The present invention relates to arthroscopic surgical methods and instruments and, more specifically, to a flexible drill instrument using a nitinol shaft and a low friction bearing, and to methods of joining a nitinol shaft portion to a shaft portion formed of a dissimilar metal such as stainless steel.
Surgical cutting instruments in which an inner member is rotated within a tubular outer member are known in the art. Typically, the tubular outer member includes a distal end with an opening defining a cutting port or window and the inner member includes a distal end with a cutting tip for engaging bodily tissue via the opening. Proximal ends of the inner and outer members commonly include hubs which attach to a handpiece having a motor for rotating the inner member relative to the outer member. The distal end of the inner member can have various configurations dependent upon the surgical procedure to be performed, with the opening in the distal end of the outer member being suitably configured to cooperate with the particular configuration of the distal end of the inner member to cut, resect or abrade tissue.
Often the tubular inner and outer members are straight. In many surgical procedures, however, it is desirable for the cutting instruments to be bent or curved to access surgical sites which are generally not accessible with straight cutting instruments. For example, in arthroscopic knee, hip or shoulder surgery it is well known to use curved cutting instruments which can be positioned at various desired angles relative to the surface of the bone.
The present invention provides a flexible drill which includes a nitinol portion of the shaft, to increase the flexibility of the shaft while maintaining sufficient column strength for the instrument during a cutting/drilling operation. Also provided is a novel method of joining (welding) a nitinol portion of a shaft to an adjacent portion of a shaft formed of a dissimilar metal, for example, joining (welding) a nitinol portion of a shaft to an adjacent stainless steel portion of the shaft.
The present invention provides a flexible drill with a shaft having a nitinol portion (or nitinol region) provided between a stainless steel driver end and a stainless steel drill tip. The flexible drill using the nitinol shaft of the present invention may be provided with a bearing surface to allow centering within a drill guide, low friction bearing and flexibility to drill around a curve. The bearing surface may be formed of a polymer, for example, a fluoropolymer of tetrafluoroethylene such as polytetrafluoroethylene (PTFE) or LDPE (Low Density Polyethylene). The novel drill shaft of the present invention may be preferably used through a drill guide such as a curved drill sleeve.
The invention also provides a method of joining (directly welding or fusing) nitinol (nickel-titanium alloy) to a dissimilar metal by inter alia: (i) providing cross-holes in a tubular member formed of a material dissimilar to nitinol; (ii) inserting a nitinol piece to be welded within at least a portion of the tubular member; and (iii) creating “plug” welds using laser in the cross-holes.
These and other features and advantages of the invention will be more apparent from the following detailed description that is provided in connection with the accompanying drawings and illustrated exemplary embodiments of the invention.
a illustrates a top view of a curved drill guide into which the flexible drill of the present invention is passed;
b illustrates a side view of the curved drill guide of
a illustrates a partial cross-sectional view of a driver with a flexible shaft for placing an anchor through the sleeve once the flexible drill has created a hole in bone for receiving the anchor;
b illustrates a top view of the driver of
c illustrates an enlarged view of the most distal end of the driver of
The following description is provided to enable any person skilled in the art to make and use the invention and sets forth the best modes contemplated by the inventors of carrying out their invention. Various modifications, however, will remain readily apparent to those skilled in the art.
The present invention provides a flexible drill with a shaft having a nitinol portion (or nitinol region) provided between a stainless steel driver end and a stainless steel drill tip. The flexible drill with nitinol shaft of the present invention may be provided with a bearing surface to allow centering within a drill guide, low friction bearing and flexibility to drill around a curve. The bearing surface may be formed of a polymer, for example, a fluoropolymer of tetrafluoroethylene such as polytetrafluoroethylene (PTFE) or LDPE (Low Density Polyethylene). The novel drill shaft of the present invention may be preferably used through a drill guide such as a curved drill sleeve.
The invention also provides a method of joining (directly welding or fusing) nitinol (nickel-titanium alloy) to a dissimilar metal by inter alia: (i) providing cross-holes in a tubular member formed of a material dissimilar to nitinol; (ii) inserting a nitinol piece to be welded within at least a portion of the tubular member; and (iii) creating “plug” welds using laser in the cross-holes.
The invention also provides a method of joining (directly welding) a first member formed of nitinol to a second member formed of a dissimilar metal such as stainless steel (or a material similar to stainless steel). The method of the present invention comprises inter alia the steps of: (i) providing a first member formed of nitinol adjacent a second member formed of a dissimilar metal; (ii) drilling a plurality of cross-holes through the second member formed of dissimilar metal; (iii) inserting the first member to be welded within the second member; and (iv) creating “plug” welds using laser in the cross-holes, to keep the weld away from the joint regions (high stress regions).
The invention also provides a method of joining (directly welding) materials which have different physical and chemical characteristics, for example, for joining (directly welding) nitinol to a dissimilar metal such as stainless steel or a material similar to stainless steel. The method of the present invention comprises inter alia the steps of: (i) providing a part of a shaft formed of nitinol adjacent another part of the shaft formed of a dissimilar metal; (ii) drilling a plurality of cross-holes through the part of the shaft formed of dissimilar metal; (iii) inserting the part of the shaft formed of nitinol to be welded within the dissimilar metal part; and (iv) creating “plug” welds using laser in the cross-holes, to keep the weld away from the joint regions (high stress regions). In this manner, the heat is kept away from the high stress regions (i.e., the regions which are subjected to most torque during the flexing and/or bending of the shaft).
In an exemplary only embodiment, the method of the present invention comprises inter alia the steps of: (i) providing a rigid part of a shaft formed of stainless steel adjacent a flexible part of the shaft formed of nitinol; (ii) drilling a plurality of cross-holes through the rigid part of the shaft formed of stainless steel; (iii) inserting the flexible part of the shaft formed of nitinol to be welded within the stainless steel part; and (iv) creating “plug” welds using laser in the cross-holes, to keep the weld away from the joint regions (high stress regions). The rigid part of the shaft may be a driver end or a drill tip.
Referring now to the drawings, where like elements are designated by like reference numerals,
In an exemplary embodiment only, flexible drill 10 comprises a shaft having a flexible nitinol portion 15 (a nitinol core or wire 15) that consists essentially of nitinol and that is placed between, and in direct contact, with a rigid stainless steel driver end 13 (a cut tubular member 13) and a rigid stainless steel drill tip 17. The flexible nitinol portion 15 may be in the form of a core or wire 15 or, alternatively, in the shape of a cut tubular member 15. The nitinol portion 15 is essentially formed of a shape-memory alloy with superelastic properties, for example, a psuedoelastic alloy material preferably consisting essentially of about 30 to about 52% titanium with the balance nickel and optionally up to 10% of one or more other alloying elements (which are selected from the group consisting of iron, cobalt, vanadium, platinum, palladium and copper).
The nitinol shaft 15 is centered in the drill guide and cannot unwind, yet providing flexibility to drill around a curve. The flexible drill 10 using the flexible nitinol shaft of the present invention is provided with a coating 20, for example, a polymeric coating such as a PTFE or LDPE (Low Density Polyethylene) bearing surface 20 to allow centering within the drill guide (shown in
The novel drill shaft of the present invention is preferably used through a curved drill sleeve.
By using nitinol in the distal section only of the shaft of the flexible drill 10 and a more economical material metal tube (such as a more cost-effective alloy like stainless steel) in the proximal section, both the performance and the overall design of the shaft are optimized. The desired connection between nitinol and stainless steel is achieved without causing deficiencies in the strength and behavioral properties of the ends of nitinol shaft attached, on each side, to the stainless steel members (i.e., to the rigid driver end 13 and the rigid drill tip 17).
Reference is now made to
Cross-holes 66 are provided at a distance “d” (
Joining/welding of the nitinol to the dissimilar metal may be achieved by fusion welding such as pulse laser welding, cladding or alloying using laser. These laser joining processes essentially include laser heating of areas where the two different metals (the nitinol and the stainless steel) interface, i.e., at the bottoms of holes 66.
The laser welds the bottom of the holes 66 and eliminates the need for additional pieces of intermediary material (such as a nickel piece) provided between the stainless steel shaft and the nitinol shaft, to facilitate welding of these two dissimilar materials. The method of the present invention provides a simpler, faster and more efficient way of welding nitinol to a material different from it (such as stainless steel).
Although the invention above has been described with reference to a specific nitinol wire and a specific tubular stainless steel member, the invention is not limited to these specific and illustrative only embodiments and has applicability to any structure in any form such as, for example, ribbon, sheet, bar, solid wire, stranded wire, braided wire, etc., which allow the formation of cross-holes and the insertion of the nitinol member within the dissimilar metal member.
The invention provides an improved, simpler and faster method of laser joining a first nitinol member to a second member, with no intermediate material necessary (for example, with no intermediate piece or material disposed between the nitinol member and the second tubular member).
Although the present invention has been described in relation to particular embodiments thereof, many other variations and modifications and other uses will become apparent to those skilled in the art. Therefore, the present invention is to be limited not by the specific disclosure herein, but only by the appended claims.
This application claims the benefit of U.S. Provisional Application No. 61/311,233, filed Mar. 5, 2010, the entire disclosure of which is incorporated by reference herein.
Number | Name | Date | Kind |
---|---|---|---|
3095951 | Rood et al. | Jul 1963 | A |
6645159 | Burkett | Nov 2003 | B1 |
20030087117 | Duley et al. | May 2003 | A1 |
20030191487 | Robinson et al. | Oct 2003 | A1 |
20040182835 | Hall | Sep 2004 | A1 |
20050082773 | Julien | Apr 2005 | A1 |
20050187537 | Loeb et al. | Aug 2005 | A1 |
20060012095 | Bjorkgard et al. | Jan 2006 | A1 |
20060047223 | Grandfield et al. | Mar 2006 | A1 |
20060184188 | Li et al. | Aug 2006 | A1 |
20060235505 | Oepen et al. | Oct 2006 | A1 |
20070199926 | Watanabe et al. | Aug 2007 | A1 |
20070233039 | Mitelberg | Oct 2007 | A1 |
20090326538 | Sennett et al. | Dec 2009 | A1 |
20100049240 | Papp | Feb 2010 | A1 |
20110147080 | Slininger et al. | Jun 2011 | A1 |
Number | Date | Country |
---|---|---|
WO 03039378 | May 2003 | WO |
WO 03039379 | May 2003 | WO |
Number | Date | Country | |
---|---|---|---|
20110218538 A1 | Sep 2011 | US |
Number | Date | Country | |
---|---|---|---|
61311233 | Mar 2010 | US |