Carbon dioxide absorber for a rebreathing system
RE047995 · 2020-05-19
Assignee
Inventors
- Ahmet Türker (Ratekau, DE)
- Grigory Kholtchanski (Lübeck, DE)
- Sven Pasdzior (Lübeck/Travemünde, DE)
- Robert LISCHINSKI (Einhaus, DE)
- Dirk-Stefan Reichert (Lübeck, DE)
Cpc classification
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
A62B19/00
HUMAN NECESSITIES
B01D53/0446
PERFORMING OPERATIONS; TRANSPORTING
International classification
A61M16/22
HUMAN NECESSITIES
A62B19/00
HUMAN NECESSITIES
Abstract
A carbon dioxide absorber for a rebreathing system can be connected to a connection head of the rebreathing system in a simple manner. A centering device (43, 44, 45, 46), provided in the area of a guide plate (40) of the absorber (4), can be caused to mesh with centering pins pointing in the direction of the absorber from the connection head.
Claims
.[.1. A carbon dioxide absorber for a rebreathing system, the carbon dioxide absorber comprising: a connection head at the rebreathing system, said connection head including a pivotable mount; an absorber housing; a guide plate on a front side of said absorber housing, said guide plate being pushed into said pivotable mount of said connection head; guide plate gas ducts arranged concentrically at said guide plate; connection head gas ducts provided in said connection head and with a design corresponding to said guide plate gas ducts, said guide plate gas ducts for connection to said connection head gas ducts; guide grooves between said guide plate and said absorber housing for connecting said guide plate to said mount; centering pins pointing in a direction of said absorber housing from said connection head; and centering means in one or more of said guide plate and said absorber housing, said centering means for meshing with said centering pins from said connection head; said pivotable mount being pivotable between a first position and a second position, said first position arranging said pivotable mount adjacent said connection head, said second position arranging said pivotable mount spaced from said connection head and said centering pins..].
.[.2. A carbon dioxide absorber in accordance with claim 1, wherein said centering means comprises upper positioning grooves arranged opposite each other with corresponding said centering pins in an area of said guide grooves..].
.[.3. A carbon dioxide absorber in accordance with claim 2, wherein said centering means further comprises lower positioning grooves at said absorber housing, said lower positioning grooves extending flush with said upper positioning grooves and for meshing with free ends of said centering pins..].
.[.4. A carbon dioxide absorber in accordance with claim 1, wherein said centering pins taper towards a free end thereof in a wedge-shaped pattern..].
.[.5. A carbon dioxide absorber in accordance with claim 4, wherein: said centering means comprises upper positioning grooves arranged opposite each other with corresponding said centering pins in an area of said guide grooves; and an outer contour of said centering pins corresponds to an inner contour of said upper positioning grooves..].
.[.6. A carbon dioxide absorber in accordance with claim 4, wherein: said centering means comprises lower positioning grooves at said absorber housing, said lower positioning grooves for meshing with free ends of said centering pins; and an outer contour of said centering pins corresponds to an inner contour of said lower positioning grooves..].
.[.7. A carbon dioxide absorber in accordance with claim 1, wherein: said pivotable mount defines an opening; said centering means defines positioning grooves as part of said centering means, said centering pins passing through said opening of said pivotable mount, and into said positioning grooves of said centering means when said pivotable mount moves from said first position into said second position..].
.[.8. A rebreathing system with carbon dioxide absorber comprising: a rebreathing system connection head including a pivotable mount, said connection head having connection head gas ducts provided in said connection head, said connection head having centering pins pointing outwardly from said connection head; an absorber housing with a guide plate on a front side of said absorber housing, said guide plate for being pushed into said pivotable mount of said connection head, said guide plate including guide plate gas ducts arranged concentrically at said guide plate with a design corresponding to said connection head gas ducts, said connection head gas ducts for connection to said guide plate gas ducts, guide grooves being provided between said guide plate and said absorber housing for connecting said guide plate to said mount; and centering means in one or more of said guide plate and said absorber housing, said centering means for meshing with said centering pins from said connection head, said centering means defining upper positioning grooves arranged opposite each other with corresponding said centering pins in an area of said guide grooves, said centering means further defining lower positioning grooves at said absorber housing, said lower positioning grooves extending flush with said upper positioning grooves and for meshing with free ends of said centering pins..].
.[.9. A rebreathing system with carbon dioxide absorber in accordance with claim 8, wherein said centering pins taper towards a free end thereof in a wedge-shaped pattern..].
.[.10. A rebreathing system with carbon dioxide absorber in accordance with claim 9, wherein: an outer contour of said centering pins corresponds to an inner contour of said upper positioning grooves..].
.[.11. A rebreathing system with carbon dioxide absorber in accordance with claim 9, wherein: an outer contour of said centering pins corresponds to an inner contour of said lower positioning grooves..].
.[.12. A carbon dioxide absorber arrangement in a rebreathing system, the absorber arrangement comprising: an absorber housing for holding a carbon dioxide absorber material, said absorber housing defining ducts for bringing breathing gas in contact with the carbon dioxide absorber material; a guide plate mounted on one side of said absorber housing, one of said guide plate and said absorber housing defining a positioning groove; a pivotable mount adapted to connect to said guide plate, said pivotable mount and said guide plate being shaped to have said guide plate slide into said pivotable mount in a direction along said one side of said absorber housing; a connection head adapted to connect to the rebreathing system and defining connection head ducts in communication with the rebreathing system, said pivotable mount being pivotally connected to said connection head to bring said ducts of said absorber housing into communication with said ducts of said connection head; a centering pin extending from said connection head in a direction of said absorber housing, said centering pin cooperating with said positioning groove to align said ducts of said absorber housing with said ducts of said connection head; said pivotable mount being pivotable between a first position and a second position, said first position arranging said ducts of said absorber housing in communication with said ducts of said connection head, said second position arranging said pivotable mount spaced from said connection head and said centering pin..].
.[.13. An absorber arrangement in accordance with claim 12, wherein: said pivotable mount defines an opening, said centering pin passing through said opening, and into said positioning groove when said pivotable mount moves from said first position into said second position..].
.Iadd.14. A carbon dioxide absorber cartridge for a rebreathing system, the carbon dioxide absorber cartridge comprising: an absorber housing comprising a top side and a bottom side; a guide plate, attached to, and extending upwardly from, the top side of the absorber housing, the guide plate comprising an outer edge, a top side, a bottom side, and first and second overhang portions arranged opposite each other on lateral sides of the guide plate; a first guide groove defined by a bottom side of the first overhang portion and a first upright wall which extends downwardly from the bottom side of the first overhang portion; a second guide groove defined by a bottom side of the second overhang portion and a second upright wall which extends downwardly from the bottom side of the second overhang portion; a first upper positioning groove formed in the first overhang portion, extending through the outer edge of the guide plate and located along the first guide groove; a second upper positioning groove formed in the second overhang portion, extending through the outer edge of the guide plate and located along the second guide groove; and an outer gas duct and an inner gas duct arranged concentrically in, and extending through, the guide plate, the outer gas duct being in flow communication with the inner gas duct; wherein the first upright wall is substantially parallel to the second upright wall..Iaddend.
.Iadd.15. The carbon dioxide absorber cartridge of claim 14, wherein the first sidewall is substantially planar and the second sidewall is substantially planar..Iaddend.
.Iadd.16. The carbon dioxide absorber cartridge of claim 14, wherein the first and second upper positioning grooves are located so that a positioning groove axis that bisects the inner gas duct also passes through the first and second upper positioning grooves..Iaddend.
.Iadd.17. The carbon dioxide absorber cartridge of claim 14, wherein the first upper positioning groove extends from the outer edge of the guide plate to the first upright wall and the second upper positioning groove extends from the outer edge of the guide plate to the second upright wall..Iaddend.
.Iadd.18. The carbon dioxide absorber cartridge of claim 14, wherein the first upper positioning groove has side walls that slant inwardly toward each other in a direction from top to bottom and the second upper positioning groove has side walls that slant inwardly toward each other in a direction from top to bottom..Iaddend.
.Iadd.19. The carbon dioxide absorber cartridge of claim 14, wherein the first guide groove is further defined by a first lower wall which is parallel to the bottom side of the first overhang portion and the second guide groove is further defined by a second lower wall which is parallel to the bottom side of the second overhang portion, the first side wall extending from the first overhang portion to the first lower wall, the second side wall extending from the second overhang portion to the second lower wall, the first lower wall including a first lower positioning groove formed therein, the second lower wall including a second lower positioning groove formed therein..Iaddend.
.Iadd.20. The carbon dioxide absorber cartridge of claim 19, wherein the first lower positioning groove vertically aligns with the first upper positioning groove and the second lower positioning groove vertically aligns with the second upper positioning groove..Iaddend.
.Iadd.21. The carbon dioxide absorber cartridge of claim 19, wherein the inner gas duct defines a longitudinal axis, at least a portion of the first lower positioning groove is longitudinally aligned with the first upper positioning groove, and at least a portion of the second lower positioning groove is longitudinally aligned with the second upper positioning groove..Iaddend.
.Iadd.22. The carbon dioxide absorber cartridge of claim 14, wherein the inner gas duct extends upwardly from the top side of the guide plate..Iaddend.
.Iadd.23. A carbon dioxide absorber cartridge for a rebreathing system, the carbon dioxide absorber cartridge comprising: an absorber housing; a guide plate provided as a top side of the absorber housing; gas ducts arranged concentrically at the guide plate; guide grooves defined by at least one of the guide plate and a portion of the absorber housing, the guide grooves arranged opposite each other on lateral sides of the guide plate, the guide grooves being parallel to each other; upper positioning grooves arranged opposite each other on lateral sides of the guide plate and in an area of the guide grooves, and the upper positioning grooves being located substantially along a line bisecting the concentrically arranged gas ducts..Iaddend.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENT
(14) Referring to the drawings in particular,
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(16) The connection head 1 has a housing 5 with a connection piece 6 for connection to an anesthetic breathing system, not shown more specifically in
(17) The mount 3, which receives the absorber 4, has a barb 10, which snaps into a wall section 11 of the locking element 8. To connect the absorber 4 to the connection head 1, the absorber 4 is pushed into the mount 3 and pivoted in the direction of the connection head 1. Reference is made in this connection to the disclosure of DE 10 2004 020 133 B3, which is part of this specification (and is incorporated by reference and corresponding U.S. patent application Ser. No. 11/058,624 filed Feb. 15, 2005, is also hereby incorporated by reference.
(18) The absorber 4 has an inner gas duct 12 with an inner valve crater 13 and an outer gas duct 14 arranged concentrically thereto with an outer valve crater 15. The gas ducts 12, 14 describe the flow paths through the absorber 4.
(19) The inner gas duct 12 passes within the connection head 1 through the interior space of the valve means 2, and the outer gas duct 14 in an annular space between the valve means 2 and the guide sleeve 7. A sealing ring 16, which has an outer sealing lip 17 directed towards the absorber 4, and an inner sealing lip 18, which is in contact with an outer ring section 19 of the valve means 2, is located on the underside of the guide sleeve 7. The ring section 19 is located between a first cylindrical wall section 20 of the valve means 2 with the larger cross section and a second cylindrical wall section 21 with a smaller diameter, which latter wall section adjoins same. The wall sections 20, 21 and the ring section 19 together form a valve housing 201 of the valve means 2. The inner sealing lip 18 and the ring section 19 form a second sealing area 24 and are designed to interrupt the gas flow in the annular space as a shut-off means when the absorber 4 has been removed from the connection head 1.
(20) The second wall section 21 is provided with an elastomer ring 22 at its free end, which extends in the direction of the absorber 4. When the absorber 4 is pivoted in the direction of the connection head 1, the outer sealing lip 17 lies on the outer valve crater (seat) 15 and forms a first sealing area 23. The elastomer ring 22 is located on the inner valve crater 13 in this position of the absorber 4.
(21) A flow valve 31 with a valve body 25, which is in contact with a sealing lip 26, is located on the top side of the first wall section 20 of the valve means 2. The valve body 25 is pressed by a compression spring 27 against the sealing lip 26. The valve body 25 is in contact with a projection 29 of the housing 5 via spacers 28. Due to the fixation by means of the spacers 28, the valve body 25 always has a fixed position in relation to the housing 5. The flow valve 31 opens when the valve housing 201 is displaced in the direction of the spacers 28. In the position of the absorber 4 shown in
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(24) The outer sealing lip 17 is designed in this embodiment as a lip seal with a large deformation area in order to reduce the sealing forces that must be overcome when the mount 3 is coupled with the connection head 1 and to compensate differences in height in the form of manufacturing tolerances.
(25) With the absorbed 4 uncoupled, the sealing ring 16 is pulled off from the guide sleeve 7 downward for cleaning purposes and the valve means 2 can be removed and taken apart for cleaning purposes. No tool is necessary for disassembly. The components of the connection head 1 may be manufactured from plastic according to the injection molding process and can be manufactured at a very low cost as a result.
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(34) While a specific embodiment of the invention has 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.