BIO-MECHANICAL PROSTHETIC FINGER WITH Y-SHAPED ROCKER
20170296361 ยท 2017-10-19
Inventors
- Robert Thompson, Jr. (Olympia, WA, US)
- Jon Bengtsson (Olympia, WA, US)
- Anthony Charles Peto (Olympia, WA, US)
- Charles Colin Macduff (Olympia, WA, US)
- Sydney Tye Minnis (Seattle, WA, US)
- Eric Dennis Klumper (Boulder, CO, US)
- Bradley Arthur Crittenden (Olympia, WA, US)
Cpc classification
A61F2002/6872
HUMAN NECESSITIES
International classification
Abstract
The disclosure provides apparatus and methods of use pertaining to a prosthetic finger assembly. In one embodiment, the assembly includes a coupling tip and a distal ring coupled with the coupling tip. The assembly further includes a proximal ring coupled with the distal ring. A rocker formed in a Y-shape with a first end forming a single prong and a second end forming a split prong may extend between the coupling tip and the proximal ring. The coupling tip, distal ring, proximal ring, and Y-shaped rocker may all be hingedly connected such that movements of the residual finger within the proximal ring and the distal articulate the distal ring together with the rocker to curl and bend the coupling tip. Other embodiments are also disclosed.
Claims
1-14. (canceled)
15. A prosthetic finger device, comprising: a rocker having a proximal end and a distal end; a tip operably connected with the distal end of the rocker; a distal linkage operably connected with a proximal linkage, the proximal linkage in operable connection with the proximal end of the rocker; a first proximal cage ring coupled with the proximal linkage; a first distal cage ring coupled with the distal linkage; and a fit kit, including: at least a second proximal cage ring and a third proximal cage ring; at least a second distal cage ring and a third distal cage ring, wherein: the first, the second, and the third proximal cage rings are interchangeable with one another so as to provide an array to select therefrom to achieve snug fit about a user's residual finger; and the first, the second, and the third distal cage rings are interchangeable with one another, so as to provide an array to select therefrom to achieve the snug fit about the user's residual finger.
16. The prosthetic finger device of claim 15, wherein the second proximal cage ring has a diameter that exceeds a diameter of the first proximal cage ring, and wherein the second distal cage ring has a diameter that exceeds a diameter of the first distal cage ring.
17. The prosthetic finger device of claim 15, further comprising a universal ring mount disposed upon the proximal linkage, the universal ring mount configured to selectively connect at least the first, the second, and the third proximal cage rings to the proximal linkage.
18. The prosthetic finger device of claim 15, further comprising a universal ring mount disposed upon the distal linkage, the universal ring mount configured to selectively connect at least the first, the second, and the third distal cage rings to the distal linkage.
19. The prosthetic finger device of claim 15, further comprising a tip fastener joint configured to pivot the tip between a number of angles and affix the tip at a select angle relative to the rocker.
20. The prosthetic finger device of claim 15, further comprising a tip pad disposed upon the tip.
21. The prosthetic finger device of claim 15, wherein one or more of the rocker, the tip, the distal linkage, and the proximal linkage are 3D printed from an engineering-grade polymer.
22. The prosthetic finger of claim 15, wherein the first, the second, and the third proximal cage rings each feature a different sized diameter.
23. A system for providing a prosthetic finger operated by a user's residual finger, the system comprising a prosthetic finger device and a ring fit kit, the prosthetic finger device comprising: a rocker having a proximal end and a distal end; a tip operably connected with the distal end of the rocker; and a distal linkage operably connected with a proximal linkage, the proximal linkage in operable connection with the proximal end of the rocker; and the ring fit kit comprising: a number of interchangeable proximal cage rings, wherein a select one of the number of the interchangeable proximal cage rings is coupled with the proximal linkage to receive the user's residual finger with a snug fit; and a number of interchangeable distal cage rings, wherein a select one of the number of the interchangeable distal cage rings is coupled with the distal linkage to receive the user's residual finger with the snug fit.
24. The system of claim 23, wherein each of the number of the proximal cage rings has a different diameter, and wherein each of the number of the distal cage rings has a different diameter.
25. The system of claim 23, further comprising a universal ring mount disposed upon the proximal linkage, the universal ring mount configured to selectively connect the select one of the number of the interchangeable proximal cage rings to the proximal linkage.
26. The system of claim 23, further comprising a universal ring mount disposed upon the distal linkage, the universal ring mount configured to selectively connect the select one of the number of the interchangeable distal cage rings to the distal linkage.
27. The system of claim 23, further comprising a tip fastener joint configured to pivot the tip between a number of angles and affix the tip at a select angle relative to the rocker.
28. The system of claim 23, further comprising a tip pad disposed upon the tip.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Non-limiting and non-exhaustive embodiments of the present invention, including the preferred embodiment, are described with reference to the following figures, wherein like reference numerals refer to like parts throughout the various views unless otherwise specified. Illustrative embodiments of the invention are illustrated in the drawings, in which:
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[0013]
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DETAILED DESCRIPTION
[0023] Embodiments are described more fully below in sufficient detail to enable those skilled in the art to practice the system and method. However, embodiments may be implemented in many different forms and should not be construed as being limited to the embodiments set forth herein. The following detailed description is, therefore, not to be taken in a limiting sense.
[0024] Various embodiments disclosed herein relate to a custom-designed, self-contained prosthetic finger that can be fitted for a user with an amputated finger, fingertip, or finger segment. The streamlined, sophisticated, and biomechanically driven design allows for a patient with any level of residual finger to utilize a mechanical replacement that mimics the motions and functionalities of a real finger. The natural action of the prosthetic finger assembly allows users to regain maximum control of the flexion and extension movements of a full finger and fingertip and is designed to bend and curl in a realistic, natural manner in response to movement in the user's residual finger or adjacent fingers. The prosthetic finger described herein protects the amputation site against further injury or hypersensitivity, while also providing an individual with maximum fit and use flexibility, dexterity, grip strength, and articulation. As a result, the prosthetic finger offers digit amputees a functional solution that eases the transition back into daily activities, no matter how intricate, after amputation.
[0025]
[0026] A series of hinges may be used to secure the four primary components discussed above via rotative connections. In one embodiment, these rotative connections may be particularly positioned with respect to a pair of axes detailed in
[0027] Turning to the various rotative connections shown in
[0028] Proximal ring 102 may rotatively couple with distal ring 104 via second hinged connection 114. Second hinged connection 114 may also include a pair of parallel pivotal hinges that are symmetric about the centerline, C, one located on each side of prosthetic finger 100 such that each provides a pivot point between proximal ring 102 and distal ring 104. As discussed above in relation to
[0029] As shown in
[0030] Any one or more of the first, second, third, and/or fourth hinged connections 110, 114, 120, 122 may be outfitted with hard-stops to prevent hyperextension of the finger during operation. For example, a hard-stop 127, shown in
[0031] Working together, proximal ring 102, distal ring 104, coupling tip 106, and Y-shaped rocker 108 form a 4-bar linkage system that allows the coupling tip to be articulated in response to a pulling force on distal ring 104, which places the member in tension and reduces the risk of buckling. Thus, natural movement of the patient's residual finger seated within proximal ring 102 and distal ring 104, or in some cases movement of his or her adjacent fingers, may be used to actuate realistic flexion and extension motions within prosthetic finger 100. Users may perform their full range of usual activities, including typing, playing a musical instrument, or any other activity that requires the full dexterity of the hand.
[0032] The Y-shape of rocker 108 is designed to reduce the overall bulk of prosthetic finger 100. In this regard, third hinged connection 120 occurs internally (i.e., within the physical boundary defined by distal ring 104 and coupling tip 106) at the centerline, C. This configuration allows users with a relatively short residual finger, or a relatively short middle phalanx, to take advantage of a streamlined design that directs portions of rocker 108 inward. That said, while rocker 108 is described herein as having a Y-shaped profile, it should be understood that rocker 108 may take any appropriate size, shape, type, and/or configuration desired to achieve maximum functionality.
[0033] In the embodiment shown in
[0034] One embodiment of coupling tip 106 may also include a nail 126, which mimics a natural edged nail that may provide scratching and peeling functionalities as well as assist with fine-object manipulation.
[0035] Embodiments of prosthetic finger 100 are custom designed and individually fitted to accommodate a variety of differing user conditions, including different residual-finger lengths (e.g., varying amounts of loss to the middle phalanx). In this regard, each finger 100 may be customized to fit a particular patient or user, providing both custom functionality as well as a mechanical match to the anatomical joint articulation of the user, including matching the length of the original, non-amputated finger. Design considerations include an amount of finger loss, a number of joints to be replaced, and other characteristics specific to the individual end user. In cases in which the user has a fully formed, but poorly or nonfunctioning finger, coupling tip 106 may be removed so that prosthetic finger 100 functions as a joint brace, rather than a digit replacement. To further provide better aesthetics, embodiments of finger 100 may be coated with films and/or colorings matched to the user's skin tone/color. An additive manufacturing process (i.e., 3D printing) facilitates this ability to customize the intricacies of the prosthetic finger design in order to optimize the device for each patient.
[0036] Embodiments of prosthetic finger 100 may be formed of any suitable structural material that is non-irritating to human skin and allows the user to operate the prosthetic with comfort and confidence. Exemplary materials include titanium, stainless steel, aluminum, silicone, carbon fiber, nylon, plastic/polymer, wood, rubber, gold, silver, tungsten, flex cable, neoprene, or any other suitable material. In one embodiment, components of prosthetic finger 100 are 3D printed from Duraform EX polymer material. Using biocompatible materials, various embodiments of finger 100 may be applied as an orthopedic implant that may be surgically implanted into a user's finger. This option may be applied for users having injuries that have crushed their finger bones without the ability to heal or be repaired. In these situations, implantable embodiments of prosthetic finger 100 are able to take the place of the user's original bones without the need for amputation.
[0037] To use, the user may simply slide proximal ring 102 and distal ring 104 onto his or her residual finger, and, if necessary, adjust further using a shim(s).
[0038] Once prosthetic finger 100 (adjusted or otherwise) is in place, the user can utilize his or her natural movements of the residual finger. The primary components of prosthetic finger 100 will articulate using the same cognitive process that was previously utilized for the original finger. If a user wears multiple fingers 100, each may be individually operated.
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[0041] Two cage rings may attach to the linkages for the purpose of retaining a user's residual finger (with one ring proximal of the proximal interphalangeal (PIP) joint and another ring distal of the PIP joint) and translating movement of the residual finger through the interlinked assembly discussed above. As shown in
[0042] While prosthetic finger 200 may be custom designed to custom fit each user, post-manufacturing changes to the patient's physiology may occur. To add post-manufacturing customization capabilities to prosthetic finger 200, both proximal cage ring 216 and distal cage ring 218 may be interchangeable such that they may be swapped out with rings of varying sizes to address sizing and/or swelling issues demonstrated in the residual finger of the patient. Varying sizes of proximal and distal cage rings 216, 218 may be provided in a fit kit (not shown), allowing the user to employ the most appropriate ring sizes in real-time. The user may easily interchange cage rings by removing the rings 216, 218 from, and replacing different rings to, ring mounts 220 via ring mount apertures 224 and attachment protrusions 222. Interchangeable rings 216, 218 may be formed of any appropriate material including flexible polymers or other plastics that are non-irritating to human skin.
[0043] Embodiments of the prosthetic fingers 100, 200 described above exhibit numerous unique characteristics and provide a variety of medical benefits. An individual's unique physiology and lifestyle patterns dictate the function and performance expected of his or her hands. Using embodiments of the prosthetic fingers described herein, patients may regain independent control of their hands, whether at work or at play. Each device is custom designed, manufactured for a specific individual, and incorporates features that allow for further fine-tuning and adjustment of fit to account for post-manufacturing fluctuations (e.g., shims and or interchangeable rings), enabling the device to fit the user in a manner that allows for a biomechanically driven, low profile, lightweight, highly functioning return to the user's everyday activities, no matter what those activities might entail. A few examples include typing, playing the piano or another instrument, woodworking, and much more.
[0044] Embodiments of the prosthetic fingers described above are body powered, and their linked components articulate when the user simply moves his or her residual finger, when available, or an adjacent finger when necessary. Beyond allowing for a simple, elegant, and streamlined design that offers strength in the lowest possible profile design, employing the user's own biomechanics to drive embodiments of prosthetic fingers 100, 200 provides a host of medical benefits to the user, including reduced swelling of and increased circulation to the residual finger and the hand as a whole, supporting healthy joints in the injured and adjacent fingers.
[0045] Although the above embodiments have been described in language that is specific to certain structures, elements, compositions, and methodological steps, it is to be understood that the technology defined in the appended claims is not necessarily limited to the specific structures, elements, compositions and/or steps described. Rather, the specific aspects and steps are described as forms of implementing the claimed technology. Since many embodiments of the technology can be practiced without departing from the spirit and scope of the invention, the invention resides in the claims hereinafter appended.