Methods for forming a tubular braid are described. The method for braiding includes providing a braiding mechanism including a disc, a mandrel, and a plurality of actuators. The disc defines a plane and a circumferential edge and the mandrel extends from a center of the disc. A plurality of filament
Methods for forming a tubular braid are described. The method for braiding includes providing a braiding mechanism including a disc, a mandrel, and a plurality of actuators. The disc defines a plane and a circumferential edge and the mandrel extends from a center of the disc. A plurality of filaments are loaded on the mandrel, each extending radially toward the circumferential edge and contacting the disc at a point of engagement. The plurality of actuators are operated to engage and move a first subset of filaments in a generally radial direction to a position beyond the circumferential edge. The disc or the engaged first subset are rotated relative to one another, thereby crossing the first subset over a second subset of filaments. The actuators are then operated to move the first subset to a radial position on the circumferential edge different from its previous point of engagement.
대표청구항▼
1. A method for forming a tubular braid, comprising the steps of: providing a braiding mechanism comprising a disc defining a plane and a circumferential edge, a mandrel extending from a center of the disc and generally perpendicular to the plane of the disc, and a plurality actuators positioned cir
1. A method for forming a tubular braid, comprising the steps of: providing a braiding mechanism comprising a disc defining a plane and a circumferential edge, a mandrel extending from a center of the disc and generally perpendicular to the plane of the disc, and a plurality actuators positioned circumferentially around the edge of the disc;loading a plurality of filaments on the mandrel, each filament extending radially toward the circumferential edge of the disc, each filament contacting the disc at a point of engagement on the circumferential edge, each point of engagement being spaced apart a discrete distance from adjacent points of engagement, wherein a tensioning element is attached directly to each of the plurality of filaments;operating the plurality of actuators to engage a first subset of the plurality of filaments;operating the plurality of actuators to move the engaged first subset of filaments in a generally radial direction to a position beyond the circumferential edge of the disc;rotating the disc or the engaged first subset of filaments relative to one another, thereby crossing the filaments of the first subset over the filaments of a second subset of filaments; andoperating the actuators to move the first subset of filaments to a radial position on the circumferential edge of the disc, wherein each filament in the first subset engages the circumferential edge of the disc at a circumferential distance from its previous point of engagement. 2. The method of claim 1, further comprising: engaging the second subset of filaments;operating the plurality of actuators to move the engaged second subset of filaments in a generally radial direction to a position beyond the circumferential edge of the disc;rotating the disc or the engaged second subset of filaments relative to one another, thereby crossing the filaments of the second subset over the filaments of the first subset; andoperating the actuators to move the second subset of filaments to a radial position on the circumferential edge of the disc, wherein each filament in the second subset engages the circumferential edge of the disc at a circumferential distance from its previous point of engagement. 3. The method of claim 2, further comprising repeating the steps of: engaging the first subset of the plurality of filaments;operating the plurality of actuators to move the engaged first subset of filaments in a generally radial direction to a position beyond the circumferential edge of the disc;rotating the disc or the engaged first subset of filaments relative to one another, thereby crossing the filaments of the first subset over the filaments of a second subset of filaments;operating the actuators to move the first subset of filaments to a radial position on the circumferential edge of the disc;engaging a second subset of filaments;operating the plurality of actuators to move the engaged second subset of filaments in a generally radial direction to a position beyond the circumferential edge of the disc;rotating the disc or the engaged second subset of filaments relative to one another, thereby crossing the filaments of the second subset over the filaments of the first subset; andoperating the plurality of actuators to move the second subset of filaments to a radial position on the circumferential edge of the disc. 4. The method of claim 1, comprising the steps of: engaging a third subset of the plurality of filaments;operating the plurality of actuators to move the engaged third subset of filaments in a generally radial direction to a position beyond the circumferential edge of the disc;rotating the disc or the engaged third subset of filaments relative to one another, thereby crossing the filaments of the third subset over the filaments of a fourth subset;operating the plurality of actuators to move the third subset of filaments to a radial position on the circumferential edge of the disc;engaging the fourth subset of filaments;operating the plurality of actuators to move the engaged fourth subset of filaments in a generally radial direction to a position beyond the circumferential edge of the disc;rotating the disc or the engaged fourth subset of filaments relative to one another, thereby crossing the filaments of the fourth subset over the filaments of the third subset; andoperating the actuators to move the fourth subset of filaments to a radial position on the circumferential edge of the disc. 5. The method of claim 1, wherein loading the mandrel comprises temporarily affixing the plurality of filaments to the distal tip of the mandrel. 6. The method of claim 1, wherein the generally radial direction has a component of radial motion. 7. The method of claim 1, wherein each of the tensioning elements is a weight. 8. The method of claim 1, wherein each of the tensioning elements applies between about 2-20 grams of force. 9. The method of claim 1, wherein the filaments are wires. 10. The method of claim 1, wherein the filaments are fine wires having a diameter of between about ½ mil to 5 mils. 11. The method of claim 1, wherein the disc has a plurality of notches radially spaced apart around the circumferential edge. 12. The method of claim 11, wherein the disc has a between about 100-1500 notches. 13. The method of claim 11, wherein the disc has a between about 288 notches. 14. The method of claim 11, wherein each of the plurality of filaments rests within a different notch of the disc. 15. The method of claim 1, wherein each actuator is coupled to a plurality of catch mechanisms, the plurality of catch mechanisms positioned circumferentially around the edge of the disc, each catch mechanism extending toward the circumferential edge of the disc, wherein the plurality of catch mechanism engages the first subset of filaments. 16. The method of claim 15, wherein each catch mechanism comprises a hook. 17. The method of claim 15, wherein each catch mechanism comprises a double-headed hook. 18. The method of claim 1, wherein rotating the disc or the engaged first subset of filaments relative to one another comprises rotating the disc a discrete distance. 19. The method of claim 1, wherein rotating the disc or the engaged first subset of filaments relative to one another comprises rotating the engaged first subset of filaments a discrete distance.
연구과제 타임라인
LOADING...
LOADING...
LOADING...
LOADING...
LOADING...
이 특허에 인용된 특허 (44)
Ivsan Thomas J. (West Bloomfield MI) Bailey Carlos (Farmington MI) Jessup Llewell (Livonia MI), Apparatus and method for braiding fiber strands.
Bull Jeffrey F. (4550 Shaw Rd. Ext. Akron OH) Johnson Harlan (4550 Shaw Rd. Ext. Copley OH) Karg James F. (4550 Shaw Rd. Ext. Akron OH 44313) Winiasz Michael E. (Lorain OH), Apparatus for control of moving strands from rotating strand supply bobbins.
Earle ; III George A. (Ballston Lake NY) Kruesi August H. (Melrose NY) Stockton John E. (Clifton Park NY) Kruesi Deborah C. (Melrose NY), Asymmetric braiding of improved fiber reinforced products.
Marchand, Philippe; Nolting, John; Kent, Darrin J; Dinh, Tan Q; Tran, Hung P; Milburn, James A; Thompson, James M, Braiding mechanism and methods of use.
Marchand, Philippe; Nolting, John; Kent, Darrin J; Dinh, Tan Q; Tran, Hung P; Milburn, James A; Thompson, James M, Braiding mechanism and methods of use.
Marchand, Philippe; Nolting, John; Kent, Darrin J; Dinh, Tan Q; Tran, Hung P; Milburn, James A; Thompson, James M, Braiding mechanism and methods of use.
Thompson, James M.; Cox, Brian J.; Rosenbluth, Robert; Marchand, Philippe; Nolting, John; Kent, Darrin J.; Dinh, Tan Q.; Tran, Hung P.; Milburn, James A., Braiding mechanism and methods of use.
Thompson, James M; Cox, Brian J; Rosenbluth, Robert; Marchand, Philippe Q; Nolting, John; Kent, Darrin J; Dinh, Tan Q; Tran, Hung P; Milburn, James A, Braiding mechanism and methods of use.
Thompson, James M; Cox, Brian J; Rosenbluth, Robert; Marchand, Philippe; Nolting, John; Kent, Darrin J; Dinh, Tan Q; Tran, Hung P; Milburn, James A, Braiding mechanism and methods of use.
Guglielmi Guido (Los Angeles CA) Sepetka Ivan (Redwood City CA), Endovascular electrolytically detachable guidewire tip for the electroformation of thrombus in arteries, veins, aneurysm.
Rapaport,Avraham; Nishri,Boaz; Cibulski,Gilad, Method and apparatus for making intraluminal implants and construction particularly useful in such method and apparatus.
Klein John T. ; Broughton ; Jr. Roy M. ; Beale David G., Rotably driven braiding machine with third yarns carried and delivered by stationary carriages about a braiding point.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.