PUMP SYSTEM, USE OF A PNEUMATIC RESISTANCE AND MEDICAL DEVICE OR GAS-MEASURING DEVICE
20230220845 · 2023-07-13
Inventors
Cpc classification
F04B41/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C28/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/0072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/601
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/1133
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B49/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/113
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A pump system (120) has a central pump unit (110), with which at least one hook-up unit (130). The at least one hook-up unit (130) is from a group of a plurality of hook-up units (130) that can be combined in modular form for setting an operating point of a pump (10) that forms the pump unit (110). A method uses such a hook-up unit (130) in a pump system (120) for setting an operating point of the pump unit (110) thereof. A medical device is provided with such a pump unit (110) or with such a pump unit (110) and at least one hook-up unit (130) combined with the pump unit (110).
Claims
1. A device, comprising: a gas measurement device for use in medical gas measurements and/or process gas measurement applications, the gas measurement device comprising a modular pump system and a gas flow path, the modular pump system comprising: a single pump unit comprising a single pump unit housing and a pump arranged in the single pump unit housing, the single pump unit housing having a pump unit first end, a pump unit second end and at least two connections located between the pump unit first end and the pump unit second end, the pump unit first end defining one of a pump unit fluid inlet opening and a pump unit fluid outlet opening, the pump unit second end defining another one of the pump unit fluid inlet opening and the pump unit fluid outlet opening, the pump being configured to deliver fluid to the pump unit fluid outlet opening in a fluid exiting direction, the at least two connections being located between the pump unit fluid inlet and the pump unit fluid outlet, wherein a portion of the pump unit housing extends continuously, without interruption, from one of the at least two connections to another one of the at least two connections, the pump unit housing comprising a longitudinal axis, the pump unit housing portion extending in an axial direction with respect to the longitudinal axis, the pump unit fluid inlet opening being axially opposite the pump unit fluid outlet opening with respect to the longitudinal axis; and a plurality of different hook-up units, each of which is connectable to the pump unit and wherein at least one of the hook-up units has hook-up unit connections corresponding to the at least two connections of the pump unit, the pump unit being in fluid communication with the at least one of the hook-up units via at least one of the hook-up unit connections of the at least one of the hook-up units and at least one of the at least two connections of the pump unit, the at least one of the hook-up unit connections of the at least one of the hook-up units and the at least one of the at least two connections of the pump unit defining at least a portion of the gas flow path, the hook-up unit connections comprising a hook-up unit fluid inlet and a hook-up unit fluid outlet, the at least two connections comprising a connection inlet and a connection outlet, the connection outlet being located adjacent to the hook-up unit fluid inlet, the connection inlet being located adjacent to the hook-up unit outlet, the connection inlet being configured to receive fluid from the at least one of the hook-up units at a location downstream of the pump with respect to the fluid exiting direction.
2. A device in accordance with claim 1, wherein the pump unit or the at least one of the hook-up units or both the pump unit and the at least one of the hook-up units has a filter element associated with the one of the at least two connections, each of the at least two connections of the pump unit comprising a socket, each of the hook-up unit connections of the at least one of the hook-up units comprising a plug connection, the plug connection being inserted in the socket, the pump unit fluid inlet opening being configured for gas entering the single pump unit in a longitudinal direction of the single pump unit, the pump unit fluid outlet opening being configured for the gas exiting the single pump unit in the longitudinal direction of the single pump unit.
3. A device in accordance with claim 1, wherein the at least one of the hook-up units forms a resistance unit and presents, in a connected state with the pump unit, a pneumatic resistance for the pump unit.
4. A device in accordance with claim 1, wherein the at least one of the hook-up units forms a buffer unit and presents, in a connected state with the pump unit, an additional volume for this pump unit.
5. A device in accordance with claim 1, wherein at least one of the hook-up units forms one of a resistance unit and a buffer unit, the one of the resistance and the buffer unit comprising a means for adjusting a resistance of the one of the resistance unit and the buffer unit.
6. A device in accordance with claim 5, wherein the means for adjusting comprises a pressure-dependent, automatically adjustable shut-off body.
7. A device in accordance with claim 5, wherein the means for adjusting comprises an adjustable shut-off body, the at least one of the hook-up units further comprising an actuator wherein the shut-off body is adjustable by the actuator.
8. A device in accordance with claim 4, wherein the buffer unit comprises an adjustable piston to provide an additional volume settable by the adjustable piston.
9. A device in accordance with claim 8, wherein the adjustable piston is a pressure-dependent, automatically adjustable piston.
10. A device in accordance with claim 8, wherein the buffer unit further comprises an actuator adjusting the adjustable piston or an additional pump adjusting the adjustable piston.
11. A device in accordance with claim 3, further comprising an additional pump operated with a phase shift to the pump unit.
12. A device in accordance with claim 4, further comprising an additional pump operated with a phase shift to the pump unit.
13. A device in accordance with claim 1, further comprising an electroactive inlet valve or an electroactive outlet valve or both an electroactive inlet valve and an electroactive outlet valve functioning as a pneumatic resistance, wherein: the at least one of the hook-up units forms a resistance unit and presents, in a connected state with the pump unit, a pneumatic resistance for the pump unit; or the at least one of the hook-up units forms a buffer unit and presents, in a connected state with the pump unit, an additional volume for this pump unit.
14. A device in accordance with claim 13, the electroactive inlet valve or outlet valve or both the inlet valve and outlet valve comprises an electroactive diaphragm.
15. A device in accordance with claim 13, the electroactive inlet valve or outlet valve or both the inlet valve and outlet valve comprises a piezoelectric valve.
16. A method comprising: providing a gas measurement device for use in medical gas measurements and/or process gas measurement applications, the gas measurement device comprising a gas flow path and a single pump unit and a plurality of different hook-up units, each of which is connectable to the single pump unit, the single pump unit comprising a single pump unit housing and a pump arranged in the single pump unit housing, the pump unit housing comprising at least two pump unit connections, wherein at least one of the hook-up units has hook-up unit connections corresponding to the at least two pump unit connections, the pump unit housing comprising a first pump unit end and a second pump unit end, the first pump unit end comprising a pump unit fluid inlet opening, the second pump unit end comprising a pump unit fluid outlet opening, the pump being configured to deliver fluid to the pump unit fluid outlet opening in a fluid exiting direction, the pump unit fluid inlet opening being axially opposite the pump unit fluid outlet opening with respect to a longitudinal axis of the pump unit housing, wherein the at least two pump unit connections are located between the pump unit fluid inlet and the pump unit fluid outlet, the pump unit housing comprising a pump unit housing portion extending continuously, without interruption, from at least one of the two pump unit connections to another one of the at least two pump unit connections, the gas flow path being defined by at least one of the hook-up unit connections of the at least one of the hook-up units and at least one of the at least two pump unit connections; connecting the at least one of the hook-up units to at least one of the at least two pump unit connections to set an operating point of the pump unit, the at least one of the hook-up units being in fluid communication with the pump unit via at least the at least one of the at least two pump unit connections and the one of the hook-up unit connections of the at least one of the hook-up units, wherein the least one of the hook-up units is configured to deliver fluid to the single pump unit housing at a position located downstream of the pump with respect to the fluid exiting direction.
17. A method in accordance with claim 16, further comprising providing the at least one of the hook-up units as a pneumatic resistance for the pump unit, the at least one of the hook-up unit connections defining a hook-up unit connection inlet, the at least two pump unit connections comprising a pump connection inlet and a pump connection outlet, the pump connection outlet being located adjacent to the hook-up unit connection inlet, the pump unit housing portion extending parallel to the longitudinal axis.
18. A method in accordance with claim 16, further comprising providing the at least one of the hook-up units as a buffer volume unit providing an additional volume for the pump unit, wherein the single pump unit housing is configured to receive the fluid in a fluid receiving direction via the pump unit fluid inlet opening and the single pump unit housing is configured to deliver the gas in the gas exiting direction via the pump unit fluid outlet opening, wherein the gas receiving direction and the gas exiting direction are parallel to a direction of the longitudinal axis of the pump unit housing, each of the at least two pump unit connections comprising a socket, each of the hook-up unit connections comprising a plug connection, the plug connection being inserted in the socket.
19. A medical device comprising: a gas measurement device for use in medical gas measurements and/or process gas measurement applications, the gas measurement device comprising a gas flow path, the gas measurement device comprising: a single pump unit comprising a single pump unit housing and a pump arranged in the single pump unit housing, the pump unit housing comprising at least two connections located between one end of the pump unit housing and another end of the pump unit housing, the one end of the pump unit housing comprising a pump unit fluid inlet opening, the another end of the pump unit housing comprising a pump unit fluid outlet opening, the pump being configured to deliver fluid to the pump unit fluid outlet opening in a fluid exiting direction, the pump unit fluid inlet opening being axially opposite the pump unit fluid outlet opening with respect to a longitudinal axis of the single pump unit housing, the at least two connections being located between the pump unit fluid inlet and the pump unit fluid outlet, the pump unit housing comprising a pump unit housing portion extending continuously, without interruption, from one of the at least two connections to another one of the at least two connections; and a plurality of different hook-up units, each of which is connectable to the pump unit, wherein at least one of the hook-up units is connected directly to at least one of the at least two connections to set a pneumatic operating point of the pump unit, the at least one of the hook-up units being in fluid communication with the pump unit via at least one of a plurality of hook-up unit connections of the at least one of the hook-up units and the at least one of the at least two connections of the pump unit, the at least one of the hook-up unit connections of the at least one of the hook-up units and the at least one of the at least two connections of the pump unit defining at least a portion of the gas flow path, wherein the at least one of the hook-up units being configured to deliver the fluid to the single pump unit housing at a position located downstream of the pump with respect to the fluid exiting direction.
20. A medical device in accordance with claim 19, wherein the single pump unit housing is configured to receive the fluid in an axial direction of the single pump unit housing relative to the longitudinal axis of the single pump unit housing via the pump unit fluid inlet and the single pump unit housing is configured to guide the fluid such that the fluid exits the single pump unit housing via the pump unit fluid outlet opening in the longitudinal direction of the single pump unit housing, wherein the at least one of the hook-up unit connections defines a hook-up unit connection inlet, the at least two connections of the pump unit comprising a pump connection inlet and a pump connection outlet, the pump connection outlet being located adjacent to the hook-up unit connection inlet, the pump unit housing portion extending in an axial direction with respect to the longitudinal axis, wherein: the at least one of the hook-up units forms a resistance unit and presents, in a connected state with the pump unit, a pneumatic resistance for the pump unit; or the at least one of the hook-up units forms a buffer unit and presents, in a connected state with the pump unit, an additional volume for this pump unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In the drawings:
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0045] Referring to the drawings, the view in
[0046] The view in
[0047] The view in
[0048] Such a continuously adjustable resistance 30, which can be connected in stages in series or in parallel, represents an especially simple possibility for adjusting an operating point of the respective pump 10. If the pneumatic load is too low during the operation and thus the speed of rotation is too low, a resistance 30 is used or activated, or in case of an already present resistance 30, the effective pneumatic resistance thereof is increased. The resistance 30 acts as a higher pneumatic load for the respective pump 10, and that output, which the pump 10 must additionally discharge for the resistance 30, is not available for the pneumatic system. Even if the degree of action deteriorates as a result, the pump 10 with the additional resistance 30 can operate in a speed of rotation range, for which it is configured (bearing, commutation). The action of such a resistance 30 is such that the pump 10 must overcome a higher pressure than is used for the pneumatic system in case of identical volume flow. A resulting additional drop in pressure at the resistance 30 shifts the characteristic of the pump 10 towards a lower pressure gain. This in turn may be equalized by a higher speed of rotation. As a result, the goal of compensating a too low drop in pressure of the pneumatic system, which leads to a too low speed of rotation, and being able to operate with a higher speed of rotation is achieved.
[0049] The mode of action is similar in the case of a parallel resistance 30 connected, as it were, via the pump (
[0050] A “connection” of a pump 10 to a resistance 30 functioning as pneumatic resistance, for example, a filter 36 (
[0051] The view in
[0052] For use of such modules, provisions are made for the pump 10 and the respective resistance 30 or the like each to be mounted in a special housing. The pump 10 and its housing are designated together as pump unit 110 and the resistance 30 or the like and the housing thereof are designated together as a resistance unit or generally as a hook-up unit 130. A pump unit 110 and at least one hook-up unit combined with it together form a pump system 120. A hook-up unit 130 can be combined with the pump unit 110 modularly. Because of this modular combinability, at least one hook-up unit 130 from a plurality of hook-up units 130 can each be combined with the pump unit 110 as needed.
[0053] This is schematically shown in a simplified manner in the view in
[0054] For such a combinability, the pump unit 110 and each hook-up unit 130 have connections 140, 142; 144, 146. The inlets and outlets 20, 22 may also be provided with corresponding connections or be configured in the form of the connections 140, 142, so that a hook-up unit 130 can—as shown—be connected to these as well. The connections 140, 142 on the sides of the pump unit 110 as well as the connections 144, 146 on the sides of the (each) hook-up unit 130 are configured such that they are combinable with one another, for example, in a locking manner and a connection that is tight for each medium delivered by the pump 10 of the pump unit 110 is established in case of a combination of two connections 140, 144; 142, 146. The configuration of the connections 140, 142; 144, 146 is, for example, like connections of a plug-in system such that, for example, the connections 140, 142 on the sides of the pump unit 110 are configured as sockets, in which correspondingly configured plug-like connections 144, 146 on the sides of the (each) hook-up unit 130 can be inserted and are accommodated there in a locking manner.
[0055] The further description is devoted to a variety of resistances 30 and the like which can each be made available in the form of such a hook-up unit 130. When only the respective resistance 30 itself is being described below, it should hence always also follow there that such a resistance 30 according to the innovation suggested here is integrated into a modular hook-up unit 130 combinable with a pump unit 110. This also applies if the respective view also shows, besides the respective resistance 30, the pump 10, with which the resistance 30 is combined, without also showing a pump unit 110 enclosing the pump 10 as well as a resistance unit 130 enclosing the resistance 30.
[0056] The view in
[0057] Such a resistance 30 with a fixed pneumatic resistance 30 may also be provided in the form of a resistance 30 than can be adjusted once only. A corresponding hook-up unit 130 then comprises, for example, a tube or line section, which is crimped once only. As an alternative, an open-pore sponge or the like, for example, a filter medium, which is compressed to varying degrees in a housing having line connections on the input side and the output side, is also taken into account.
[0058] By contrast to the fixed pneumatic resistance 30 according to
[0059] A bypass 32 connecting the line sections in front of and behind the shut-off body 40 is shown in the view in
[0060] The views in
[0061] In such an embodiment of a variable resistance 30 according to
[0062] Setting of a maximum pneumatic resistance is structurally possible by means of an “untight” seating of the shut-off body 40, as this is schematically shown in a simplified manner in the view in
[0063] The views shown in
[0064] In the case of the use of an automatically activatable actuator 44 (especially embodiments according to
[0065] In case of an automatically activatable actuator 44 and/or a measuring device which is directly or indirectly associated with the actuator 44, additional connections, namely at least connections, by means of which a control signal for actuating the actuator 44 can be transmitted or is transmitted during the operation from the pump unit 110 to the hook-up unit 130 or a signal generated by the measuring device during the operation can be transmitted or is transmitted from the hook-up unit 130 to the pump unit 110, are provided on the sides of the pump unit 110 as well as of the hook-up unit 130 for integration into the pump system 120 (
[0066] In addition, an equalization line 18, which connects a lower volume of the resistance 30 coupled to the cylinder 14 to a volume above the piston 46, is shown in the view in
[0067] A use of variable pneumatic resistances 30, for example, variable resistances 30 as they are shown in
[0068] The embodiment of a pneumatic resistance 30, which is variable by coupling a variable additional volume shown in
[0069] The position of the piston 46 and thus the size of the volume coupled to the cylinder 14 of the pump 10 can be automatically determined by means of a measurement of the inductance of the coil winding.
[0070] A variety of possibilities come into consideration for the automatic detection of an indicator of the volume coupled to the cylinder 14 by means of a corresponding measuring device: The use of an encoder, for example, of an encoder in the form of an incremental transducer; the use of a strain gauge strip, especially of a conductive elastomer functioning as a strain gauge strip, wherein such a conductive elastomer may also take over the function of the above-mentioned spring; the use of glass or magnetic scales; the use of photoelectric cells or sensors for detecting ultrasound durations or the like.
[0071] An embodiment of a pump arrangement 28 with a pneumatic resistance 30 in the form of a volume, which can be additionally coupled to the volume of the cylinder 14 of the pump 10, as shown in
[0072] The view in
[0073] In the embodiment of a pump arrangement 28 shown in
[0074] In the embodiment of a pump 10 shown in
[0075] When the E modulus of the or each diaphragm can be set by means of an applied electrical voltage, a pressure difference, which is higher compared to an unaffected diaphragm, is needed in case of a high E modulus for opening the diaphragm, i.e., for opening the inlet valve or outlet valve 24, 26. Only a small pressure difference is needed in case of a low E modulus. In this embodiment, the inlet valve 24 or the outlet valve 26 or the inlet vale 24 and the outlet valve 26 function as resistance 30. In a pump system 120 (
[0076] The view in
[0077] The view in
[0078] Finally, individual essential aspects of the description presented here can be briefly summarized as follows: A pump arrangement 28 with a pump (pneumatic pump) 10 and a means for setting an operating point of the pump 10 are suggested, wherein a pneumatic resistance 30 associated with the pump 10 functions as the means for setting an operating point of the pump 10, the use of a pneumatic resistance 30 for setting an operating point of a respective pump 10 and finally a medical device with such a pump arrangement 28. The description mentions a plurality of possible embodiments of such a resistance 30. All the different forms of resistance are, in principle, combinable with one another. Especially insofar as a resistance 30 in the form of a modular component (hook-up unit 130) can be associated with the pump 10 comprised by a pump unit 110 as means for setting the operating point thereof, different forms of resistance are combinable by individual hook-up units 130 being connected in series or parallel.
[0079] The core of the innovation suggested here is first and foremost a pump system 120 with a central pump unit 110, with which at least one hook-up unit 130 from a group containing a plurality of hook-up units 130 can be combined in modular form for setting an operating point of a pump 10 comprised by the pump unit 110, then use of such a hook-up unit 130 in a pump system 120 for setting the operating point of the pump unit 110 thereof and finally a medical device with such a pump unit 110 or with such a pump unit 110 and at least one hook-up unit 130 combined with it.
[0080] 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
[0081] 10 Pump
[0082] 12 Drive
[0083] 14 Cylinder
[0084] 16 Diaphragm/Piston
[0085] 18 Seal
[0086] 20 Inlet
[0087] 22 Outlet
[0088] 24 Valve, inlet valve
[0089] 26 Valve, outlet valve
[0090] 28 Pump arrangement
[0091] 30 (Pneumatic) resistance
[0092] 32 Bypass
[0093] 34 Breathing tube
[0094] 36 Filter
[0095] 38 Narrow space/Gap
[0096] 40 Shut-off body
[0097] 42 Handwheel
[0098] 44 Actuator (e.g., electric motor)
[0099] 46 Piston
[0100] 48 Equalization line
[0101] 50 Auxiliary pump
[0102] 110 Pump unit
[0103] 120 Pump system
[0104] 130 Hook-up unit
[0105] 140-142 Connection
[0106] 144-146 Connection