Patents Assigned to Corning
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Patent number: 9133061Abstract: A method for making a ceramic body, the method including: mixing inorganic ceramic-forming ingredients to form a batch; adding a rapidly hydratable cellulosic binder and a liquid vehicle to the batch and further mixing to form a plasticized mixture; extruding the plasticized mixture to form a green body. The green body can then be heated sufficiently to produce a predominant ceramic phase, thereby transforming the green body into the ceramic body.Type: GrantFiled: April 1, 2010Date of Patent: September 15, 2015Assignee: Corning IncorporatedInventors: Gregg William Crume, Robert John Locker, Earl James Sanford
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Patent number: 9134842Abstract: The presssure-sensing touch systems and methods employ a light-source system and a detector system operably adjacent respective input and output edges of a waveguide. Pressure at a touch location on the waveguide gives rise to a touch event causes the waveguide to bend or flex. The waveguide bending causes a change in the optical paths of light traveling by FTIR, causing the light distribution in the output light to change. The changes are detected and are used to determine whether a touch event occurred, as well as the time-evolution of the touch event. The changes in the output light can include polarization changes caused by birefringence induced in the waveguide by the applied pressure applied. Various detector configurations are employed for sensing the location and pressure of a touch event.Type: GrantFiled: August 15, 2014Date of Patent: September 15, 2015Assignee: Corning IncorporatedInventor: Ming-Jun Li
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Patent number: 9133062Abstract: Methods of firing a cordierite green body to form a fired cordierite body. The green body comprises cordierite-forming raw materials and organic material, the body having a core portion and a skin portion. The green body is pre-heated to a pre-heat temperature that is less than a thermal decomposition temperature of the organic material. The green body is maintained at the pre-heat temperature for a period of time sufficient to minimize a temperature differential between the core portion and the skin portion. The green body is heated to a low firing temperature in a firing atmosphere sufficient to reduce a content of the organic material and to substantially remove chemically bound water from hydrous alumina. The green body is heated to a high firing temperature in a firing atmosphere sufficient to reduce the content of the organic material prior to a substantial removal of chemically bound water from clay.Type: GrantFiled: November 21, 2012Date of Patent: September 15, 2015Assignee: Corning IncorporatedInventors: Robert Joseph Castilone, Sriram Rangarajan Iyer, Mark Allen Spetseris, Jonathan Mark Stalker
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Patent number: 9136063Abstract: A container of an electrochemical double-layer capacitor includes a housing, a cap portion adapted to be coupled the housing, an orifice passing through one of the housing or the cap portion, and a vent assembly in fluid communication with the container and secured within the orifice. The housing and the cap portion define an interior envelope of the container, and at least a portion of the vent assembly is located inside the interior envelope of the container.Type: GrantFiled: November 23, 2011Date of Patent: September 15, 2015Assignee: Corning IncorporatedInventor: Todd Marshall Wetherill
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Patent number: 9133054Abstract: Crystallizable glasses, glass-ceramics, IXable glass-ceramics, and IX glass-ceramics are disclosed. The glass-ceramics exhibit ?-spodumene ss as the predominant crystalline phase. These glasses and glass-ceramics, in mole %, include: 62-75 SiO2; 10.5-17 Al2O3; 5-13 Li2O; 0-4 ZnO; 0-8 MgO; 2-5 TiO2; 0-4 B2O3; 0-5 Na2O; 0-4 K2O; 0-2 ZrO2; 0-7 P2O5; 0-0.3 Fe2O3; 0-2 MnOx; and 0.05-0.2 SnO2. Additionally, these glasses and glass-ceramics exhibit the following criteria: a. a ratio: [ Li 2 ? O + Na 2 ? O + K 2 ? O + MgO + ZnO ] [ Al 2 ? O 3 + B 2 ? O 3 ] ?between 0.7 to 1.5; b. a ? ? ratio ? : ? [ TiO 2 + SnO 2 ] [ SiO 2 + B 2 ? O 3 ] ?greater than 0.04. Furthermore, the glass-ceramics exhibit an opacity ?about 85% over the wavelength range of 400-700 nm for an about 0.Type: GrantFiled: October 31, 2013Date of Patent: September 15, 2015Assignee: Corning IncorporatedInventors: George Halsey Beall, Marie Jacqueline Monique Comte, George Owen Dale, Linda Ruth Pinckney, Charlene Marie Smith, Ronald Leroy Stewart, Steven Alvin Tietje
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Patent number: 9132578Abstract: A skinning apparatus including: a manifold having: a chamber, one or more channels, or both, to receive a source of flowable cement and to direct the received flowable cement to an interior skinning region or skinning chamber surrounding at least a portion of the lateral surface of a first article received in the skinning chamber, and to form a cement skin on the lateral surface of the received article; a source of motive force to controllably urge the received article into and through the skinning chamber; and a support member to receive and support the resulting skinned article. Also disclosed is a method for skinning a ceramic article using the aforementioned skinning apparatus, as defined herein.Type: GrantFiled: May 3, 2012Date of Patent: September 15, 2015Assignee: Corning IncorporatedInventors: John Crawford Anthony, Douglass L Blanding, Michael Jon Christenson, Calvin Thomas Coffey, William Albert Mammosser, Michael George Shultz
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Patent number: 9134218Abstract: Methods of testing a honeycomb filter for defects include the step of wetting at least one of the first end portion and the second end portion to provide at least one wetted end portion. The method further includes the step of monitoring the second end portion for fog passing through the filter.Type: GrantFiled: November 28, 2012Date of Patent: September 15, 2015Assignee: Corning IncorporatedInventors: Aisha Price Blanchard, Joseph Henry Citriniti, Julie Charmaine Frey, John Paul Bir Singh
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Publication number: 20150251914Abstract: A method for producing an amorphous activated carbon material includes heating a carbon precursor to a temperature effective to form a partially-dense amorphous carbon, and activating the partially-dense amorphous carbon to produce an amorphous activated carbon. To facilitate efficient activation of the amorphous carbon, the carbonization is controlled to produce an amorphous carbon material that, prior to activation, has a density of from 85% to 99% of a maximum density for the amorphous carbon.Type: ApplicationFiled: October 18, 2012Publication date: September 10, 2015Applicant: Corning IncorporatedInventors: Kishor Purushottam Gadkaree, Jia Liu
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Patent number: 9129756Abstract: A lithium-ion capacitor includes a cathode, an anode, and a porous separator positioned between the cathode and the anode. The cathode is formed using activated carbon, and the anode is formed from a composite material that includes lithium titanium oxide and a carbon material such as hard carbon or graphite.Type: GrantFiled: March 28, 2013Date of Patent: September 8, 2015Assignee: Corning IncorporatedInventors: Kishor Purushottam Gadkaree, Xiaorong Liu
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Patent number: 9128245Abstract: A low cost composition that cures rapidly and which is suitable for coating an optical fiber comprises at least one ethylenically unsaturated monomer; at least one photoinitiator; and at least one non-radiation-curable polar polymer having pendent groups that facilitate low energy chemical bonding, hydrogen bonding, dipolar interactions or other interactions with radical compounds formed during polymerization of the monomer. The non-radiation-curable polar polymer(s) are inexpensive and reduce and/or eliminate the need for expensive urethane acrylate oligomers, without sacrificing properties, and while achieving rapid cure speeds.Type: GrantFiled: April 9, 2014Date of Patent: September 8, 2015Assignee: Corning IncorporatedInventors: Michelle Dawn Fabian, Kevin Robert McCarthy, Weijun Niu, David Neal Schissel, Michael James Winningham
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Patent number: 9126871Abstract: The disclosure relates to aluminum titanate-forming batch materials comprising inorganic batch components comprising at least one alkaline earth carbonate having a specified particle size distribution, methods of making ceramic bodies using the same, and ceramic bodies made in accordance with said methods.Type: GrantFiled: May 31, 2012Date of Patent: September 8, 2015Assignee: Corning IncorporatedInventors: Daniel Edward McCauley, Patrick David Tepesch, Christopher John Warren
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Patent number: 9128048Abstract: A method for assessing the cure status of a fibrous blanket manufactured with mineral fibers and binder is disclosed and comprises a using an online optical reflectance measurement as an assessment of cure status. The optical reflectance measurement may preferably be a color image taken of any surface, and in particular of a sectioned face, after which the image is optionally divided into multiple regions of interest (ROI) and analyzed for a color system variable that is representative of cure status. In some embodiments, the color system variable is the B value. Alternatively, the optical reflectance measurement may be UV or IR reflectance of a sectioned face. When two or more regions of interest are defined on a sectioned face, comparative information is valuable to assess cure at different levels, layers or portions of the interior of the fibrous product.Type: GrantFiled: April 19, 2011Date of Patent: September 8, 2015Assignee: Owens Corning Intellectual Capital, LLCInventors: Samer T. Yousef, Michael D. Pietro, Wei Li, Elaina M. Carpino
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Patent number: 9126856Abstract: Methods are provided for controlling the formation of defects in sheet glass produced by a fusion process which employs a zirconia melting unit. The methods comprise controlling the temperature profile of the glass as it passes through the finer, finer to stir chamber connecting tube, and stir chamber to minimize both the amount of zirconia which diffuses into the glass and the amount of secondary zirconia based defects which comes out of solution in the stir chamber.Type: GrantFiled: November 19, 2010Date of Patent: September 8, 2015Assignee: Corning IncorporatedInventors: Megan A. DeLamielleure, Irene M. Peterson
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Patent number: 9126360Abstract: Methods of operating an extrusion apparatus are provided for extruding ceramic or ceramic-forming material. The extrusion apparatus includes an extrusion die mounted with respect to a barrel. At least one screw is rotatably mounted within the barrel, and a feeder is configured to introduce a batch material to the screw. Example methods can adjust at least one of a rotational rate of the screw to an initial rotational rate or a feed rate of the feeder to an initial feed rate when based on a changed operating condition and/or when the batch material reaches the extrusion die. At least one of the rotational rate of the screw or the feed rate of the feeder can then be increased during a transient state until a steady state is reached.Type: GrantFiled: November 24, 2009Date of Patent: September 8, 2015Assignee: Corning IncorporatedInventors: Wenbin Qiu, Joel Andrew Schultes
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Patent number: 9130613Abstract: The invention is directed to a method and system for supporting MIMO technologies which can require the transport of multiple spatial streams on a traditional Distributed Antenna System (DAS). According to the invention, at one end of the DAS, each spatial stream is shifted in frequency to a pre-assigned band (such as a band at a frequency lower than the native frequency) that does not overlap the band assigned to other spatial streams (or the band of any other services being carried by the DAS). Each of the spatial streams can be combined and transmitted as a combined signal over a common coaxial cable. At the other “end” of the DAS, the different streams are shifted back to their original (overlapping) frequencies but retain their individual “identities” by being radiated through physically separate antenna elements.Type: GrantFiled: August 29, 2012Date of Patent: September 8, 2015Assignee: Corning Optical Communications Wireless LtdInventors: Yair Oren, Igor Berlin, Ofer Saban, Isaac Shapira, Rami Reuven
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Patent number: 9126202Abstract: A modular mounting and connection or interconnection system for microfluidic devices (20) includes a plurality of end-butting compression-sealing fluid connectors or adapters (32), and one or more clamping structures (54, 56) each structured to hold one of the fluid connectors (32) in compression against a planar surface of a microfluidic device (20), and to press against the device, on another directly opposing planar surface thereof, either a contact pad (48) or another of the fluid connectors (32), with each clamping structure (54,56) including an individually moveable compression-providing element such as a compression screw (36) structured to provide a controlled amount of compression.Type: GrantFiled: May 9, 2007Date of Patent: September 8, 2015Assignee: Corning IncorporatedInventors: Olivier Lobet, Paul Delautre
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Patent number: 9128254Abstract: An optical fiber connector includes a ferrule configured to receive an optical fiber. The ferrule has a fiber bore and a storage location interior to the ferrule and adjacent to the fiber bore. The storage location comprises a funnel-shaped portion that is directed toward the fiber bore. An adhesive material is positioned in the storage location of the ferrule. The adhesive material is a dry and solid material.Type: GrantFiled: March 13, 2014Date of Patent: September 8, 2015Assignee: Corning Optical Communications LLCInventors: Jeffrey Dean Danley, Robert Bruce Elkins, II, Darrin Max Miller, Dennis Craig Morrison
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Patent number: 9123904Abstract: In one example embodiment, a light emitting device includes a transparent substrate and a transparent electrode on the transparent substrate, the transparent electrode comprising at least two transparent electrode layers, the at least two transparent electrode layers being successively stacked and having different refractive indices, the refractive index of one of the at least two transparent electrode layers that is closer to the transparent substrate being higher than the refractive index of the other one of the at least two transparent electrode layers. The light emitting device further includes a light emission layer on the transparent electrode and a reflective electrode on the light emission layer.Type: GrantFiled: January 2, 2014Date of Patent: September 1, 2015Assignees: Samsung Electronics Co., Ltd., Samsung Corning Precision Materials Co., Ltd.Inventors: Gae-hwang Lee, Jeong-woo Park, Yoon-young Kwon, Kyung-wook Park, Mi-jeong Song, Young-Zo Yoo, Yong-wan Jin
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Patent number: 9121178Abstract: A roofing shingle is provided. The roofing shingles includes an overlay sheet including a headlap portion and a tab portion and an underlay sheet secured to the overlay sheet such that a region of the underlay sheet overlaps a region of the headlap portion of the overlay sheet. A reinforcement material is secured to the headlap portion of the overlay sheet. The reinforcement material is configured to improve nail pull-through. The reinforcement material extends beyond the overlapping regions of the headlap portion and the underlay sheet a distance of about 0.12 inches or less.Type: GrantFiled: May 2, 2014Date of Patent: September 1, 2015Assignee: Owens Corning Intellectual Capital, LLCInventors: James S. Belt, Bert W. Elliot
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Patent number: 9122072Abstract: The present disclosure provides a sealing device for use in variable focus lenses that includes a guide member having at least one internal cavity and a passageway intersecting the internal cavity. A pinch member is slidably engaged within the internal cavity of the guide member and a portion of the pinch member slides across the passageway and into a portion of the internal cavity to deform and seal a fluid tube extending through the passageway. A set of adjustable eyeglasses employing the sealing device is also provided.Type: GrantFiled: May 19, 2014Date of Patent: September 1, 2015Assignee: Dow Corning CorporationInventors: Richard Andrew Hartshorn, Edward Henry Goodwin, Richard Edward Taylor, Jeremy Stimson, Maja Kecman