Crimping Device for Collapsible Valves
20200306069 ยท 2020-10-01
Inventors
- Enrico Pasquino (Savigny, CH)
- Marcio Scorsin (Luxembourg, LU)
- Lorenzo Valerio (Moriago della Battaglia, IT)
- Andrea Marchisio (Ivrea, IT)
- Davide Gastaldin (Valmacca, IT)
- Stefano Pasquino (Savigny, CH)
Cpc classification
A61F2/9522
HUMAN NECESSITIES
A61F2/2427
HUMAN NECESSITIES
International classification
A61F2/95
HUMAN NECESSITIES
Abstract
Crimping device (1) for reducing the diameter of collapsible valves, said device (1) including at least two independent cylindrical crimping units (2, 3, 4) that are each adapted to crimp a different specific part of a valve, independently from the other crimping unit(s), each of said unit (2, 3, 4) comprising a diaphragm rotation crimping mechanism that includes crimping jaws, and wherein each unit (2, 3, 4) comprises an actuator for activating said mechanism, characterized by the fact that said actuator is a handling screw (51, 61, 71) that is tangentially fixed to the external surface of the cylindrical crimping unit (2, 3, 4).
Claims
1-5. (canceled)
6: A crimping device for reducing the diameter of collapsible valves, comprising: at least two independent cylindrical crimping units that are each configured to crimp a different specific part of a valve, independently from the other crimping units, wherein each of one of the independent cylindrical crimping units including a diaphragm rotation crimping mechanism that includes crimping jaws, and wherein each of one of the independent cylindrical crimping units including an actuator for activating the diaphragm rotation crimping mechanism, the actuator configured to handle a handling screw that is tangentially fixed to the external surface of the cylindrical crimping unit.
7: The crimping device according to claim 6, comprising three independent cylindrical crimping units, one unit being an atrial unit, one an annular unit, and one a ventricular unit, for collapsible valves.
8: The crimping device according to claim 6, wherein each of one of the independent cylindrical crimping units includes a disk-shaped cam for the rotational movements of the crimping jaws.
9: The crimping device according to claim 6, wherein each of one of the independent cylindrical crimping units have different thicknesses.
10: The crimping device according to claim 6, wherein mutual contact between adjacent jaws and their inner portion surface design in contact with the valve are configured to transform the rotation of each jaw around a hinge peg in the progressive reduction of inner diameter of a corresponding one of the independent cylindrical crimping units.
Description
DETAILED DESCRIPTION OF THE INVENTION
[0013] The invention will be better understood in the present chapter, with non-limiting examples illustrated by the following figures:
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NUMERICAL REFERENCES USED IN THE FIGURES
[0025] 1 three-stage crimping device [0026] 2 atrial crimping unit [0027] 3 annular crimping unit [0028] 4 ventricular crimping unit [0029] 5 atrial external cam [0030] 6 annular cam [0031] 7 ventricular external cam [0032] 8 anterior inner translational shell [0033] 9 posterior inner translational shell [0034] 10 support base [0035] 21 atrial translation pegs [0036] 22 atrial hinge holes [0037] 31 principal hinge pegs [0038] 32 annular translation pegs [0039] 41 ventricular translation pegs [0040] 51 atrial handling screw [0041] 52 atrial cam sliding guides [0042] 53 atrial cam scroll screws [0043] 54 atrial peg translation guides [0044] 61 ventricular handling screw [0045] 62 annular cam sliding guides [0046] 63 annular peg support guides [0047] 71 ventricular handling screw [0048] 72 ventricular cam sliding guides [0049] 73 ventricular cam scroll screws [0050] 74 ventricular peg translation guides [0051] 81 inner translational shell fixing screws [0052] 82 atrial peg support guides [0053] 83 annular peg support guides on the anterior inner translational shell [0054] 84 principal hinge peg binding holes on the anterior inner translational shell [0055] 85 scroll screw fixing holes of the anterior inner translational shell [0056] 91 principal hinge peg binding holes on the posterior inner translational shell [0057] 92 ventricular peg support guides [0058] 93 annular peg support guides on the posterior inner translational shell [0059] 94 annular peg support guides on the posterior inner translational shell [0060] 95 scroll screw fixing holes of the posterior inner translational shell [0061] 101 support base fixing screws
[0062] The illustrated example includes a three-stage independent crimping device 1 for collapsible valves.
[0063] An important feature of the device includes the presence of three independent crimping units 2, 3, 4 for allowing acting separately on atrial, annular or ventricular portion of a valve for reducing its diameter.
[0064] The present disclosure describes a crimping tool designed to reduce selectively and independently different stent portion using a diaphragm rotation mechanism. The crimper device includes an atrial external cam 5 and a ventricular external cam 7 which respectively allow the rotational movements of atrial 2 and ventricular 4 crimping jaws. Moreover, an internal annular cam 7 allows the movement of the annular crimping unit 3. Atrial, annular and ventricular jaws, located within the inner translational shell 8-9, have different thickness, depending of the length of the correspondent stent portions in totally crimped configuration. Both external atrial and ventricular cams 5,7, annular cam 6, inner translational shell 8-9 and crimping jaw system 2-3-4 present circular shape, with a center radial hole allowing the insertion of the stent frame during crimping procedure. Actual movements of jaws, which provide crimping effect, are based on rotational movement of each unit jaws around a principal hinge peg (one for each adjacent jaw). The mutual contact between adjacent jaws and their inner portion surface design (in contact with the stent), allow to transform the rotation of the jaw around their hinge pegs in the progressive reduction of inner diameter of crimping units. This crimping mechanism is mediated by guided movement of appropriate translational pegs, fixed to each jaw, within their correspondent sliding guides (one for each adjacent jaw). Actuation movement, that will be subsequently described, is conducted using an handling screw 51, 61, 71. In addition, the present device may include different separate actuators, each one dedicated to each single crimping unit or a singular actuator able to selectively act on each different crimping unit. Such unique actuator may be manufactured so that it will be possible to progressively crimp down the annular, ventricular and atrial stent section in sequence. Crimping unit actuation sequence may be decided independently by the user.
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[0066]
[0067] Crimping procedure description for each atrial, annular and ventricular unit will be separately described hereafter.
[0068] Atrial cam presents four main elements: a structural shell 5 where an atrial handling screw 51 can be screwed, multiple atrial cam sliding guides 52 and multiple atrial peg translation guides 54. Atrial cam scroll screws 53 are inserted within the sliding guides and fixed to the anterior inner translational shell 85. Minimum crimping diameter of atrial portion is related to atrial cam sliding guides length. In fact, when in fully-open configuration, atrial cam scroll screws 53 are in contact with one end of the atrial cam sliding guides 52 (as in
[0069] Using the same functioning principle of the atrial crimping procedure, it is possible to act on the device for the stent annular crimping section. Annular cam apparatus, which provide the rotational movements for the crimping process, consists in a structural shell 6, onto which it acts an annular handling screw 61. Moreover, on the annular cam are present multiple annular cam sliding guides 62 and annular peg support guides 63. Minimum crimping diameter of annular portion is related to annular cam sliding guides length. Screwing the handling screw 61 within its compartment on the annular cam 6, it is possible to rotate the cam shell itself. Such rotational movement allows all annular jaws 3, that are in mutual contact with each other's, while rotating around their principal hinge peg 31, to reduce the inner diameter of the annular crimping unit. Annular peg translational guides 83-93, located on both anterior and posterior portions of the inner translational shell 8-9, force the radial movements of the annular pegs 32, fixed to each annular jaw, while rotating the annular cam 6. Annular pegs movement within the translational guides 83-93 is aided by the annular peg support guides 63 located on the annular cam 6. As for atrial section crimping procedure, since the atrial cam scroll screws 53 are fixed to the translational shell 8, the rotation of the annual cam, as well as the progressive reduction of the crimping diameter imparted by the jaws crimping system, is allowed until the scroll screws 53 touch one end of the annular cam sliding guides 62.
[0070] The crimping procedure of the ventricular portion of the stent may be implemented separately after the end of annular crimping procedure alone or after both annular and atrial crimping procedures. It is important to underline as it may be possible to act on each crimping unit independently using the present device.
[0071] Ventricular cam presents four main elements: a structural shell 7 where the ventricular handling screw 71 can be screwed, multiple ventricular cam sliding guides 72 and multiple ventricular peg translation guides 74. Ventricular cam scroll screws 73 are inserted within their correspondent sliding guides 72 and fixed to the posterior inner translational shell 95. Minimum crimping diameter of ventricular portion is related to ventricular cam sliding guides length. In fact, when in fully-open configuration, ventricular cam scroll screws 73 are in contact with one end of the ventricular cam sliding guides 72 (as in
[0072] Atrial, annular and ventricular crimping mechanisms (2-3-4), including correspondent hinge and translational pegs (21, 31, 32 and 41) are mutually interconnected and compenetrated. In addition, all these elements are located within the inner translational shell 8-9. Anterior and posterior Inner translational shells 8-9, bonded together using appropriate fixing screws 81, form the inner translational shell. The latter is a not moving element, which provides support during crimping phase and allows fixing the crimping structures to the support base 10 via support base fixing screws 101. The innovative design of this three-stage crimping device allows obtain a complex and very versatile tool without loss in compactness and ease of use.