IP Library Granted Patent US 12,415,266
Granted Patent B2
US 12,415,266 · App. 18/884,277 · Granted Sep 16, 2025

Articulated robot, method for controlling articulated robot, robot system, and method for manufacturing object

Inventors: Tomohide Handa (Tokyo, JP); Shinichi Inada (Tokyo, JP); Ryo Tanaka (Tokyo, JP)
Assignees: LAUREL BANK MACHINES CO., LTD.; LAUREL PRECISION CO., LTD.
B25J9/041
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Quick Facts
Patent No.
US 12,415,266
App. No.
18/884,277
Granted
Sep 16, 2025
Kind
B2
Abstract

An articulated robot includes a base; an end section; a plurality of links including a first link and a second link and connecting the base and the end section to each other; a first driving mechanism connecting the first link and the second link to each other and configured to rotate the second link about an axis as a first rotation axis relative to the first link, the axis as the first rotation axis forming an angle greater than a predetermined angle with a first direction in which the first link extends; a first moving mechanism configured to move the first driving mechanism relative to the first link along the first direction; and a second moving mechanism configured to move the second link relative to the first driving mechanism along a second direction in which the second link extends.

Claims (120)

1. An articulated robot comprising:

a base;

an end section;

a plurality of link structures including a first link structure and a second link structure and connecting the base and the end section to each other;

a first rotary joint that connects the first link structure to the second link structure and rotates the second link structure about a first rotation axis that forms a first angle greater than a threshold angle with a first direction in which the first link structure extends;

a first prismatic joint that moves the first rotary joint relative to the first link structure along the first direction;

a second prismatic joint that moves the second link structure relative to the first rotary joint along a second direction in which the second link structure extends;

a second rotary joint that rotates at least a portion of the base about a second rotation axis, the axis that forms a second angle with a direction perpendicular to a bottom of the base, the second angle being equal to or less than the threshold angle;

a third rotary joint that connects the base to the first link structure and rotates the first link structure about a third rotation axis that forms a third angle with the direction perpendicular to the bottom of the base, the third angle being greater than the threshold angle; and

a fourth rotary joint that connects the second link structure to the end section and rotates the end section relative to the second link structure;

a first motor that drives the first rotary joint;

a second motor that drives the first prismatic joint; and

a third motor that drives the second prismatic joint,

the first prismatic joint includes:

a first screw that extends in the first direction and rotates along the first direction in association with rotation of the second motor; and

a first nut that is connected to the first rotary joint, into which the first screw is inserted, the first screw and the first nut operating together to move the first rotary joint relative to the first link structure along the first direction,

the second prismatic joint includes:

a second screw that extends in the second direction and rotates along the second direction association with rotation of the third motor; and

a second nut that is connected to the first rotary joint, into which the second screw is inserted, the second screw and the second nut operating together to move the second link structure along the second direction in which the second link structure extends,

the first rotary joint moves relative to the first link structure with a movement of the first nut, and

the second link structure moves relative to the first rotary joint with a movement of the second nut.

2. The articulated robot according to claim 1 , wherein:

the fourth rotary joint rotates the end section relative to the second link structure about an axis as a fourth rotation axis, the axis as the fourth rotation axis forming an angle greater than the predetermined angle with the second direction, and

the end section includes:

a first portion connected to the second link structure;

a second portion connected to the first portion;

a fifth rotary joint connecting the first portion and the second portion to each other, the fifth rotary joint rotating the second portion relative to the first portion about an axis as a fifth rotation axis, the axis as the fifth rotation axis forming an angle greater than the predetermined angle with the fourth rotation axis; and

a sixth rotary joint that rotates a portion of the end section, to which an end effector is attached, about an axis as a sixth rotation axis, the axis as the sixth rotation axis forming an angle greater than the predetermined angle with the fifth rotation axis.

3. The articulated robot according to claim 1 , wherein:

the fourth rotary joint rotates the end section relative to the second link structure about an axis as a fourth rotation axis, the axis as the fourth rotation axis forming an angle equal to or less than the predetermined angle with the second direction, and

the end section includes:

a first portion connected to the second link structure;

a second portion connected to the first portion;

a fifth rotary joint connecting the first portion and the second portion to each other, the fifth rotary joint rotating the second portion relative to the first portion about an axis as a fifth rotation axis, the axis as the fifth rotation axis forming an angle greater than the predetermined angle with the fourth rotation axis; and

a sixth rotary joint that rotates a portion of the end section, to which an end effector is attached, about an axis as a sixth rotation axis, the axis as the sixth rotation axis forming an angle greater than the predetermined angle with the fifth rotation axis.

4. The articulated robot according to claim 1 , wherein:

the first link structure and the second link structure are transferred to a first state, and

the first state is a state in which:

the first rotation axis is located closer to a first end of two ends of the first link structure, wherein the first end is an end closer to the base than to a second end of the two ends of the first link structure that is farther from the base; and

the first rotation axis is located closer to a first end of two ends of the second link structure, wherein the first end is an end closer to the end section than to a second end of the two ends of the second link structure that is farther from the end section.

5. The articulated robot according to claim 1 , wherein:

the first link structure and the second link structure are transferred to a second state, and

the second state is a state in which:

the first direction and the second direction are parallel to the second rotation axis; and

an end of two ends of the second link structure that is farther from the end section is located closer to a first end of two ends of the first link structure, wherein the first end is an end closer to the base than to a second end of the two ends of the first link structure that is farther from the base.

6. A method for controlling an articulated robot according to claim 1 , wherein a controller includes a memory storing a control program, and a processor that accesses the memory and executes the control program to cause the processor to control operations of the articulated robot controls the first motor, the second motor, and the third motor to control operations of the articulated robot.

7. A robot system comprising:

an articulated robot according to claim 1 ;

an end effector attached to the end section; and

a controller that includes a memory storing a control program, and a processor that access the memory and executes the control program to cause the one or more processor to control operations of the articulated robot and the end effector,

wherein the controller controls the first motor, the second motor, and the third motor to control the operations of the articulated robot.

8. A method for manufacturing an object by a robot system including an articulated robot comprising:

a base;

an end section;

a plurality of link structures including a first link structure and a second link structure and connecting the base and the end section to each other;

a first rotary joint that connects the first link structure to the second link structure and rotates the second link structure about a first rotation axis that forms a first angle greater than a threshold angle with a first direction in which the first link structure extends;

a first prismatic joint that moves the first rotary joint relative to the first link structure along the first direction;

a second prismatic joint that moves the second link structure relative to the first rotary joint along a second direction in which the second link structure extends;

a second rotary joint that rotates at least a portion of the base about a second rotation axis, the axis that forms a second angle with a direction perpendicular to a bottom of the base, the second angle being equal to or less than the threshold angle;

a third rotary joint that connects the base to the first link structure and rotates the first link structure about a third rotation axis that forms a third angle with the direction perpendicular to the bottom of the base, the third angle being greater than the threshold angle;

a fourth rotary joint that connects the second link structure to the end section and rotates the end section relative to the second link structure;

a first motor that drives the first rotary joint;

a second motor that drives the first prismatic joint;

a third motor that drives the second prismatic joint,

wherein the first prismatic joint includes:

a first screw that extends in the first direction and rotates along the first direction in association with rotation of the second motor; and

a first nut that is connected to the first rotary joint, into which the first screw is inserted, the first screw and the first nut operating together to move the first rotary joint relative to the first link structure along the first direction,

wherein the second prismatic joint includes:

a second screw that extends in the second direction and rotates along the second direction association with rotation of the third motor; and

a second nut that is connected to the first rotary joint, into which the second screw is inserted, the second screw and the second nut operating together to move the second link structure along the second direction in which the second link structure extends,

wherein the first rotary joint moves relative to the first link structure with a movement of the first nut, and

wherein the second link structure moves relative to the first rotary joint with a movement of the second nut;

an end effector attached to the end section; and

a controller that includes a memory storing a control program, and a processor that access the memory and executes the control program to cause the processor to control the first motor, the second motor, and the third motor to control operations of the articulated robot and the end effector,

the method comprising:

controlling, by the controller, the first motor, the second motor, and the third motor to control the articulated robot and the end effector to engage the object in order to assemble or remove a component of the object.

9. A robot system comprising:

the articulated robot according to claim 1 ;

an end effector attached to the end section; and

a controller that includes a memory storing a control program, and a processor that access the memory and executes the control program to cause the one or more processor to control operations of the articulated robot and the end effector,

wherein the controller controls a position of the end effector.

10. The articulated robot according to claim 1 , wherein the first prismatic joint is disposed inside the first link structure; and

a second prismatic joint is disposed inside the second link structure.

11. An articulated robot comprising:

a base;

an end section;

a plurality of link structures including a first link structure and a second link structure, the plurality of link structures connecting the base and the end section to each other;

a first rotary joint that connects the first link structure to the second link structure and rotates the second link structure relative to the first link structure about a first rotation axis that forms a first angle greater than a threshold angle with a first direction in which the first link structure extends;

a first prismatic joint that moves the first rotary joint relative to the first link structure along the first direction;

a second prismatic joint that moves the second link structure relative to the first rotary joint along a second direction in which the second link structure extends;

a second rotary joint that rotates at least a portion of the base about a second rotation axis that forms a second angle equal to or less than the threshold angle with a direction perpendicular to a bottom of the base; and

a third rotary joint that connects the base to the first link structure and rotates the first link structure about a third rotation axis that forms a third angle greater than the threshold angle with the direction perpendicular to the bottom of the base,

a fourth rotary joint that connects the second link structure to the end section and rotates the end section relative to the second link structure;

a first motor that drives the first rotary joint;

a second motor that drives the first prismatic joint; and

a third motor that drives the second prismatic joint,

the first prismatic joint includes:

a first screw that extends in the first direction and rotates along the first direction in association with rotation of the second motor; and

a first nut that is connected to the first rotary joint, into which the first screw is inserted, the first screw and the first nut operating together to move the first rotary joint relative to the first link structure along the first direction,

the second prismatic joint includes:

a second screw that extends in the second direction and rotates along the second direction association with rotation of the third motor; and

a second nut that is connected to the first rotary joint, into which the second screw is inserted, the second screw and the second nut operating together to move the second link structure along the second direction in which the second link structure extends,

the first rotary joint moves relative to the first link structure with a movement of the first nut, and

the second link structure moves relative to the first rotary joint with a movement of the second nut,

wherein a direction along the first rotation axis and a direction along the third rotation axis cross at a first angle equal to or greater than the threshold angle in plan view from the first direction.

12. The articulated robot according to claim 11 , wherein the first angle is substantially 90 degrees.

13. The articulated robot according to claim 12 , wherein:

the fourth rotary joint rotates the end section relative to the second link structure about a fourth rotation axis that forms a fourth angle greater than the threshold angle with the second direction, and

the end section includes:

a first portion connected to the second link structure,

a second portion connected to the first portion;

a fifth rotary joint that connects the first portion to the second portion and rotates the second portion relative to the first portion about a fifth rotation axis that forms a fifth angle greater than the threshold angle with the fourth rotation axis; and

a sixth rotary joint that rotates a portion of the end section, to which an end effector is attached, about a sixth rotation axis that forms a sixth angle greater than the threshold angle with the fifth rotation axis.

14. The articulated robot according to claim 12 , wherein:

the fourth rotary joint rotates the end section relative to the second link structure about a fourth rotation axis that forms a fourth angle equal to or less than the threshold angle with the second direction, and

the end section includes:

a first portion connected to the second link structure;

a second portion connected to the first portion;

a fifth rotary joint that connects the first portion to the second portion and rotates the second portion relative to the first portion about a fifth rotation angle that forms a fifth angle greater than the threshold angle with the fourth rotation axis; and

a sixth rotary joint that rotates a portion of the end section, to which an end effector is attached, about a sixth rotation axis that forms a sixth angle greater than the threshold angle with the fifth rotation axis.

Assignments (3)
CHANGE OF NAME Recorded Jun 20, 2025
From: LAUREL PRECISION MACHINES CO., LTD.,
To: LAUREL PRECISION CO., LTD
Reel/Frame 071461/0439 →
MERGER Recorded Jun 12, 2025
From: LAUREL MACHINERY CO., LTD.
To: LAUREL PRECISION MACHINES CO., LTD.
Reel/Frame 071398/0370 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 17, 2024
From: HANDA, TOMOHIDE; INADA, SHINICHI; TANAKA, RYO
To: LAUREL BANK MACHINES CO., LTD.; LAUREL MACHINERY CO., LTD.; LAUREL PRECISION MACHINES CO., LTD.
Reel/Frame 068612/0137 →
Continuity (2)
Continuation PCTJP2023029628 · Aug 16, 2023
Related Publication 20250001590A1 · Jan 2, 2025
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