Patent · US10842652B2 · B2 · US
Bidirectional biomechanical prosthetic full finger configured for abduction and adduction with MCP pivot and multiple-finger ring
- (11) Publication number
- US10842652B2
- (21) Application number
- 16/361,560
- (22) Filing date
- 2019-03-22
- (30) Priority date
- 2015-05-15
- (43) Publication date
- 2020-11-24
- (45) Date of grant
- 2020-11-24
- (51) IPC
- A61F 2/58; A61F 2/78; A61F 2/54
- (52) CPC
- A61F Filters implantable into blood vessels; prostheses; devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents; orthopaedic, nursing or contraceptive devices; fomentation; treatment or protection of eyes or ears; bandages, dressings or absorbent pads; first-aid kits: 2/586, 2/78, 2002/5001, 2002/5038, 2002/6872, 2002/7856, 2002/7862
- (73) Assignee
- RCM Enterprise LLC
- (72) Inventors
- Robert Thompson, JR.; Jon Bengtsson; Anthony Charles Peto; Sydney Tye Minnis; Eric Dennis Klumper; Bradley Arthur Crittenden
- (54) Title
- Bidirectional biomechanical prosthetic full finger configured for abduction and adduction with MCP pivot and multiple-finger ring
- (57) Abstract
The disclosure provides apparatus and methods of use pertaining to a bidirectional biomechanical prosthetic finger assembly. One embodiment includes a metacarpophalangeal (MCP) pivot configured for swivelable attachment to a hand of a user, a distal coupler, and an articulation assembly rotatively coupled therebetween. A multiple-finger ring configured to receive a user's residual finger and at least one adjacent finger is disposed upon the articulation assembly, and may be adjusted to a target location based on a length of the residual finger. The articulation assembly is configured to utilize vertical movements of the residual and/or adjacent finger(s) within the multiple-finger ring to articulate the distal coupler within a plane parallel to an x-z plane, and the MCP pivot is configured to utilize lateral movements of the residual finger within the ring to articulate the distal coupler within a plane parallel to an x-y plane. Other embodiments are also disclosed.
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Claims (20)
- A method of biomechanically operating a bidirectional prosthetic finger having a metacarpophalangeal (MCP) pivot, a distal coupler, and an adjustable articulation assembly rotatively coupled between the MCP pivot and the distal coupler, the adjustable articulation assembly including a multiple-finger ring configured to receive a residual finger and at least one adjacent finger of a user's hand, the multiple-finger ring comprising two abutting rings, the method comprising: assessing a length of the residual finger; adjusting the multiple-finger ring to a target location along the adjustable articulation assembly, the target location based on the length of the residual finger; securing the multiple-finger ring at the target location; sliding the prosthetic finger onto the residual finger and the at least one adjacent finger such that the multiple-finger ring encircles the residual finger and the at least one adjacent finger and the MCP pivot aligns with an MCP joint of the user; moving the multiple-finger ring vertically, thereby causing the adjustable articulation assembly together with the distal coupler to articulate within a plane parallel to an x-z plane and about one or more axes parallel to a y axis in a manner that emulates a finger's natural articulation; and moving the multiple-finger ring laterally, thereby causing the MCP pivot to rotate about an axis parallel to a z axis within a plane parallel to an x-y plane, such that the articulation assembly together with the distal coupler abduct away from a midline of the hand and adduct toward the midline of the hand.
- The method of claim 1, wherein: the step of moving the multiple-finger ring vertically comprises moving one of the residual finger and the at least one adjacent finger; and the step of moving the multiple-finger ring laterally comprises moving one of the residual finger and the at least one adjacent finger.
- The method of claim 1, wherein the adjustable articulation assembly further comprises an adjustable ring tendon having a longitudinal adjustment mechanism with a proximal end and a distal end, the target location disposed therebetween.
- The method of claim 3, wherein the adjustable articulation assembly further comprises: a proximal coupler; and a distal rocker, wherein the proximal coupler and the distal rocker are rotatively suspended between a proximal coordinated pivot point anchored upon the adjustable ring tendon and a distal coordinated pivot point anchored upon the distal coupler.
- The method of claim 3, wherein the adjustable articulation assembly further comprises: a proximal coupler extending between the distal coupler and the adjustable ring tendon, the proximal coupler having a distal end and a proximal end, wherein: the distal end of the proximal coupler is rotatively coupled with the distal coupler via a first hinged connection; the proximal end of the proximal coupler is rotatively coupled with the adjustable ring tendon via a third hinged connection; and the first and the third hinged connections define a midline relative to a z axis; and a distal rocker extending between the distal coupler and the adjustable ring tendon, the distal rocker having a distal end and a proximal end, wherein: the distal end of the distal rocker is rotatively coupled with the distal coupler via a second hinged connection located below the midline; and the proximal end of the distal rocker is rotatively coupled with the adjustable ring tendon via a fourth hinged connection located above the midline.
- The method of claim 3, wherein the adjusting the multiple-finger ring to the target location comprises adjusting the multiple-finger ring to a location between the proximal and distal ends of the longitudinal adjustment mechanism that causes the MCP pivot to align with an MCP joint of the user when the multiple-finger ring is anchored about the residual finger and the at least one adjacent finger.
- The method of claim 3, wherein the longitudinal adjustment mechanism of the adjustable ring tendon comprises a retention ridge configured to engage with a clamp portion of the multiple-finger ring.
- A method of biomechanically operating a bidirectional prosthetic finger having a metacarpophalangeal (MCP) pivot, a distal coupler, and an articulation assembly rotatively coupled between the MCP pivot and the distal coupler, the articulation assembly including a multiple-finger ring configured to receive and retain a residual finger and at least one adjacent finger of a user, the method comprising: assessing a length of the residual finger; adjusting the multiple-finger ring to a target location along the adjustable articulation assembly, the target location based on the length of the residual finger; securing the multiple-finger ring at the target location; sliding the prosthetic finger onto the residual finger and the at least one adjacent finger such that the multiple-finger ring encircles the residual finger and the at least one adjacent finger and the MCP pivot aligns with an MCP joint of the user on a dorsal side of a hand of the user; moving the multiple-finger ring vertically, thereby causing the adjustable articulation assembly together with the distal coupler to articulate within a plane parallel to an x-z plane and about one or more axes parallel to a y axis in a manner that emulates a finger's natural articulation; and moving the multiple-finger ring laterally, thereby causing the MCP pivot to rotate about an axis parallel to a z axis within a plane parallel to an x-y plane, such that the articulation assembly together with the distal coupler abduct away from a midline of the hand and adduct toward the midline of the hand.
- The method of claim 8, wherein the multiple-finger ring comprises two abutting rings.
- The method of claim 8, wherein the articulation assembly further comprises: an adjustable ring tendon having a distal end, a proximal end, and a longitudinal adjustment mechanism disposed therebetween, the proximal end rotatively coupled with the MCP pivot, the multiple-finger ring selectively disposed upon the adjustable ring tendon at a target location along the longitudinal adjustment mechanism; a proximal coupler; and a distal rocker, wherein the proximal coupler and the distal rocker are rotatively suspended between a proximal coordinated pivot point anchored upon the adjustable ring tendon and a distal coordinated pivot point anchored upon the distal coupler.
- The method of claim 10, wherein the articulation assembly further comprises a proximal rocker having a distal end and a proximal end, the distal end of the proximal rocker pivotally attached to the proximal coupler and the proximal end of the proximal rocker pivotally attached to the MCP pivot.
- The method of claim 10, wherein the adjusting the multiple-finger ring to the target location comprises adjusting the multiple-finger ring to a location between the proximal and the distal ends of the longitudinal adjustment mechanism that causes the MCP pivot to align with the MCP joint of the user when the multiple-finger ring is anchored about the residual finger and the at least one adjacent finger.
- The method of claim 10, wherein the longitudinal adjustment mechanism of the adjustable ring tendon comprises a retention ridge configured to engage with a clamp portion of the multiple-finger ring.
- The method of claim 10, wherein: the distal coordinated pivot point comprises a first hinged connection between the proximal coupler and the distal coupler and a second hinged connection between the distal rocker and the distal coupler; and the proximal coordinated pivot point comprises a third hinged connection between the proximal coupler and the adjustable ring tendon and a fourth hinged connection between the distal rocker and the adjustable ring tendon.
- The method of claim 14, wherein: the first hinged connection and the third hinged connection define a midline relative to the z axis; the second hinged connection is located below the midline; and the fourth hinged connection is located above the midline, such that a relative rotational motion between the adjustable ring tendon and the distal rocker causes a relative rotational motion between the proximal coupler and the distal coupler to emulate a finger's natural articulation within the plane parallel to the x-z plane.
- A method of biomechanically operating a bidirectional prosthetic finger, the prosthetic finger comprising: a distal coupler; a metacarpophalangeal (MCP) pivot for attachment to a hand of a user, the MCP pivot having an articulation joint configured to rotate the MCP pivot relative to a hand within a plane parallel to an x-y plane and about an axis parallel to a z axis; and an articulation assembly rotatively coupled between the MCP pivot and the distal coupler, the articulation assembly configured to articulate relative to the hand within a plane parallel to an x-z plane and about one or more axes parallel to a y axis, the articulation assembly comprising: a multiple-finger ring configured to anchor onto a residual finger and at least one adjacent finger of the user; a proximal coupler rotatively coupled with the distal coupler via a first hinged connection; an adjustable ring tendon having a proximal end and a distal end that is rotatively coupled with the proximal coupler via a third hinged connection, the multiple-finger ring disposed upon the adjustable ring tendon and slidably adjustable between the proximal and the distal ends of the adjustable ring tendon; and a distal rocker extending between the distal coupler and the adjustable ring tendon, the distal rocker having a distal end and a proximal end, wherein: the first and the third hinged connections define a midline relative to the z axis; the distal end of the distal rocker rotatively couples with the distal coupler via a second hinged connection located below the midline; and the proximal end of the distal rocker rotatively couples with the adjustable ring tendon via a fourth hinged connection located above the midline, the method comprising: assessing a length of the residual finger; adjusting the multiple-finger ring to a target location along the adjustable ring tendon, the target location based on the length of the residual finger; securing the multiple-finger ring at the target location; and sliding the prosthetic finger onto the residual finger and the at least one adjacent finger such that the multiple-finger ring encircles the residual finger and the at least one adjacent finger and the MCP pivot aligns with an MCP joint of the user.
- The method of claim 16, further comprising: moving the multiple-finger ring vertically, thereby causing the adjustable articulation assembly together with the distal coupler to articulate within a plane parallel to an x-z plane and about one or more axes parallel to a y axis in a manner that emulates a finger's natural articulation; and moving the multiple-finger ring laterally, thereby causing the MCP pivot to rotate about an axis parallel to a z axis within a plane parallel to an x-y plane, such that the articulation assembly together with the distal coupler abduct away from a midline of the hand and adduct toward the midline of the hand.
- The method of claim 16, wherein the proximal coupler and the distal rocker lack a direct connection.
- The method of claim 16, wherein the adjusting the multiple-finger ring to the target location along the adjustable ring tendon comprises adjusting a longitudinal adjustment mechanism to the target location between the proximal end and the distal end of the adjustable ring tendon.
- The method of claim 16, wherein the multiple-finger ring comprises two abutting rings.
Description
The application is a divisional of U.S. patent application Ser. No. 15/460,718, filed Mar. 16, 2017 by Robert Thompson Jr., Jon Bengtsson, Anthony Charles Peto, Sydney Tye Minnis, Eric Dennis Klumper, and Bradley Arthur Crittenden for “BIDIRECTIONAL BIOMECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ABDUCTION AND ADDUCTION WITH MCP PIVOT AND MULTIPLE-FINGER RING,” which is a continuation of U.S. patent application Ser. No. 15/155,875, filed May 16, 2016 by Robert Thompson Jr., Jon Bengtsson, Anthony Charles Peto, Sydney Tye Minnis, Eric Dennis Klumper, and Bradley Arthur Crittenden for “BIDIRECTIONAL BIOMECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ABDUCTION AND ADDUCTION WITH MCP PIVOT AND MULTIPLE-FINGER RING,” which claims the benefit under 35 U.S.C. 119 (e) of U.S. Provisional Patent Application Nos. 62/162,524, filed May 15, 2015 by Robert Thompson and Jon Bengtsson for “BIO-MECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ARTICULATION WITH A DOUBLE RING,” 62/162,516, filed May 15, 2015 by Jon Bengtsson and Robert Thompson for “BIO-MECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ABDUCTION AND ADDUCTION WITH MCP PIVOT,” and 62/209,836, filed Aug. 25, 2015 by Robert Thompson JR., Jon Bengtsson, Anthony Charles Peto, Sydney Tye Minnis, Eric Dennis Klumper, and Bradley Arthur Crittenden for “BIO-MECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ABDUCTION AND ADDUCTION WITH MCP PIVOT,” all of which patent applications are hereby incorporated herein by reference.
If a person loses finger mobility, finger functionality, or all or a segment of his or her physical finger, the result is impaired performance of the hand.
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Record as JSON
{
"publication_number": "US10842652B2",
"country": "US",
"kind": "B2",
"title": "Bidirectional biomechanical prosthetic full finger configured for abduction and adduction with MCP pivot and multiple-finger ring",
"abstract": "The disclosure provides apparatus and methods of use pertaining to a bidirectional biomechanical prosthetic finger assembly. One embodiment includes a metacarpophalangeal (MCP) pivot configured for swivelable attachment to a hand of a user, a distal coupler, and an articulation assembly rotatively coupled therebetween. A multiple-finger ring configured to receive a user's residual finger and at least one adjacent finger is disposed upon the articulation assembly, and may be adjusted to a target location based on a length of the residual finger. The articulation assembly is configured to utilize vertical movements of the residual and/or adjacent finger(s) within the multiple-finger ring to articulate the distal coupler within a plane parallel to an x-z plane, and the MCP pivot is configured to utilize lateral movements of the residual finger within the ring to articulate the distal coupler within a plane parallel to an x-y plane. Other embodiments are also disclosed.",
"claims": [
"1. A method of biomechanically operating a bidirectional prosthetic finger having a metacarpophalangeal (MCP) pivot, a distal coupler, and an adjustable articulation assembly rotatively coupled between the MCP pivot and the distal coupler, the adjustable articulation assembly including a multiple-finger ring configured to receive a residual finger and at least one adjacent finger of a user's hand, the multiple-finger ring comprising two abutting rings, the method comprising: assessing a length of the residual finger; adjusting the multiple-finger ring to a target location along the adjustable articulation assembly, the target location based on the length of the residual finger; securing the multiple-finger ring at the target location; sliding the prosthetic finger onto the residual finger and the at least one adjacent finger such that the multiple-finger ring encircles the residual finger and the at least one adjacent finger and the MCP pivot aligns with an MCP joint of the user; moving the multiple-finger ring vertically, thereby causing the adjustable articulation assembly together with the distal coupler to articulate within a plane parallel to an x-z plane and about one or more axes parallel to a y axis in a manner that emulates a finger's natural articulation; and moving the multiple-finger ring laterally, thereby causing the MCP pivot to rotate about an axis parallel to a z axis within a plane parallel to an x-y plane, such that the articulation assembly together with the distal coupler abduct away from a midline of the hand and adduct toward the midline of the hand.",
"2. The method of claim 1, wherein: the step of moving the multiple-finger ring vertically comprises moving one of the residual finger and the at least one adjacent finger; and the step of moving the multiple-finger ring laterally comprises moving one of the residual finger and the at least one adjacent finger.",
"3. The method of claim 1, wherein the adjustable articulation assembly further comprises an adjustable ring tendon having a longitudinal adjustment mechanism with a proximal end and a distal end, the target location disposed therebetween.",
"4. The method of claim 3, wherein the adjustable articulation assembly further comprises: a proximal coupler; and a distal rocker, wherein the proximal coupler and the distal rocker are rotatively suspended between a proximal coordinated pivot point anchored upon the adjustable ring tendon and a distal coordinated pivot point anchored upon the distal coupler.",
"5. The method of claim 3, wherein the adjustable articulation assembly further comprises: a proximal coupler extending between the distal coupler and the adjustable ring tendon, the proximal coupler having a distal end and a proximal end, wherein: the distal end of the proximal coupler is rotatively coupled with the distal coupler via a first hinged connection; the proximal end of the proximal coupler is rotatively coupled with the adjustable ring tendon via a third hinged connection; and the first and the third hinged connections define a midline relative to a z axis; and a distal rocker extending between the distal coupler and the adjustable ring tendon, the distal rocker having a distal end and a proximal end, wherein: the distal end of the distal rocker is rotatively coupled with the distal coupler via a second hinged connection located below the midline; and the proximal end of the distal rocker is rotatively coupled with the adjustable ring tendon via a fourth hinged connection located above the midline.",
"6. The method of claim 3, wherein the adjusting the multiple-finger ring to the target location comprises adjusting the multiple-finger ring to a location between the proximal and distal ends of the longitudinal adjustment mechanism that causes the MCP pivot to align with an MCP joint of the user when the multiple-finger ring is anchored about the residual finger and the at least one adjacent finger.",
"7. The method of claim 3, wherein the longitudinal adjustment mechanism of the adjustable ring tendon comprises a retention ridge configured to engage with a clamp portion of the multiple-finger ring.",
"8. A method of biomechanically operating a bidirectional prosthetic finger having a metacarpophalangeal (MCP) pivot, a distal coupler, and an articulation assembly rotatively coupled between the MCP pivot and the distal coupler, the articulation assembly including a multiple-finger ring configured to receive and retain a residual finger and at least one adjacent finger of a user, the method comprising: assessing a length of the residual finger; adjusting the multiple-finger ring to a target location along the adjustable articulation assembly, the target location based on the length of the residual finger; securing the multiple-finger ring at the target location; sliding the prosthetic finger onto the residual finger and the at least one adjacent finger such that the multiple-finger ring encircles the residual finger and the at least one adjacent finger and the MCP pivot aligns with an MCP joint of the user on a dorsal side of a hand of the user; moving the multiple-finger ring vertically, thereby causing the adjustable articulation assembly together with the distal coupler to articulate within a plane parallel to an x-z plane and about one or more axes parallel to a y axis in a manner that emulates a finger's natural articulation; and moving the multiple-finger ring laterally, thereby causing the MCP pivot to rotate about an axis parallel to a z axis within a plane parallel to an x-y plane, such that the articulation assembly together with the distal coupler abduct away from a midline of the hand and adduct toward the midline of the hand.",
"9. The method of claim 8, wherein the multiple-finger ring comprises two abutting rings.",
"10. The method of claim 8, wherein the articulation assembly further comprises: an adjustable ring tendon having a distal end, a proximal end, and a longitudinal adjustment mechanism disposed therebetween, the proximal end rotatively coupled with the MCP pivot, the multiple-finger ring selectively disposed upon the adjustable ring tendon at a target location along the longitudinal adjustment mechanism; a proximal coupler; and a distal rocker, wherein the proximal coupler and the distal rocker are rotatively suspended between a proximal coordinated pivot point anchored upon the adjustable ring tendon and a distal coordinated pivot point anchored upon the distal coupler.",
"11. The method of claim 10, wherein the articulation assembly further comprises a proximal rocker having a distal end and a proximal end, the distal end of the proximal rocker pivotally attached to the proximal coupler and the proximal end of the proximal rocker pivotally attached to the MCP pivot.",
"12. The method of claim 10, wherein the adjusting the multiple-finger ring to the target location comprises adjusting the multiple-finger ring to a location between the proximal and the distal ends of the longitudinal adjustment mechanism that causes the MCP pivot to align with the MCP joint of the user when the multiple-finger ring is anchored about the residual finger and the at least one adjacent finger.",
"13. The method of claim 10, wherein the longitudinal adjustment mechanism of the adjustable ring tendon comprises a retention ridge configured to engage with a clamp portion of the multiple-finger ring.",
"14. The method of claim 10, wherein: the distal coordinated pivot point comprises a first hinged connection between the proximal coupler and the distal coupler and a second hinged connection between the distal rocker and the distal coupler; and the proximal coordinated pivot point comprises a third hinged connection between the proximal coupler and the adjustable ring tendon and a fourth hinged connection between the distal rocker and the adjustable ring tendon.",
"15. The method of claim 14, wherein: the first hinged connection and the third hinged connection define a midline relative to the z axis; the second hinged connection is located below the midline; and the fourth hinged connection is located above the midline, such that a relative rotational motion between the adjustable ring tendon and the distal rocker causes a relative rotational motion between the proximal coupler and the distal coupler to emulate a finger's natural articulation within the plane parallel to the x-z plane.",
"16. A method of biomechanically operating a bidirectional prosthetic finger, the prosthetic finger comprising: a distal coupler; a metacarpophalangeal (MCP) pivot for attachment to a hand of a user, the MCP pivot having an articulation joint configured to rotate the MCP pivot relative to a hand within a plane parallel to an x-y plane and about an axis parallel to a z axis; and an articulation assembly rotatively coupled between the MCP pivot and the distal coupler, the articulation assembly configured to articulate relative to the hand within a plane parallel to an x-z plane and about one or more axes parallel to a y axis, the articulation assembly comprising: a multiple-finger ring configured to anchor onto a residual finger and at least one adjacent finger of the user; a proximal coupler rotatively coupled with the distal coupler via a first hinged connection; an adjustable ring tendon having a proximal end and a distal end that is rotatively coupled with the proximal coupler via a third hinged connection, the multiple-finger ring disposed upon the adjustable ring tendon and slidably adjustable between the proximal and the distal ends of the adjustable ring tendon; and a distal rocker extending between the distal coupler and the adjustable ring tendon, the distal rocker having a distal end and a proximal end, wherein: the first and the third hinged connections define a midline relative to the z axis; the distal end of the distal rocker rotatively couples with the distal coupler via a second hinged connection located below the midline; and the proximal end of the distal rocker rotatively couples with the adjustable ring tendon via a fourth hinged connection located above the midline, the method comprising: assessing a length of the residual finger; adjusting the multiple-finger ring to a target location along the adjustable ring tendon, the target location based on the length of the residual finger; securing the multiple-finger ring at the target location; and sliding the prosthetic finger onto the residual finger and the at least one adjacent finger such that the multiple-finger ring encircles the residual finger and the at least one adjacent finger and the MCP pivot aligns with an MCP joint of the user.",
"17. The method of claim 16, further comprising: moving the multiple-finger ring vertically, thereby causing the adjustable articulation assembly together with the distal coupler to articulate within a plane parallel to an x-z plane and about one or more axes parallel to a y axis in a manner that emulates a finger's natural articulation; and moving the multiple-finger ring laterally, thereby causing the MCP pivot to rotate about an axis parallel to a z axis within a plane parallel to an x-y plane, such that the articulation assembly together with the distal coupler abduct away from a midline of the hand and adduct toward the midline of the hand.",
"18. The method of claim 16, wherein the proximal coupler and the distal rocker lack a direct connection.",
"19. The method of claim 16, wherein the adjusting the multiple-finger ring to the target location along the adjustable ring tendon comprises adjusting a longitudinal adjustment mechanism to the target location between the proximal end and the distal end of the adjustable ring tendon.",
"20. The method of claim 16, wherein the multiple-finger ring comprises two abutting rings."
],
"description_excerpt": "The application is a divisional of U.S. patent application Ser. No. 15/460,718, filed Mar. 16, 2017 by Robert Thompson Jr., Jon Bengtsson, Anthony Charles Peto, Sydney Tye Minnis, Eric Dennis Klumper, and Bradley Arthur Crittenden for “BIDIRECTIONAL BIOMECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ABDUCTION AND ADDUCTION WITH MCP PIVOT AND MULTIPLE-FINGER RING,” which is a continuation of U.S. patent application Ser. No. 15/155,875, filed May 16, 2016 by Robert Thompson Jr., Jon Bengtsson, Anthony Charles Peto, Sydney Tye Minnis, Eric Dennis Klumper, and Bradley Arthur Crittenden for “BIDIRECTIONAL BIOMECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ABDUCTION AND ADDUCTION WITH MCP PIVOT AND MULTIPLE-FINGER RING,” which claims the benefit under 35 U.S.C. 119 (e) of U.S. Provisional Patent Application Nos. 62/162,524, filed May 15, 2015 by Robert Thompson and Jon Bengtsson for “BIO-MECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ARTICULATION WITH A DOUBLE RING,” 62/162,516, filed May 15, 2015 by Jon Bengtsson and Robert Thompson for “BIO-MECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ABDUCTION AND ADDUCTION WITH MCP PIVOT,” and 62/209,836, filed Aug. 25, 2015 by Robert Thompson JR., Jon Bengtsson, Anthony Charles Peto, Sydney Tye Minnis, Eric Dennis Klumper, and Bradley Arthur Crittenden for “BIO-MECHANICAL PROSTHETIC FULL FINGER CONFIGURED FOR ABDUCTION AND ADDUCTION WITH MCP PIVOT,” all of which patent applications are hereby incorporated herein by reference.\n\nIf a person loses finger mobility, finger functionality, or all or a segment of his or her physical finger, the result is impaired performance of the hand.",
"cpc": [
"A61F 2/586",
"A61F 2/78",
"A61F 2002/5001",
"A61F 2002/5038",
"A61F 2002/6872",
"A61F 2002/7856",
"A61F 2002/7862"
],
"ipc": [
"A61F 2/58",
"A61F 2/78",
"A61F 2/54"
],
"assignees": [
"RCM Enterprise LLC"
],
"inventors": [
"Robert Thompson, JR.",
"Jon Bengtsson",
"Anthony Charles Peto",
"Sydney Tye Minnis",
"Eric Dennis Klumper",
"Bradley Arthur Crittenden"
],
"filing_date": "2019-03-22",
"publication_date": "2020-11-24",
"grant_date": "2020-11-24",
"priority_date": "2015-05-15",
"application_number": "US-201916361560-A",
"family_id": "57320472",
"cited_by_count": 1,
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}
Record 1,887 of 8,000 in Patents full text (MLC-0201). Request the full dataset.