IP Library Granted Patent US 11,787,727
Granted Patent B2
US 11,787,727 · App. 15/956,018 · Granted Oct 17, 2023

Method for fabrication of sleeveless photonic crystal canes with an arbitrary shape

Inventors: Derrek Reginald Drachenberg (Livermore, CA); Michael J. Messerly (Danville, CA); Paul H. Pax (Livermore, CA); John B. Tassano, Jr. (Manteca, CA)
Assignee: Lawrence Livermore National Security, LLC
C03B37/02736C03B37/0122C03B37/01208C03B37/0279C03B37/02781C03B37/03C03B37/032C03B2203/42C03B2205/60
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Quick Facts
Patent No.
US 11,787,727
App. No.
15/956,018
Granted
Oct 17, 2023
Kind
B2
Abstract

The fabrication of sleeveless canes utilizes a preform with an array of glass canes in the preform. At least one tube-sleeve encircles the array of glass canes and is secured to the array of glass canes. The array of glass canes is moved into a furnace wherein the array of glass canes is heated. The furnace is maintained at a furnace temperature within the range of 2000° C. to 1700° C. and the array of glass canes is drawn from the furnace. The drawing of the array of glass canes both scales down the glass canes and elongates the glass canes. Maintaining the furnace at a furnace temperature within the range of 2000° C. to 1700° C. assures that the array of glass canes and the glass canes maintain their original shape.

Claims (38)

1. A method of fabricating glass canes, comprising the steps of:

providing a pre-form that is one half of a hexagon;

stacking an array of glass canes in said pre-form, wherein said glass canes have a cane length and wherein said array of glass canes has a first array end and a second array end opposite said first array end and wherein said first array end has an absolute first array end;

providing a first outer tube tube-sleeve, wherein said first outer tube tube-sleeve has a first outer tube tube-sleeve length that is shorter than said cane length;

providing a second outer tube tube-sleeve, wherein said second outer tube tube-sleeve has a second outer tube tube-sleeve length that is shorter than said cane length;

positioning said first outer tube tube-sleeve and said second outer tube-tube-sleeve on said array of glass canes, wherein said step of positioning said first outer tube tube-sleeve and said second outer tube tube-sleeve on said array of glass canes comprises

placing said first outer tube tube-sleeve on said first array end at said absolute first array end of said first array end;

crimping said first outer tube tube-sleeve onto said first array end of said array of glass canes at said absolute first array end of said first array end;

placing said second outer tube-sleeve on said second array end;

crimping said second outer tube tube-sleeve onto said second array end of said array of glass canes;

after crimping said first outer tube tube-sleeve onto said first array end and after crimping said second outer tube tube-sleeve onto said second array end, moving said array of glass canes into a furnace, wherein said array of glass canes is heated; and

drawing said array of glass canes from said furnace, wherein said drawing said array of glass canes scales down and elongates said glass canes;

wherein said step of stacking an array of glass canes comprises stacking an array of hollow glass canes into a stack of hollow glass canes and wherein said stack of hollow glass canes are not fluid tight,

wherein said step of crimping said first outer tube tube-sleeve onto said first array end of said array of glass canes at said absolute first array end of said first array end does not provide a fluid tight seal, and

wherein said step of crimping said second outer tube tube-sleeve onto said second array end of said array of glass canes at said absolute first array end of said second array end does not provide a fluid tight seal.

2. The method of fabricating glass canes of claim 1 , further comprising the steps of

providing a first flared portion on said first outer tube tube-sleeve to enable said first outer tube to be placed on said first array end, and

providing a second flared portion on said second outer tube tube-sleeve to enable said second outer tube to be placed on said second array end.

3. The method of fabricating glass canes of claim 1 , further comprising the step of applying a polytetrafluoroethylene tape to said array of glass canes and support the shape of the sleeveless section as well as to prevent any individual canes from falling into the furnace.

4. The method of fabricating glass canes of claim 1 , wherein said step of stacking an array of glass canes comprises stacking an array of hollow glass canes.

5. The method of fabricating glass canes of claim 1 , further comprising the step of providing a flared end only on said first outer tube tube-sleeve.

6. A method of fabricating glass canes, comprising the steps of:

providing a pre-form that is one half of a hexagon;

stacking an array of glass canes in said pre-form, wherein said array of glass canes in said pre-form and said glass canes have a shape and a cane length and wherein said array of glass canes has a first array end and a second array end opposite said first array end and wherein said first array end has an absolute first array end;

providing a first outer tube tube-sleeve;

providing a first flared end on said first outer tube tube-sleeve;

placing said first outer tube tube-sleeve on said first array end;

crimping said first outer tube tube-sleeve onto said first array end of said array of glass canes;

providing a second outer tube tube-sleeve;

providing a second flared end on said first outer tube tube-sleeve;

placing said second outer tube tube-sleeve on said second array end at said absolute first array end of said first array end;

crimping said second outer tube tube-sleeve onto said second array end at said absolute first array end of said first array end of said array of glass canes;

after crimping said first outer tube tube-sleeve onto said first array end and after crimping said second outer tube tube-sleeve onto said second array end, moving said array of glass canes into a furnace to heat said glass canes;

maintaining said furnace at a furnace temperature within the range of 2000° C. to 1700° C. to heat said array of glass canes and said glass canes, wherein said array of glass canes and said glass canes maintain said shape; and

drawing said array of glass canes from said furnace, wherein said drawing said array of glass canes scales down and elongates said glass canes,

wherein said step of stacking an array of glass canes comprises stacking an array of hollow glass canes into a stack of hollow glass canes and wherein said stack of hollow glass canes are not fluid tight,

wherein said step of crimping said first outer tube tube-sleeve onto said first array end of said array of glass canes at said absolute first array end of said first array end does not provide a fluid tight seal, and

wherein said step of crimping said second outer tube tube-sleeve onto said second array end of said array of glass canes at said absolute first array end of said second array end does not provide a fluid tight seal.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jun 5, 2018
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 045989/0167 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2018
From: DRACHENBERG, DERREK REGINALD; MESSERLY, MICHAEL J.; PAX, PAUL H.; TASSANO, JOHN B., JR.
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 045574/0842 →
Continuity (1)
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