ASSEMBLY, ESOPHAGUS CATHETER AND METHOD FOR CONTROLLING A TEMPERATURE OF AT LEAST A PART OF A PERSON, IN PARTICULAR THE BRAIN OF THE PERSON
20170105871 ยท 2017-04-20
Inventors
Cpc classification
A61B8/12
HUMAN NECESSITIES
A61M2205/3375
HUMAN NECESSITIES
A61M16/0463
HUMAN NECESSITIES
A61F7/12
HUMAN NECESSITIES
A61F2007/0092
HUMAN NECESSITIES
International classification
A61F7/12
HUMAN NECESSITIES
A61B8/12
HUMAN NECESSITIES
Abstract
The present invention relates to an assembly for controlling a temperature of at least a part of a person, comprising an esophagus catheter to be inserted into the esophagus of the person for controlling the temperature. The esophagus catheter extends along a longitudinal axis and comprises a proximal heat exchanger defining a first flow direction having a first axial component relative to the longitudinal axis, and a distal heat exchanger defining a second flow direction having a second axial component relative to the longitudinal axis. The esophagus catheter further comprises a plurality of coolant channels each in fluid communication with at least one of the proximal heat exchanger and the distal heat exchanger, and a coolant pump connected or connectable to at least one of the plurality of coolant channels. The assembly is configured to cause simultaneously a coolant flow through the proximal heat exchanger and the distal heat exchanger.
Claims
1. An assembly for controlling a temperature, e.g. cooling, of at least a part of a person, in particular the brain of the person, for example during or after a cardiac arrest, the assembly comprising: an esophagus catheter to be inserted into the esophagus of the person for temperature control, the esophagus catheter extending along a longitudinal axis, the esophagus catheter comprising a proximal heat exchanger defining a first flow direction having a first axial component relative to the longitudinal axis, e.g. a proximal balloon, and a distal heat exchanger defining a second flow direction having a second axial component relative to the longitudinal axis, e.g. a distal balloon, the esophagus catheter further comprising a plurality of coolant channels each in fluid communication with at least one of the proximal heat exchanger and the distal heat exchanger, and a coolant pump connected or connectable to at least one of the plurality of coolant channels, the assembly further being configured to cause simultaneously a coolant flow through the proximal heat exchanger and the distal heat exchanger, such that the first axial component and the second axial component are opposite to each other.
2. The assembly according to claim 1, wherein a first part of the plurality of coolant channels opens into the proximal heat exchanger at a proximal end thereof and opens into the distal heat exchanger at a distal end thereof, and wherein a second part of the plurality of coolant channels opens into the proximal heat exchanger at a distal end thereof and opens into the distal heat exchanger at the proximal end thereof.
3. The assembly according to claim 1, wherein at least a part of the plurality of coolant channels is integrated in a wall of the esophagus catheter.
4. The assembly according to claim 1, further comprising a ventilating device for ventilating the person during controlling of the temperature of, e.g. cooling, the part of the person.
5. The assembly according to claim 4, wherein the ventilating device is provided with a balloon to control a temperature of, e.g. to cool, blood flowing within the area around the ventilating device.
6. The assembly according to claim 4, wherein the balloon of the ventilating device is provided with an inlet channel and/or an outlet channel for a coolant.
7. The assembly according to claim 4, wherein the esophagus catheter and the ventilating device are connected with each other, at least during use.
8. The assembly according to claim 4, wherein the ventilating device comprises a laryngeal mask and/or an endotracheal tube.
9. The assembly according to claim 8, wherein the esophagus catheter is formed as a unit with at least one of the laryngeal mask and the endotracheal tube, wherein the balloon of the ventilating device is in fluid communication with at least one of the proximal heat exchanger and the distal heat exchanger.
10. The assembly according to claim 1, wherein the esophagus catheter extends in longitudinal direction beyond the distal heat exchanger, and/or wherein the esophagus catheter further comprises a lumen and/or an aperture for inserting a medical device, such as an ultrasound probe, and wherein, when the ventilating device comprises a laryngeal mask, the lumen extends through the laryngeal mask, at least during use.
11. An esophagus catheter for controlling a temperature, e.g. cooling, of at least a part of a person, in particular the brain of the person, for example during or after a cardiac arrest, the esophagus catheter extending along a longitudinal axis and comprising: a first heat exchanger defining a flow direction having a first axial component relative to the longitudinal axis, e.g. a first balloon, to be inserted into the esophagus of the person for controlling the temperature, e.g. cooling, a plurality of coolant channels, wherein at least a part of the plurality of coolant channels is in fluid communication with the first heat exchanger, and the esophagus catheter being configured to cause a coolant flow through the first heat exchanger, such that the first axial component is directed from a proximal end to a distal end of first heat exchanger.
12. The esophagus catheter according to claim 11, further comprising a second heat exchanger defining a flow direction having a second axial component, e.g. a second balloon, wherein the second heat exchanger is placed distally to the first heat exchanger.
13. The esophagus catheter according to claim 11, wherein at least a part of the plurality of coolant channels is in fluid communication with the second heat exchanger, the esophagus catheter being configured to cause a coolant flow through the first heat exchanger and the second heat exchanger.
14. The esophagus catheter according to claim 13, wherein the esophagus catheter is configured to cause simultaneously the coolant flow through the first heat exchanger and the second heat exchanger, such that the second axial component is opposite to the first axial component.
15. A method for controlling a temperature, e.g. cooling, of at least a part of a person, in particular the brain of the person, for example during or after a cardiac arrest, the method comprising steps of: inserting an esophagus catheter into an esophagus of a person, the esophagus catheter extending along a longitudinal axis and comprising a proximal heat exchanger with a first flow direction having a first axial component to the longitudinal axis, e.g. a proximal balloon, and a second heat exchanger with a second flow direction having a second axial component to the longitudinal axis, e.g. a distal balloon, providing a coolant to the proximal heat exchanger and the distal heat exchanger, and causing simultaneously a coolant flow through the proximal heat exchanger and through the distal heat exchanger, such that the first axial component and the second axial component are opposite to each other.
Description
[0028] Aspects of the invention will be explained in greater detail by reference to exemplary embodiments of the invention shown in the drawings, in which:
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[0041] It should be appreciated, however, that these embodiments may not be construed as limiting the scope of protection for the present invention.
[0042] A first embodiment of an assembly 1 as presently provided is shown in
[0043] Further, air used for ventilating the person enters the lungs, thereby passing the laryngeal mask 3 with the balloon 6. When the air passes the balloon 6, the temperature of the air may be controlled, for instance lowered. Thus, air that reaches the lungs of the person may be cooled. Therefore, heat exchange between the air and the blood within the lungs will occur.
[0044] The esophagus catheter 2 is provided with a distal heat exchanger, such as a distal balloon 4 and a proximal heat exchanger, such as a proximal balloon 5. As can be seen in
[0045] In use the esophagus catheter 2 is placed inside the esophagus (not shown) at a predetermined position. The distal balloon 4 may be positioned substantially below a level of the heart of the person. The proximal balloon 5 for instance may be positioned at the level of the heart. The proximal balloon 5 and the distal balloon 4 are filled with a coolant, such that the esophagus and the surrounding area, including blood flowing through that area, may be cooled. As a result, the flow direction of the coolant in the proximal balloon 5 is opposite to the flow direction of blood in the cerebral vessels and thoracic aorta. The flow direction of the coolant in the distal balloon 4 is opposite to the flow direction in the descending aorta. When the esophagus catheter 2 is positioned as described, an efficient heat exchange is effectuated with the proximal balloon 5 as well as with the distal balloon 4, in this embodiment leading to efficient cooling of at least the surrounding tissue and blood and therewith of the brain of the person.
[0046] The laryngeal mask 3 further comprises a tube 7 in order to connect inter alia the balloon 6 of the laryngeal mask with the environment when the assembly 1 is positioned within a person. An inlet channel 8 for a medical device (not shown) and a ventilating channel 9 run through the tube 7, in order to be able to ventilate the person of which the temperature is controlled, for instance lowered and to insert a medical device, such as an ultrasound probe (not shown) into the assembly 1. In use, when the ultrasound probe is inserted into the assembly 1, the ultrasound probe may be located at the level of the proximal balloon 5. At this position, the ultrasound probe is useable to monitor a function of the heart of the person. Since the ultrasound probe may be inserted into the lumen, the coolant may provide an improved ultrasound guidance, leading to improved ultrasound imaging.
[0047] It is noted that the tube 7 may be cooled and/or may be provided with coolant too.
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[0049] Further, an inlet channel 10 and an outlet channel 11 are connected to the balloon 6. The inlet channel 10 and the outlet channel 11 are intended to provide coolant to the balloon 6, and to let coolant out of the balloon 6, as is indicated in
[0050] As can be seen in
[0051] The proximal balloon 5 comprises an outlet opening 17 located at the distal end of the proximal balloon 5. The outlet opening 17 opens into the second coolant channel 16, which is in fluid communication to the balloon 6. The coolant within the proximal balloon 5 may leave the proximal balloon 5 via the outlet opening 17 into the second coolant channel 16. Thereafter, the coolant enters the balloon 6 and, eventually, the coolant leaves the balloon 6 via outlet channel 11.
[0052] The distal balloon 4 comprises an outlet opening 18 located at the proximal end of the distal balloon 4. The outlet opening 18 opens into the second coolant channel 16, which is connected to the balloon 6 and the proximal balloon 5. The coolant may leave the balloon 6 via outlet channel 11 as described above.
[0053] In
[0054] A cross-section of the distal balloon 4 of the first embodiment is shown in
[0055] A cross-section of the proximal balloon 5 of the first embodiment is shown in
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[0057] The balloon 6, which might be inflatable, may be filled with a coolant. The coolant can be provided via inlet channel 15, which is accessible from outside the assembly 1. The balloon 1 can be inflated by supplying the coolant to the balloon. The coolant can be let out of the balloon 6 via outlet channel 16, which is also accessible from outside the assembly 1. As can be seen in
[0058] A cross-section of the balloon 6 is shown in more detail in
[0059] It is noted that it is possible to use the inlet channel 15 as an outlet channel and vice versa, such that the flow direction of the coolant within the inflatable balloon 6 may be inverted.
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[0061] It is noted that it is possible that the endotracheal tube 3 and the esophagus catheter 2 are connected to each other, at least during use. Thus, they may be inserted into the patient separately and thereafter be connected to each other.
[0062] It is noted that the drawings are schematic, not necessarily to scale and that details that are not required for understanding the present invention may have been omitted. The terms upward, downward, below, above, and the like relate to the embodiments as oriented in the drawings, unless otherwise specified. Further, elements that are at least substantially identical or that perform an at least substantially identical function are denoted by the same numeral.
[0063] The invention is not restricted to the above-described embodiments, which can be varied in a number of ways within the scope of the claims. It is for example possible that all balloons, i.e. the distal balloon, the proximal balloon and the balloon, are inflatable.
[0064] It is further possible that a flow within a proximal balloon and a flow within a distal balloon are adjustable separately, for instance for adjusting a pressure within each of the proximal balloon and the distal balloon separately. To be able to use a coolant in the proximal balloon with a temperature different from the temperature of the coolant in the distal balloon, it may be possible that a coolant circulation circuit of the proximal balloon is separated from a coolant circulation circuit of the distal balloon, i.e. the distal balloon has a first coolant channel and a second coolant channel and the proximal balloon has a first coolant channel and a second coolant channel which are separated from the channels of the distal balloon.
[0065] Further, it is noted that the assembly and/or the esophagus catheter may be used to warm up a person and/or may be used to keep a body temperature of a person at a predetermined level for instance during surgery.