Claims
- 1. An intravascular guidewire, comprising:an elongated high strength proximal portion having proximal and distal ends; and a distal portion having proximal and distal ends formed of a superelastic alloy in an austenite phase at body temperature, which transforms to a martensite phase when subjected to stress; wherein the elongated high strength proximal portion and said distal portion are coupled together by one of crimping, swaging, welding, soldering, brazing or applying an adhesive to secure one to the other.
- 2. The guidewire of claim 1, wherein the elongated high strength proximal portion and the distal portion are coupled together using solder.
- 3. The guidewire of claim 1, wherein the elongated high strength proximal portion has a distal end having about uniform dimensions and the distal portion has a proximal end having about uniform dimensions for coupling together.
- 4. The guidewire of claim 3, wherein the elongated high strength proximal portion has a distal end having about uniform cross-section along a length and the distal portion has a proximal end having about uniform cross-section along a length for coupling together.
- 5. The guidewire of claim 1, further comprising a superelastic tube portion for coupling the elongated high strength proximal portion and the distal portion together.
- 6. The guidewire of claim 5, further comprising a tube portion that fits over part of the elongated high strength proximal portion to couple said elongated high strength proximal portion to the distal portion.
- 7. The guidewire of claim 1, further comprising a tube portion that fits over part of the distal portion to couple said distal portion to the elongated high strength proximal portion.
- 8. The guidewire of claim 6, further comprising a tube having a portion that fits over part of the distal portion and having a portion that fits over part of the elongated high strength proximal portion to couple said proximal portion to said distal portion.
- 9. An intravascular guidewire, comprising:an elongated high strength proximal portion having proximal and distal ends, a distal section terminating at the distal end; and a distal superelastic portion having proximal and distal ends, a proximal section of said distal superelastic portion terminating at the proximal end; wherein the distal end of the elongated high strength proximal portion has about uniform cross-section along a length and the proximal end of the distal superelastic portion has about uniform cross-section along a length for coupling together.
- 10. The guide of claim 9, further comprising an agent for coupling the elongated high strength proximal portion and the distal superelastic portion together.
- 11. The guidewire of claim 10, wherein the agent is one of an adhesive, solder, weld, and braze.
- 12. The guidewire of claim 9, further comprising a tube that fits over the proximal section of the distal superelastic portion to couple said distal superelastic portion to the elongated high strength proximal portion.
- 13. The guidewire of claim 9, further comprising a tube that fits over the distal section of the elongated high strength proximal portion to couple said proximal portion to said distal superelastic portion.
- 14. An intravascular guidewire, comprising:an elongated high strength proximal portion; and a superelastic portion more distal to the elongated proximal portion, said superelastic portion formed of superelastic alloy in an austenite phase at body temperature and transforms to a martensite phase when subjected to stress; wherein a fitting relationship allows the superelastic portion and the elongated high strength proximal portion to be coupled together by one of crimping, swaging, welding, soldering, brazing or applying an adhesive to secure one to the other.
- 15. The method of claim 14, wherein the fitting relationship includes a high strength rod-shaped portion inseparably fitted into a nickel-titanium-containing tube-shaped portion.
- 16. An intravascular guidewire, comprising:an elongated high strength proximal portion including a proximal section and a distal section; and a superelastic portion having a proximal section and a tapered distal section that is more distal to the elongated proximal portion, said superelastic portion formed of a superelastic alloy having nickel and titanium, the superelastic portion being in an austenite phase at body temperature and transforming to a martensite phase when subjected to stress, the superelastic portion and the elongated high strength proximal portion being coupled together via a fitting relationship by one of crimping, swaging, welding, soldering, brazing, or using an adhesive to effect torque transmission capability between the superelastic portion and the elongated high strength proximal portion.
RELATED APPLICATIONS
This is a request for filing a continuation application under 37 C.F.R. §1.53(b), of the U.S. application Ser. No. 09/498,695, of R. Abrams, et al. entitled “SUPERELASTIC GUIDING MEMBER,” filed on Feb. 7, 2000 now U.S. Pat. No. 6,280,530; which is a continuation application of U.S. patent application Ser. No. 08/484,218 filed Jun. 7, 1995 now U.S. Pat. No. 6,165,292; which is a continuation of Ser. No. 08/212,431, filed on Mar. 11, 1994, now abandoned, which is a CIP of both Ser. No. 07/629,381, filed on Dec. 18, 1990, now abandoned, and Ser. No. 07/994,679, filed on Dec. 22, 1992 now U.S. Pat. No. 5,341,818; all of which are incorporated herein by reference in their entirety.
US Referenced Citations (46)
Foreign Referenced Citations (23)
Number |
Date |
Country |
0 145 166 |
Jun 1985 |
EP |
0 199 715 |
Oct 1986 |
EP |
0 340 304 |
Nov 1989 |
EP |
0 395 098 |
Oct 1990 |
EP |
0 480 427 |
Oct 1991 |
EP |
0 480 427 |
Apr 1992 |
EP |
0 491 349 |
Jun 1992 |
EP |
0 491 349 |
Jun 1992 |
EP |
0 491 349 |
Jun 1992 |
EP |
0 515 078 |
Nov 1992 |
EP |
0 550 258 |
Dec 1992 |
EP |
0 550 258 |
Jul 1993 |
EP |
0 569 166 |
Nov 1993 |
EP |
50-19512 |
Aug 1975 |
JP |
55-164304 |
Nov 1980 |
JP |
62-199757 |
Sep 1987 |
JP |
61-84361 |
Apr 1996 |
JP |
WO 8910088 |
Nov 1989 |
WO |
WO 9013329 |
Nov 1990 |
WO |
9013329 |
Nov 1990 |
WO |
WO9115152 |
Oct 1991 |
WO |
WO 9115152 |
Oct 1991 |
WO |
WO 97387747 |
Oct 1997 |
WO |
Non-Patent Literature Citations (7)
Entry |
Declaration of Sepehr Fariabi Under 37 C.F.R. Sec. 1.132 dated Sep. 16, 1993 filed in Pat. App. Ser. No. 08/071,322. |
Linear and non-linear superelasticity in NiTi, G. R. Zadno and T.W. Duerig, MRS Int'l Mtg. On Adv. mats. vol. 9, 1989 Materials Research Society (no month). |
Deformation and transition behavior associated with the r-phase in TiNi alloys, S. Miyazaki and K. Otsuda, Matallurgical Transactions A, vol. 17A, Jan. 1986, pp. 53-63. |
A Report by C.M. Jackson, H.J. Wagner and R.J. Wasilewski, “Nitinol—The Alloy with a Memory: Its Physical Metallurgy, Properties, and Applications”, prepared under contract for NASA by Battelle Memorial Institute, NASA SP 5110, Technology Utilization Office National Aeronautics and Space Administration, Washington, D.C., 1972, pp. 1-2 and 19-55. (No month). |
T.W. Duerig, K.N. Melton, D. Stockel and C.M. Wayman, “Engineering Aspects of Shape Memory Alloys”, pp. 368-393, Butterworth-Heinemann Ltd., 1990. (No month). |
William J. Buehler and William B. Cross, “55-Nitinol Unique Wire Alloy with a Memory”, pp. 41-49, Jun. 1969. |
E. Hornbogen, “Shape Memory: Three Usable Effects in One Material”, pp. 67, 70, 71, 73, Design Engineering, May 1990. |
Continuations (3)
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Number |
Date |
Country |
Parent |
09/498695 |
Feb 2000 |
US |
Child |
09/884432 |
|
US |
Parent |
08/484218 |
Jun 1995 |
US |
Child |
09/498695 |
|
US |
Parent |
08/212431 |
Mar 1994 |
US |
Child |
08/484218 |
|
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
07/994679 |
Dec 1992 |
US |
Child |
08/212431 |
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US |
Parent |
07/629381 |
Dec 1990 |
US |
Child |
07/994679 |
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US |