IP Library Granted Patent US 11,213,417
Granted Patent B2
US 11,213,417 · App. 16/708,122 · Granted Jan 4, 2022

Lower-leg exoskeleton system and method

Inventors: Brenton Piercy (San Francisco, CA); Tim Swift (Albany, CA); Giancarlo Nucci (San Francisco, CA); Callum Lamb (San Bruno, CA); Pete Lynn (Oakland, CA); Saul Griffith (San Francisco, CA); Leanne Luce (San Francisco, CA)
Assignee: ROAM ROBOTICS INC.
A61F5/0127A43B13/20A61F2/60A61F2/70A61H1/0266A61H3/00A61F2/74A61F2002/501A61F2005/0155A61H2003/007A61H2201/0103A61H2201/1238A61H2201/1409A61H2201/165A61H2201/5007A61H2201/5061A61H2201/5069A61H2205/106A61H2205/12A61H2230/207A61H2230/30A61H2230/50A61H2230/60
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Quick Facts
Patent No.
US 11,213,417
App. No.
16/708,122
Filed
Dec 9, 2019
Granted
Jan 4, 2022
Kind
B2
Art Unit
3785
USPC
601/32
Abstract

A lower-leg exoskeleton that includes an inflatable actuator configured to be worn over a front portion of a leg of a user and configured to be disposed directly adjacent to and surrounding a joint of the leg of the user. The inflatable actuator is configured, when worn by the user, to receive and transmit an actuator load generated by the inflatable actuator around the joint of the user to a load contact point. Inflation of the inflatable actuator generates a moment about the joint of the user to cause flexion of the leg of the user.

Claims (52)

1. A lower-leg exoskeleton comprising:

an inflatable actuator that is configured to be worn over a front portion of a foot of a user and configured to be disposed directly adjacent to and surrounding an ankle of the foot of the user; and

a rigid foot structure coupled to a first actuator end of the inflatable actuator, configured to surround a portion of the foot of the user, wherein the rigid foot structure comprises:

a pair of sidewalls configured to extend around the foot of the user and including first and second sidewall attachment points for connecting to a base portion, and

a base portion configured to reside at a base of the foot of the user that includes first and second base attachment points coupling with the first and second sidewall attachment points; and

wherein, the inflatable actuator and rigid foot structure are configured to, when worn by the user, receive and transmit an actuator load generated by the inflatable actuator around the foot of the user to a load contact point of the lower-leg exoskeleton configured to be disposed at a bottom of the foot of the user defined by the rigid foot structure and forward of a heel of the user; and

wherein inflation of the inflatable actuator generates a moment about the ankle of the user to cause flexion of the foot of the user.

2. The lower-leg exoskeleton of claim 1 , wherein the inflatable actuator is generally C-shaped and configured to be disposed directly adjacent to and surround the ankle of the foot of the user including a front of the ankle and peripheral sides of the ankle.

3. The lower-leg exoskeleton of claim 1 , wherein the inflatable actuator is operably coupled with a fluidic system and is configured to be inflated by the fluidic system to generate the moment about the ankle of the user to cause flexion of the foot of the user.

4. The lower-leg exoskeleton of claim 1 , wherein the inflatable actuator comprises a plurality of stacked bladder segments, the bladder segments stacked in horizontal rows disposed perpendicular to an axis of rotation of the ankle of the user.

5. A lower-leg exoskeleton comprising:

an inflatable actuator that is configured to be worn over a front portion of a foot of a user and configured to be disposed directly adjacent to and surrounding an ankle of the foot of the user; and

a rigid foot structure coupled to a first actuator end of the inflatable actuator, configured to surround a portion of the foot of the user,

wherein, the inflatable actuator and rigid foot structure are configured to, when worn by the user, receive and transmit an actuator load generated by the inflatable actuator around the foot of the user to a load contact point of the lower-leg exoskeleton configured to be disposed at a bottom of the foot of the user defined by the rigid foot structure and forward of a heel of the user;

wherein the rigid foot structure comprises a pair of sidewalls configured to extend around the foot of the user and including first and second sidewall attachment points for connecting to a base portion; and

wherein inflation of the inflatable actuator generates a moment about the ankle of the user to cause flexion of the foot of the user.

6. The lower-leg exoskeleton of claim 5 , wherein the inflatable actuator comprises a plurality of stacked bladder segments, the bladder segments stacked in horizontal rows disposed perpendicular to an axis of rotation of the ankle of the user.

7. A lower-leg exoskeleton comprising:

an inflatable actuator that is configured to be worn over a front portion of a foot of a user and configured to be disposed directly adjacent to and surrounding an ankle of the foot of the user; and

a rigid foot structure coupled to a first actuator end of the inflatable actuator, configured to surround a portion of the foot of the user,

wherein, the inflatable actuator and rigid foot structure are configured to, when worn by the user, receive and transmit an actuator load generated by the inflatable actuator around the foot of the user to a load contact point of the lower-leg exoskeleton configured to be disposed at a bottom of the foot of the user defined by the rigid foot structure and forward of a heel of the user;

wherein inflation of the inflatable actuator generates a moment about the ankle of the user to cause flexion of the foot of the user; and

wherein the rigid foot structure comprises a base portion configured to reside at a base of the foot of the user that includes first and second base attachment points coupling with first and second sidewall attachment points.

8. A lower-leg exoskeleton comprising:

an inflatable actuator that is configured to be worn over a front portion of a foot of a user and configured to be disposed directly adjacent to and surrounding an ankle of the foot of the user; and

a rigid foot structure coupled to a first actuator end of the inflatable actuator, configured to surround a portion of the foot of the user,

wherein, the inflatable actuator and rigid foot structure are configured to, when worn by the user, receive and transmit an actuator load generated by the inflatable actuator around the foot of the user to a load contact point of the lower-leg exoskeleton configured to be disposed at a bottom of the foot of the user defined by the rigid foot structure and forward of a heel of the user;

wherein inflation of the inflatable actuator generates a moment about the ankle of the user to cause flexion of the foot of the user; and

wherein the inflatable actuator is generally C-shaped and configured to be disposed directly adjacent to and surround the ankle of the foot of the user including a front of the ankle and peripheral sides of the ankle.

9. A lower-leg exoskeleton comprising:

an inflatable actuator configured to be worn over a front portion of a leg of a user and configured to be disposed directly adjacent to and surrounding a joint of the leg of the user,

wherein the inflatable actuator is configured to, when worn by the user, receive and transmit an actuator load generated by the inflatable actuator around the joint of the user to a load contact point of the lower-leg exoskeleton;

wherein the inflatable actuator is generally C-shaped and configured to be disposed directly adjacent to and surround an ankle of a foot of the user including a front of the ankle and peripheral sides of the ankle; and

wherein inflation of the inflatable actuator generates a moment about the joint of the user to cause flexion of the leg of the user.

10. The lower-leg exoskeleton of claim 9 , wherein the load contact point is configured to be disposed at a bottom of the foot of the leg of the user.

11. The lower-leg exoskeleton of claim 9 , wherein the load contact point is configured to be disposed at the foot of the user and defined by a rigid foot structure, the load contact point is configured to be disposed forward of a heel of the user.

12. The lower-leg exoskeleton of claim 9 , wherein the joint is an ankle of the foot of the user.

13. The lower-leg exoskeleton of claim 9 , wherein the lower-leg exoskeleton further comprises a rigid structure coupled to a first actuator end of the inflatable actuator, the rigid structure configured to surround a portion of the user.

14. The lower-leg exoskeleton of claim 9 , wherein the inflatable actuator comprises a plurality of stacked bladder segments, the bladder segments stacked in horizontal rows disposed perpendicular to an axis of rotation of the ankle of the user.

15. The lower-leg exoskeleton of claim 9 , wherein the inflatable actuator is operably coupled with a fluidic system and is configured to be inflated by the fluidic system to generate the moment about the ankle of the user to cause flexion of the foot of the user.

16. A lower-leg exoskeleton comprising:

an inflatable actuator configured to be worn over a front portion of a leg of a user and configured to be disposed directly adjacent to and surrounding a joint of the leg of the user,

wherein the inflatable actuator is configured to, when worn by the user, receive and transmit an actuator load generated by the inflatable actuator around the joint of the user to a load contact point of the lower-leg exoskeleton;

wherein inflation of the inflatable actuator generates a moment about the joint of the user to cause flexion of the leg of the user;

wherein the lower-leg exoskeleton further comprises a rigid structure coupled to a first actuator end of the inflatable actuator, the rigid structure configured to surround a portion of the joint of the user; and

wherein the rigid structure comprises one or more sidewalls configured to extend around a foot of the user and including at least one sidewall attachment point for connecting to a base portion.

17. A lower-leg exoskeleton comprising:

an inflatable actuator configured to be worn over a front portion of a leg of a user and configured to be disposed directly adjacent to and surrounding a joint of the leg of the user,

wherein the inflatable actuator is configured to, when worn by the user, receive and transmit an actuator load generated by the inflatable actuator around the joint of the user to a load contact point of the lower-leg exoskeleton;

wherein inflation of the inflatable actuator generates a moment about the joint of the user to cause flexion of the leg of the user;

wherein the lower-leg exoskeleton further comprises a rigid structure coupled to a first actuator end of the inflatable actuator, the rigid structure configured to surround a portion of the joint of the user; and

wherein the rigid structure comprises a base portion configured to reside at a base of a foot of the user that includes one or more base attachment points that couple with one or more sidewall attachment points.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2021
From: LYNN, PETE; GRIFFITH, SAUL; NUCCI, GIANCARLO; SWIFT, TIM; PIERCY, BRENTON; LUCE, LEANNE; LAMB, CALLUM
To: OTHER LAB, LLC
Reel/Frame 057079/0263 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2021
From: OTHER LAB, LLC
To: ROAM ROBOTICS INC.
Reel/Frame 057079/0569 →
Continuity (3)
Continuation 15082824 · Mar 28, 2016
Provisional Application 62139184 · Mar 27, 2015
Related Publication 20200138604A1 · May 7, 2020
Cited By (12)
US 12,251,355 US 12,251,826 US 12,324,780 US 12,377,010 US 12,454,047 US 12,466,060 US 12,508,185 US 12,514,775 US 12,515,358 US 12,521,296 US 12,703,079 US 12,703,116