EP1525896B1

Guidewire with deflectable tip having improved torque characteristics

Abstract

This record has no abstract on file.

EP1525896B1, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Expired 22 October 2024, 1.9 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

16 claims: 16 independent, 0 dependent

  1. 1
    A bi-directional steerable guidewire 12 having a deflectable lip which comprises:an elongated flexible tubing (16) having proximal and distal portions;a flexible helical coil (18) having multiple turns and having proximal and distal ends , wherein the proximal end of said helical coil (18) is attached to the distal portion of the flexible tubing (16);an elongated deflection member (20) having proximal and distal portions and being slidably disposed within said tubing (16) and within said helical coil (18), the distal portion of said deflection member (20) being flattened to form a deflection ribbon (34) which extends in a plane;a retaining ribbon (24) having proximal and distal ends, the proximal end of the retaining ribbon (24) is attached to the distal portion of the flexible tubing (16) and the retaining ribbon (24) is oriented to extend in a plane which is generally parallel to the plane of the deflection ribbon (34);and, an attachment member engaging the distal end of the helical coil (18) the distal portion of the deflection member (20) and the distal end of the retaining ribbon (24) so that longitudinal movement of the deflection member (20) in a distal direction causes the distal end of the helical coil (18) to be deflected in one direction and longitudinal movement of the deflection member (20) in a proximal direction causes the distal end of the helical coil (18) to deflect in another opposite direction, characterised by : said helical coil (18) being formed from an elongated member having a rectangular cross-sectional configuration and having continuous undulations wherein the undulations of adjacent turns interlock with each other in order to enhance the rotational rigidity of the coil (18);wherein the continuous modulations take the form of a rectangular sinusoidal wave having positive and negative peaks and in which the positive peaks of adjacent turns of coils engage negative peaks of adjacent turns.
  2. 2
    A bi-directional steerable guidewire as defined in Claim 1, wherein the elongated member (20) has a square cross-sectional configuration.
  3. 3
    A bi-directional steerable guidewire as defined in Claim 1, wherein the retaining ribbon (24) and the deflection ribbon (34) are normally biased in an arcuate configuration to thereby cause the distal end of the helical coil (18) to be normally biased in a curved shape.
  4. 4
    A bi-directional steerable guidewire as defined in Claim 1, wherein the proximal portion of said deflection member (20) is of a circular cross section which extends from the proximal portion of the flexible tubing (16) to approximately the distal portion of the tubing (16).
  5. 5
    A bi-directional steerable guidewire as defined in Claim 4, wherein the proximal end of said retaining ribbon (24) extends from the distal portion of the flexible tubing (16) to approximately the distal end of the flexible helical coil (18).
  6. 6
    A bi-directional steerable guidewire as defined in Claim 1, wherein the attachment member takes the form of a rounded bead (22).
  7. 7
    A bi-directional steerable guidewire as defined in Claim 6, wherein the rounded bead (22) is formed with an epoxy material.
  8. 8
    A bi-directional steerable guidewire as defined in Claim 1, wherein the attachment member takes the form of a rounded bead (22) which contacts the distal end of the helical coil (18) to define a circular surface at the distal end of the coil (18) and the deflection ribbon (34) engages the rounded bead (22) at a location offset from the center of the circular surface of the rounded bead (22).
  9. 9
    A bi-directional steerable guidewire as defined in Claim 8, wherein the distal end of the retaining ribbon (24) engages the rounded bead (22) at a location offset from the center of the circular surface of the rounded bead (22).
  10. 10
    A bi-directional steerable guidewire as defined in Claim 9, wherein the distal end of the retaining ribbon (24) engages the rounded bead (22) at a location offset from the center of the circular surface in an opposite direction from the offset location of the deflection ribbon (34).
  11. 11
    A bi-directional steerable guidewire as defined in Claim 10, wherein the deflection member (20) and the retaining ribbon (24), are joined to each other within the rounded bead (22).
  12. 12
    A bi-directional steerable guidewire as defined in Claim 13, wherein the deflection ribbon (34) and the retaining ribbon (24) are formed as a single unitary element.
  13. 13
    A bi-directional steerable guidewire as defined in Claim 12, wherein the deflection ribbon (34) and the retaining ribbon (24) are joined to form a generally U-shaped configuration to thereby provide a predetermined spacing between the deflection ribbon (34) and the retaining ribbon (24) and to maintain the deflection ribbon (34) and the retaining ribbon (24) in planes which are parallel to each other.
  14. 14
    A bi-directional steerable guidewire as defined in Claim 13, wherein the deflection ribbon (34) is formed by flattening an intermediate portion of the deflection member (20) and the retaining ribbon (24) is formed by flattening a distal portion of the deflection member (20).
  15. 15
    A bi-directional steerable guidewire as defined in Claim 14, wherein the retaining ribbon (24) is of a thickness which is less than the thickness of the deflection ribbon (34).
  16. 16
    A method of forming a helical coil (18) for use in the bi-directional steerable guidewire of any preceding claims, comprising:laser cutting the coil (18) from a single thin-walled tube of an alloy to form an elongated member having a rectangular cross-sectional configuration and having continuous undulations such that the undulations of adjacent turns interlock with each other in order to enhance the rotational rigidity of the coil, wherein the continuous undulations take the form of a rectangular sinusoidal wave having positive and negative peaks and in which the positive peaks of adjacent turns of coils engage negative peaks of adjacent turns.
Independent claims16