The present invention relates to an integrated device for heating and oxygenating blood in an extracorporeal circuit.
It is known that extracorporeal blood circuits in which blood is circulated during certain surgical procedures comprise, among other components, a heat exchanger, for keeping the temperature of the blood regulated by exchanging heat with a fluid normally constituted by water, and an oxygenator.
Very often, the two apparatuses are integrated into a single device, and the aim of the invention is to provide a device of this type which ensures that the blood flow has a turbulence-free path with optimum distribution in all regions and further provides high efficiency both in the exchange of heat between blood and water and in the exchange of oxygen with the blood.
The proposed aim is achieved by an integrated device for heating and oxygenating blood in an extracorporeal circuit according to the invention, which comprises a shell-and-tube heat exchanger module provided with a coupling to a blood supply line and with two couplings respectively for the intake and discharge of the water designed to exchange heat with the blood, ports being further provided for the passage of the blood toward an oxygenator module of the hollow-fiber type which is located at the peripheral region of said heat exchanger and is provided with a coupling to a blood discharge line, characterized in that it comprises means adapted to direct the flow of blood along a turbulence-free path and with optimum distribution within the two modules.
Further characteristics and advantages will become better apparent from the description of two preferred but not exclusive embodiments of the invention, illustrated by way of non-limiting examples in the accompanying drawings, wherein:
With reference to the
The enclosure 2a of the exchanger module 2 is inserted within an oxygenator module, generally designated by the reference numeral 7, more precisely a spooling core 7a around which there are, inserted in an annular portion of space 8 delimited toward the outside by an enclosure 7b, hollow fibers whose upper and lower ends are embedded respectively in the resin rings, known as potting, designated by the reference numerals 9 and 10; said fibers are intended, in a known manner, to convey oxygen from an intake compartment 11 to a discharge compartment 12.
The enclosure 7b of the oxygenator module is provided with a coupling 13 for removing bubbles from the blood and with a coupling 14 for connection to a line for the discharge of the blood from the device.
Observing now in detail the blood intake coupling 4, it can be seen that it has a first portion 4a which is cylindrical internally and tapered externally and is adapted to provide an easy connection to the blood supply line, and a second portion which is shaped like two lobes 4b, 4c and leads into a chamber 4d for accessing the shell-and-tube unit, thus providing an optimum distribution of blood which is divided uniformly among all the tubes of said shell-and-tube unit.
In output from the shell-and-tube unit, the blood reaches a chamber whose ceiling is shaped like a cusp-shaped diffuser 15 which is adapted to direct the flow toward the wall of said chamber and comprises consecutive and coplanar passage ports 16, which lead to the portion of space 8 which contains the hollow fibers which convey oxygen, all as shown by the arrows of
The discharge of the blood from the coupling 14 is furthermore facilitated by the inclination of a face 10a of the lower potting 10, while a suitable inclination of a face 9a of the upper potting 9 facilitates the discharge through the coupling 13 of bubbles contained in the blood.
Attention is now drawn to the exchanger module 2, which comprises a diametrical partition 2b, which lies parallel to the tubes 3 starting from the base and is interrupted at 2c, thus delimiting two chambers which are connected respectively to the intake coupling 5 and discharge coupling 6 for the water and are connected one another in the region above a top 2c of the partition 2b, in which the water follows the U-shaped path indicated by the arrows, partly in equicurrent and partly in countercurrent with respect to the flow of the blood in the tubes 3.
It should also be noted that the couplings 5 and 6 have the same inclination with respect to the axis of the device, thus offering conditions of particular convenience and interchangeability in connection to the water conveyance lines.
Two chambers are thus delimited which are connected respectively to the water intake and discharge couplings and are connected one another at the interruption 17b of the partition 17a, and the water traces a path which is indicated by the arrow of
The described invention is susceptible of numerous modifications and variations, all of which are within the scope of the appended claims; all the details may further be replaced with other technically equivalent elements.
The disclosures in Italian Patent Application No. MI2006A000490 from which this application claims priority are incorporated herein by reference.
Number | Date | Country | Kind |
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MI2006A0490 | Mar 2006 | IT | national |
Number | Name | Date | Kind |
---|---|---|---|
4778005 | Smith | Oct 1988 | A |
5823987 | Elgas et al. | Oct 1998 | A |
6004511 | Biscegli | Dec 1999 | A |
20040175292 | Ghelli et al. | Sep 2004 | A1 |
20060177343 | Brian et al. | Aug 2006 | A1 |
Number | Date | Country |
---|---|---|
1 618 906 | Jan 2006 | EP |
WO 9733636 | Sep 1997 | WO |
Number | Date | Country | |
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20070217948 A1 | Sep 2007 | US |