ABSORPTION ARRANGEMENT WITH A CO2 ABSORBER AND A WATER TRAP AND PROCESS FOR FILTERING OUT CO2
20230226307 · 2023-07-20
Inventors
Cpc classification
B01D53/265
PERFORMING OPERATIONS; TRANSPORTING
A61M16/20
HUMAN NECESSITIES
A61M16/1045
HUMAN NECESSITIES
B01D53/0407
PERFORMING OPERATIONS; TRANSPORTING
Y02C20/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
An absorption arrangement (100) includes a CO2 absorber (4) and a water trap (2). Such an absorption arrangement (100) is used with a process for filtering carbon dioxide from a gas mixture by absorption. The gas mixture flows from a source through the absorption arrangement (100) to a sink in the following way: through a supply fluid guide unit (3), through a lower deflecting fluid guide unit (9), through the CO2 absorber (4), through an upper deflecting fluid guide unit (6), through a connecting fluid guide unit (33), through the water trap (2) and through a discharge fluid guide unit (34). The gas mixture flows vertically or obliquely upward through the CO2 absorber (4) and vertically or obliquely downward through the connecting fluid guide unit (33) to the water trap (2).
Claims
1. An absorption arrangement comprising: a CO2 absorber configured to absorb carbon dioxide so as to filter out carbon dioxide from a gas mixture flowing through the CO2 absorber; a water trap configured to receive moisture; a supply fluid guide unit configured to be connected to a source of the gas mixture; a lower deflecting fluid guide unit; an upper deflecting fluid guide unit; a discharge fluid guide unit configured to be connected to a sink for the gas mixture; and a connecting fluid guide unit connecting the CO2 absorber to the water trap, wherein the absorption arrangement is configured such that the gas mixture flows from the source first through the supply fluid guide unit, subsequently through the lower deflecting fluid guide unit, subsequently through the CO2 absorber, subsequently through the upper deflecting fluid guide unit, subsequently through the connecting fluid guide unit, subsequently through the water trap, and subsequently through the discharge fluid guide unit to the sink, wherein the absorption arrangement is configured such that with the absorption arrangement in an operative state the gas mixture is deflected by the lower deflecting fluid guide unit to flow vertically or obliquely upwards through the CO2 absorber and is deflected by the upper deflecting fluid guide unit to flow vertically or obliquely downwards through the connecting fluid guide unit to the water trap.
2. An absorption arrangement according to claim 1, wherein with the absorption arrangement in the operative state, the lower deflecting fluid guide unit is located below the CO2 absorber and the CO2 absorber is located below the upper deflecting fluid guide unit.
3. An absorption arrangement according to claim 1, wherein the connecting fluid guide unit is directly adjacent to an environment of the absorption arrangement.
4. An absorption arrangement according to claim 1, wherein the CO2 absorber surrounds in the manner of a casing the supply fluid guide unit or at least a section of the supply fluid guide unit.
5. An absorption arrangement according to claim 1, wherein the connecting fluid guide unit or at least a portion of the connecting fluid guide unit surrounds the CO2 absorber in the manner of a casing.
6. An absorption arrangement according to claim 1, further comprising an intermediate piece connectable to the source and connectable to the sink, wherein the CO2 absorber and the water trap are mechanically connected or connectable to the intermediate piece.
7. An absorption arrangement according to claim 6, wherein the connecting fluid guide unit is mechanically connected to the intermediate piece, and the water trap is mechanically connected to the connecting fluid guide unit and via the connecting fluid guide unit with the intermediate piece.
8. An absorption arrangement according to claim 6, wherein a portion of the upper deflecting fluid guide unit is located in the intermediate piece and/or a portion of the upper deflecting fluid guide unit is connected to the intermediate piece.
9. An absorption arrangement according to claim 6, further comprising a further intermediate piece connectable with the source or another source of a gas mixture and with the sink or another sink for a gas mixture, wherein the CO2 absorber and the water trap are selectively mechanically connectable to the intermediate piece or to the further intermediate piece.
10. An absorption arrangement according to claim 1, wherein the absorption arrangement further comprises an outer housing surrounding the CO2 absorber, the water trap, the supply fluid guide unit, the lower deflecting fluid guide unit, the upper deflecting fluid guide unit, the discharge fluid guide unit, and the connecting fluid guide unit.
11. An absorption arrangement according to claim 10, wherein the connecting fluid guide unit is located between a segment of the outer housing and the CO2 absorber.
12. An absorption arrangement according to claim 10, wherein the outer casing comprises: an upper housing part; and a lower housing part, which is mechanically connected to the upper housing part, wherein the absorption arrangement is configured such that with the absorption arrangement in the operative state, the upper housing part is located above the lower housing part, and wherein the upper housing part surrounds the CO2 absorber, the two deflecting fluid guide units and the connecting fluid guide unit, and wherein the lower housing part forms a bottom of the water trap.
13. A ventilation system for artificial respiration of a patient, the ventilation system comprising: a ventilator; a patient-side coupling unit positionable in or on or at the body of the patient; an inspiratory fluid connection; an expiratory fluid connection, wherein the ventilator is connected to the patient-side coupling unit by the inspiratory fluid connection and by the expiratory fluid connection and the ventilator is configured to deliver a gas mixture through the inspiratory fluid connection to the patient-side coupling unit; and an absorption arrangement comprising: a CO2 absorber configured to absorb carbon dioxide so as to filter out carbon dioxide from a gas mixture flowing through the CO2 absorber; a water trap configured to receive moisture; a supply fluid guide unit configured to be connected to a source of the gas mixture; a lower deflecting fluid guide unit; an upper deflecting fluid guide unit; a discharge fluid guide unit configured to be connected to a sink for the gas mixture; and a connecting fluid guide unit connecting the CO2 absorber to the water trap, wherein the absorption arrangement is configured such that the gas mixture flows from the source first through the supply fluid guide unit, subsequently through the lower deflecting fluid guide unit, subsequently through the CO2 absorber, subsequently through the upper deflecting fluid guide unit, subsequently through the connecting fluid guide unit, subsequently through the water trap, and subsequently through the discharge fluid guide unit to the sink, wherein the absorption arrangement is configured such that in an operative state the gas mixture is deflected by the lower deflecting fluid guide unit to flow vertically or obliquely upwards through the CO2 absorber and is deflected by the upper deflecting fluid guide unit to flow vertically or obliquely downwards through the connecting fluid guide unit to the water trap, and wherein the ventilation system is configured such that a gas mixture flows from the patient-side coupling unit through the expiratory fluid connection to the ventilator and flows through the absorption arrangement when flowing through the expiratory fluid connection.
14. A ventilation system according to claim 13, wherein with the absorption arrangement in the operative state, the lower deflecting fluid guide unit is located below the CO2 absorber and the CO2 absorber is located below the upper deflecting fluid guide unit.
15. A ventilation system according to claim 13, wherein the connecting fluid guide unit is directly adjacent to an environment of the absorption arrangement.
16. A ventilation system according to claim 13, wherein the CO2 absorber surrounds in the manner of a casing the supply fluid guide unit or at least a section of the supply fluid guide unit.
17. A ventilation system according to claim 13, wherein the connecting fluid guide unit or at least a portion of the connecting fluid guide unit surrounds the CO2 absorber in the manner of a casing.
18. A ventilation system according to claim 13, wherein the absorption arrangement further comprises an intermediate piece connectable to the source and connectable to the sink, wherein the CO2 absorber and the water trap are mechanically connected or connectable to the intermediate piece.
19. A process for filtering carbon dioxide from a gas mixture using an absorption arrangement, which absorption arrangement comprises a CO2 absorber, a water trap, a supply fluid guide unit, a lower deflecting fluid guide unit, an upper deflecting fluid guide unit, a discharge fluid guide unit, and a connecting fluid guide unit which connecting fluid guide unit connects the CO2 absorber to the water trap, the process comprising the steps of: guiding the gas mixture from a source to the supply fluid guide unit; guiding the gas mixture through the supply fluid guide unit to the lower deflecting fluid guide unit; deflecting the gas mixture by the lower deflecting fluid guide unit such that the deflected gas mixture flows vertically or obliquely upwards; guiding the gas mixture vertically or obliquely upwards through the CO2 absorber; deflecting the gas mixture by the upper deflecting fluid guide unit such that the deflected gas mixture flows vertically or obliquely downwards; guiding the gas mixture vertically or obliquely downwards through the connecting fluid guide unit to the water trap; causing the gas mixture to flow through the water trap; guiding the gas mixture through the discharge fluid guide unit; guiding the gas mixture from the discharge fluid guide unit to a sink; and as the gas mixture flows through the CO2 absorber, absorbing carbon dioxide with the CO2 absorber to filter carbon dioxide from the gas mixture.
20. A process according to claim 19, wherein the gas mixture is guided from a patient-side coupling unit positioned or positionable in or on or at the body of a patient through an expiratory fluid connection to a ventilator; wherein the gas mixture is guided through the absorption arrangement when being guided through the expiratory fluid connection; and wherein the ventilator is configured to perform artificial respiration of the patient.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0067] In the drawings:
[0068]
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
DESCRIPTION OF PREFERRED EMBODIMENTS
[0075] Referring to the drawings, in the exemplary embodiment, the invention is used in a ventilation circuit. In this ventilation circuit, a gas mixture circulates between a ventilator and the lungs L of a patient P. The ventilator maintains the flow of the gas mixture in the ventilation circuit. An inspiratory gas mixture, comprising oxygen and at least one anesthetic, flows from the ventilator through an inspiratory fluid connection to the patient and is inhaled by the patient. An expiratory gas mixture comprising carbon dioxide (CO2) is exhaled by the patient and flows back to the ventilator through an expiratory fluid connection. Because a largely fluid-tight ventilation circuit is established, no anesthetic leaks into the environment.
[0076] In order to be able to feed the expiratory gas mixture back to patient P for inhalation, the exhaled carbon dioxide must be removed from the expiratory gas mixture. For this purpose, the expiratory gas mixture is guided through a CO2 absorber. An absorption material in this CO2 absorber, preferably comprising breathing lime (soda lime), binds the carbon dioxide to itself and thereby removes it from the expiratory gas mixture which is guided through the CO2 absorber.
[0077] The chemical reaction in the CO2 absorber is exothermic, i.e. the expiration gas mixture heats up. In addition, the moisture content in the expiration gas mixture increases. Therefore, moisture in the expiration gas mixture is caused to condense and collects in a water tank or receptacle belonging to a so-called water trap. The invention relates to an absorption arrangement comprising the CO2 absorber and the water trap.
[0078]
[0087] It is also possible that another fluid conveying unit maintains the flow of gas in the ventilation circuit, such as a piston-cylinder unit or a hand-held resuscitator.
[0088] The absorption arrangement 100 comprises [0089] the CO2 absorber 1, [0090] the water trap 2, [0091] an intermediate connecting conduit 33 guiding from the CO2 absorber 1 to the water trap 2 and serving as the connecting fluid guide unit, and [0092] a discharge connecting conduit 34 leading from the water trap 2 to the second section 32.
[0093] The expiratory gas mixture flows from the first section 31 to the absorption arrangement 100 and there through the CO2 absorber 1, through the intermediate connecting conduit 33, the water trap 2 and the discharge connecting conduit 34 and then into the second section 32.
[0094] The CO2 absorber 1 removes carbon dioxide from the gas mixture flowing through the CO2 absorber 1. The expiratory gas mixture purified of carbon dioxide flows through the intermediate connecting conduit 33 to the water trap 2, where moisture in the expiratory gas mixture condenses and is collected in a container or receptacle of the water trap 2. Moisture is thus taken from the expiration gas mixture.
[0095] A lung pressure valve (positive end expiratory pressure (PEEP) saver valve) 13 in the first section 31 ensures that an end expiratory pressure is maintained in the lungs of the patient P. The PEEP saver valve 13 diverts any excess pressure in the first section 31 to the environment. A pressure sensor 20 measures a measure for the pressure in the inspiratory line 30, and a pressure sensor 22 measures a measure for the pressure in the expiratory line 31. A volume flow sensor 21 measures a measure for the volume flow in the inspiratory line 30. A signal processing control unit (not shown) receives and processes readings from the sensors 20, 21 and 22 and controls depending on the readings an inspiratory valve 11 and an expiratory valve 12. The control unit controls the inspiration valve 11 with the control gain that the actual time course of the volume flow through or also the actual time course of the pressure in the inspiration line 30 follows a predetermined time course. Accordingly, the control device controls the expiration valve 12 with the control gain that the actual time course of the volume flow through or also the actual time course of the pressure in the first section 31 of the expiration line follows a predetermined time course.
[0096]
[0105] The housing 5 provides a container or receptacle for the absorbent material 4. This container is limited at the bottom by the lower sieve 8.2 and at the top by the upper sieve 8.1. The feed tube 3 is centrally guided through the absorbent material 4. The discharge cavity 6 is in fluid communication with the absorbent material 4, this fluid communication guiding through the upper sieve 8.1.
[0106] By means of the adapter 7, the CO2 absorber 1 can be detachably attached to the corresponding line-side coupling unit 35 of the expiration line 31, 32, for example by means of a snap connection or snap-in connection or screw connection. When the CO2 adapter 1 is connected, the feed tube 3 is in fluid communication with the first section 31 of the expiration conduit. The discharge cavity 6 is in fluid communication with the water trap 2 via the intermediate connecting conduit 33, and thus indirectly in fluid communication with the second section 32 of the expiration conduit.
[0107] If the CO2 absorber 1 is attached to the line-side coupling unit 35, the feed tube 3 is arranged vertically and the housing 5 is located below the adapter 7. The designations “top” and “bottom” refer to an orientation of the CO2 absorber 1 that occurs in an operative state (use state) and attached to the line-side coupling unit 35. The bottom sieve 8.2 is permeable to gas, but not to absorbent material 4, and prevents absorbent material 4 from entering the diverting cavity 9. The discharge cavity 6 is located above the absorption material 4. The expiration gas mixture flows down through the feed tube 3, is deflected at the bottom 5.1 of the housing 5 and flows through the deflection cavity 9 and the lower sieve 8.2 and then up through the absorption material 4. The absorption material 4 removes carbon dioxide from the expiration gas mixture flowing therethrough. The expiratory gas mixture, purified of carbon dioxide, passes into the discharge cavity 6 and then into the interconnecting conduit 33. The arrows in
[0108] Note: In internal experiments, the inventors have empirically determined that the CO2 absorbent material 4 can absorb more carbon dioxide when the expiratory gas mixture flows through the absorbent material 4 vertically or oblique from the bottom up, than when it flows through from the top down or horizontally.
[0109]
[0116] The coupling-side intermediate piece 40.1 of
[0117] A coupling-side continuation 3.1 of the feed tube 3 and a coupling-side continuation 34.1 of the discharge connecting conduit 34 are inserted into the coupling-side intermediate piece 40.1. A continuation 3.2 of the feed tube 3 and a continuation 6.2 of the discharge cavity 6 are inserted into the absorber-side intermediate piece 40.2.
[0118] The two connecting conduits 33 and 34 each comprise a corrugated hose 33.a, 34.a and a rigid curved tube 33.b, 34.b. The two rigid tubes 33.b, 34.b each comprise a segment in the shape of a quarter circle and two adjacent straight segments and can be inserted into two corresponding receptacles 36.1, 36.2 in the coupling side intermediate piece 40.1 or are fixedly inserted into these receptacles 36.1, 36.2. Because the two corrugated hoses 33.a, 34.a are flexible, there is less risk that an interconnecting conduit 33, 34 or the water trap 2 will break if the absorption arrangement 100 collides with a rigid object. Preferably, the water trap 2 is detachably connected to the two corrugated hoses 33.a, 34.a so that the water trap 2 can be detached and emptied.
[0119] The feed tube 3 and the continuations 3.1, 3.2 function as the supply fluid guide unit in the first embodiment. The intermediate connecting conduit 33 and the corrugated hose 33.a act as the connecting fluid guide unit, which connects the CO2 absorber 1 to the water trap 2. The corrugated tube 34.a, the rigid tube 34.b and the continuation 34.1 belong to the discharge fluid guide unit.
[0120] As explained above, heat is released during the process of the absorption material 4 absorbing carbon dioxide. As a result, the expiration gas mixture is heated as it flows through. The absorption arrangement 100 is capable of releasing heat into the environment at a plurality of locations.
[0121] The absorption material 4 surrounds the feed tube 3, and the heated absorption material 4 can therefore release heat to the feed tube 3. The gas mixture heated thereby is deflected in the lower deflection cavity 9, and the bottom of the lower deflection cavity 9 can release heat to the surroundings.
[0122] The two connecting lines 33 and 34 are in thermal contact with the environment. The environment completely surrounds the two connecting conduits 33 and 34. After the gas mixture has flowed through the absorption material 4, it has heated up. Due to the thermal contact with the environment, the gas mixture cools down and water droplets condense on the inner walls of the connecting pipes 33 and 34. These water droplets run downwards into the water trap 2.
[0123] The gas mixture flows from the first section 31 through the absorption arrangement 100 according to the first embodiment to the second section 32 in the following way: [0124] downwards through the continuation 3.1, [0125] downwards through the continuation 3.2, [0126] down through the feed tube 3, [0127] through the deflection cavity 9, where the gas mixture is deflected, [0128] upwards through the absorption material 4, where carbon dioxide is absorbed, [0129] upwards through the discharge cavity 6, [0130] upwards through continuation 6.2, where the gas mixture is deflected in a horizontal direction, [0131] through the intermediate connecting conduit 33, first along a curve through the tube 33.b, so that the gas mixture is deflected downward, and then downward through the corrugated hose 33.a, [0132] through the water trap 2, where condensed water collects, [0133] through the discharge connecting conduit 34, first upwards through the corrugated tube 34.a and then through the tube 34.b along a bend, and then [0134] through continuation 34.1.
[0135] This path is indicated by arrows in
[0136]
[0137]
[0138] In the embodiment shown, a tubular gap occurs between the housing 5 of the CO2 absorber 1 and the upper housing part 55, which gap acts as the intermediate connecting conduit 33. Thanks to this embodiment, the connecting conduit 33 is in thermal contact with the environment over a large area, namely over at least half of the circumferential surface of the upper housing part 55. As a result, a gas mixture is cooled as it flows downwardly through the tubular intermediate connecting conduit 33.
[0139] In the realization shown, the discharge connecting conduit 34 is coaxially guided through the interior of the feed tube 3. It is also possible that the feed tube 3 is guided coaxially through the interior of the discharge connecting conduit 34.
[0140] An adapter 7 is attached to the top of the upper housing part 55. This adapter 7 can be configured in the same way as the adapter 7 of the CO2 absorber 1 of
[0141] The gas mixture flows from the first section 31 through the absorption arrangement 100 according to the second embodiment to the second section 32 on the following path: [0142] downwards through the feed tube 3 inside the CO2 absorber 1, [0143] through the lower deflection cavity 9, where the gas mixture is deflected, [0144] upwards through the absorption material 4, where carbon dioxide is absorbed, [0145] upwards through the discharge cavity 6, where the gas mixture is again deflected, [0146] down through the intermediate connecting conduit 33, cooling the gas mixture and condensing water on the inner wall of the upper housing part 55 and in some cases on the outer wall of the housing 5, [0147] into the water trap 2, where the gas mixture is again diverted, and [0148] upwards through the discharge connecting conduit 34.
[0149] The feed tube 3 functions as the supply fluid guide unit of the second embodiment. The lower diverter cavity 9 functions as the lower deflecting fluid guide unit, and the discharge cavity 6 functions as the upper deflecting fluid guide unit. The intermediate connecting conduit 33 functions as the connecting fluid guide unit, which functions as the discharging fluid guide unit.
[0150]
[0151] In particular, in the second embodiment, heat is released to the environment at the following locations: [0152] The feed tube 3 is located between the absorption material 4 and the discharge connecting conduit 34, allowing the absorption material to transfer a high amount of heat to the feed tube 3, and allowing the feed tube 3 to transfer heat to the discharge connecting conduit 34. [0153] The intermediate connecting conduit 33 is located between the absorbent material 4 and the upper housing part 55, allowing the intermediate connecting conduit 33 to transfer heat to the environment through the upper housing part 55.
[0154] 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 CHARACTERS
[0155]
TABLE-US-00001 1 CO2 absorber, comprises the feed tube 3, the CO2 absorption material 4, the housing 5, the discharge cavity 6, the adapter 7, the two sieves 8.1 and 8.2 and the deflection cavity 9 2 Water trap, is formed above the floor 2.1 2.1 Bottom of the water trap 2 3 Centrally arranged vertical feed tube of the CO2 absorber 1, is in fluid communication with the first section 31 3.1 Continuation of the feed tube 3 in the coupling-side intermediate piece 40.1 4 CO2 absorption material in the housing 5 5 Housing of the CO2 absorber 1, accommodates the absorption material 4 and the cavities 6, 9, has the bottom 5.1 5.1 Bottom of the housing 5 6 Discharge cavity, is in fluid communication with the interconnect 33 6.2 Continuation of the discharge cavity 6 in the absorber-side intermediate piece 40.2 7 Adapter of the CO2 absorber 1, can be detachably connected to the line- side coupling unit 35 7.1 Adapter for connecting the coupling-side intermediate piece 40.1 to the line-side coupling unit 35 7.2 Adapter for connecting the absorber-side intermediate piece 40.2 to the coupling-side intermediate piece 40.1 8.1 Upper sieve between the absorption material 4 and the discharge cavity 8.2 Lower sieve between the absorption material 4 and the deflection cavity 9 9 Deflection cavity between the lower sieve 8.2 and the bottom 5.1 of the CO2 absorber 1 10 Ventilator blower, maintains a flow of gas in the ventilation circuit. 11 Inspiratory valve, causes a regulated volume flow through the inspiratory line 30 12 Expiration valve, causes a regulated volume flow through the expiration line 31, 32 13 Lung pressure valve (PEEP saver valve) in the first section 31, ensures maintenance of an end-expiratory lung pressure 14 Coupling unit on the patient side, connected to lines 30 and 31 15 Detachable connection between the bottom 2.1 of the water trap 2 and the housing part 55 20 Pressure sensor, measures the pressure in the inspiration line 30 21 Volume flow sensor, measures the volume flow in the inspiration line 30 22 Pressure sensor, measures the pressure in the expiration line 31 30 Inspiratory line, leading from the blower 10 to the patient-side coupling unit 14 31 First section of the expiration line, leads from the patient-side coupling unit 14 to the absorption arrangement 100 32 Second section of the expiration line, leading from the absorption arrangement 100 to the blower 10 33 Interconnection conduit, leads from CO2 absorber 1 to water trap 2 33.a Corrugated hose of the feed connecting conduit 33 34.b Rigid tube of the feeder interconnector 33 34 Discharge connecting conduit, guiding from the water trap 2 to the second section 32 34.1 Continuation of the discharge connecting conduit 34 in the coupling-side intermediate piece 40.1 34.a Corrugated hose of the discharge connecting conduit 34 34.b Rigid tube of the discharge connecting conduit 34 35 Line-side coupling unit between the absorption arrangement 100 on the one hand and the two sections 31 and 32 of the expiration line on the other hand 36.1 Receptacle in the coupling-side intermediate piece 40.1 for the tube 33.b of the feed connecting conduit 33 36.2 Receptacle in the coupling-side intermediate piece 40.1 for the tube 34.b of the discharge connecting conduit 34 40.1 Coupling-side intermediate piece, is arranged between the CO2 adapter 1 and the line-side coupling unit 35 40.2 Absorber-side intermediate piece, is arranged between the coupling-side intermediate piece 40.1 and the CO2 adapter 1 50 Anesthetic dispenser producing a gas mixture comprising an anesthetic 51 Anesthetic supply line, opens into the inspiratory line 30 55 Upper housing part of the outer housing of the absorption arrangement 100 according to the second embodiment, surrounds the CO2 absorber 1 and the connecting conduits 33, 34, carries the water trap 2 100 Arrangement with absorber 1 and water trap 2 L Lungs of patient P P Patient, has lungs L, is connected to patient-side coupling unit 14