US2018050949A1PendingUtilityA1

Method and apparatus for making a profiled tubing and a sleeve

Assignee: CORNING INCPriority: Aug 30, 2012Filed: Oct 31, 2017Published: Feb 22, 2018
Est. expiryAug 30, 2032(~6.1 yrs left)· nominal 20-yr term from priority
C03B 33/06C03B 23/0476C03B 40/04C03B 23/045C03B 17/04C03B 23/07Y10T428/131
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Claims

Abstract

An apparatus for making a profiled tubing includes a mandrel adapted for positioning proximate a tubing. The mandrel has a nozzle section with a select cross-sectional profile that will define a final cross-sectional profile of the tubing. The nozzle section has a feed chamber for receiving a gas and a porous circumferential surface through which the gas can be discharged to an exterior of the mandrel. The gas when discharged to the exterior of the mandrel forms a film of pressurized gas between the porous circumferential surface and the tubing. A method of forming a profiled tubing using the apparatus is disclosed. A sleeve formed from the profiled tubing is also disclosed.

Claims

exact text as granted — not AI-modified
1 . An apparatus for making a profiled tubing, comprising:
 a mandrel adapted for positioning proximate a surface of a tubing, the mandrel having a nozzle section with a select cross-sectional profile that will define a final cross-sectional profile of the tubing, the nozzle section having a feed chamber for receiving a gas and a porous circumferential surface through which the gas can be discharged to an exterior of the mandrel, wherein the gas when discharged to the exterior of the mandrel forms a film of pressurized gas between the porous circumferential surface and the tubing.   
     
     
         2 . The apparatus of  claim 1 , further comprising a tubing forming apparatus for forming the tubing, wherein the mandrel is arranged inline with the tubing forming apparatus. 
     
     
         3 . The apparatus of  claim 1 , wherein the porous circumferential surface comprises a pair of edge surfaces that are in opposing relation and ramped relative to a tool axis along which the mandrel is aligned. 
     
     
         4 . The apparatus of  claim 1 , wherein the porous circumferential surface further comprises a pair of side surfaces that are in opposing relation and form webs between the pair of edges surfaces. 
     
     
         5 . The apparatus of  claim 4 , wherein each of the pair of side surfaces has a depressed area. 
     
     
         6 . The apparatus of  claim 3 , further comprising at least a pair of edge chambers formed in the nozzle section and in communication with the feed chamber, each of the pair of edge chambers being adjacent to and substantially parallel to one of the pair of edge surfaces. 
     
     
         7 . The apparatus of  claim 3 , further comprising a pair of chamber clusters formed in the nozzle section, each chamber cluster comprising at least two edge chambers in communication with the feed chamber, each chamber cluster being adjacent to and substantially parallel to one of the pair of edge surfaces. 
     
     
         8 . The apparatus of  claim 7 , wherein the at least two edge chambers of each chamber cluster are equidistant from the adjacent edge surface. 
     
     
         9 . The apparatus of  claim 8 , wherein the at least two edge chambers of each chamber cluster have different lengths. 
     
     
         10 . A method of forming a profiled tubing, comprising:
 disposing a mandrel adjacent to a surface of a tubing made of a glass material, the mandrel having a nozzle section with a select cross-sectional profile that will define a final cross-sectional profile of the tubing;   discharging a gas from a porous circumferential surface of the nozzle section to create a film of pressurized gas between the nozzle section and the surface of the tubing, the film of pressurized gas exerting pressure on the surface of the tubing that is sufficient to locally deform the tubing into conformity with the nozzle section;   advancing the film of pressurized gas along a length of the tubing; and   heating the tubing such that in any local section of the tubing where the film of pressurized gas is exerting pressure, the local section of the tubing is at a viscosity at which the local section of the tubing can be deformed by the pressure.   
     
     
         11 . The method of  claim 10 , wherein deformation of the tubing into conformity with the nozzle section comprises stretching a wall of the tubing by 5 to 30%. 
     
     
         12 . The method of  claim 10 , further comprising delivering the gas to a feed chamber in the nozzle section at a pressure of 1 to 10 atm. 
     
     
         13 . The method of  claim 10 , wherein the film of pressurized gas has a thickness in a range from 60 μm to 70 μm. 
     
     
         14 . The method of  claim 10 , further comprising arranging the mandrel inline with a tubing forming apparatus that forms the tubing. 
     
     
         15 . The method of  claim 10 , further comprising cutting at least one sleeve from a section of the tubing that has been deformed into conformity with the nozzle section. 
     
     
         16 . The method of  claim 10  wherein discharging the gas comprises a combination of discharging the gas from the porous circumferential surface and venting the gas from depressed areas of the porous circumferential surface such that the film of pressurized gas is locally created between the tubing and the nozzle section. 
     
     
         17 . A sleeve made of a glass material, the sleeve having a seamless wall, the wall having an inner surface with a surface roughness less than 1 μm and an outer surface with a surface roughness less than 1 μm, the wall having opposed flat sections, each of the flat sections having a flatness better than 50 μm on an area of 70×120 mm 2 . 
     
     
         18 . The sleeve of  claim 17 , having an oblong cross-sectional shape.

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