PROSTHETIC DISTAL FORCE MEASUREMENT DEVICE
20170354367 · 2017-12-14
Assignee
Inventors
- Aldo A. Laghi (Clearwater, FL, US)
- Eric Prast (St. Petersburg, FL, US)
- Kevin McLoone (Dunedin, FL, US)
Cpc classification
A61F2002/7635
HUMAN NECESSITIES
A61F2/7812
HUMAN NECESSITIES
A61F2/76
HUMAN NECESSITIES
International classification
A61B5/00
HUMAN NECESSITIES
A61F2/78
HUMAN NECESSITIES
Abstract
The following invention is a device for measuring the force applied by the residual limb of an amputee to the distal region of a socket. The device has an upper surface with a “force sensor measuring region” that maintains a central location on the upper surface of the DFMD. The DFMD is affixed to the inside surface of the distal most area of the socket and maintains a permanent location of the “force sensor measuring region” of the device. Regardless of physical characteristics or changes to the socket, liner, socks, proper or improper placement of the limb into the socket, the consistent location of the “force sensor measuring region” on the DFMD provides congruent force data as it relates to the force applied by the socket to the distal area of the residual limb. The data collected by the DFMD is processed and modified by a software algorithm into meaningful data for the user and/or medical professional. Applicable uses for the data relate to the fit of the socket, limb volume management strategy, and vacuum suspension efficacy.
Claims
1. A prosthesis assembly comprising: a prosthetic socket having an open proximal end and a closed distal end, said socket having an tubular-shaped interior surface extending along a longitudinal axis thereof and configured to surround a residual limb of an amputated leg of an amputee when worn, said socket having a lower interior surface within said closed distal end; a prosthetic liner comprising an interior surface configured to engage the residual limb when worn by the amputee and an exterior surface having a first section adapted to engage said upper tubular-shaped surface of said socket when worn by the amputee and a second section spaced from said interior surface of said closed distal end of said socket when worn by the amputee thereby defining a volume there between; at least one force sensor affixed to a sensor mounting plate having a diameter mounted within said lower interior surface of said prosthetic socket aligned with said longitudinal axis of said prosthetic socket and in proximity to said lower interior surface of said prosthetic socket for measuring forces against said prosthetic socket created by a downward movement of the residual limb of said amputee when wearing said prosthesis and for electronically transmitting data indicative of said measured force; a processor for electronically receiving said data from said at least one force sensor; a transceiver module electrically communicating with said processor for wirelessly transmitting said data from said processor to a remote data processing computer; and a power source electrically connected to said at least one force sensor, said processor and said transceiver module for powering the same.
2. The prosthesis assembly as claimed in claim 1, wherein said at least one force sensor, processor, transceiver module, and power source are removably mounted.
3. The prosthesis assembly of claim 1, wherein said at least one force sensor. processor, transceiver module, and power source are mechanically coupled.
4. The prosthesis assembly of claim 1, wherein said at least one force sensor is separated from said processor, transceiver module, and power source.
5. The prosthesis assembly of claim 1, wherein said at least one sensor comprises a concave upper surface, a force sensor having a sensor measuring region, a protective coating, and a circuitry enclosure.
6. The prosthesis assembly of claim 5, wherein the circuitry enclosure houses the processor, transceiver module, and power source.
7. The prosthesis assembly of claim 1, wherein said at least one sensor mounting plate comprises a force sensor, a concentric sensor enclosure comprising an upper peripheral edge, a concave upper surface, an upper surface sensor membrane, a sensor measuring central axis, a sensor measuring region collinear with the sensor measuring central axis, and a processing enclosure comprising a circuitry enclosure and coupler and connected to the sensor enclosure by a detachable wire.
8. The prosthesis assembly of claim 7, wherein said sensor measuring region is concentric to the upper peripheral edge.
9. The prosthesis assembly of claim 7, wherein said sensor measuring region is directly above the force sensor.
10. The prosthesis assembly of claim 7, wherein said circuitry enclosure houses the processor, transceiver module, and power source.
11. The prosthesis assembly of claim 7, wherein said coupler is a clamp.
12. The prosthesis assembly of claim 7, wherein said upper surface sensor membrane comprises silicone, polyurethane, copolymer, or block copolymer.
13. The prosthesis assembly of claim 12, wherein said upper surface sensor membrane is between 0.5 mm and 2.0 mm thick above the sensor.
14. The prosthesis assembly of claim 13, wherein said upper surface sensor membrane has a durometer greater than 70 Shore A.
15. The prosthesis assembly of claim 12, wherein said upper surface sensor membrane is between 3.0 mm and 25.0 mm thick above the sensor.
16. The prosthesis assembly of claim 15, wherein said upper surface sensor membrane has a durometer less than 65 Shore A.
17. The prosthesis assembly of claim 12, wherein said concave upper surface sensor membrane has a diameter between 50 and 600 percent of the sensor mounting plate diameter.
18. A prosthesis assembly comprising: a prosthetic socket having an open proximal end and a closed distal end; a prosthetic liner comprising an interior surface configured to engage a residual limb of an amputee and an exterior surface having a first section adapted to engage the prosthetic socket; at least one force sensor affixed to a sensor mounting plate mounted within said lower interior surface of said prosthetic socket; a processor for electronically receiving said data from said at least one force sensor; a transceiver module electrically communicating with said processor for wirelessly transmitting said data from said processor to a remote data processing computer; and a power source electrically connected to said at least one force sensor, said processor and said transceiver module for powering the same.
19. The prosthesis assembly of claim 18, wherein said prosthetic socket further comprises an upper tubular-shaped interior surface extending along a longitudinal axis thereof and configured to surround the residual limb an amputee when worn, said prosthetic socket having a lower interior surface within said closed distal end.
20. The prosthesis assembly of claim 19, wherein said at least one force sensor is offset from said longitudinal axis of said prosthetic socket and in proximity to said lower interior surface of said prosthetic socket for sensing forces against said prosthetic socket created by a downward movement of the residual limb of said amputee when wearing said prosthesis and for electronically transmitting data indicative of said measured force.
21. The prosthesis assembly of claim 18, wherein said at least one sensor, processor, transceiver module, and power source are removably mounted.
22. The prosthesis assembly of claim 18, wherein said at least one force sensor, processor, transceiver module, and power source are secured to each other.
23. The prosthesis assembly of claim 18, wherein said at least one force sensor is separated from said processor, transceiver module, and power source.
24. The prosthesis assembly of claim 18, wherein said at least one sensor comprises a concave upper surface, a force sensor having a sensor measuring region, a protective coating, and a circuitry enclosure.
25. The prosthesis assembly of claim 24, wherein the circuitry enclosure houses the processor, transceiver module, and power source.
26. The prosthesis assembly of claim 18, wherein said at least one sensor comprises a force sensor, a sensor enclosure comprising an upper peripheral edge, a concave upper surface, an upper surface sensor membrane, a sensor measuring central axis, a sensor measuring region collinear with the sensor measuring central axis, and a processing enclosure comprising a circuitry enclosure and coupler and connected to the sensor enclosure by a detachable wire.
27. The prosthesis assembly of claim 26, wherein said sensor measuring region is concentric to the upper peripheral edge.
28. The prosthesis assembly of claim 26, wherein said sensor measuring region is directly above the force sensor.
29. The prosthesis assembly of claim 26, wherein said circuitry enclosure houses the processor, transceiver module, and power source.
30. The prosthesis assembly of claim 26, wherein said coupler is a clamp.
31. The prosthesis assembly of claim 26, wherein said upper surface sensor membrane comprises silicone, polyurethane, copolymer, block copolymer, plastic, silicone, or fabric.
32. The prosthesis assembly of claim 31, wherein said upper surface sensor membrane is between 0.5 mm and 2.0 mm thick above the sensor.
33. The prosthesis assembly of claim 31, wherein said upper surface sensor membrane is between 3.0 mm and 25.0 mm thick above the sensor.
34. The prosthesis assembly of claim 31, wherein said upper surface sensor membrane has a diameter between 50 and 600 percent of the sensor mounting plate diameter.
35. A prosthesis assembly comprising: a prosthetic socket having an open proximal end and a closed distal end, said socket having an tubular-shaped interior surface extending along an axis thereof and configured to surround a residual limb of an amputated leg of an amputee when worn, said socket having a lower interior surface within said closed distal end; a prosthetic liner comprising an interior surface configured to engage the residual limb when worn by the amputee and an exterior surface having a first section adapted to engage said upper tubular-shaped surface of said socket when worn by the amputee and a second section spaced from said interior surface of said closed distal end of said socket when worn by the amputee thereby defining a volume therebetween; at least one force sensor affixed to a sensor mounting plate having a diameter mounted within said lower interior surface of said prosthetic socket aligned with said axis of said prosthetic socket and in proximity to said lower interior surface of said prosthetic socket for sensing forces against said prosthetic socket created by a downward movement of the residual limb of said amputee when wearing said prosthesis and for electronically transmitting data indicative of said measured force; a processor electronically communicating with said at least one force sensor for electronically receiving said data from said at least one force sensor; a transceiver module electrically communicating with said processor for wireless electronically transmitting said data from said transceiver module to a remote data processing computer; and a power source electrically connected to said at least one force sensor, said processor and said transceiver module for powering the same.
36. The prosthesis assembly of claim 35, wherein said axis is offset from a central point in the lower interior surface of said prosthetic socket.
37. The prosthesis assembly as claimed in claim 35, wherein said at least one force sensor, processor, transceiver module, and power source are removably mounted.
38. The prosthesis assembly of claim 35, wherein said at least one force sensor, processor, transceiver module, and power source are mechanically coupled.
39. The prosthesis assembly of claim 35, wherein said at least one force sensor is separated from said processor, transceiver module, and power source.
40. The prosthesis assembly of claim 35, wherein said at least one sensor comprises a concave upper surface, a force sensor having a sensor measuring region, a protective coating, and a circuitry enclosure.
41. The prosthesis assembly of claim 40, wherein the circuitry enclosure houses the processor, transceiver module, and power source.
42. The prosthesis assembly of claim 35, wherein said at least one sensor mounting plate comprises a force sensor, a concentric sensor enclosure comprising an upper peripheral edge, a concave upper surface, an upper surface sensor membrane, a sensor measuring axis, a sensor measuring region collinear with the sensor measuring axis, and a processing enclosure comprising a circuitry enclosure and coupler and connected to the sensor enclosure by a detachable wire.
43. The prosthesis assembly of claim 42, wherein said sensor measuring region is directly above the force sensor.
44. The prosthesis assembly of claim 42, wherein said circuitry enclosure houses the processor, transceiver module, and power source.
45. The prosthesis assembly of claim 42, wherein said coupler is a clamp.
46. The prosthesis assembly of claim 42, wherein said upper surface sensor membrane comprises silicone, polyurethane, copolymer, or block copolymer.
47. The prosthesis assembly of claim 46, wherein said upper surface sensor membrane is between 0.5 mm and 2.0 mm thick above the sensor.
48. The prosthesis assembly of claim 47, wherein said upper surface sensor membrane has a durometer greater than 70 Shore A.
49. The prosthesis assembly of claim 46, wherein said upper surface sensor membrane is between 3.0 mm and 25.0 mm thick above the sensor.
50. The prosthesis assembly of claim 49, wherein said upper surface sensor membrane has a durometer less than 65 Shore A.
51. The prosthesis assembly of claim 46, wherein said upper surface sensor membrane has a diameter between 50 and 600 percent of the sensor mounting plate diameter
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] For a more complete understanding of the present disclosure and its advantages, reference is now made to the following descriptions, taken in conjunction with the accompanying drawings, in which:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041] Similar reference numerals refer to similar parts throughout the several views of the drawings.
DETAILED DESCRIPTION OF THE DRAWINGS
[0042] The various components of the present invention, and the manner in which they interrelate, are described in greater detail hereinafter.
[0043] Referring to
[0044] The present invention's insert 4 is not limited for use with any particular prosthetic liner and socket arrangement. The embodiment of
[0045] The insert 4 is made of a thermoplastic elastomeric material, preferably gel materials, for example by injection molding techniques, such as silicone, copolymer Styrenic gels, polyurethane, block copolymers or other TPE elastomers. A wide variety of thermoplastic materials that could be used to manufacture the present invention are disclosed in U.S. Pat. No. 5,633,286, incorporated herein by reference.
[0046] The force sensor 5 is comprised of an ultra-thin flexible force sensing element used to measure a relative change in force or applied load. It may be used for measuring rate of change and identifying force thresholds to trigger an appropriate action. The sensor may be also used as a means of switching a device on therefore detecting presence, contact, and/or touch. The device used in this design is a durable piezoresistive force sensor created in various shapes and sizes tailored to the gel apparatus. The resistance measured is inversely proportional to the applied force. One type of force sensor is the FlexiForce® sensor manufactured and patented by Tekscan, this type of sensor provides a linear force measurement ±3% and can withstand high temperature environments up to 400° F. (HT201). The FlexiForce® sensor can measure up to 100 lbs or force with <5 microseconds response time. The sensor 5 is connected through pins to a flexible conductive fabric, thread, or elastic bonded wire 6 which carries the signal to a receiver/transmitter microcontroller 7. The force sensor cables may also contain a resistor or resistive device to provide a ground reference to the controller.
[0047] The receiver/transmitter microcontroller 7 receives data from the force sensor 5 and relays such data via Bluetooth technology 29 to an external electronic device such as a personal computer 30 or cell phone 31 as illustrated in
[0048] One of the main advantages of this RF module and other types are the ultra-low power sleep mode that provides efficient battery use while asleep. The module will maintain a heartbeat looking for a control signal to wake up and transmit data again. The receiving data may be processed, saved, cataloged, and displayed to the end user. The EEDS may be a hand-held electronic device or software application, the software is designed to be compatible with Android, iOS, or other major smart-phone device operating systems. The software application is an integral component of the system. The software is necessary in order to record a historical trend of the patients fit as well as perform sensor calibration. The EEDS can be also used by the clinician to provide feedback on the socket fit. The software also allows the ability to set how many data-points per day, and generate a report and send it through email. The EEDs also has the ability to alert the patient of low battery levels in the device.
[0049] The battery 9 is a power supply of the PSBL type and may be lithium ion, lithium polymer, lithium iron phosphate, nickel-cadmium, or any rechargeable battery source. A single supply is used with an on-board voltage regulator to power 1.8V, 3.3V, and 5V levels. The cells may be configured in a single or multiple parallel, series, or similar layout.
[0050] As a wearable device, battery life, energy density, accessibility, and rechargeable capabilities are essential. In the first embodiment, the force sensor, electronic circuitry and batter are adhered to each by adhesive layers 10a and 10b and full embedded within the elastomeric material 4 during the molding process. Thus, the entire unit may be disposable or, if not, may include a conventional recharging circuit (not shown) by plugging in the apparatus through a charging port. In the second and third embodiments illustrated in
[0051] All of the embodiments disclosed herein could be molded in various sizes to fit different size sockets or could be custom fitted to the distal interior surface of a prosthetic socket that may be in use by the user.
[0052] Referring to
[0053] Referring to
[0054] Referring to
[0055] Referring to
[0056] Referring to
[0057] In
[0058] Referring to
[0059] Illustrated in
[0060] The next component of an assembly common to the present invention is a sock 36 or prosthetic sock. These are common within the market place and typically are of knit construction using synthetic fibers. Common thicknesses available for prosthetic socks are 1, 3, and 5 ply. Due to the knit construction, and to facilitate donning and doffing, prosthetic socks are capable of stretch in the vertical and horizontal direction in excess of 40 percent. Illustrated is a singular prosthetic sock but it should be noted that an assembly utilizing the present invention may be comprised of a plurality of prosthetic socks that may differ in sock plys. The prosthetic sock is donned over the outside surface of the liner such that the inside surface of the sock interfaces with the outside surface of the liner. The outside surface of the sock interfaces with the inside surface of the socket. It should be noted that in an assembly comprising a plurality of socks the outermost sock would have an outer surface in contact with the socket. Said socket then attached to various mechanical devices including a prosthetic foot. The socket, prosthetic foot, and all related mechanical components there between represent what is considered the prosthesis 37.
[0061] The present invention is a prosthetic distal force measurement device (“DFMD”) 38 for measuring the distal force between the socket and residual limb of an amputee that is affixed to the distal most inside surface of the socket.
[0062]
[0063]
[0064]
[0065]
[0066]
[0067] The processor enclosure and the sensor enclosure are coupled by a wire 60. The wire may be detachable from either the processor enclosure or the sensor enclosure via any commonly used detachable electronic connector. In this configuration the wire that connects the two enclosures is preferably routed through an aperture in the socket. Many alternatives exist such as routing the wire along the outside of the socket, over the upper peripheral socket edge, along the inside socket surface, and to the sensor enclosure.
[0068] The illustration in
[0069] The invention has been described in terms of various embodiments. It will be appreciated by those skilled in the art that various changes and modifications may be made to the embodiments without departing from the spirit or scope of the invention. It is not intended that the invention be limited to the embodiment shown and described. It is intended that the invention include all foreseeable modifications to the embodiments shown and described. It is intended that the invention be limited in scope only by the claims appended thereto.