Embodiments of the present invention relate to articulation joints for use with medical devices. In particular, embodiments of the present invention include articulation links that provide torque transmission.
Articulated medical devices provide access to sites within a patient's body that are difficult to reach using rigid non-articulating devices. For example, articulated endoscopes provide direct access to internal organs, and articulated catheters provide access to tortuous vascular structures.
Articulated medical devices have traditionally been flexible to provide easy manipulation. An instrument must have sufficient flexibility to navigate through the lower gastro-intestinal tract. Increasing the articulation joints' flexibility reduces the forces required to articulate the device, reducing the device's load bearing requirements and operator fatigue.
However, traditional articulation joints often lack the ability to efficiently transfer torque along the length of the medical device. Highly flexible articulated joints often contain significant torsional lag and elasticity. Applied torsional forces are often absorbed by torsional movement between adjacent articulation joints. Multiple articulation joints cumulate these torsional losses, reducing the efficiency of torsional forces transmitted along the length of the device.
The articulating links described herein overcome these and other limitations of the prior art. The articulation links of the present disclosure are broadly applicable to various medical devices and other devices requiring articulation. For example, borescopes use articulation to access difficult-to-reach locations within engines or other industrial devices.
In one aspect, an articulation link can include a body defining a longitudinal axis and a transverse plane extending substantially perpendicular to the longitudinal axis, the body having a first surface located proximate a first end of the body and a second surface located proximate a second end of the body opposite the first end. A cavity can extend from the first surface to a cavity contact surface located between the first surface and the second surface, wherein the cavity contact surface can extend substantially parallel to the transverse plane. The articulation link can also include a protrusion extending from the second surface away from the first surface to a protrusion contact surface, wherein the protrusion contact surface can be generally curved and configured to engage a cavity contact surface of an adjacent link, and wherein the cavity can include a cavity sidewall extending substantially perpendicular to the transverse plane, and the protrusion can include a protrusion sidewall configured to engage a cavity sidewall of the adjacent link.
In another aspect, an articulation link can include a body defining a longitudinal axis and a transverse plane extending substantially perpendicular to the longitudinal axis, the body having a first surface located proximate a first end of the body and a second surface located proximate a second end of the body opposite the first end. The articulation link may also include a cavity extending from the first surface to a cavity contact surface located between the first surface and the second surface. Also, a protrusion may extend from the second surface, wherein the protrusion can include at least two generally curved rails configured to engage a cavity contact surface of an adjacent link, and wherein the cavity can include a cavity sidewall extending substantially perpendicular to the transverse plane, and the protrusion can include a protrusion sidewall extending substantially parallel to the cavity sidewall. The articulation link may also include a lumen extending longitudinally through the body.
In another aspect, a medical instrument can include an elongate member configured to actuate the medical instrument, and a plurality of articulation links. Each articulation link can include a body defining a longitudinal axis and a transverse plane extending substantially perpendicular to the longitudinal axis, the body having a first surface located proximate to a first end of the body, a second surface located proximate to a second end of the body opposite the first end, and a lumen configured to receive the elongate member. Each link can also include a cavity extending from the first surface to a cavity contact surface located between the first surface and the second surface, wherein the cavity contact surface can extend substantially parallel to the transverse plane. A protrusion may extend from the second surface away from the first surface to a protrusion contact surface, wherein the protrusion contact surface can be generally curved and configured to engage the cavity contact surface of an adjacent link, and wherein the cavity can include a cavity sidewall extending substantially perpendicular to the transverse plane, and the protrusion can include a protrusion sidewall parallel to a cavity sidewall of the adjacent link. Each articulation link can include a central lumen extending longitudinally from the cavity contact surface to the protrusion contact surface.
Additional objects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. The objects and advantages of the invention will be realized and attained by means of the elements and combinations particularly pointed out below.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the invention.
The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description, serve to explain the principles of the invention.
Reference will now be made to exemplary embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts.
Device 2 may be configured for insertion into a patient's body through an anatomical opening. In other embodiments, device 2 may be used in natural orifice transluminal endoscopic surgery (NOTES) procedures or single incision laparoscopic surgical (SILS) procedures. Accordingly, device 2 can be shaped and sized for placement into a patient via a body cavity or an incision.
Device 2 can be configured to operate with one or more instruments (not shown) used in various surgical procedures. For example, device 2 can include one or more lumens (not shown) configured to receive a grasper, a pair of scissors, a hook, an ablation device, or other type of surgical instrument. Device 2 may also be configured to operate with, or include, insufflation, irrigation, suction, imaging, or systems used in endoscopic, laparoscopic, or other surgical procedures.
Device 2 can include a shaft 4 having a proximal end 6 and a distal end 8. Proximal end 6 can be manipulated by an operator to control distal end 8. For example, proximal end 6 can include one or more knobs, handles, or other devices (not shown) configured to move distal end 8 relative to proximal end 6.
Shaft 4 can also include an articulating portion 9. As shown in
Articulation link 10 can include a body 12. Body 12 can have a substantially cylindrical shape and a generally circular cross-section. In other embodiments, body 12 can have a different shape or cross-section, and may be shaped and sized as required.
Body 12 can be formed from one or more materials, such as, for example, a metal alloy, a polymer, a ceramic, or combination thereof. One or more external surfaces of body 12 may be treated to enhance lubricity, friction, hardness, strength, or another physical parameter. All or part of body 12 may be coated with various materials to improve these and other physical parameters.
Body 12 can include a first surface 14 and a second surface 16. First surface 14 can be located generally proximally and second surface 16 can be located generally distally. Body 12 can have first surface 14 located proximate a first end 15 of body 12 and second surface 16 located proximate a second end 17 of body 12 opposite first end 15. In some instances, first surface 14 can be the proximal-most surface and second surface 16 can be the distal-most surface of body 12. In other embodiments, first surface 14 can be distal of second surface 16 or the distal-most surface of body 12.
As shown in
Body 12 can include a cavity 18 located generally within body 12 and extending distally from first surface 14. As shown in
While cavity 18 is shown and described herein as generally rectangular, cavity 18 can include any suitable shape. For example, cavity 18 could have a non-rectangular geometry. In other embodiments, cavity 18 could include any number of sidewalls 26. Sidewalls 26 could be elliptical or non-symmetrical, and may include various slots or other shapes extending into or out of sidewall 26. Cavity 18 could include multiple teeth or tabs to form a star or a gear shape.
Body 12 can include a protrusion 22 configured to engage a cavity 18 of an adjacent link 10. As explained below, cavity 18 and protrusion 22 are configured to transfer torque between adjacent articulation links 10.
As shown in
Protrusion 22 may include one or more protrusion sidewalls 28. Protrusion sidewall 28 may be configured to engage cavity sidewall 26 of an adjacent link 10 to permit the transfer of torque between adjacent articulation links 10. In some embodiments, two or more cavity sidewalls 26 may be parallel or two or more protrusion sidewalls 28 may be parallel. Protrusion sidewall 28 can be substantially flat.
Torsional forces between adjacent articulation links 10 can be transferred from protrusion 22 of one link 10 to cavity 18 of an adjacent link 10. As explained below, torsional forces can be transferred from protrusion sidewall 28 of one link 10 to cavity sidewall 26 of an adjacent link 10. As articulation link 10 is rotated about a longitudinal axis 38, protrusion sidewall 28 engages cavity sidewall 26 of a distally located adjacent articulation link 10. Engagement between sidewalls 26, 28 permits torque transfer while retaining sufficient movement between adjacent articulation links 10.
Body 12 can also include a lumen 30. Lumen 30 can extend through body 12, including its protrusion 22. As shown in
Body 12 can further include one or more lumens 32 configured to receive a cable, wire, or other type of elongate member (not shown) for articulation of one or more articulation links 10. Lumens 32 can extend between first surface 14 and second surface 16 or between cavity contact surface 20 and second surface 16. Body 12 can also include one or more recesses 34 each configured to receive an elongate member passing through cavity contact surface 20.
In some instances, body 12 can include an alignment marker 36. As shown in
In another embodiment, protrusion contact surface 24 can be curved in first direction 41, as shown in
Protrusion contact surface 24 can be variously shaped to permit protrusion 22 of a proximal articulation link 10 to slide relative to cavity 18 of an adjacent distal articulation link 10. Such sliding can occur in one plane, such as, for example, in transverse plane 40. In other embodiments, sliding can occur in one direction, such as, for example, in direction 41. Similarly, adjacent articulation links 10 may also rotate in relation to each other about one or more planes or axes.
Protrusion sidewall 28′ can include one or more contact features 44, as shown in
Contact feature 44 could include a pimple, a ridge, an indentation, a divot, or similar structure. Contact feature 44 could also be configured to at least partially deform. Such a “sacrificial” feature may partially deform to provide a tight fit between contact feature 44 and groove 48 of an adjacent link 10′. Groove 48 can include any appropriate structure configured to engage feature 44.
Cavity sidewall 26′ can include one or more grooves 48 configured to receive contact features 44. Protrusion sidewall 28′, cavity sidewall 26′, recess 46, and rail 42 may include one or more contact features 44 or grooves 48 to facilitate the attachment of two adjacent articulation links 10′.
It is also contemplated that protrusion 22 and cavity 18, as shown in
In operation, articulation links 10A-10D would be closely stacked, as shown between articulation links 10C and 10D. A distal region of cable 50 can be restrained relative to an articulation link. Pulling one cable 50 proximally (i.e., downwards, as shown in
The embodiments described herein are exemplary only, and it will be apparent to those skilled in the art that various modifications and variations can be made in the disclosed systems and processes without departing from the scope of the invention. Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein.
It is intended that the specification and examples be considered as exemplary only, with a true scope of the invention being indicated by the following claims.
This application claims the benefit of priority from U.S. Provisional Application No. 61/438,072, filed Jan. 31, 2011, which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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61438072 | Jan 2011 | US |