Patents by Inventor John Stone, III
John Stone, III has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Publication number: 20230173514Abstract: A spray coating apparatus that applies a coating material onto outer surfaces of glass objects includes a coating material source that includes a coating material. A spray nozzle assembly includes a spray nozzle fluidly connected to the coating material source. The spray nozzle is arranged and configured to direct the coating material in a first direction toward the glass object and provide an overspray amount of the coating material by the glass object such that the overspray amount bypasses a non-line of sight area of the glass object. A turn nozzle assembly includes a turn nozzle fluidly connected to a pressurized gas source. The turn nozzle is arranged and configured to direct pressurized gas in a second direction different than the first direction toward the non-line of sight area of the glass package to redirect the coating material onto the non-line of sight area.Type: ApplicationFiled: November 30, 2022Publication date: June 8, 2023Inventors: James Michael Brown, Brian Charles Cook, Daniel Warren Hawtof, Purushotam Kumar, Sean Thomas Miller, Bruce Arthur Mourhess, JR., Elias Panides, James Westley Rogacki, John Stone, III, Yujian Sun, Leo Young Zheng
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Patent number: 11274056Abstract: A system and method for sintering a thin, high purity fused silica glass sheet having a thickness of 500 ?m or less, includes a step of rastering a beam of a laser across a sheet of high purity fused silica soot; wherein a pattern of the rastering includes tightly spacing target locations on the sheet such that the laser sinters the soot and simultaneously forms tiny notches on a first major surface of the sheet when viewed in cross-section, wherein the tiny notches are crenellated such that at least some of the notches have generally flat bottom surfaces and at least some respective adjoining caps have generally plateau top surfaces offset from the bottom surfaces by steeply-angled sidewalls.Type: GrantFiled: August 16, 2017Date of Patent: March 15, 2022Assignee: Corning IncorporatedInventors: Venkata Adiseshaiah Bhagavatula, Daniel Warren Hawtof, Xinghua Li, Gary Edward Merz, John Stone, III
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Patent number: 10435324Abstract: A system and method for making an edge section of a thin, high purity fused silica glass sheet. The method includes a step of directing a laser to melt through the glass sheet with localized heating of a narrow portion of the glass sheet to form an edge section of the glass sheet, and continuing the edge section to form a closed loop defining a perimeter of the glass sheet. The method further includes rapidly cooling the glass sheet through the glass transition temperature as the melted glass of the edge section contracts and/or solidifies to form an unrefined-bullnose shape extending between first and second major surfaces of the glass sheet.Type: GrantFiled: August 16, 2017Date of Patent: October 8, 2019Assignee: Corning IncorporatedInventors: Venkata Adiseshaiah Bhagavatula, Daniel Warren Hawtof, Xinghua Li, Gary Edward Merz, John Stone, III
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Publication number: 20180356587Abstract: A multicore fiber is provided. The multicore fiber includes a plurality of cores spaced apart from one another, and a cladding surrounding the plurality of cores and defining a substantially rectangular or cross-sectional shape having four corners. Each corner has a radius of curvature of less than 1000 microns. The multicore fiber may be drawn from a preform in a circular draw furnace in which a ratio of a maximum cross-sectional dimension of the preform to an inside diameter of the preform to an inside diameter of the draw furnace is greater than 0.60. The multicore fiber may have maxima reference surface.Type: ApplicationFiled: August 22, 2018Publication date: December 13, 2018Inventors: Douglas Llewellyn Butler, Daniel Warren Hawtof, Rick Charles Layton, III, Gautam Meda, John Stone, III, Pushkar Tandon
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Publication number: 20180215645Abstract: A system and method for making an edge section of a thin, high purity fused silica glass sheet. The method includes a step of directing a laser to melt through the glass sheet with localized heating of a narrow portion of the glass sheet to form an edge section of the glass sheet, and continuing the edge section to form a closed loop defining a perimeter of the glass sheet. The method further includes rapidly cooling the glass sheet through the glass transition temperature as the melted glass of the edge section contracts and/or solidifies to form an unrefined-bullnose shape extending between first and second major surfaces of the glass sheet.Type: ApplicationFiled: August 16, 2017Publication date: August 2, 2018Inventors: Venkata Adiseshaiah Bhagavatula, Daniel Warren Hawtof, Xinghua Li, Gary Edward Merz, John Stone, III
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Publication number: 20180057388Abstract: A system and method for sintering a thin, high purity fused silica glass sheet having a thickness of 500 ?m or less, includes a step of rastering a beam of a laser across a sheet of high purity fused silica soot; wherein a pattern of the rastering includes tightly spacing target locations on the sheet such that the laser sinters the soot and simultaneously forms tiny notches on a first major surface of the sheet when viewed in cross-section, wherein the tiny notches are crenellated such that at least some of the notches have generally flat bottom surfaces and at least some respective adjoining caps have generally plateau top surfaces offset from the bottom surfaces by steeply-angled sidewalls.Type: ApplicationFiled: August 16, 2017Publication date: March 1, 2018Inventors: Venkata Adiseshaiah Bhagavatula, Daniel Warren Hawtof, Xinghua Li, Gary Edward Merz, John Stone, III
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Patent number: 9841556Abstract: A multicore fiber is provided. The multicore fiber includes a plurality of cores spaced apart from one another, and a cladding surrounding the plurality of cores and defining a substantially rectangular or cross-sectional shape having four corners. Each corner has a radius of curvature of less than 1000 microns. The multicore fiber may be drawn from a preform in a circular draw furnace in which a ratio of a maximum cross-sectional dimension of the preform to an inside diameter of the preform to an inside diameter of the draw furnace is greater than 0.60. The multicore fiber may have maxima reference surface.Type: GrantFiled: April 25, 2016Date of Patent: December 12, 2017Assignee: Corning IncorporatedInventors: Douglas Llewellyn Butler, Daniel Warren Hawtof, Rick Charles Layton, III, Gautam Meda, John Stone, III, Pushkar Tandon
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Publication number: 20170322369Abstract: A multicore fiber is provided. The multicore fiber includes a plurality of cores spaced apart from one another, and a cladding surrounding the plurality of cores and defining a substantially rectangular or cross-sectional shape having four corners. Each corner has a radius of curvature of less than 1000 microns. The multicore fiber may be drawn from a preform in a circular draw furnace in which a ratio of a maximum cross-sectional dimension of the preform to an inside diameter of the preform to an inside diameter of the draw furnace is greater than 0.60. The multicore fiber may have maxima reference surface.Type: ApplicationFiled: July 25, 2017Publication date: November 9, 2017Inventors: Douglas Llewellyn Butler, Daniel Warren Hawtof, Rick Charles Layton, III, Gautam Meda, John Stone, III, Pushkar Tandon
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Publication number: 20160349447Abstract: A multicore fiber is provided. The multicore fiber includes a plurality of cores spaced apart from one another, and a cladding surrounding the plurality of cores and defining a substantially rectangular or cross-sectional shape having four corners. Each corner has a radius of curvature of less than 1000 microns. The multicore fiber may be drawn from a preform in a circular draw furnace in which a ratio of a maximum cross-sectional dimension of the preform to an inside diameter of the preform to an inside diameter of the draw furnace is greater than 0.60. The multicore fiber may have maxima reference surface.Type: ApplicationFiled: April 25, 2016Publication date: December 1, 2016Inventors: Douglas Llewellyn Butler, Daniel Warren Hawtof, Rick Charles Layton, III, Gautam Meda, John Stone, III, Pushkar Tandon
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Patent number: 9422187Abstract: A system and method for making a thin sintered silica sheet is provided. The method includes providing a soot deposition surface and forming a glass soot sheet by delivering a stream of glass soot particles from a soot generating device to the soot deposition surface. The method includes providing a sintering laser positioned to direct a laser beam onto the soot sheet and forming a sintered glass sheet from the glass soot sheet by delivering a laser beam from the sintering laser onto the glass soot sheet. The sintered glass sheet formed by the laser sintering system or method is thin, has low surfaces roughness and/or low contaminant levels.Type: GrantFiled: September 23, 2015Date of Patent: August 23, 2016Assignee: CORNING INCORPORATEDInventors: Jonas Bankaitis, Venkata Adiseshaiah Bhagavatula, Daniel Warren Hawtof, Xinghua Li, Gary Edward Merz, John Stone, III
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Patent number: 8137469Abstract: Disclosed are process and apparatus for making high purity fused silica glass materials. The process involves depositing soot particles onto an essentially planar deposition supporting surface and modulation of motion of the soot-generating device relative to the deposition supporting surface to result in a low local soot density variation. The apparatus is designed to implement the planar deposition process. The invention makes it possible to produce fused silica glass without the use of potentially contaminating refractory bricks.Type: GrantFiled: December 14, 2005Date of Patent: March 20, 2012Assignee: Corning IncorporatedInventors: Daniel Warren Hawtof, Michael T Kelley, John Stephen Rosettie, Andrew Paul Schermerhorn, Kashyap H Shah, John Stone, III, Pushkar Tandon
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Patent number: 8037717Abstract: A method of manufacturing an optical waveguide preform includes providing a first process gas atmosphere to a soot preform contained in a vessel. The first atmosphere is held in the vessel for a first reacting time sufficient to at least partially dope or dry the soot preform. The vessel is then at least partially refilled with a second doping or drying atmosphere. The second doping or drying atmosphere is held in the vessel for a second reacting time sufficient to further dope or dry the soot preform.Type: GrantFiled: October 26, 2001Date of Patent: October 18, 2011Assignee: Corning IncorporatedInventors: Steven B. Dawes, Daniel W. Hawtof, Michael T. Murtagh, John S. Rosettie, Andrew P. Schermerhorn, Merrill F. Sproul, John Stone, III, Pushkar Tandon
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Patent number: 7344901Abstract: A method and apparatus for forming a hermetic seal between two substrates includes providing an electromagnetic absorbent sealing material perimetrically about a surface of one of the substrates. Furthermore, the illustrative method includes heating the sealing material. In addition, a package having a hermetic seal and apparati for disposing a sealing material are described.Type: GrantFiled: October 13, 2004Date of Patent: March 18, 2008Assignee: Corning IncorporatedInventors: Daniel W. Hawtof, Kamjula Pattabhirami Reddy, John Stone, III
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Patent number: 6743011Abstract: A burner module for delivering a flow of chemical reactants to a combustion site of a chemical vapor deposition process includes a plurality of substantially planar layers. The substantially planar layers are arranged in a generally parallel and fixed relationship and define an inlet, an outlet and a passage fluidly connecting the inlet and outlet. At least one of the layers is a distribution layer having a plurality of apertures therethrough and fluidly communicating with the passage. The plurality of apertures collectively define a non-uniform pattern arranged and configured to improve the uniformity of a flow out through the outlet. Burner adapter and assembly embodiments are also included.Type: GrantFiled: December 19, 2001Date of Patent: June 1, 2004Assignee: Corning IncorporatedInventors: Shivalik Bakshi, Daniel W. Hawtof, John S. Rosettie, Amy L. Rovelstad, John Stone, III
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Patent number: 6739156Abstract: The present invention is directed to a system and method for delivering liquid reactants through a burner assembly to form soot used in the manufacture of glass, and in particular, optical waveguides. Due to the tendency of liquid reactants to react to form solids when exposed to water in the air, an evaporative liquid is first delivered through the burner assembly to the combustion zone. Once steady state liquid flow has been achieved in the system, the evaporative liquid is transitioned to the liquid reactant. The liquid reactant is delivered along the same path to the burner assembly, which discharges the liquid reactant into the combustion zone as an atomized liquid to form soot used in the manufacture of glass. Once the desired quantity of soot has been formed, the liquid reactant is transitioned back to the evaporative liquid while maintaining steady state flow. After the liquid reactant has cleared the system, flow of the evaporative liquid is terminated and the burner assembly flame turned off.Type: GrantFiled: February 1, 2001Date of Patent: May 25, 2004Assignee: Corning IncorporatedInventors: Daniel W. Hawtof, John Stone, III, Joseph M. Whalen
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Patent number: 6736633Abstract: A burner manifold apparatus (10) for delivering reactants to a combustion site of a chemical vapor deposition process includes fluid inlets (32a, 32b), fluid outlets (49), and a plurality of fluid passages (50) extending therebetween. The fluid passages (50) converge toward each other from the fluid inlets to the fluid outlets. One embodiment includes a manifold base (12), a pressure plate (14), and a manifold burner mount (16) for mounting thereto a micromachined burner (58). The fluid passages (50) internal to the manifold base are configured to distribute symmetrically the fluid to the manifold burner mount. The fluid is then channeled through fluid passages in the manifold burner mount. The fluid passages converge, yet remain fluidly isolated from each other, and the fluid passages create a linear array for producing linear streams of fluid. Alternatively, the burner manifold apparatus may include a plurality of manifold elements in a stacked arrangement.Type: GrantFiled: April 26, 2001Date of Patent: May 18, 2004Assignee: Corning IncorporatedInventors: David F. Dawson-Elli, Xiaodong Fu, Daniel W. Hawtof, William J. Kiefer, John F. Wight, Jr., John Stone, III
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Patent number: 6672106Abstract: The present invention is directed to a method and apparatus for forming soot used in making glass, and in particular, optical waveguides. A liquid precursor (66) is first fed into orifice (52) of a liquid orifice insert (48) within an injector (44) positioned within an atomizing burner assembly, and is thereafter discharged from the injector into a pressurization chamber (56). An atomization gas (70) is also fed into the pressurization chamber (56) to mix with the liquid precursor liquid stream (68) which breaks into droplets (76). The liquid precursor and atomization gas arm forced under pressure out of an atomization orifice (32) on the face of the burner (30) assembly. Flame gas (74), reaction gas (84) and shield gas (82) are ejected from burner orifices (40, 38, 36 and 34) to produce the flame.Type: GrantFiled: January 31, 2001Date of Patent: January 6, 2004Assignee: Corning IncorporatedInventors: Daniel W. Hawtof, John Stone, III