CATHETER DEVICE HAVING A CATHETER AND AN ACTUATION DEVICE
20170312480 ยท 2017-11-02
Inventors
Cpc classification
A61M25/0147
HUMAN NECESSITIES
A61M60/268
HUMAN NECESSITIES
A61M60/13
HUMAN NECESSITIES
A61M25/0074
HUMAN NECESSITIES
A61M25/0113
HUMAN NECESSITIES
A61M60/414
HUMAN NECESSITIES
A61M2025/015
HUMAN NECESSITIES
International classification
A61M25/01
HUMAN NECESSITIES
Abstract
The invention relates to a catheter device, having a catheter (1), an actuation device (8) at a first end of the catheter and also a mechanical transmission clement (9, 10) for transmitting a movement along the catheter to the actuation device, the actuation device having a coupling clement (14) which is connected to the transmission clement (9, 10) and can be actuated by the latter relative to the longitudinal direction of the catheter in a first degree of freedom, and also a conversion element (15) which can be actuated by the coupling element and which converts the actuation movement at least partially into a movement in a second degree of freedom. As a result, a combined movement at the distal end of the catheter can be produced particularly simply for compression and release of a functional element.
Claims
1-18. (canceled)
19. A catheter device, comprising: a catheter having a proximal end and a distal end; a blood pump coupled to the distal end of the catheter, the blood pump having a first compressed state and a second expanded state, the blood pump comprising: a rotor, and a blood pump housing enclosing the rotor, the blood pump housing coupled to the catheter at a proximal end of the blood pump housing, wherein the blood pump housing forms a shoulder distal of the coupling with the catheter; and a hose surrounding the catheter, a distal end of the hose; wherein in the first compressed state of the blood pump at least a portion of the blood pump housing is compressed by the hose; and wherein the hose is moveable relative to the catheter, and an axial movement of the hose in relation to the catheter is converted at least partially into a rotational movement of one of the hose or the catheter.
20. The catheter device of claim 19, wherein the hose constrains the blood pump in the first compressed state.
21. The catheter device of claim 20, wherein the axial movement of the hose relative to the catheter releases the portion of the blood pump compressed by the hose and expands the blood pump from the first compressed state into the second expanded state.
22. The catheter device of claim 19, wherein a rotational movement of the catheter results in a rotational movement of the attached blood pump.
23. The catheter device of claim 19, wherein the rotor has a first compressed rotor state and second expanded rotor state, and wherein the rotor attains the second expanded rotor by fluid counterpressure when the rotor is rotated.
24. The catheter device of claim 19, wherein the blood pump housing comprises a temperature memory alloy.
25. The catheter device of claim 19, wherein the blood pump housing comprises an elastically compressible material.
26. The catheter device of claim 19, wherein the catheter is configured to be pulled toward a proximal end of the hose to compress the blood pump into the first compressed state.
27. The catheter device of claim 26, wherein the hose is configured to abut the shoulder of the blood pump housing prior to compress the blood pump into the first compressed state.
28. The catheter device of claim 27, wherein the hose includes a flared distal end.
29. The catheter device of claim 27, wherein the blood pump is configured to rotate as the blood pump is pulled into the hose.
30. The catheter device of claim 29, wherein the rotor is configured to fold when compressed by the blood pump housing in the first compressed state of the housing.
31. The catheter device of claim 19, wherein the catheter device further comprises: a lock device coupled to a proximal end of the hose, the lock configured to hold the hose in a position relative to the catheter.
32. The catheter of claim 19, wherein the hose comprises a mechanical transmission element for transmitting a first movement along the catheter to the blood pump.
33. A method of introducing a catheter device into a blood vessel, the method comprising: inserting into the blood vessel a catheter device comprising a compressible and expandable blood pump coupled to a distal end of a catheter, wherein the blood pump is at least partially compressed by a hose surrounding the catheter; and moving the catheter axially relative to the hose, such that the blood pump is expelled from the hose, wherein the axial movement of the catheter relative to the hose includes a rotational movement component, such that the blood pump is rotated as it is expelled from the hose; wherein the blood pump is expanded upon expulsion from the hose.
34. The method of claim 33, the method further comprising pushing the blood pump fully out of the hose.
35. The method of claim 34, the method further comprising locking the hose in a lock device such that the hose is held in a position relative to the catheter.
36. A method of extracting a catheter device from a blood vessel, the method comprising: axially moving a catheter through a hose, wherein the catheter is coupled at a distal end to an expandable and compressible blood pump, and wherein the blood pump is positioned distal to the hose; bringing a proximal end of the blood pump in contact with a distal end of the hose; pulling at least the proximal end of the blood pump into the distal end of the hose by axially moving the catheter through the hose, wherein the axial movement of the catheter is translated to a rotational movement component such that the blood pump is rotated as it is pulled into the hose, and wherein the blood pump is at least partially compressed by being pulled into the hose; and removing the hose, catheter, and blood pump from the blood vessel.
37. The method of claim 36, wherein pulling at least the proximal end of the blood pump into the distal end of the hose compresses a housing of the blood pump onto a foldable rotor within the housing.
38. The method of claim 37, wherein bringing a proximal end of the blood pump in contact with a distal end of the hose comprises moving the blood pump into the hose until a shoulder of the housing abuts the end of the hose.
39. The method of claim 36, the method further comprising unlocking the hose from a lock device before removing the hose.
Description
[0028] In the following, the invention is shown and subsequently described with reference to an embodiment in a drawing with reference to several Figures. There are thereby shown
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035] In the embodiment, the application of the invention to a catheter is described in particular, which catheter carries a pump at the end thereof and can be introduced into the bloodstream of a patient.
[0036] Pumps of this type which are introduced for example into the heart of a patient and serve to convey blood for supporting the heart are basically known. It is thereby also known to construct such pump structures such that they can be widened in diameter after introduction into the ventricle.
[0037] It is sensible and essentially an application advantage of the present invention to provide thereby a mechanism which can release the functional element which, in the present case, comprises the pump so that it is potentially widened automatically and can also compress in order to be able to remove the functional element/the pump with the catheter again from the body. In the interim, the entire device should advantageously remain in the body and should neither damage the patient in this state nor impede the flow of blood through the catheter beyond a tolerable degree.
[0038] Basically, the catheter 1 which is represented merely schematically in
[0039] In
[0040] On the other hand, it is conceivable as an alternative to replace the cables by a hose which surrounds the catheter 1 concentrically and likewise can serve for transmitting pulling and thrusting movements. For this purpose, the hose should be provided with corresponding axial compression strength without the bending rigidity being significantly increased. Corresponding technologies are adequately known industrially and already used.
[0041] Basically, also the production of the transmission element by a single cable at the circumference of the catheter is conceivable. The arrangement of cables on the outside of the catheter or at least partially in the wall of the catheter is thereby preferred, however, in particular with a small number of cables, also guidance thereof within the catheter or a hose inside the catheter is basically conceivable.
[0042] The cables 9, 10 are mounted together, for example by clamping, on the fixing element 13. Hence the entirety of cables can be moved in the same direction and to the same extent by manipulation of the fixing element 13. The fixing element is dealt with below in even more detail.
[0043] In addition, a coupling element 14 which is configured there as a bearing ring which is displaceable in the longitudinal direction of the catheter is evident in
[0044] On the other hand, the conversion element 15 in the form of a cylinder provided with one or more link tracks 16 is connected to the bearing ring 14. The coupling element 14 transmits pulling and thrusting movements to the cylinder 15, in the link track of which a guide pin 17 which forms a link block is guided. The cylinder 15 is consequently forced onto a screw-like movement track since the guide pin 17 is fixed in the catheter 1.
[0045] In order that the conversion element 15 can rotate independently of the bearing ring 14, a rotary bearing 18, for example in the form of a sliding bearing, is provided between these two elements, said sliding bearing being able to transmit the thrusting and pulling forces.
[0046] If the cables 9, 10 are actuated, then a thrusting movement in the direction of the arrow 19 is produced for the bearing ring 14 just as for the cylinder 15 and is superimposed in addition by a rotary movement through the link guide in the case of the cylinder 15.
[0047] In
[0048] If the conversion element 15 together with the protective cap 20 is withdrawn by the cables 9, 10 in a screw-like movement, then the pump 6 can widen in diameter, whilst it is compressed during a thrusting movement of the cables 9, 10 by the screw movement of the cap 20 and is received at least partially in the cap.
[0049] In addition, it becomes clear by the representation of
[0050] The pump is configured in particular for the purposes of compressibility, the rotor blades of the pump for example being able to be folded in and the housing being able to be collapsed, for example by the production from a so-called temperature memory material, an alloy which can assume different shapes at different temperatures. An elastically compressible construction is likewise conceivable, which can be opened up or closed merely by the force effect and/or by the effect of the conveyed fluid into the desired position.
[0051]
[0052] Another embodiment variant of the fixing element is represented in
[0053] The mode of operation of the conversion element 15 emerges from
[0054] The protective cap 20 at the end of the conversion device 15 can be integrated in the latter or connected to the latter.
[0055] It should be mentioned in addition that a shaft 25 can be provided within the catheter 1, which serves to drive the pump 6 and is mounted in the pump housing 26. By means of the shaft 25, rotor blades 27, 28 are actuated and blood is conveyed for example through the openings 29 in the pump housing 26. According to the design of the rotor/of the pump, also an inflow towards the rotor through the openings 29 in the pump housing 26 is possible and an axial outflow or an axial inflow and outflow.
[0056] In
[0057] By means of the screw-like movement of the actuation device produced with the invention, pushing a protective cap onto the functional element is substantially facilitated already with respect to the more favourable friction conditions. By applying a thread-like surface structure on the outside of the functional element, i.e. in particular on the pump housing and/or on the inside of the protective cap, the compression movement can in addition be facilitated.
[0058] The invention hence ensures simple and reliable actuation of an actuation device for protecting a functional element during positioning of the catheter in a sensitive region within the body of a patient.