IP Library › Granted Patent US 12,708,998
Granted Patent B2
US 12,708,998 · App. 19/018,885 · Granted Aug 18, 2026

Robotic manipulator having at least one spring compensated joint

Inventors: Nicholas Paine (Austin, TX); Jonas Alexan Fox (Austin, TX); Bradley Aaron Resh (Austin, TX)
Assignee: Apptronik, Inc.
B25J9/1005B25J9/06B25J9/1065B25J9/126B25J13/085B25J19/0016F16H21/44B25J15/00
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Quick Facts
Patent No.
US 12,708,998
App. No.
19/018,885
Filed
Jan 13, 2025
Granted
Aug 18, 2026
Kind
B2
Art Unit
3656
USPC
700/258
Abstract

A robotic manipulator comprises a plurality of spring compensated joints, each including a four-bar linkage mechanism, a gravity compensating spring, a spring adjustment mechanism, a spring adjustment actuator and an inertial actuator. The gravity compensating spring is coupled between two links of the four-bar linkage mechanism at two different spring attachment points to provide a lifting force opposing a gravitational load force. The spring adjustment mechanism is coupled to alter a position of one of the spring attachment points. The spring adjustment actuator is coupled to move the spring adjustment mechanism to alter the position of the spring attachment point and adjust the amount of lifting force provided by the spring. The inertial actuator is coupled between links of the four-bar linkage mechanism to effectuate rotational movement of the four-bar linkage mechanism and apply an adjustable amount of force to accelerate and manipulate a payload handled by the robotic manipulator.

Claims (49)

1 . A system, comprising:

a four-bar linkage including a primary link arranged apart from a secondary link, and a first side link arranged apart from a second side link, the first and second side links coupled between the primary and secondary links at distal ends thereof to define a polygon;

at least one gravity compensating spring coupled to the polygon, the at least one gravity compensating spring diagonally coupled within the polygon of the four-bar linkage between a first attachment point on the secondary link and a second attachment point on the first side link, the second attachment point positioned diagonally from the first attachment point;

a spring adjustment assembly coupled to one end of the at least one gravity compensating spring and configured to adjust a position of at least one of the first attachment point or the second attachment point of the at least one gravity compensating spring;

a sensor configured to measure a force or a torque of a payload coupled to the four-bar linkage; and

a feedback controller configured to use an output of the sensor to alter at least one of the first attachment point or the second attachment point of the at least one gravity compensating spring and dynamically adjust a lifting force in response to the force or torque of the payload.

2 . The system of claim 1 , comprising a spring adjustment actuator configured to move the spring adjustment assembly to alter the position of at least one of the first attachment point or the second attachment point of the at least one gravity compensating spring and dynamically alter an amount of gravity compensating torque applied by the at least one gravity compensating spring in response to a change in the weight or force of the payload.

3 . The system of claim 2 , further comprising an inertial actuator coupled diagonally between the secondary link and the first side link, the inertial actuator configured to effectuate rotational movement of the four-bar linkage and apply an adjustable amount of force to accelerate and manipulate the payload.

4 . The system of claim 1 , wherein the spring adjustment assembly comprises a slider configured to adjust the position of the second attachment point of the at least one gravity compensating spring by translating the second attachment point of the at least one gravity compensating spring along an axis substantially parallel to the first side link.

5 . The system of claim 1 , wherein the spring adjustment assembly comprises a slider configured to adjust the position of the first attachment point of the at least one gravity compensating spring by translating the first attachment point of the at least one gravity compensating spring along an axis substantially parallel to the secondary link.

6 . The system of claim 5 , wherein the slider is configured to enable the first attachment point of the at least one gravity compensating spring to translate along an axis not parallel to an axis extending through the first side link.

7 . The system of claim 1 , comprising an inertial actuator configured to couple between links of the four-bar linkage and to effectuate rotational movement of the four-bar linkage and apply an adjustable amount of force to accelerate and manipulate the payload.

8 . The system of claim 7 , wherein the inertial actuator is a prismatic linear actuator configured to couple angularly between the secondary link and the first side link of the four-bar linkage.

9 . The system of claim 7 , wherein the inertial actuator is a rotational actuator comprising a stator and a rotor, and the stator is configured to couple to the first side link and the rotor is configured to couple to the secondary link.

10 . The system of claim 7 , wherein the inertial actuator is a rotational actuator comprising a stator and a rotor, and the stator is configured to couple to the secondary link and the rotor is configured to couple to the first side link.

11 . The system of claim 7 , wherein the inertial actuator is a prismatic linear actuator configured to couple to the primary link so that a longitudinal axis of the inertial actuator is parallel with the primary link.

12 . The system of claim 11 , comprising a slider crank assembly configured to couple between one end of the inertial actuator and the first side link and convert linear motion into rotational motion.

13 . The system of claim 12 , wherein the four-bar linkage comprises a first four-bar linkage, the system comprising a slider crank assembly and a second four-bar linkage configured to couple between the inertial actuator and one or more links of the first four-bar linkage, the slider crank assembly and the second four-bar linkage configured to convert linear motion into rotational motion.

14 . A robotic manipulator, comprising:

at least one spring compensated joint, comprising:

a four-bar linkage including a primary link arranged apart from a secondary link, and a first side link arranged apart from a second side link, the first and second side links coupled between the primary and secondary links at distal ends thereof to define a polygon;

at least one gravity compensating spring coupled to the polygon, the at least one gravity compensating spring diagonally coupled within the polygon of the four-bar linkage between a first attachment point on the secondary link and a second attachment point on the first side link, the second attachment point positioned diagonally from the first attachment point; and

a spring adjustment assembly coupled to one end of the at least one gravity compensating spring and configured to adjust a position of at least one of the first attachment point or the second attachment point of the at least one gravity compensating spring;

a sensor configured to measure a force or a torque of a payload coupled to the four-bar linkage; and

a feedback controller configured to use an output of the sensor to alter at least one of the first attachment point or the second attachment point of the at least one gravity compensating spring and dynamically adjust a lifting force in response to the force or torque of the payload.

15 . The robotic manipulator of claim 14 , comprising a spring adjustment actuator configured to move the spring adjustment assembly to alter the position of at least one of the first attachment point or the second attachment point of the at least one gravity compensating spring and adjust the lifting force.

16 . The robotic manipulator of claim 14 , wherein the spring adjustment assembly comprises:

a lead screw positioned adjacent and parallel to the first side link; and

a slider configured to couple to the lead screw and to the one end of the at least one gravity compensating spring.

17 . The robotic manipulator of claim 16 , wherein the spring adjustment actuator is configured to couple to the lead screw and configured to adjust the position of the second attachment point of the at least one gravity compensating spring by translating the lead screw along an axis that is parallel to the first side link.

18 . The robotic manipulator of claim 14 , wherein the feedback controller is configured to dynamically adjust the lifting force in real-time to compensate for gravitational load forces on one or more dynamically varying payload.

19 . The robotic manipulator of claim 14 , wherein the at least one spring compensated joint further comprises an inertial actuator configured to couple between links of the four-bar linkage and to effectuate rotational movement of the four-bar linkage and apply an adjustable amount of force to accelerate and manipulate the payload.

20 . The robotic manipulator of claim 19 , wherein the inertial actuator is a prismatic linear actuator configured to couple to the primary link so that a longitudinal axis of the inertial actuator is parallel with the primary link.

21 . The robotic manipulator of claim 20 , wherein the at least one spring compensated joint comprises a slider crank assembly and a Hoeken's linkage configured to couple between the inertial actuator and one or more links of the four-bar linkage, the slider crank assembly and the Hoeken's linkage configured to convert linear motion into rotational motion.

22 . The robotic manipulator of claim 14 , wherein the at least one spring compensated joint includes a first spring compensated joint and a second spring compensated joint.

23 . The robotic manipulator of claim 22 , comprising a first yaw actuator, a second yaw actuator, a third yaw actuator, wherein:

the first yaw actuator is configured to couple to mechanical ground;

the first spring compensated joint is configured to couple between the first yaw actuator and the second yaw actuator; and

the second spring compensated joint is configured to couple between the second yaw actuator and the third yaw actuator.

24 . The robotic manipulator of claim 23 , comprising a pitch actuator configured to couple to the third yaw actuator, a roll actuator configured to couple to the pitch actuator and an end effector configured to couple to the roll actuator.

25 . The robotic manipulator of claim 22 , comprising a first yaw actuator, a second yaw actuator, a serial chain of actuators, and an end effector, wherein:

the first yaw actuator is configured to couple to mechanical ground;

the first spring compensated joint is configured to couple between the first yaw actuator and the second yaw actuator;

the second spring compensated joint is configured to couple between the second yaw actuator and the serial chain of actuators; and

the serial chain of actuators is configured to couple to the end effector.

26 . The robotic manipulator of claim 25 , wherein the serial chain of actuators comprises:

a first actuator configured to couple to one end of the second spring compensated joint and to rotate the end effector about a tilted axis;

a second actuator configured to couple to the first actuator and to rotate the end effector up and down; and

a third actuator configured to couple to the second actuator and to rotate the end effector side-to-side.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 6, 2025
From: PAINE, NICHOLAS; FOX, JONAS ALEXAN; RESH, BRADLEY AARON
To: APPTRONIK, INC.
Reel/Frame 070132/0917 →
Continuity (4)
Continuation 18330706 · Jun 7, 2023
Continuation 17290554 · Oct 30, 2019
Provisional Application 62752802 · Oct 30, 2018
Related Publication 20250187173A1 · Jun 12, 2025
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