IP Library Granted Patent US 8,585,751
Granted Patent B2
US 8,585,751 · App. 13/199,796 · Granted Nov 19, 2013

Intravascular hinge stent

Inventors: William Joseph Drasler (Minnetonka, MN); Joseph Michael Thielen (Buffalo, MN)
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Quick Facts
Patent No.
US 8,585,751
App. No.
13/199,796
Granted
Nov 19, 2013
Kind
B2
Abstract

A balloon or self expandable endoprosthesis formed of a single or multiple joined stent sections. Each section has a node and strut structure extending throughout in order to uncouple expansion forces of the stent to hold a blood vessel outward from crush forces that resist the formation of an oval shape during crush deformation. The hinge can bend in the direction of a uniformly curved surface of the stent but not in the radial direction. The strut can bend in the radial direction but not in the uniformly curved surface of the stent. The widths, lengths, and radial dimensions of the hinges and struts provide a balloon-expandable hinge stent that is non-crushable. For a self-expanding stent the hinge and strut dimensions provide expansion forces that are controlled independently from crush forces. Expansion properties are determined by the hinge dimensions and crush properties are determined independently by strut dimensions.

Claims (15)

1. A method of use for a tubular member having a nondeployed state and capable of undergoing an expansion deformation to a deployed state within a tubular vessel of the body that is exposed to an external force, said method comprised of,

A. expanding said tubular member to the deployed state by deforming hinges of said tubular member plastically by an expansion device,

B. exposing said tubular member to the external force wherein struts of said tubular member remain below their elastic limit and therefore flex elastically and not plastically in the radial direction during a crush deformation that places said tubular member into an oval shape,

C. said hinges having a radial dimension that is greater than a radial dimension of said struts thereby not deforming said hinges during exposure of said tubular member to the external forces,

D. said hinges having a hinge length, said hinge length extending along a path that undergoes bending during the expansion deformation, said hinge length being shorter than three times a hinge width, said hinge being bounded by two surfaces that lie in the radial direction, said hinge width being equal to the distance between said surfaces.

2. The method of claim 1 wherein upon removal of the external force said tubular member recovers from the oval shape and returns to its original tubular shape.

3. The method of claim 1 wherein said hinges have a hinge length that deforms during the expansion deformation, said hinge length being short in comparison to a strut length such that the expansion deformation is focused in order to provide a plastic deformation of said hinge.

4. The method of claim 1 wherein said hinges have a hinge length that deforms during the expansion deformation, said hinge length being short in comparison to three times a hinge width such that the expansion deformation is focused in order to provide a plastic deformation along said hinge length during expansion of said tubular member.

5. A method of use for a tubular member having a nondeployed state and capable of undergoing an expansion deformation to a deployed state within a tubular vessel of the body that is exposed to an external force, said method comprised of,

A. expanding said tubular member having hinges and struts to the deployed state by deforming hinges of said tubular member plastically, said hinges having a smaller hinge width than a strut width,

B. exposing said tubular member to the external forces such that said struts having a thinner radial dimension than a hinge radial dimension remain below their elastic limit and therefore flex elastically and not plastically in the radial direction during a crush deformation,

C. said hinges having a hinge length, said hinge length extending along a path that deforms during the expansion deformation, said hinge length being shorter than three times a hinge width, said hinge being bounded by two surfaces that lie in the radial direction, said hinge width being equal to the distance between said surfaces.

6. The method of claim 5 wherein upon removal of the external force said tubular member elastically returns to its original tubular shape.

7. The method of claim 5 wherein said hinges have a hinge length that deforms during the expansion deformation, said hinge length being short in comparison to a strut length such that the expansion deformation is focused in order to provide a plastic deformation of said hinge.

8. The method of claim 5 wherein said hinges have a hinge length that deforms during the expansion deformation, said hinge length being short in comparison to three times a hinge width such that the expansion deformation is focused in order to provide a plastic deformation along said hinge length during expansion of said tubular member.

Continuity (5)
Continuation 10236846 · Sep 6, 2002
Continuation 09924715 · Aug 8, 2001
Continuation 09780145 · Feb 9, 2001
Continuation 09304310 · May 3, 1999
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