IP Library Granted Patent US 11,278,433
Granted Patent B2
US 11,278,433 · App. 16/182,298 · Granted Mar 22, 2022

Powered ankle-foot prosthesis

Inventors: Hugh M. Herr (Somerville, MA); Jeff A. Weber (San Francisco, CA); Kwok Wai Samuel Au (Mountain View, CA); Bruce Wayne Deffenbaugh (Honolulu, HI); Lee Harris Magnusson (San Francisco, CA); Andreas G. Hofmann (East Boston, MA); Benjamin B. Aisen (New York, NY)
Assignee: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
A61F2/6607A61F2/60A61F2/68B25J19/0008A61F2/605A61F2/64A61F2002/503A61F2002/5004A61F2002/5033A61F2002/5075A61F2002/6818A61F2002/701A61F2002/704A61F2002/764A61F2002/7625A61F2002/7635A61F2002/7645
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Quick Facts
Patent No.
US 11,278,433
App. No.
16/182,298
Granted
Mar 22, 2022
Kind
B2
Abstract

A powered ankle-foot prosthesis, capable of providing human-like power at terminal stance that increase amputees metabolic walking economy compared to a conventional passive-elastic prosthesis. The powered prosthesis comprises a unidirectional spring, configured in parallel with a force-controllable actuator with series elasticity. The prosthesis is controlled to deliver the high mechanical power and net positive work observed in normal human walking.

Claims (35)

1. An artificial ankle-foot device for an orthosis, prosthesis or exoskeleton, comprising:

a) a first member and a second member that are connected for movement relative to one another and thereby define an ankle joint;

b) an ankle actuator linked between the first and second members, the actuator including

i) a motor,

ii) a transmission, and

iii) a series spring in series with the motor,

iv) wherein the transmission is non-backdriveable;

c) at least one of

i) a joint position sensor,

ii) a motor position sensor, and

iii) an inertial measurement unit (IMU);

d) a processor communicatively linked to the ankle actuator and the at least one sensor, the processor configured to receive sensory information from the at least one sensor, wherein the processor controls the motor to adjust the ankle joint spring equilibrium position during the swing phase of a gait cycle to improve ankle-foot device function during the subsequent stance phase, wherein once the ankle joint spring equilibrium position has been adjusted during the swing phase, the motor turns off to conserve power-supply energy during the subsequent stance period.

2. The ankle-foot device of claim 1 , wherein the processor adapts the ankle joint spring equilibrium position to environmental conditions.

3. The ankle-foot device of claim 2 , wherein the environmental conditions include walking speed and surface terrain.

4. The ankle-foot device of claim 1 , wherein the at least one sensor includes the IMU, and wherein accelerations measured using the IMU are integrated with the processor after subtracting the acceleration component of gravity to estimate linear positions of the ankle-foot device.

5. The ankle-foot device of claim 4 , wherein the estimated linear positions are used to detect stair ascent and descent, and ramp ascent and descent patterns, and based on these gait patterns the processor adjusts ankle joint spring equilibrium position to improve ankle function.

6. The ankle-foot device of claim 1 , wherein the first member is a composite foot and the second member is a spring housing.

7. An artificial ankle-foot device for an orthosis, prosthesis or exoskeleton, comprising:

a) a first member and a second member that are connected for movement relative to one another and thereby define an ankle joint;

b) an ankle actuator linked between the first and second members, the actuator including

i) a motor,

ii) a transmission, and

iii) a series spring,

iv) wherein the transmission is non-backdriveable;

c) at least one sensor including an inertial measurement unit (IMU);

d) a processor communicatively linked to the ankle actuator and the at least one sensor, the processor configured to receive sensory information from the at least one sensor, wherein the processor controls the ankle joint spring equilibrium position during the swing phase of a gait cycle to improve ankle-foot device function during the subsequent stance phase, wherein accelerations measured using the IMU are integrated with the processor after subtracting the acceleration component of gravity to estimate linear positions of the ankle-foot device, the estimated linear positions being used to detect stair ascent and descent, and ramp ascent and descent patterns, and based on these gait patterns the processor adjusting ankle joint spring equilibrium position to improve ankle function.

8. An artificial ankle-foot device for an orthosis, prosthesis or exoskeleton, comprising:

a) a first member and a second member that are connected for movement relative to one another and thereby define an ankle joint;

b) an ankle actuator linked between the first and second members, the actuator including

i) a motor,

ii) a transmission, and

iii) a series spring in series with the motor,

iv) wherein the transmission is non-backdriveable;

c) at least one sensor including an inertial measurement unit (IMU); and

d) a processor communicatively linked to the ankle actuator and the at least one sensor, the processor configured to receive sensory information from the at least one sensor, wherein the processor controls the motor to adjust the ankle joint spring equilibrium position during the swing phase of a gait cycle to improve ankle-foot device function during the subsequent stance phase, wherein accelerations measured using the IMU are integrated with the processor after subtracting the acceleration component of gravity to estimate linear positions of the ankle-foot device.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2018
From: HERR, HUGH M.; AU, KWOK WAI SAMUEL; DEFFENBAUGH, BRUCE WAYNE; MAGNUSSON, LEE HARRIS; HOFMANN, ANDREAS G.; AISEN, BENJAMIN B.; WEBER, JEFF A.
To: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
Reel/Frame 047427/0217 →
Continuity (9)
Continuation 13970094 · Aug 19, 2013
Continuation 12157727 · Jun 12, 2008
Continuation In Part 11642993 · Dec 19, 2006
Continuation In Part 11495140 · Jul 29, 2006
Continuation In Part 11395448 · Mar 31, 2006
Provisional Application 60934223 · Jun 12, 2007
Provisional Application 60704517 · Aug 1, 2005
Provisional Application 60666876 · Mar 31, 2005
Related Publication 20190175365A1 · Jun 13, 2019
Cited By (2)
US 12,236,339 US 12,280,499