Patent · US10363164B2 · B2 · US
Tool and tool system having independent axial and transverse force sensing
- (11) Publication number
- US10363164B2
- (21) Application number
- 15/234,896
- (22) Filing date
- 2016-08-11
- (30) Priority date
- 2015-08-11
- (43) Publication date
- 2019-07-30
- (45) Date of grant
- 2019-07-30
- (51) IPC
- A61B 34/20; A61B 34/30; A61B 90/00; A61F 9/00; A61F 9/007; B25J 13/08; B25J 9/02; G01L 1/24
- (52) CPC
- A61F Filters implantable into blood vessels; prostheses; devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents; orthopaedic, nursing or contraceptive devices; fomentation; treatment or protection of eyes or ears; bandages, dressings or absorbent pads; first-aid kits: 9/00727, 9/0017, 9/007
- A61B Diagnosis; surgery; identification: 2034/2051, 2090/064, 34/30
- B25J Manipulators; chambers provided with manipulation devices: 13/085, 9/023
- G01L Measuring force, stress, torque, work, mechanical power, mechanical efficiency, or fluid pressure: 1/246
- (73) Assignee
- Johns Hopkins University
- (72) Inventors
- Xingchi He; Iulian Iordachita; Russell H. Taylor; James T. Handa; Peter L. Gehlbach
- (54) Title
- Tool and tool system having independent axial and transverse force sensing
- (57) Abstract
A force-sensing tool includes a tool shaft that has a proximal end and a distal end, a flexure section attached at a first end to the distal end of the tool shaft, a tool tip operatively connected to the flexure section such that axial forces applied to the tool tip are coupled primarily to a first portion of the flexure section and transverse forces applied to the tool tip are coupled primarily to a second portion of the flexure section, an axial force sensor coupled to the first portion of the flexure section, and a transverse force sensor coupled to the second portion of the flexure section. The axial force sensor responds to axial forces applied to the tool tip substantially independently of the transverse forces applied to the tool tip under a designed operating range of forces, and the transverse force sensor responds to transverse forces applied to the tool tip substantially independently of the axial forces applied to the tool tip under the designed operating range of forces.
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Claims (17)
- A force-sensing tool, comprising: a tool shaft comprising a proximal end and a distal end; a flexure section attached at a first end to said distal end of said tool shaft; a tool tip operatively connected to said flexure section such that axial forces applied to said tool tip are coupled primarily to a first portion of said flexure section and transverse forces applied to said tool tip are coupled primarily to a second portion of said flexure section; an axial force sensor coupled to said first portion of said flexure section; and a transverse force sensor coupled to said second portion of said flexure section, wherein said first portion of said flexure section is substantially free to move in an axial direction relative to said second portion of said flexure section, wherein said axial force sensor responds to axial forces applied to said tool tip substantially independently of said transverse forces applied to said tool tip under a designed operating range of forces, and wherein said transverse force sensor responds to transverse forces applied to said tool tip substantially independently of said axial forces applied to said tool tip under said designed operating range of forces.
- The force-sensing tool according to claim 1, wherein said axial force sensor comprises an optical fiber that has a Bragg Grating written therein, said optical fiber extending along an inner lumen of said tool shaft such that said first portion of said flexure section and said optical fiber coupled thereto are free to move in an axial direction relative to said second portion of said flexure section.
- The force-sensing tool according to claim 2, wherein said transverse force sensor comprises a plurality of optical fibers each comprising a Bragg Grating written therein, said plurality of optical fibers extending from said proximal end to said distal end of said tool shaft and being coupled at a distal end to said second portion of said flexure section to become strained in response to transverse forces applied to said tool tip substantially independently of axial forces applied to said tool tip.
- The force-sensing tool according to claim 3, wherein said plurality of optical fibers are three optical fibers spaced substantially equally spaced around a peripheral portion of said tool shaft.
- The force-sensing tool according to claim 1, wherein said tool tip is a micro-pick for retinal microsurgery.
- The force-sensing tool according to claim 1, wherein said tool shaft has a diameter that is a maximum of 0.9 mm.
- The force-sensing tool according to claim 1, wherein said designed operating range of forces for said transverse force sensor and said axial force sensor is from 0 to 40 mN.
- The force-sensing tool according to claim 1, wherein a sensing segment of said force-sensing tool comprises said flexure section and said fiber Bragg gratings and has a maximum length less that about 15 mm.
- A force-sensing tool system, comprising: a tool force detection system; a force-sensing tool comprising force sensors configured to communicate with said tool force detection system; and a processor configured to communicate with said tool force detection system, wherein said force-sensing tool comprises: a tool shaft comprising a proximal end and a distal end; a flexure section attached at a first end to said distal end of said tool shaft; a tool tip operatively connected to said flexure section such that axial forces applied to said tool tip are coupled primarily to a first portion of said flexure section and transverse forces applied to said tool tip are coupled primarily to a second portion of said flexure section; an axial force sensor coupled to said first portion of said flexure section; and a transverse force sensor coupled to said second portion of said flexure section, wherein said first portion of said flexure section is substantially free to move in an axial direction relative to said second portion of said flexure section, wherein said axial force sensor responds to axial forces applied to said tool tip substantially independently of said transverse forces applied to said tool tip under a designed operating range of forces, and wherein said transverse force sensor responds to transverse forces applied to said tool tip substantially independently of said axial forces applied to said tool tip under said designed operating range of forces.
- The force-sensing tool system according to claim 9, further comprising: a robotic system, said force-sensing tool being attached to said robotic system.
- The force-sensing tool system according to claim 9, wherein said axial force sensor comprises an optical fiber that has a Bragg Grating written therein, said optical extending along an inner lumen of said tool shaft such that said first portion of said flexure section and said optical fiber coupled thereto are free to move in an axial direction relative to said second portion of said flexure section.
- The force-sensing tool system according to claim 9, wherein said transverse force sensor comprises a plurality of optical fibers each comprising a Bragg Grating written therein, said plurality of optical fibers extending from said proximal end to said distal end of said tool shaft and being coupled at a distal end to said second portion of said flexure section to become strained in response to transverse forces applied to said tool tip substantially independently of axial forces applied to said tool tip.
- The force-sensing tool system according to claim 12, wherein said plurality of optical fibers are three optical fibers spaced substantially equally spaced around a peripheral portion of said tool shaft.
- The force-sensing tool system according to claim 9, wherein said tool tip is a micro-pick for retinal microsurgery.
- The force-sensing tool system according to claim 9, wherein said tool shaft has a diameter that is a maximum of 0.9 mm.
- The force-sensing tool system according to claim 9, wherein said designed operating range of forces for said transverse force sensor and said axial force sensor is from 0 to 40 mN.
- The force-sensing tool system according to claim 9, wherein a sensing segment of said force-sensing tool comprises said flexure section and said fiber Bragg gratings and has a maximum length less that about 15 mm.
Description
This application claims priority to U.S. Provisional Application No. 62/203,746 filed Aug. 11, 2015, the entire content of which is hereby incorporated by reference.
This invention was made with Government support under grant numbers EB 000526 and EB 007969 awarded by the National Institutes of Health (NIH). The Government has certain rights in the invention.
1. Technical Field
The field of the currently claimed embodiments of this invention relates to a tool and tool system, and more particularly to a tool and tool system having independent axial and transverse force sensing.
2. Discussion of Related Art
Retinal microsurgery involves complex intraocular surgical procedures to treat retina-related diseases, e.g., epiretinal membrane (ERM), diabetic retinopathy, retinal detachment, and macular holes. During retinal microsurgery, the surgeon inserts long, thin ophthalmic instruments through trocars on the sclera to perform fine manipulation of the delicate eye tissue in a small constrained space (average axial length of the human eye is about 23.5 mm). One challenge to treatment stems from the microscopic dimensions and the fragility of the tissues in the eye. Another challenge derives from the human physiological limitations, such as surgeon hand tremor and fatigue. One of the most formidable technical challenges is the lack of force sensing. Forces exerted in retinal microsurgery are generally well below the human sensory threshold.
Citations (5)
- US20070151390A1
- US20130053730A1
- US20130190734A1
- US20150075250A1
- US20150272443A1
Record as JSON
{
"publication_number": "US10363164B2",
"country": "US",
"kind": "B2",
"title": "Tool and tool system having independent axial and transverse force sensing",
"abstract": "A force-sensing tool includes a tool shaft that has a proximal end and a distal end, a flexure section attached at a first end to the distal end of the tool shaft, a tool tip operatively connected to the flexure section such that axial forces applied to the tool tip are coupled primarily to a first portion of the flexure section and transverse forces applied to the tool tip are coupled primarily to a second portion of the flexure section, an axial force sensor coupled to the first portion of the flexure section, and a transverse force sensor coupled to the second portion of the flexure section. The axial force sensor responds to axial forces applied to the tool tip substantially independently of the transverse forces applied to the tool tip under a designed operating range of forces, and the transverse force sensor responds to transverse forces applied to the tool tip substantially independently of the axial forces applied to the tool tip under the designed operating range of forces.",
"claims": [
"1. A force-sensing tool, comprising: a tool shaft comprising a proximal end and a distal end; a flexure section attached at a first end to said distal end of said tool shaft; a tool tip operatively connected to said flexure section such that axial forces applied to said tool tip are coupled primarily to a first portion of said flexure section and transverse forces applied to said tool tip are coupled primarily to a second portion of said flexure section; an axial force sensor coupled to said first portion of said flexure section; and a transverse force sensor coupled to said second portion of said flexure section, wherein said first portion of said flexure section is substantially free to move in an axial direction relative to said second portion of said flexure section, wherein said axial force sensor responds to axial forces applied to said tool tip substantially independently of said transverse forces applied to said tool tip under a designed operating range of forces, and wherein said transverse force sensor responds to transverse forces applied to said tool tip substantially independently of said axial forces applied to said tool tip under said designed operating range of forces.",
"2. The force-sensing tool according to claim 1, wherein said axial force sensor comprises an optical fiber that has a Bragg Grating written therein, said optical fiber extending along an inner lumen of said tool shaft such that said first portion of said flexure section and said optical fiber coupled thereto are free to move in an axial direction relative to said second portion of said flexure section.",
"3. The force-sensing tool according to claim 2, wherein said transverse force sensor comprises a plurality of optical fibers each comprising a Bragg Grating written therein, said plurality of optical fibers extending from said proximal end to said distal end of said tool shaft and being coupled at a distal end to said second portion of said flexure section to become strained in response to transverse forces applied to said tool tip substantially independently of axial forces applied to said tool tip.",
"4. The force-sensing tool according to claim 3, wherein said plurality of optical fibers are three optical fibers spaced substantially equally spaced around a peripheral portion of said tool shaft.",
"5. The force-sensing tool according to claim 1, wherein said tool tip is a micro-pick for retinal microsurgery.",
"6. The force-sensing tool according to claim 1, wherein said tool shaft has a diameter that is a maximum of 0.9 mm.",
"7. The force-sensing tool according to claim 1, wherein said designed operating range of forces for said transverse force sensor and said axial force sensor is from 0 to 40 mN.",
"8. The force-sensing tool according to claim 1, wherein a sensing segment of said force-sensing tool comprises said flexure section and said fiber Bragg gratings and has a maximum length less that about 15 mm.",
"9. A force-sensing tool system, comprising: a tool force detection system; a force-sensing tool comprising force sensors configured to communicate with said tool force detection system; and a processor configured to communicate with said tool force detection system, wherein said force-sensing tool comprises: a tool shaft comprising a proximal end and a distal end; a flexure section attached at a first end to said distal end of said tool shaft; a tool tip operatively connected to said flexure section such that axial forces applied to said tool tip are coupled primarily to a first portion of said flexure section and transverse forces applied to said tool tip are coupled primarily to a second portion of said flexure section; an axial force sensor coupled to said first portion of said flexure section; and a transverse force sensor coupled to said second portion of said flexure section, wherein said first portion of said flexure section is substantially free to move in an axial direction relative to said second portion of said flexure section, wherein said axial force sensor responds to axial forces applied to said tool tip substantially independently of said transverse forces applied to said tool tip under a designed operating range of forces, and wherein said transverse force sensor responds to transverse forces applied to said tool tip substantially independently of said axial forces applied to said tool tip under said designed operating range of forces.",
"10. The force-sensing tool system according to claim 9, further comprising: a robotic system, said force-sensing tool being attached to said robotic system.",
"11. The force-sensing tool system according to claim 9, wherein said axial force sensor comprises an optical fiber that has a Bragg Grating written therein, said optical extending along an inner lumen of said tool shaft such that said first portion of said flexure section and said optical fiber coupled thereto are free to move in an axial direction relative to said second portion of said flexure section.",
"12. The force-sensing tool system according to claim 9, wherein said transverse force sensor comprises a plurality of optical fibers each comprising a Bragg Grating written therein, said plurality of optical fibers extending from said proximal end to said distal end of said tool shaft and being coupled at a distal end to said second portion of said flexure section to become strained in response to transverse forces applied to said tool tip substantially independently of axial forces applied to said tool tip.",
"13. The force-sensing tool system according to claim 12, wherein said plurality of optical fibers are three optical fibers spaced substantially equally spaced around a peripheral portion of said tool shaft.",
"14. The force-sensing tool system according to claim 9, wherein said tool tip is a micro-pick for retinal microsurgery.",
"15. The force-sensing tool system according to claim 9, wherein said tool shaft has a diameter that is a maximum of 0.9 mm.",
"16. The force-sensing tool system according to claim 9, wherein said designed operating range of forces for said transverse force sensor and said axial force sensor is from 0 to 40 mN.",
"17. The force-sensing tool system according to claim 9, wherein a sensing segment of said force-sensing tool comprises said flexure section and said fiber Bragg gratings and has a maximum length less that about 15 mm."
],
"description_excerpt": "This application claims priority to U.S. Provisional Application No. 62/203,746 filed Aug. 11, 2015, the entire content of which is hereby incorporated by reference.\n\nThis invention was made with Government support under grant numbers EB 000526 and EB 007969 awarded by the National Institutes of Health (NIH). The Government has certain rights in the invention.\n\n1. Technical Field\n\nThe field of the currently claimed embodiments of this invention relates to a tool and tool system, and more particularly to a tool and tool system having independent axial and transverse force sensing.\n\n2. Discussion of Related Art\n\nRetinal microsurgery involves complex intraocular surgical procedures to treat retina-related diseases, e.g., epiretinal membrane (ERM), diabetic retinopathy, retinal detachment, and macular holes. During retinal microsurgery, the surgeon inserts long, thin ophthalmic instruments through trocars on the sclera to perform fine manipulation of the delicate eye tissue in a small constrained space (average axial length of the human eye is about 23.5 mm). One challenge to treatment stems from the microscopic dimensions and the fragility of the tissues in the eye. Another challenge derives from the human physiological limitations, such as surgeon hand tremor and fatigue. One of the most formidable technical challenges is the lack of force sensing. Forces exerted in retinal microsurgery are generally well below the human sensory threshold.",
"cpc": [
"A61F 9/00727",
"A61B 2034/2051",
"A61B 2090/064",
"A61B 34/30",
"A61F 9/0017",
"A61F 9/007",
"B25J 13/085",
"B25J 9/023",
"G01L 1/246"
],
"ipc": [
"A61B 34/20",
"A61B 34/30",
"A61B 90/00",
"A61F 9/00",
"A61F 9/007",
"B25J 13/08",
"B25J 9/02",
"G01L 1/24"
],
"assignees": [
"Johns Hopkins University"
],
"inventors": [
"Xingchi He",
"Iulian Iordachita",
"Russell H. Taylor",
"James T. Handa",
"Peter L. Gehlbach"
],
"filing_date": "2016-08-11",
"publication_date": "2019-07-30",
"grant_date": "2019-07-30",
"priority_date": "2015-08-11",
"application_number": "US-201615234896-A",
"family_id": "58799452",
"cited_by_count": 0,
"citations": [
"US20070151390A1",
"US20130053730A1",
"US20130190734A1",
"US20150075250A1",
"US20150272443A1"
]
}
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