Patent · US12287253B2 · B2 · US
Force sensing device
- (11) Publication number
- US12287253B2
- (21) Application number
- 17/797,067
- (22) Filing date
- 2021-02-24
- (30) Priority date
- 2020-02-27
- (43) Publication date
- 2025-04-29
- (45) Date of grant
- 2025-04-29
- (51) IPC
- B25J 13/08; B25J 15/00; B25J 15/02; G01L 5/00; G01L 5/16; G01L 5/22
- (52) CPC
- (73) Assignee
- Dyson Technology Ltd
- (72) Inventors
- Edoardo FARNIOLI; Iain William Philip HAUGHTON
- (54) Title
- Force sensing device
- (57) Abstract
A force sensing device for use in a robotic finger including: a first segment, the first segment having a first joint at a first end thereof; a second segment, the second segment being connected to the first segment by a second joint; and a third segment, the third segment being connected to the second segment by a third joint; and torque sensor for sensing the torque at each of the joints when a force is applied to the third segment. The first, second and third joints are disposed within the same plane and are disposed in a triangular arrangement.
- Full text
- View on Google Patents
Claims (13)
- A force sensing device for use in a robotic finger comprising: a first segment, the first segment having a first joint at a first end thereof, wherein the first segment is sized and shaped to be operably fixed to a distal end of a base segment of a phalanx at the first joint; a second segment, the second segment being connected to the first segment by a second joint; and a third segment, the third segment being connected to the second segment by a third joint; a first channel disposed between the first segment and the base segment, a second channel disposed between the second segment and the first segment, and a third channel disposed between the third segment and the second segment; and a torque sensing means for sensing the torque at each of the joints when a force is applied to the third segment, wherein the torque sensing means comprises a torque sensor respectively disposed in the channels, wherein the corresponding joint is disposed at an opposite end of the channels from the torque sensor; wherein the first, second and third joints are disposed within a same plane and are disposed in a triangular arrangement.
- The force sensing device as claimed in claim 1, wherein the torque sensing means comprises an output for outputting torque data for the three joints to a control unit.
- The force sensing device as claimed in claim 1, wherein points of connection of the first, second and third joints are disposed within the same plane, axes of rotation for the respective first, second and third joints are parallel to each other and are perpendicular to the plane, and the points of connection of the first, second and third joints are disposed in a triangular arrangement in the plane, the torque sensing means comprises torque sensors associated with each of the first, second and third joints.
- The force sensing device as claimed in claim 3, wherein each torque sensor comprises a force sensor.
- The force sensing device as claimed in claim 1, wherein the first joint is rotatable.
- The force sensing device as claimed in claim 1, wherein at least a portion of the third segment is arranged to covers over at least some of both of the other segments.
- The force sensing device, as claimed in claim 1, wherein the third segment is surrounded by a cover which is arranged to extend over the first and second segments, the cover being separated from the first and second segments by an air gap.
- The force sensing device as claimed in claim 1, comprising torque sensing means at a fourth joint, the fourth joint being located outside of the plane of in which the first, second and third joints are disposed.
- A method of determining force components of a contact force acting on the force sensing device according to claim 1, the method comprising: measuring the torque at each of the joints of the force sensing device when an object merely contacts a surface of the third segment of the force sensing device at a contact point; determining from the torque measurements the location of the contact point and the force components of the contact force.
- The method as claimed in claim 9, further comprising: defining the contact point for the contact force relative to one of the joints in the triangular arrangement of joints within the force sensing device; defining the torque at each joint in terms of the force components of the contact force, dimensions of the triangular arrangement of joints in the force sensing device and the contact point of the contact force.
- The method as claimed in claim 10, wherein the force components comprise the force component normal to the surface of the third segment at the contact point and the force component tangential to the surface of the third segment at the contact point.
- A robot comprising the force sensing device according to claim 1.
- The force sensing device as claimed in claim 1, wherein the base segment of the phalanx, the first segment, the second segment, and the third segment all substantially align along a same longitudinal axis.
Description
The present invention relates to a force sensing device. Aspects of the invention relate to a force sensing device, a method of determining force components of a contact force acting on a force sensing device, to a robot gripper comprising a force sensing device and to a robot comprising a robot gripper.
Robot devices comprising robotic hands and gripper arrangements (which may also be referred to herein as robot or robotic grippers) are known in industries such as the manufacturing industry. It is often a key capability of such robot devices that they are able to manipulate a range of objects.
The contact force arising from the interaction between the robotic gripper and an object may be determined by placing sensors within a fingertip of a robotic gripper. However, such arrangements are limited in that they may either be complex (requiring a large number of force sensors to be deployed in the contact surface of the gripper) or only able to determine the normal component of the contact force acting on the robotic gripper.
It is an object of the present invention to provide a robot gripper that mitigates or substantially mitigates the above problems.
Citations (19)
- US3948093A
- JPS526575A
- JPS5947185A
- US4921396A
- US4628745A
- JPH01316193A
- JPH06335886A
- JP2007245326A
- US20100071222A1
- US20100077867A1
- US20100138039A1
- US20110068595A1
- US20120239195A1
- US20140035306A1
- CN102363301A
- US20180215054A1
- US20180243928A1
- US20180029221A1
- US20210394362A1
Record as JSON
{
"publication_number": "US12287253B2",
"country": "US",
"kind": "B2",
"title": "Force sensing device",
"abstract": "A force sensing device for use in a robotic finger including: a first segment, the first segment having a first joint at a first end thereof; a second segment, the second segment being connected to the first segment by a second joint; and a third segment, the third segment being connected to the second segment by a third joint; and torque sensor for sensing the torque at each of the joints when a force is applied to the third segment. The first, second and third joints are disposed within the same plane and are disposed in a triangular arrangement.",
"claims": [
"1. A force sensing device for use in a robotic finger comprising: a first segment, the first segment having a first joint at a first end thereof, wherein the first segment is sized and shaped to be operably fixed to a distal end of a base segment of a phalanx at the first joint; a second segment, the second segment being connected to the first segment by a second joint; and a third segment, the third segment being connected to the second segment by a third joint; a first channel disposed between the first segment and the base segment, a second channel disposed between the second segment and the first segment, and a third channel disposed between the third segment and the second segment; and a torque sensing means for sensing the torque at each of the joints when a force is applied to the third segment, wherein the torque sensing means comprises a torque sensor respectively disposed in the channels, wherein the corresponding joint is disposed at an opposite end of the channels from the torque sensor; wherein the first, second and third joints are disposed within a same plane and are disposed in a triangular arrangement.",
"2. The force sensing device as claimed in claim 1, wherein the torque sensing means comprises an output for outputting torque data for the three joints to a control unit.",
"3. The force sensing device as claimed in claim 1, wherein points of connection of the first, second and third joints are disposed within the same plane, axes of rotation for the respective first, second and third joints are parallel to each other and are perpendicular to the plane, and the points of connection of the first, second and third joints are disposed in a triangular arrangement in the plane, the torque sensing means comprises torque sensors associated with each of the first, second and third joints.",
"4. The force sensing device as claimed in claim 3, wherein each torque sensor comprises a force sensor.",
"5. The force sensing device as claimed in claim 1, wherein the first joint is rotatable.",
"6. The force sensing device as claimed in claim 1, wherein at least a portion of the third segment is arranged to covers over at least some of both of the other segments.",
"7. The force sensing device, as claimed in claim 1, wherein the third segment is surrounded by a cover which is arranged to extend over the first and second segments, the cover being separated from the first and second segments by an air gap.",
"8. The force sensing device as claimed in claim 1, comprising torque sensing means at a fourth joint, the fourth joint being located outside of the plane of in which the first, second and third joints are disposed.",
"9. A method of determining force components of a contact force acting on the force sensing device according to claim 1, the method comprising: measuring the torque at each of the joints of the force sensing device when an object merely contacts a surface of the third segment of the force sensing device at a contact point; determining from the torque measurements the location of the contact point and the force components of the contact force.",
"10. The method as claimed in claim 9, further comprising: defining the contact point for the contact force relative to one of the joints in the triangular arrangement of joints within the force sensing device; defining the torque at each joint in terms of the force components of the contact force, dimensions of the triangular arrangement of joints in the force sensing device and the contact point of the contact force.",
"11. The method as claimed in claim 10, wherein the force components comprise the force component normal to the surface of the third segment at the contact point and the force component tangential to the surface of the third segment at the contact point.",
"12. A robot comprising the force sensing device according to claim 1.",
"13. The force sensing device as claimed in claim 1, wherein the base segment of the phalanx, the first segment, the second segment, and the third segment all substantially align along a same longitudinal axis."
],
"description_excerpt": "The present invention relates to a force sensing device. Aspects of the invention relate to a force sensing device, a method of determining force components of a contact force acting on a force sensing device, to a robot gripper comprising a force sensing device and to a robot comprising a robot gripper.\n\nRobot devices comprising robotic hands and gripper arrangements (which may also be referred to herein as robot or robotic grippers) are known in industries such as the manufacturing industry. It is often a key capability of such robot devices that they are able to manipulate a range of objects.\n\nThe contact force arising from the interaction between the robotic gripper and an object may be determined by placing sensors within a fingertip of a robotic gripper. However, such arrangements are limited in that they may either be complex (requiring a large number of force sensors to be deployed in the contact surface of the gripper) or only able to determine the normal component of the contact force acting on the robotic gripper.\n\nIt is an object of the present invention to provide a robot gripper that mitigates or substantially mitigates the above problems.",
"cpc": [
"G01L 5/226",
"B25J 13/081",
"B25J 13/085",
"B25J 15/0009",
"B25J 15/02",
"B25J 15/0206",
"G01L 3/14",
"G01L 5/16"
],
"ipc": [
"B25J 13/08",
"B25J 15/00",
"B25J 15/02",
"G01L 5/00",
"G01L 5/16",
"G01L 5/22"
],
"assignees": [
"Dyson Technology Ltd"
],
"inventors": [
"Edoardo FARNIOLI",
"Iain William Philip HAUGHTON"
],
"filing_date": "2021-02-24",
"publication_date": "2025-04-29",
"grant_date": "2025-04-29",
"priority_date": "2020-02-27",
"application_number": "US-202117797067-A",
"family_id": "70278541",
"cited_by_count": 0,
"citations": [
"US3948093A",
"JPS526575A",
"JPS5947185A",
"US4921396A",
"US4628745A",
"JPH01316193A",
"JPH06335886A",
"JP2007245326A",
"US20100071222A1",
"US20100077867A1",
"US20100138039A1",
"US20110068595A1",
"US20120239195A1",
"US20140035306A1",
"CN102363301A",
"US20180215054A1",
"US20180243928A1",
"US20180029221A1",
"US20210394362A1"
]
}
Record 203 of 8,000 in Patents full text (MLC-0201). Request the full dataset.