MEDICAL CUTTING DEVICES HAVING A WORKING BLADE BODY WITH STATIC COMPONENTS AND RELATED METHODS OF USE
20230190304 · 2023-06-22
Inventors
- Robert K. Lark (Chapel Hill, NC, US)
- Edward C. Skolnick (Denville, NJ, US)
- Antoine R. Kaeslin (Bethel, CT, US)
Cpc classification
A61B17/16
HUMAN NECESSITIES
A61B17/320068
HUMAN NECESSITIES
A61B17/142
HUMAN NECESSITIES
International classification
Abstract
Medical cutting device having a working blade body with static components and related methods of use are disclosed. According to an aspect, a cutting device includes a working blade body having a top surface and a bottom surface. The working blade body defines a plurality of apertures extending between the top surface and the bottom surface. Further, the cutting device includes a plurality of static components each having a top portion and a bottom portion. Each static component is associated with one of the apertures and has a middle portion that is between the top portion and the bottom portion and positioned within the associated aperture. The top portion and the bottom portion extend past the top surface and the bottom surface, respectively, of the working blade body.
Claims
1. A cutting device comprising: a working blade body having a top surface and a bottom surface, wherein the working blade body defines a plurality of apertures extending between the top surface and the bottom surface; and a plurality of static components each having a top portion and a bottom portion, wherein each static component is associated with one of the apertures and has a middle portion that is between the top portion and the bottom portion and positioned within the associated aperture, and wherein the top portion and the bottom portion extend past the top surface and the bottom surface, respectively, of the working blade body.
2. The cutting device of claim 1, wherein each static component comprises a joint and load-sharing member, wherein the joint attaches the load-sharing member to the working blade body.
3. The cutting device of claim 2, wherein the working blade body includes a blade edge positioned at a distal end.
4. The cutting device of claim 3, wherein the working blade body includes a proximal end, wherein the plurality of apertures and the associated static components are spaced apart between the proximal and distal ends of the working blade body.
5. The cutting device of claim 4, wherein the plurality of apertures and the associated static components are substantial alignment.
6. The cutting device of claim 2, wherein each joint encircles its associated load-sharing member.
7. The cutting device of claim 2, wherein each joint is made of a flexible material.
8. The cutting device of claim 2, wherein each joint flexibly attaches its associated load-sharing member to the working blade body.
9. The cutting device of claim 2, wherein each joint is made of a rigid material.
10. The cutting device of claim 2, wherein each aperture defines a countersunk portion that moveably fits to its respective joint for allowing the joint and associated load-sharing member to move with respect to the working blade body.
11. The cutting device of claim 1, the top surface and the bottom surface are separated by a distance, and wherein a height of each static component is greater than the distance separating the top surface and the bottom surface.
12. The cutting device of claim 1, wherein the top portion and the bottom portion are each curved in shape.
13. The cutting device of claim 1, wherein each static portion is substantially disk-like in shape.
14. The cutting device of claim 2, wherein each joint is substantially disk-like in shape.
15. The cutting device of claim 14, wherein each joint defines an aperture therein, and wherein the associated load-sharing member fits inside the aperture of the joint.
16. The cutting device of claim 1, wherein the working blade body is operatively attached to a source of movement for moving the working blade body.
17. A method comprising: providing a cutting device comprising: a working blade body having a top surface and a bottom surface, wherein the working blade body defines a plurality of apertures extending between the top surface and the bottom surface; and a plurality of static components each having a top portion and a bottom portion, wherein each static component is associated with one of the apertures and has a middle portion that is between the top portion and the bottom portion and positioned within the associated aperture, and wherein the top portion and the bottom portion extend past the top surface and the bottom surface, respectively, of the working blade body; and applying a force to the working blade body for cutting a material.
18. The method of claim 17, wherein each static component comprises a joint and load-sharing member, wherein the joint attaches the load-sharing member to the working blade body.
19. The method of claim 18, wherein the working blade body includes a blade edge positioned at a distal end.
20. The method of claim 19, wherein the working blade body includes a proximal end, wherein the plurality of apertures and the associated static components are spaced apart between the proximal and distal ends of the working blade body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Having thus described the presently disclosed subject matter in general terms, reference will now be made to the accompanying Drawings, which are not necessarily drawn to scale, and wherein:
[0016]
[0017]
[0018]
[0019]
[0020]
SUMMARY
[0021] The presently disclosed subject matter relates to medical cutting device having a working blade body with static components and related methods of use. According to an aspect, a cutting device includes a working blade body having a top surface and a bottom surface. The working blade body defines a plurality of apertures extending between the top surface and the bottom surface. Further, the cutting device includes a plurality of static components each having a top portion and a bottom portion. Each static component is associated with one of the apertures and has a middle portion that is between the top portion and the bottom portion and positioned within the associated aperture. The top portion and the bottom portion extend past the top surface and the bottom surface, respectively, of the working blade body.
[0022] According to another aspect, a method includes providing a cutting device. The cutting device has a working blade body with static components and related methods of use. According to an aspect, a cutting device includes a working blade body having a top surface and a bottom surface. The working blade body defines a plurality of apertures extending between the top surface and the bottom surface. Further, the cutting device includes a plurality of static components each having a top portion and a bottom portion. Each static component is associated with one of the apertures and has a middle portion that is between the top portion and the bottom portion and positioned within the associated aperture. The top portion and the bottom portion extend past the top surface and the bottom surface, respectively, of the working blade body. The method also includes applying a force to the working blade body for cutting a material.
DETAILED DESCRIPTION
[0023] The following detailed description is made with reference to the figures. Exemplary embodiments are described to illustrate the disclosure, not to limit its scope, which is defined by the claims. Those of ordinary skill in the art will recognize a number of equivalent variations in the description that follows.
[0024] Articles “a” and “an” are used herein to refer to one or to more than one (i.e. at least one) of the grammatical object of the article. By way of example, “an element” means at least one element and can include more than one element.
[0025] “About” is used to provide flexibility to a numerical endpoint by providing that a given value may be “slightly above” or “slightly below” the endpoint without affecting the desired result.
[0026] The use herein of the terms “including,” “comprising,” or “having,” and variations thereof is meant to encompass the elements listed thereafter and equivalents thereof as well as additional elements. Embodiments recited as “including,” “comprising,” or “having” certain elements are also contemplated as “consisting essentially of” and “consisting” of those certain elements.
[0027] Recitation of ranges of values herein are merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, unless otherwise indicated herein, and each separate value is incorporated into the specification as if it were individually recited herein. For example, if a range is stated as between 1%-50%, it is intended that values such as between 2%-40%, 10%-30%, or 1%-3%, etc. are expressly enumerated in this specification. These are only examples of what is specifically intended, and all possible combinations of numerical values between and including the lowest value and the highest value enumerated are to be considered to be expressly stated in this disclosure.
[0028] Unless otherwise defined, all technical terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs.
[0029] As referred to herein, the term “cutting device” can be any suitable component movable for cutting into or generally transforming a material (e.g., bone). The cutting device can include a blade that operates through large or small (e.g., vibrations) mechanical motion. The motion can be in a specific direction(s). For example, the cutting device can be moved in an oscillating manner, flexing, bending, rotating, torsionally, longitudinally, and the like.
[0030]
[0031] The cutting end 106 can be a blade tip configured to cut, ablate, abrade or otherwise transform, for example, bone or other tissue. The cutting end 106 includes a top surface 110 and an opposing bottom surface (not shown in
[0032] With continuing reference to
[0033]
[0034]
[0035]
[0036] It is noted that the load-sharing member 602 has a height profile greater than the thickness of the blade body 108, such that the load-sharing member 602 extends perpendicularly some measure from both the top surface 110 and a bottom surface 606 of the blade working body 108. Although, it is noted that the components may have any other suitable height with respect to each other. In an example, a top end and a bottom end of the load-sharing member 602 are convex or curved in shape. The load-sharing member 602 and the flexible perimeter joint 600 can be one functional unit that move together and are not directly attached to the blade working body 108. Rather, their motion is constrained by the bounds of the countersunk aperture 604 in which they reside. Edges 608 of the aperture 604 are further countersunk in the surrounding blade body 108 such that the edge of the flexible perimeter joint 600 is the same height or subflush to the surface of the surrounding blade body 108. This allows the material being cut to more easily ride up on the static component. Specifically, as the blade working body 108 moves within the cutting plane the adjacent bone rides up on the static component 114. This can create an airgap to prevent direct conduction of heat to adjacent bone and allows for bone debris to flow away from the cutting site. It is believed that freely moving bone particulate matter can alleviate a significant amount of frictional forces that would otherwise be generated between the bone surfaces and the blade body 108. Airgaps are present circumferentially all around the flexible perimeter joint as well. Finally, this mechanism of the bone riding up on the static component 114 effectively supports loading on the top and bottom of the blade working body, which allows it to continue operation without frictional sliding interactions and prevents it from binding. It should be noted that fitting the flexible perimeter joint 600 to the load-sharing member 602 and fitting the flexible perimeter joint 600 within the aperture 604 can be accomplished using any variety of press-fit, slip-fit, snap-fit, adhesive, any combination thereof, or other suitable means. The flexible perimeter joint 600 can be made of a material having a low thermal conductivity including, but not limited to, rubber, silicone, or the like. The load-sharing member 602 can be made of a high strength medical grade material like stainless steel, cobalt chrome, and the like.
[0037]
[0038] Now turning to
[0039] It is noted that embodiments of the present disclosure are described as producing or having oscillatory saw blade movement or any other suitable source for motion. It is noted that in the alternative the movement may be any suitable type of movement produced by any suitable source (e.g., such as an ultrasonic transducer driving the blade through piezoelectric elements and smaller vibrations)). Further, cutting may be applied to any suitable material or technical field. Suitable mechanical sources could include anything from piezoceramics, electro-mechanical motors, user generated hand motion, etc. However, its important to note that all types of mechanisms can produce equivalent types of movements. These could include, but are not limited to, axial motion, bending motion, torsional motion, flexural motion, etc. It is also feasible that the source of mechanical motion can combine all of these modes of motion to create more complex movements. Regardless of the motion and/or the manner in which it is produced, there would be a resultant motion at the end of the functional device/blade edge. This motion would, under the claims of this patent, be captured within the bounds of the static casing which function to share load, decouple motion, and prevent heat transfer to the functional working surfaces. Examples include oscillating/sagittal/reciprocating medical bone cutting saws, medical rotary drills, medical rotary burs, construction hammer drills, construction rotary hammer, wood cutting axes, construction oscillating multi-tools, oscillating medical cast saws, cutting saws, etc. The principles of the claims presented in this patent could be applied to all of these devices with equivalently realized benefits.
[0040] While the embodiments have been described in connection with the various embodiments of the various figures, it is to be understood that other similar embodiments may be used, or modifications and additions may be made to the described embodiment for performing the same function without deviating therefrom. Therefore, the disclosed embodiments should not be limited to any single embodiment, but rather should be construed in breadth and scope in accordance with the appended claims.