26. In the view of the two valves 12, 14, these parts are each designated only in one of the two valves 12, 14 for the sake of better clarity.
[0049] The valve housing 16 of the exhalation valve 12 is either, as shown, open to the surrounding area or a line section open to the surrounding area is connected to the exhalation valve 12. The inhalation valve 14 is connected to a pressure source 30, especially to a medium pressure source, for example, to a gas cylinder. The pressure source 30 yields, for example, a pressure of 500 mbar in case of a gas cylinder functioning as medium pressure source. An end (crater 26) of a line section leading directly or indirectly from the pressure source 30 into the valve housing 16 of the inhalation valve 14 can be closed by means of the closing body 20 of the inhalation valve 14. When the inhalation valve 14 opens, i.e., when the closing body 20 thereof releases the crater 26, gas reaches from the pressure source 30 into an air path 32 in the interior of the ventilator 10.
[0050] The air path 32 has the shape of a “Y” in a manner common in case of the ventilation of a patient and thus has three “ends.” The exhalation valve 12 is located at a first end. The inhalation valve 14 is located at a second end. A third end leads to the patient and there, for example, to a breathing mask 34 worn by the patient, to an endotracheal tube or the like (patient interface).
[0051] When the inhalation valve 14 is open and the exhalation valve 12 is closed, gas coming from the pressure source 30 reaches the patient via the air path 32 in the interior of the ventilator 10 (inhalation; inspiratory phase). When the inhalation valve 14 is closed and the exhalation valve is open, a pressure equalization occurs from the patient's lungs to the surrounding area (exhalation; expiratory phase).
[0052] This function of the ventilator 10 as well as the function of the valves 12, 14 are basically known. The special feature of the ventilator 10 proposed here is the valve drive 18 of the valves 12, 14.
[0053] Each valve drive 18 comprises a plurality of pumping devices, which are designated below briefly as piezo pumps 40, 42 and which may also be regarded as “micropumps.” Such piezo pumps 40, 42 and the use thereof as valve drive 18 are likewise basically known per se and, to avoid unnecessary repetitions in the description being submitted here, reference is made to the older applications of the applicant with the official file Nos. 10 2016 009 833.3 (application date: Aug. 15, 2016) as well as 10 2017 009 606.6 (application date: Feb. 18, 2016), which shall herewith be considered to be included with their full disclosure contents in the description submitted here. A miniaturized valve drive 18 and overall a miniaturized valve 12, 14 are obtained with such piezo pumps 40, 42. The valves 12, 14 with such a valve drive 18 therefore especially come into consideration for use in a mobile ventilator 10 of the type mentioned in the introduction.
[0054] The views in
[0055]
[0056] The two-way duct 106 extends between an outer housing 108 and an inner housing 110 of the piezo pump 40. The second two-way passage opening 104 is formed in the outer housing 108. The first two-way passage opening 102 arises because of a space between an edge of the outer housing 108 and the adjoining inner housing 110. The inner housing 110 is closed by means of the cover plate 112.
[0057] A pumping opening 114, which connects the two-way duct 106 to a pump chamber 16, is arranged in the inner housing 110 in the two-way duct. A piezo element 118 and a pump diaphragm element 120 are arranged in the pump chamber 116. The pump diaphragm element 120 is connected to the piezo element 118, on the one hand, and to the inner housing 110, via flexible connection elements 122, on the other hand. Alternating electrical voltages are applied by means of an a.c. generator 124 to the piezo element 118 in a manner basically known per se. These alternating electrical voltages bring about a voltage-induced deformation of the piezo element 118 and this deformation leads to a controlled vibration of the pump diaphragm element 120. Because of a high-frequency a.c. voltage discharged by means of the a.c. generator 124, the pump diaphragm element 120 vibrates at a high frequency in the pump chamber 116 and pumping shocks are generated due to the resulting change in volume of the pump chamber 116 as a result (function of the piezo pump 40 as a high-frequency pump). These pumping shocks can work through the pumping opening 114 into the two-way duct 106 and bring about a flow of a respective fluid, for example, ambient air, through the second two-way passage opening 104.
[0058] The flow through the pumping opening 114, which is directed out of the pump chamber 116, is directed towards the second two-way passage opening 104. A pumping shock through the pumping opening 114, which is generated by a reduction in the volume of the pump chamber 116, is thus directed directly towards the second two-way passage opening 104. In this case, the flow between the pumping opening 114 and the second two-way passage opening 104 carries along the fluid in the two-way duct 106, so that a flow is generated from the first two-way passage opening 102 to the second two-way passage opening 104.
[0059] In the case of an increase in the volume of the pump chamber 116, the fluid is, by contrast, drawn out of the two-way duct 106 and through the pumping opening 114 into the pump chamber 116. The pumping opening 114 is arranged at a distance far from the second two-way passage opening 104 such that only a small percentage of fluid flows in the process through the second two-way passage opening 104 into the two-way duct 106 and finally through the pumping opening 114 into the pump chamber 116. The larger part of the fluid is drawn via the first two-way passage opening 102 into the two-way duct 106 and finally through the pumping opening 114 into the pump chamber 116. The volume drawn in this manner can again be discharged with a subsequent pumping shock in the direction towards the second two-way passage opening 104, and this brings about the above-described flow from the first two-way passage opening 102 to the second two-way passage opening 104.
[0060] By means of such pumping shocks, which are discharged from the piezo pump 40 at the frequency, with which the piezo element 118 is actuated by means of the a.c. generator 124, the valve chamber 24 is filled with the gas drawn by means of the piezo pump 40, especially ambient air, to move the closing body 20 (
[0061] When mention is made here and below of a gas delivered or pumped by means of a piezo pump 40, the gas is preferably ambient air. Basically, any other flowable medium (fluid) instead of gas also comes into consideration.
[0062] No directed flow is present in the two-way duct 106 when the piezo pump 40 is switched off. There is then, rather, a free flow path through the two-way duct 106 between the first two-way passage opening 102 and the second two-way passage opening 104. A flow through the two-way duct 106 can be directed into both directions (bidirectional flow is possible). A pressure equalization can thus take place between the first two-way passage opening 102 and the second two-way passage opening 104. Hence, no relief valve or the like is needed.
[0063] The view in
[0064] To this end,
[0065] On the basis of the view in
[0066] The view in
[0067] The view in
[0068] The indication of the basic similarity of a regular piezo pump 40 and of an inverse piezo pump 42 refers only to the functionality thereof and not to the dimensions or the like. The same generally applies to all piezo pumps 40, 42 comprised by the valve drive 18. All piezo pumps 40, 42 of a valve drive 18 may each have the same dimensions. This is, however, not a requirement, and the individual piezo pumps 40, 42 may have larger dimensions than others. This also includes possible differences in the increase in voltage and/or in the frequency range of the a.c. generator 124.
[0069] The piezo pumps 40, 42 form a line within the valve drive 18. This is possible since bidirectional flow is possible through each individual piezo pump 40, 42. Thus, bidirectional flow through the entire line is also possible. Accordingly, the position of the inverse piezo pump 42 along the line does not matter. The inverse piezo pump 42 may be located, as shown, “at the end” of the line (within the line located at the greatest distance from the valve chamber 24), “at the beginning” of the line or within the line.
[0070] Instead of a line with a series arrangement of piezo pumps 40, 42, a parallel arrangement is possible just as well. The description is continued on the basis of the views using the example of a series arrangement. A parallel arrangement can always be inferred.
[0071] The valve drive 18 may comprise one, two, three, four, five or more regular piezo pumps 40 as well as one, two or more inverse piezo pumps 42. The number of regular piezo pumps 40 comprised by the valve drive 18 is preferably greater than the number of inverse piezo pumps 42. In case of the embodiment shown, the valve drive 18 comprises exactly one inverse piezo pump 42 and a plurality of regular piezo pumps 40. This configuration is designated as “n+1 configuration,” and it shall thus be expressed that the valve drive 18 comprises basically any desired number of regular piezo pumps 40 and at least one inverse piezo pump 42.
[0072] The action and hence also the function of the inverse piezo pumps 42 in the valve drive 18 can be described briefly as follows: The regular piezo pumps 40 oriented with their direction of action towards the valve chamber 24 bring about a volume flow in the direction towards the valve chamber 24 in the activated state and deliver gas to the valve chamber 24 and at least partially into the valve chamber 24 in the activated state. The direction of action of the inverse piezo pump 42 and the volume flow resulting in case of the activation thereof (possibly a partial volume flow in case of the simultaneous activation of at least one regular piezo pump 40) is exactly reversed. An inverse piezo pump 42 in the activated state delivers gas away from the valve chamber 24 and as a result at least partially it delivers gas out of the valve chamber 24 as well. An inverse piezo pump 42 thus pumps gas out of the valve chamber 24 and as a result brings about a reduction in the volume of the valve chamber 24. By contrast, the regular piezo pump 40 or each regular piezo pump 40 pumps gas into the valve chamber 24 and as a result brings about an increase in the volume of the valve chamber 24. The reduction or increase in the volume of the valve chamber 24 leads to a corresponding displacement of the closing body 20.
[0073] The use of at least one additional piezo pump 42 (inverse piezo pump 42), through which flow is possible and which is oriented inversely compared to the other, regular piezo pumps 40 of the valve drive 18 hence makes possible an extended settability of the pressure acting on the closing body 20 on the valve chamber side. The pressure on the closing body 20 on the valve chamber side can be increased by means of one or a plurality of regular piezo pumps 40 (for closing the valve 12, 14 and for keeping the valve 12, 14 closed). The pressure on the closing body 20 on the valve chamber side can be reduced by means of one or a plurality of inverse piezo pumps 42. The reduction in the pressure on the closing body 20 can go into the negative range, so that the closing body 20 can be actively detached at least from the crater 26 in the interior of the valve housing 16 by means of an inverse piezo pump 42. This active detachment of the closing body 20 from the crater 26 is possible even without a counterpressure acting on the closing body 20 in the air path 32 in the interior of the ventilator 10. This means that the closing body 20 can be actively displaced into positions (for example, for a maximum opening of the valve 12, 14), for which a flow through the valve 12, 14 would otherwise be necessary.
[0074] On the basis of the view in
[0075] The view in
[0076] The special feature of the valve drive 18 of the ventilator 10 proposed here is that the valve drive 18—the valve drive 18 of the exhalation valve 12 or each exhalation valve 12 and/or the valve drive 18 of the inhalation valve 14 or of each inhalation valve 14—comprises a plurality of piezo pumps 40, 42 and has at least one inverse piezo pump 42 among them, as this is shown as an example in
[0077] At the beginning of each expiratory phase, the exhalation valve 12 is open when the patient exhales. Hitherto, i.e., for example, in the case of a valve drive 18 with exactly one regular piezo pump 40 or with a plurality of such piezo pumps 40, the exhalation valve 12 is opened “passively” because of the difference in pressure between the patient's lungs and the surrounding area. The pressure in the patient's lungs is increased compared to ambient pressure because of the previous inspiratory phase. When the valve drive 18 of the exhalation valve 12 is deactivated, the resulting pressure difference is sufficient to open the exhalation valve 12, i.e., to detach the closing body 20 thereof from the crater 26 of the air path 32 ending in the valve housing 16 of the exhalation valve 12 in the interior of the ventilator 10. Because of the deactivated valve drive 18 and thus without the action of force on the valve chamber side (control side) on the closing body 20 and against the lung pressure, it is possible to speak of a passive opening of the exhalation valve 12 in case of such an opening of the exhalation valve 12.
[0078] This passive opening of the exhalation valve 12 is found to be unpleasant by the patient sometimes and requires that the patient exhale with a corresponding force against the exhalation valve 12. A few millibar may be necessary to open the exhalation valve depending on the volume enclosed by the valve chamber 24, a stroke of the closing body 20 and an elasticity of the border (diaphragm 22) of the closing body 20.
[0079] Active opening of the exhalation valve 12 is possible by means of at least one inverse piezo pump 42 in the valve drive 18 of the exhalation valve 12. An actively opened exhalation valve 12, and more precisely a flow resistance of an actively opened exhalation valve 12, is perceived either not at all or in any case markedly less than a passively opening exhalation valve 12 by a patient during the exhalation.
[0080] In the static state (
[0081] The exhalation valve 12 shall be closed (
[0082] It was explained farther above that the pressure on the valve chamber side on the closing body 20 can be reduced by means of one or more inverse piezo pumps 42. This means that the pressure on the control side of the closing body 20 can be relieved not only passively (due to the exhalation of the patient), but also actively (by activation of the at least one inverse piezo pump 42). As a result, the closing body 20 can be actively moved into positions, for which a flow (for example, resulting during exhalation and) directed against the closing body 20 through the exhalation valve 12 would otherwise be necessary. This active opening of the exhalation valve 12 brings about a marked reduction in the flow resistance of the exhalation valve 12.
[0083] The view in
[0084] Control units 44 are provided and shown in a schematically simplified manner to actuate the piezo pumps 40, 42. The control units 44 are designated symbolically with the letters “A,” “B” and “C” for distinction and for easier referencing. In the situation shown, a control unit 44 each actuates two regular piezo pumps 40 (control unit “A,” control unit “B”). An additional control unit 44 (control unit “C”) actuates the inverse piezo pump 42. The control units 44 may be combined spatially and functionally into one control device 46.
[0085] A control signal of the control unit 44, which control signal is shown in the view in
[0086] A pressure of 25 mbar, for example, can be applied by means of each piezo pump 40, 42. Because of the line-like combination (series arrangement) of the piezo pumps 40, 42 within the valve drive 18, the respective pressures generated are added up and the resulting sum acts in the valve chamber 24 and on the closing body 20 (such an addition also arises in case of a parallel arrangement). A pressure applied by means of a regular piezo pump 40 acts in a pressure-increasing manner. A pressure applied by means of the inverse piezo pump 42 acts in a pressure-lowering manner. When each of the piezo pumps 40, 42 can generate a pressure symbolically designated by p, the control pressure in the valve chamber 24 can be set in a range of −p up to ambient pressure and up to +4p ([−p . . . 4p]) by means of a combination of four regular piezo pumps 40 as well as one inverse piezo pump 42. A control pressure range of −25 mbar to +100 mbar correspondingly results in case of a pressure of p=25 mbar that can be applied by means of each piezo pump 40, 42.
[0087] The control pressure range resulting because of at least one inverse piezo pump 42 comprised by the valve drive 18 may be used
[0088] to press the closing body 20 actively against the crater 26 (the valve drive 18 generates a high positive control pressure; the valve 12, 14 closes),
[0089] to passively open the valve 12, 14 (all piezo pumps 40, 42 of the valve drive 18 are deactivated; the valve drive 18 generates no control pressure; the position of the closing body 20 is obtained because of the resting position of the diaphragm 22), or
[0090] to actively pull the closing body 20 away from the crater 26 (the valve drive 18 generates a negative control pressure; the valve 12, 14 opens beyond a position determined by the resting position of the diaphragm 22).
[0091] A “normal” flow resistance results in case of the passive opening of the valve 12, 14 (valve drive 18 deactivated). A flow resistance that is reduced compared to the “normal” flow resistance results in case of the active opening of the valve 12, 14 (valve drive 18 generates negative control pressure).
[0092] The view in
[0093] Desired values for the control pressure (pressure on valve chamber side) of the exhalation valve 12, which control pressure can be influenced by means of the valve drive 18, are shown at the very top. During the inhalation/inspiratory phase (designated symbolically by the capital letter “I”), the exhalation valve 12 shall be closed and is “kept closed” with a control pressure in the amount of 25 mbar. During the exhalation/expiratory phase (designated symbolically by the capital letter “E”), the exhalation valve 12 shall be at least partially open, but shall not be entirely open to obtain a so-called positive end expiratory pressure (PEEP), so that a control pressure of 5 mbar is provided.
[0094] In the next three sections of the view in
[0095] By the two regular piezo pumps 40 assigned to the control unit 44 symbolically designated by “A” as well as the two regular piezo pumps 40 assigned to the control unit 44 symbolically designated by “B” generating each pressures of 15 mbar and 10 mbar, respectively, during an inspiratory phase (“I”), a total control pressure of 25 mbar arises in the valve chamber 24. A lower control pressure of 5 mbar is needed during the expiratory phase (“E”). In this case, the end of the expiratory phase is first considered in the view. The two regular piezo pumps 40 assigned to the control unit 44 that is symbolically designated by “A” are actuated there for generation of a pressure in the amount of 15 mbar. Furthermore, the inverse piezo pump 42 is actuated by means of the control unit 44 that is symbolically designated by “C.” A negative pressure, namely a pressure of −10 mbar, is generated by means of the inverse piezo pump 42 because of this actuation. In sum, a desired control pressure of 5 mbar corresponding to the desired value is obtained in the valve chamber 24. At the beginning of the expiratory phase, by contrast, the actually provided desired value of 5 mbar is intentionally fallen below to obtain an as low as possible flow resistance of the exhalation valve 12.
[0096] In regard to the actuation of the piezo pumps 40, 42 comprised by the valve drive 18, the expiratory phase is accordingly divided into an initial section 50 and a final section 52. An active opening of the exhalation valve 12 due to a corresponding actuation of the at least one inverse piezo pump 42 comprised by the valve drive 18 takes place at least during the initial section 50, which is also called the active phase 50 below, to obtain an as low as possible flow resistance of the exhalation valve 12.
[0097] The resulting volume flow Q is shown for this purpose in the view in
[0098] It can be seen in the views in
[0099] The duration of the active phase 50 can optionally also be changed, for example, for a physician or sufficiently medically qualified staff member. The duration of the active phase 50 is then a variable parameter determining the operation of the ventilator 10. The respective duration of the active phase 50 determines along with the overall duration of the expiratory phase (overall duration minus duration of the active phase 50) the time period, during which the piezo pumps 40, 42 comprised by the valve drive 18 of the exhalation valve 12 are actuated at the end of the expiratory phase (and during the final section 52) to guarantee the positive end expiratory pressure.
[0100] The curve of the airway pressure pAW, namely the curve of a corresponding measured value that can be obtained by the pressure sensor 54, can be monitored during the exhalation by means of a pressure sensor 54 assigned in space to the exhalation valve 12 (
[0101] The view in
[0102] The measured value of the pressure sensor 54 may optionally be used not only for the automatic and sensor-controlled ending of the active phase 50 during the exhalation, but also, in addition or as an alternative, for control to a positive end expiratory pressure. For this, a difference from the airway pressure pAW as measured value of the pressure sensor 54 (actual value) and a desired value for the airway pressure, which desired value is valid during the final section 52 of the expiratory phase, is fed in a manner basically known per se to a controller, not shown, for example, to a P controller, to a PI controller or to a PID controller. The controller acts on the valve drive 18 of the exhalation valve 12, i.e., it generates a set value for the valve drive 18. As a result, the controller corrects the position of the closing body 20 as a function of a respective, actual airway pressure pAW, so that the desired value for the airway pressure, which desired value is valid during the final section 52 of the expiratory phase, is obtained as readily as possible. By contrast to a pure control of the position of the closing body 20 due to a corresponding actuation of the valve drive 18, for example, aging- and/or temperature-related influences especially on the diaphragm can hence be compensated.
[0103] The position of the closing body 20 of a valve 12, 14 is generally obtained based on the sum of all forces which act on the closing body 20. A dynamic force F.sub.S based on an incoming volume flow, a restoring force F.sub.R and weight forces F.sub.G based on the mass of the closing body 20 and the mass of parts of the diaphragm 22 are added up. The dynamic force F.sub.S (F.sub.S=Δp×A.sub.S) is obtained with the pressure difference Δp between a pressure p1 “in front of” the valve 12, 14 and pressure p2 “behind” the valve 12, 14 as well as with an area A.sub.S of the closing body 20 exposed to the dynamic pressure. The weight force F.sub.G may take different directions in case of different installation positions of the valve 12, 14 as they may arise, for example, in case of a transportable ventilator 10. The restoring force F.sub.R is obtained especially from a force/path curve of the diaphragm 22. The restoring force F.sub.R is aging- and temperature-dependent. Because of the direction of the action of the weight force F.sub.G, which direction is dependent on the installation position, as well as the time- and temperature-dependent value of the restoring force F.sub.R, a control of the pressure, which is generated by means of the piezo pumps 40, 42 comprised by the valve drive 18 and acts on the closing body 20 of the respective valve 12, 14, is meaningful in the manner outlined above for compensation of otherwise resulting errors in the positioning of the closing body 20. When only the position-dependent action of the weight force F.sub.G is considered, the closing body 20 can be deflected in different directions in case of a deactivated valve drive 18 starting from the zero position thereof because of the weight force, to some extent into a “positive” direction starting from the zero position or into a “negative” direction starting from the zero position, and a static error arises for the position of the closing body 20. By the valve drive 18 comprising at least one inverse piezo pump 42, the valve drive 18 is able to compensate a static error in both directions in regard to the position of the closing body 20.
[0104] The use of at least one inverse piezo pump 42 within a valve drive 18 which comprises a plurality of piezo pumps 40, 42 also has, in addition, the advantage of a good settability of a characteristic 56 of the respective valve device 12, 14. For this, the view in
[0105] The view in
[0106] In summary, it can be determined that in case of a valve device 12, 14 functioning as an exhalation valve 12 with a valve drive 18 with a plurality of regular piezo pumps 40 and at least one inverse piezo pump 42 during the inspiratory phase, a closing of the valve 12 even against high inhalation pressure (up to 100 mbar) can be guaranteed by a sufficient plurality of regular piezo pumps 40 being activated. A transition from the inspiratory phase (closed, high counterpressure) into the expiratory phase (open, low resistance, settable counterpressure) shall be carried out rapidly. For this, the exhalation valve 12 is actively opened by at least brief activation (active phase 50) of the at least one inverse piezo pump 42. The change in the position of the closing body 20 (away from the crater 26) and as a result the active opening can take place very rapidly due to a, for example, maximum or approximately maximum activation of the at least one inverse piezo pump 42, wherein the speed of the opening is dependent on the pressure that can be applied to the at least one inverse piezo pump 42 and hence can be influenced by a corresponding actuation of the at least one inverse piezo pump 42. Subsequently (final section 52 of the expiratory phase), it shall be controlled to a settable low counterpressure (PEEP), wherein the at least one inverse piezo pump 42 and at least one regular piezo pump 40 are active for this in order to keep the joint operation of the piezo pumps 40, 42 in a favorable range of the respective characteristic 56.
[0107] The view in
[0108] The control of an inhalation valve 14 is carried out, in principle, just as this was already described farther above for the control of an exhalation valve 12. In case of the control of an inhalation valve 14 to a desired airway pressure during the inspiratory phase, a difference from the airway pressure pAW as measured value of the pressure sensor 58 (actual value) and an optionally time-dependent desired value for the airway pressure is fed in a manner basically known per se to a controller, not shown, for example, to a P controller, to a PI controller or to a PID controller. The controller acts on the valve drive 18 of the inhalation valve 14 and generates a set value for the valve drive 18. As a result, the controller corrects the position of the closing body 20 of the inhalation valve 14 as a function of the respective, actual airway pressure pAW, so that the desired value of the airway pressure that is valid during the inspiratory phase is obtained as readily as possible. By contrast to a pure control of the position of the closing body 20 due to a corresponding actuation of the valve drive 18, for example, aging- and/or temperature-dependent changes of the diaphragm 22 can also be compensated here as a result. In addition, a very accurate compliance with a desired curve of the airway pressure can be guaranteed by means of the control in case of a desired value for the airway pressure during the inspiratory phase, which desired value is time-dependent and variable during the inspiratory phase, for example, in case of a volume-controlled ventilation.
[0109] The view in
[0110] The airway pressure can be kept between the lower threshold value and the upper threshold value due to a controlled actuation of the valve drive 18 of the inhalation valve 14 and due to the same controlled actuation of the valve drive 18 of the exhalation valve 12 during consecutive inspiratory and expiratory phases. The volume flow Q rapidly increases sharply at first at the beginning of an expiratory phase (because of the large pressure difference between the pressure level of the pressure source 30 and the pressure in the air path 32 in the interior of the ventilator 10 immediately after the opening of the inhalation valve 14). With increasing pressure equalization and increasing approach to the desired value for the airway pressure pAW, the volume flow Q drops again starting from its maximum value and a high negative volume flow Q arises because of pressure equalization between the patient's lungs and the surrounding area in case of a changeover between an inspiratory phase and a subsequent expiratory phase in case of the active opening of the exhalation valve 12, and the active opening, as described, permits the especially high negative volume flow Q at the beginning of the expiratory phase and makes it easier for the patient to exhale.
[0111] Individual principal aspects of the description submitted here can hence be summarized briefly as follows: Proposed is a ventilator 10, which comprises at least one exhalation valve 12 and/or at least one inhalation valve 14 with a valve drive 18 intended for influencing a position of a closing body 20 of the respective valve 12, 14, wherein the valve drive 18 acts on a valve chamber 24 and a volume in the valve chamber 24 determines the position of the closing body 20, and wherein the valve drive 18 comprises a plurality of piezo pumps 40, namely at least one regular piezo pump 40 with a direction of action towards the valve chamber 24 as well as at least one inverse piezo pump 42 with a reversed direction of action. Proposed is likewise a process for operating such a ventilator 10, namely a process, in which the valve 12, 14 comprising at least one inverse piezo pump 42 is actively opened by means of this at least one inverse piezo pump. Overall, valves 12, 14, which can especially be used as exhalation valve or inspiration valve 12, 14, with a valve drive 18 with at least one inverse piezo pump 42 comprised by it for the active opening of the valve 12, 14 and a process for operating such a valve 12, 14 is proposed, wherein the at least one inverse piezo pump 42 is actuated for the active opening of the valve 12, 14 within the framework of the process.
[0112] While specific embodiments of the invention have been shown and described in detail to illustrate the application of the principles of the invention, it will be understood that the invention may be embodied otherwise without departing from such principles.
LIST OF REFERENCE NUMBERS
[0113] 10 Ventilator
[0114] 12 Exhalation valve, valve, valve device
[0115] 14 Inhalation valve, valve, valve device
[0116] 16 Valve housing
[0117] 18 Valve drive
[0118] 20 Closing body
[0119] 22 Diaphragm
[0120] 24 Valve chamber
[0121] 26 Crater
[0122] 28 (blank)
[0123] 30 Pressure source
[0124] 32 Air path
[0125] 34 Breathing mask
[0126] 36, 38 (blank)
[0127] 40 Piezo pump, regular piezo pump
[0128] 42 Piezo pump, inverse piezo pump
[0129] 44 Control unit
[0130] 46 Control device
[0131] 48 (blank)
[0132] 50 Active phase, initial section of the expiratory phase
[0133] 52 Final section of the expiratory phase
[0134] 54 Pressure sensor
[0135] 56 Characteristic
[0136] 58 Pressure sensor
[0137] 102 First two-way passage opening
[0138] 104 Second two-way passage opening
[0139] 106 Two-way duct
[0140] 108 Outer housing
[0141] 110 Inner housing
[0142] 112 Cover plate
[0143] 114 Pumping opening
[0144] 116 Pump chamber
[0145] 118 Piezo element
[0146] 120 Pump diaphragm element
[0147] 122 Connection element
[0148] 124 A.c. generator