Automatic corneal shaper
Abstract
The invention relates to a mechanical device for performing automatic lamellar corneal resections, in particular, myopic keratomileusis-in-situ and Hyperopic Lamellar Keratotomy. The device includes three major components, a motor and transmission assembly, a shaper head assembly and an eyeball retaining ring. The motor and transmission assembly includes a flexible shaft with a threaded end which is rotated by an electric or turbine motor. The threaded end of the shaft drives a helicoidal pinion on the shaper head assembly which changes the shaft direction by 90°. The shaper head assembly is moved across the rack of the eyeball retaining ring by a series of pinions. The device provides a means for automatically, precisely and safely performing corneal resections.
Claims
exact text as granted — not AI-modifiedWe claim:
1. An automatic mechanical device for performing lamellar corneal resections comprising: a driving means, a mobile means connected to said driving means, said mobile means including a cutting means for performing corneal resections, an eyeball retaining means .[.movably.]. connected to said mobile means so that the .Iadd.mobile means is moveable with respect to said eyeball retaining means and so that the .Iaddend.resection can be made with precision, and a transmission means connected to said driving means to provide simultaneous lineal and transverse oscillatory motion to said cutting means to automate lineal and transverse driving of the cutting means during the resecting operation, wherein the driving means comprises an electric or turbine motor and said transmission means includes a flexible transmission shaft, said flexible transmission shaft including a shaft point that connects to said mobile means, said shaft point having a threaded area forming an endless pinion, and a tip of said shaft point being provided with an eccentric, said threaded area transmitting lineal motion to said mobile means, and said eccentric transmitting transverse oscillatory motion to said cutting means in a direction perpendicular to said linear motion.
2. An automatic mechanical device for performing lamellar corneal resections comprising: a driving means, a mobile means connected to said driving means, said mobile means including a cutting means for performing corneal resections, an eyeball retaining means .[.movably.]. connected to said mobile means so that the .Iadd.mobile means is moveable with respect to said eyeball retaining means and so that the .Iaddend.resection can be made with precision, and a transmission means connected to said driving means to provide motion to said cutting means to automate the resecting operation, wherein said mobile means comprises an upper body carrying said transmission means, said upper body having a cylindrical threaded area, cut straight on the underside, a cylindrical hole through said cylindrical threaded area into which a shaft point of said transmission shaft is introduced, an essentially rectangular-shaped cavity whose shorter sides are curved, wherein two pins project from the straight-cut part of said threaded cylindrical area; a sliding skate on which said upper body with said cutting means is mounted, said sliding skate including a sliding skate threaded area, with a straight cut that follows an inclined plane with respect to a base of said sliding skate, a recess with a transverse section identical to said cavity of said upper body, said base being formed by dovetail tracks along the length of said sliding skate and a rectangular-shaped opening having at the top two parallel rectangular grooves along the length of said sliding skate, two small holes in the straight-cut part of said threaded area which receive said pins of the threaded area of said upper body; a nut that screws on over the complete thread formed by the threaded areas when the upper body is mounted on the sliding skate; a plate that slides in through said opening and along said two grooves, said plate having a boss shaped like a rectangular parallelepiped with two holes in the side walls that fit together with the fixing means in the sliding skate; said fixing means including two screws, two springs and two balls protruding from the linear side walls of said opening in said sliding skate.
3. The automatic mechanical device of claim 2, wherein said transmission means includes a pinion-shaft that engages said threaded area of said shaft end of said transmission shaft changing the direction of the axis of rotation, said pinion-shaft running through said upper body and protruding at each end through opposite side walls of said upper body; two first pinions directly connected, one to each end of said pinion shaft; two first shafts forced in said side walls and bearing at their free ends two second pinions mechanically coupled with said first pinions; two second shafts forced in said side walls and bearing at their free ends two third pinions mechanically coupled with said second pinions.
4. The automatic mechanical device of claim 3, wherein said eyeball retaining means includes a circular retaining ring assembly with a central hole which is concentric with the outer edge of the ring and which accommodates the cornea of the patient undergoing surgery, said retaining ring including an upper ring with two parallel toothed tracks which engage said two third pinions of said transmission means and on which said mobile means will move during the resection procedure, taking said cutting means across the cornea, wherein said eyeball retaining means further includes an inner ring threaded on the outside and an outer ring threaded on the inside to set and screw said outer ring onto said inner ring.
5. The automatic mechanical device of claim 2, wherein said cutting means includes a blade holder having a rectangular parallelepiped shape with rounded corners, three horizontal slots in one of its broad faces, a vertical slot in a face opposite to the face with said three slots, said vertical slot receiving said eccentric of said shaft end to impart transverse oscillatory motion to said cutting means, a boss that is C-shaped in the center with two circles, one above and one below the C; an essentially rectangular shaped blade made of surgical stainless steel with the cutting edge along one of its longer sides and with a hole on the inside that is essentially rectangular in shape, wherein the smaller opposite sides of the essentially rectangular hole are curved and match said boss of said blade holder; said blade holder and said blade being fitted together and inserted in said cavity of said upper body.
6. An automatic mechanical device for performing lamellar corneal resections comprising: a driving means, a mobile means connected to said driving means, said mobile means including a cutting means for performing corneal resections, an eyeball retaining means .[.movably.]. connected to said mobile means so that the .Iadd.mobile means is moveable with respect to said eyeball retaining means and so that the .Iaddend.resection can be made with precision, and a transmission means connected to said driving means to provide simultaneous lineal and transverse oscillatory motion to said cutting means to automate lineal and transverse driving of the cutting means during the resecting operation, wherein said eyeball retaining means includes a circular retaining ring assembly with a central hole which is concentric with the outer edge of the ring and which accommodates the cornea of the patient undergoing surgery, said retaining ring including an upper ring with two parallel toothed tracks which engage a pair of pinions of said transmission means and on which said mobile means will move during the resection procedure, taking said cutting means across the cornea, and wherein said eyeball retaining means includes an inner ring threaded on the outside and an outer ring threaded on the inside.
7. An automatic mechanical device for performing lamellar corneal resections comprising: a driving means, a mobile means connected to said driving means, said mobile means including a cutting means for performing corneal resections, an eyeball retaining means .[.movably.]. connected to said mobile means so that the .Iadd.mobile means is moveable with respect to said eyeball retaining means and so that the .Iaddend.resection can be made with precision, and a transmission means connected to said driving means to provide simultaneous lineal and transverse oscillatory motion to said cutting means to automate lineal and transverse driving of the cutting means during the resecting operation, wherein the driving means comprises an electric or turbine motor and said transmission means includes a transmission shaft, said transmission shaft including a shaft point that connects to said mobile means, said shaft point having a threaded area forming an endless pinion, and a tip of said shaft point being provided with an eccentric, said threaded area transmitting lineal motion to said mobile means, and said eccentric transmitting transverse oscillatory motion to said cutting means in a direction perpendicular to said linear motion.
8. An automatic mechanical device for performing lamellar corneal resections, comprising: a driving means, a mobile means connected to said driving means, said mobile means including a cutting means for performing corneal resections, an eyeball retaining means .[.movably.]. connected to said mobile means so that the .Iadd.mobile means is moveable with respect to said eyeball retaining means and so that the .Iaddend.resection can be made with precision, and a transmission means connected to said driving means to provide simultaneous lineal and transverse oscillatory motion to said cutting means to automate lineal and transverse driving of the cutting means during the resecting operation, wherein said eyeball retaining means includes a circular retaining ring assembly with a central hole which is concentric with the outer edge of the ring and which accommodates the cornea of the patient undergoing surgery, said retaining ring including an upper ring with at least one toothed track which engages at least one pinion of said transmission means and on which said mobile means will move during the resection procedure, taking said cutting means across the cornea, and wherein said eyeball retaining means includes an inner ring threaded on the outside and an outer ring threaded on the inside. .Iadd.
9. A device as recited in claim 1 wherein said transmission means includes a first component in driving engagement with the threaded area of said shaft point and directly supported by said mobile body, and said transmission means further comprising a second component located directly at said eyeball retaining means. .Iaddend..Iadd.10. A device as recited in claim 7 wherein said transmission means includes a first component in driving engagement with the threaded area of said shaft point and directly supported by said mobile body, and said transmission means further comprising a second component located directly at said eyeball retaining
means. .Iaddend..Iadd.11. An automatic microkeratome device for performing lamellar corneal resections comprising: an eyeball retainer including an aperture through which a portion of the cornea is exposed, a guideway defining a linear path, and a first drive element; a mobile body movably mounted on said eyeball retainer, said mobile body including at lease one follower element engaging said guideway to guide said mobile body along said linear path and across said aperture; a blade mounted to said mobile body for movement therewith along said linear path, said blade having a cutting edge extending outward from said mobile body for resecting a portion of said cornea as said mobile body moves across said aperture; a plate member including a bottom face extending forwardly beyond said cutting edge of said blade to contact said cornea prior to said cutting edge, said cutting edge being spaced downward relative to said bottom face of said plate member such that a vertical space is defined therebetween, said defined vertical space setting the depth of the corneal resection; a second drive element attached to said mobile body and in engagement with said first drive element; a power source; and a transmission coupling operatively coupling said power source to said first and second drive elements to cause relative movement between said first and second drive elements to thereby move said mobile body along said linear path so that said blade resects a lamellar portion of the
cornea. .Iaddend..Iadd.12. An automatic microkeratome device in accordance with claim 11 in which said first drive element includes at least one linear toothed rack fixed along a top surface of said eyeball retainer, and said second drive element includes at least one pinion rotatably mounted to said mobile body and engaged with said toothed rack. .Iaddend..Iadd.13. An automatic microkeratome device in accordance with claim 11 in which said guideway includes at least one dovetail shaped rail and said follower includes at least one dovetail shaped runner in
engagement with said rail. .Iaddend..Iadd.14. An automatic microkeratome device in accordance with claim 11 in which said blade is mounted for lateral reciprocating movement relative to said mobile body, and in which said transmission coupling operatively couples said power source to said blade to effect said lateral reciprocating movement of said blade. .Iaddend..Iadd.15. An automatic microkeratome device in accordance with claim 11 in which said blade is inclined relative to the direction of motion of said mobile body along said linear path. .Iaddend..Iadd.16. An automatic microkeratome device in accordance with claim 11 in which said power source is an electric motor. .Iaddend..Iadd.17. An automatic microkeratome device in accordance with claim 11 in which said power
source is a turbine motor. .Iaddend..Iadd.18. An automatic microkeratome device for performing lamellar corneal resections comprising: a driving means; a mobile means connected to said driving means, said mobile means including a cutting means for performing corneal resections, guide elements, and a drive member; an eyeball retaining means connected to said mobile means so that the mobile means is moveable with respect to said eyeball retaining means and so that the resection can be made with precision, said eyeball retaining means including an aperture through which a portion of the cornea to be resected is exposed, linear guideways connected to said guide elements to guide said mobile means along a path for resecting the cornea, and a drive element movably connected to said drive member; a plate member connected to said mobile means for movement therewith, said plate member including a lower surface spaced from said cutting means to engage at least part of the exposed cornea and define the depth of the resection; a transmission means connected to said driving means to provide simultaneous lineal and transverse motion to said cutting means to automate lineal and transverse driving of said cutting means during the resecting operation, said transmission means being connected to said drive member to cause relative movement between said drive member and said drive element to cause said mobile means to automatically move across said guideways of said eyeball retaining means at a substantially uniform rate, and said transmission means being connected to said cutting means to move said cutting means transversely relative to said mobile means.
.Iaddend..Iadd.19. An automatic mechanical device for performing lamellar corneal resections, comprising: a first transmission sub-assembly which includes a driving shaft with fitting end; a mobile body which supports the fitting end of said driving shaft such that said fitting end is free to rotate; a cutting member; a cutting member support to which said cutting member is fixed, said cutting member support being supported by said mobile body such that said cutting member support is free to oscillate with respect to said mobile body, and said cutting member support being in driving engagement with said driving shaft with said driving engagement producing an oscillating motion in said cutting member support and cutting member when said fitting end rotates; an eye retaining member which includes an aperture through which a cornea to be operated upon extends through, and said mobile body being slidingly received by said retaining member; a second transmission sub-assembly including a first component in driving engagement with the fitting end of said driving shaft and directly supported by said mobile body, said second transmission sub-assembly further comprising a second component located directly at said retaining member, and said second transmission sub-assembly being arranged such that rotation of said driving shaft conveys a driving force to said first component which is in driving communication with said second component at said retaining member such that said mobile body slides with respect to said retaining member and such that the cutting member passes over the aperture formed in said retaining member, and wherein the driving of said driving shaft results in a simultaneous oscillation of said cutting member and sliding of said mobile body with respect to said retaining member.
.Iaddend..Iadd.20. A device as recited in claim 19, wherein said fitting end of said driving shaft includes an endless pinion, and said first component is a pinion shaft rotatably fixed with respect to said mobile body, and said second component is a first side rack fixed to said retaining member, and said second transmission sub-assembly further including at least one pinion member which receives a driving force from said pinion shaft, is rotatably supported by said mobile body and is in contact with said first side rack. .Iaddend..Iadd.21. A device as recited in claim 20 wherein said pinion shaft includes two ends extending to opposite sides of said mobile body with a first pinion member and a second pinion member fixed to said ends, said second transmission sub-assembly further comprising a second side rack positioned on an opposite side of said mobile body as said first side rack, and said first pinion member being in driving communication with said first side rack and said second pinion member being in driving communication with said second side rack. .Iaddend..Iadd.22. A device as recited in claim 19 wherein said second transmission sub-assembly includes a plurality of different sized pinion members on each side of said mobile body each rotatably supported by said
mobile body. .Iaddend..Iadd.23. A device as recited in claim 19 wherein said mobile body includes a sliding skate and an upper body portion removably secured to said sliding skate, said sliding skate having side edges in sliding engagement with corresponding side recesses formed in said eye retaining member, and said upper body including a hole which receives the fitting end of said driving shaft, and said driving shaft further including an eccentric pin extending out from said fitting end and into engagement with said cutting member support, and said cutting member support being received within a slot formed in said upper body portion. .Iaddend..Iadd.24. A device as recited in claim 19 further comprising a lamellar corneal resection defining plate slidingly received by said mobile body so as to present a planar surface a distance above the aperture formed in said eye retaining member, and said mobile body including means to releasably secure said sliding plate with respect to said mobile body. .Iaddend..Iadd.25. A device as recited in claim 19 wherein said mobile body is restricted by said eye retaining member to sliding travel along a first linear direction and said blade oscillates in
a direction transverse to said first linear direction. .Iaddend..Iadd.26. An automatic mechanical device for performing lamellar corneal resections, comprising: a first transmission sub-assembly which includes a driving component with a coupling end; a mobile body which supports the coupling end of said driving component of said first transmission sub-assembly; a cutting blade; a blade support to which said cutting blade is fixed, said blade support being supported by said mobile body such that said blade support is free to oscillate with respect to said mobile body, and said blade support being in driving communication with said driving component of said first transmission sub-assembly such that an oscillating motion in said blade is produced when said first transmission sub-assembly is operating; an eye retaining member which includes an aperture through which a cornea to be operated upon extends through, and said mobile body being slidingly received by said eye retaining member; a second transmission sub-assembly in driving engagement with said first transmission sub-assembly, said second transmission sub-assembly including a first component directly supported by said mobile body and a second component located directly on said retaining member, and said second transmission sub-assembly being directly engaged with said eye retaining member such that said second transmission sub-assembly pulls said driving component of said first transmission sub-assembly forward as said second transmission sub-assembly slides said mobile body with respect to said eye
retaining member. .Iaddend..Iadd.27. A device as recited in claim 26 wherein said driving component is a shaft rotatably supported by said mobile body, and said second transmission sub-assembly is positioned forward, with respect to a lineal travel direction of said cutting blade, of the coupling end of said shaft such that said second transmission sub-assembly pulls said shaft forward across said eye retaining member. .Iaddend.Join the waitlist — get patent alerts
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