Oxygen Permeates Barrier Patents (Class 95/54)
  • Patent number: 8734573
    Abstract: An object is to provide a vent plug having a structure in which an air-permeable membrane is unlikely to be damaged. More specifically, a vent plug is produced, which includes: a cylindrical member 1 having a through-hole 1a; a support 2 connected to the cylindrical member 1 so as to be across the through-hole 1a; and an air-permeable membrane 3 circumferentially attached to the cylindrical member 1, wherein the air-permeable membrane 3 is held on the support 2 and a convex portion 3a that follows the shape of the support 2 is formed on the air-permeable membrane 3.
    Type: Grant
    Filed: July 14, 2010
    Date of Patent: May 27, 2014
    Assignee: W. L. Gore & Associates, Co., Ltd.
    Inventors: Masashi Ono, Hiroshi Manabe
  • Patent number: 8734568
    Abstract: The present invention relates to an asymmetric hollow fiber membrane for gas separation made of a soluble aromatic polyimide, wherein an orientation index is 1.3 or less, a separation coefficient ?(P?O2/P?N2) as a permeation rate ratio of oxygen gas/nitrogen gas at 40° C. is 5.3 or more, and a tensile fracture elongation is 15% or more.
    Type: Grant
    Filed: March 30, 2011
    Date of Patent: May 27, 2014
    Assignee: Ube Industries, Ltd.
    Inventors: Hiroki Hisamori, Tatsuya Hayashi, Seiji Morihashi, Tomonori Kanougi
  • Patent number: 8734567
    Abstract: Disclosed herein is a method for preparing a crosslinked hollow fiber membrane. The method involves spinning a one phase solution comprising a monoesterified polyimide polymer, acetone as a volatile solvent, a spinning solvent, a spinning non-solvent, and optionally an organic and/or inorganic additive, wherein the volatile solvent is present in an amount of greater than 25 wt. % to about 50 wt. %, based on the total weight of the solution.
    Type: Grant
    Filed: April 29, 2013
    Date of Patent: May 27, 2014
    Assignee: Chevron U.S.A. Inc.
    Inventor: Shabbir Husain
  • Publication number: 20140137735
    Abstract: The disclosure relates generally to a gas separation membrane and a gas separation method in which at least one type of gas is separated and recovered from a gas mixture, using the gas separation membrane. The gas separation membrane is asymmetric and hollow and made of a polyimide material. The method of the invention provides a practical, high-performance technique for gas separation.
    Type: Application
    Filed: December 28, 2012
    Publication date: May 22, 2014
    Applicant: GENERAL ELECTRIC COMPANY
    Inventors: Dhaval Ajit Bhandari, Kristi Jean Narang, Kimberly Ann Polishchuk
  • Publication number: 20140137734
    Abstract: The present invention discloses new types of poly(amidoamine) (PAMAM) dendrimer-cross-linked polyimide membranes and methods for making and using these membranes. The membranes are prepared by cross-linking of asymmetric aromatic polyimide membranes using a PAMAM dendrimer as the cross-linking agent. The PAMAM-cross-linked polyimide membranes showed significantly improved selectivities for CO2/CH4 compared to a comparable uncrosslinked polyimide membrane. For example, PAMAM 0.0 dendrimer-cross-linked asymmetric flat sheet poly(3,3?,4,4?-diphenylsulfone tetracarboxylic dianhydride-3,3?,5,5?-tetramethyl-4,4?-methylene dianiline) (DSDA-TMMDA) polyimide membrane showed CO2 permeance of 135.2 A.U. and CO2/CH4 selectivity of 20.3. However, the un-cross-linked DSDA-TMMDA asymmetric flat sheet membrane showed much lower CO2/CH4 selectivity (16.5) and higher CO2 permeance (230.8 GPU).
    Type: Application
    Filed: November 20, 2012
    Publication date: May 22, 2014
    Applicant: UOP LLC
    Inventors: Chunqing Liu, Howie Q. Tran
  • Publication number: 20140138317
    Abstract: The present invention generally relates to gas separation membranes and, in particular, to high selectivity fluorinated ethylene-propylene polymer-comprising polymeric blend membranes for gas separations. The polymeric blend membrane comprises a fluorinated ethylene-propylene polymer and a second polymer different from the fluorinated ethylene-propylene polymer. The fluorinated ethylene-propylene polymers in the current invention are copolymers comprising 10 to 99 mol % 2,3,3,3-tetrafluoropropene-based structural units and 1 to 90 mol % vinylidene fluoride-based structural units. The second polymer different from the fluorinated ethylene-propylene polymer is selected from a low cost, easily processable glassy polymer.
    Type: Application
    Filed: November 16, 2012
    Publication date: May 22, 2014
    Applicant: UOP LLC
    Inventors: Chunqing Liu, Zara Osman, Changqing Lu, Andrew J. Poss, Rajiv R. Singh
  • Publication number: 20140138314
    Abstract: A fluorinated ethylene-propylene polymeric membrane comprising a copolymer comprising 2,3,3,3-tetrafluoropropene and vinylidene fluoride is disclosed. The fluorinated ethylene-propylene polymeric membranes of the invention are especially useful in gas separation processes in air purification, petrochemical, refinery, and natural gas industries.
    Type: Application
    Filed: November 16, 2012
    Publication date: May 22, 2014
    Applicant: UOP LLC
    Inventors: Chunqing Liu, Zara Osman, Howie Q. Tran, Changqing Lu, Andrew J. Poss, Rajiv R. Singh, David Nalewajek, Cheryl L. Cantlon
  • Patent number: 8728202
    Abstract: Ion transport membrane oxidation system comprising (a) two or more membrane oxidation stages, each stage comprising a reactant zone, an oxidant zone, one or more ion transport membranes separating the reactant zone from the oxidant zone, a reactant gas inlet region, a reactant gas outlet region, an oxidant gas inlet region, and an oxidant gas outlet region; (b) an interstage reactant gas flow path disposed between each pair of membrane oxidation stages and adapted to place the reactant gas outlet region of a first stage of the pair in flow communication with the reactant gas inlet region of a second stage of the pair; and (c) one or more reactant interstage feed gas lines, each line being in flow communication with any interstage reactant gas flow path or with the reactant zone of any membrane oxidation stage receiving interstage reactant gas.
    Type: Grant
    Filed: July 17, 2012
    Date of Patent: May 20, 2014
    Assignee: Air Products and Chemicals, Inc.
    Inventors: John Michael Repasky, Michael Francis Carolan, VanEric Edward Stein, Christopher Ming-Poh Chen
  • Patent number: 8721766
    Abstract: A porously coated, densely sintered ceramic membrane, which can be produced from a green membrane and subsequent sintering. The membrane is coated with ceramic material, which contains noble metals, which can be produced by application and subsequent thermal treatment. The noble metals are contained at a concentration of 2.5 to 5 mass percent.
    Type: Grant
    Filed: May 19, 2010
    Date of Patent: May 13, 2014
    Assignee: Thyssenkrupp UHDE GmbH
    Inventors: Steffen Schirrmeister, Bernd Langanke, Bjoern Hoting
  • Patent number: 8709133
    Abstract: The invention concerns carbon molecular sieve membranes (“CMS membranes”), and more particularly the use of such membranes in gas separation. In particular, the present disclosure concerns an advantageous method for producing CMS membranes with desired selectivity and permeability properties. By controlling and selecting the oxygen concentration in the pyrolysis atmosphere used to produce CMS membranes, membrane selectivity and permeability can be adjusted. Additionally, oxygen concentration can be used in conjunction with pyrolysis temperature to further produce tuned or optimized CMS membranes.
    Type: Grant
    Filed: June 28, 2013
    Date of Patent: April 29, 2014
    Assignees: Georgia Tech Research Corporation, Shell Oil Company
    Inventors: Mayumi Kiyono, Paul Jason Williams, William John Koros
  • Patent number: 8709132
    Abstract: In some implementations, a system for disassociating water includes a decomposition chamber, a heating element, a plurality of hollow fiber membranes, and a water inlet. The heating element is positioned in the decomposition chamber and configured to generate heat sufficient to dissociate at least a portion of water to hydrogen and oxygen. The plurality of hollow fiber membranes include at least a section of each hollow fiber membrane that passes through the decomposition chamber and has an inner conduit and an outer wall. The inner conduit for each hollow fiber membrane is configured to pass a sweep gas, and the outer wall for each hollow fiber membrane is configured to selectively pass either oxygen or hydrogen. The water inlet connected to the decomposition chamber and configured to pass water vapor into the decomposition chamber.
    Type: Grant
    Filed: October 17, 2011
    Date of Patent: April 29, 2014
    Assignee: Stellar Generation, LLC
    Inventor: Jerome Lee Elkind
  • Patent number: 8696795
    Abstract: The invention relates to a method of separating oxygen from an oxygen containing gas, said method comprising the steps of: compressing and heating the oxygen containing gas in a plasma pump (16), guiding the heated and compressed oxygen containing gas to the primary side of a dense inorganic membrane (58), thereby heating the inorganic membrane by the oxygen containing gas to a temperature at which it is permeable for oxygen, and creating a pressure difference between the primary side and a secondary side of the inorganic membrane (58), wherein an oxygen flow through the inorganic membrane (58) is created, thereby separating the oxygen from the oxygen containing gas.
    Type: Grant
    Filed: December 14, 2010
    Date of Patent: April 15, 2014
    Assignee: Koninklijke Philips N.V.
    Inventor: Rainer Hilbig
  • Publication number: 20140053726
    Abstract: An aircraft fuel tank flammability reduction method includes feeding pressurized air into an air separation module containing a carbon membrane, the air feed exhibiting a normal pressure of no more than 55 psig and the carbon membrane containing at least 95 weight percent carbon. The method includes producing nitrogen-enriched air from the air separation module as a result of removing oxygen from the air feed. An aircraft fuel tank flammability reduction system includes a source for pressurized air, an air separation module configured to receive air feed from the pressurized air source, and a carbon membrane containing at least 95 weight percent carbon. The carbon membrane is configured to permeate oxygen from the air feed through the carbon membrane at a temperature of at least 120° C. (248° F.) and to produce nitrogen-enriched air from the air separation module as a result of removing oxygen from the air feed.
    Type: Application
    Filed: August 24, 2012
    Publication date: February 27, 2014
    Inventors: Barbara J. Evosevich, Ivana Jojic
  • Patent number: 8657920
    Abstract: An apparatus and method purify hydrogen from a mixed fluid containing gaseous hydrogen, gaseous oxygen, and liquid water. The apparatus has a mixed fluid channel through which the mixed fluid flows; a first gas channel through which a mixed gas containing gaseous hydrogen and gaseous oxygen flows; a second gas channel through which gaseous hydrogen or oxygen flows; a gas-liquid separating membrane forming a wall between the mixed fluid channel and the first gas channel, separating the mixed gas from the mixed fluid of the mixed fluid channel, and providing the separated mixed gas to the first gas channel; and a hydrogen or oxygen separating membrane forming a wall between the first gas channel and the second gas channel, separating gaseous hydrogen or oxygen from the mixed gas of the first gas channel, and providing the separated gaseous hydrogen or oxygen to the second gas channel.
    Type: Grant
    Filed: April 8, 2010
    Date of Patent: February 25, 2014
    Assignee: Toyota Jidosha Kabushiki Kaisha
    Inventors: Haruyuki Nakanishi, Norihiko Nakamura, Hidekazu Arikawa, Hirofumi Fujiwara, Hidehito Kubo, Keiji Toh, Akiko Kumano, Shohei Matsumoto
  • Patent number: 8647410
    Abstract: The invention provides systems and methods for exchanging gas in an oxygenator device, and methods for preparing and using such oxygenator devices. The systems and methods can be used to transfer oxygen to blood to assist lung function in a patient.
    Type: Grant
    Filed: May 26, 2011
    Date of Patent: February 11, 2014
    Assignee: The Charles Stark Draper Laboratory, Inc.
    Inventors: Jeffrey T. Borenstein, Joseph L. Charest, James Ching-Ming Hsiao, Tatiana Kniazeva
  • Publication number: 20140033918
    Abstract: The invention describes a polymeric material comprising repeating units of Formulae I-III and methods of preparation. Novel polymeric materials, gas separation membranes and fluid component separation methods are also described.
    Type: Application
    Filed: August 3, 2012
    Publication date: February 6, 2014
    Applicant: AIR PRODUCTS AND CHEMICALS, INC.
    Inventors: Shiying Zheng, Jeffrey Raymond Quay
  • Patent number: 8636827
    Abstract: A method of operating a mixed ionic-electronic conducting ceramic membrane having an oxidizing side and a reducing side, said method comprising a start-up phase and a production phase, for producing a gas stream, characterized in that the start-up phase comprises a step of introducing, on the oxidizing side and the reducing side of the membrane respectively, first and second gas mixtures not capable of chemically degrading the membrane; and a step of establishing a stream of oxygen through the membrane.
    Type: Grant
    Filed: June 22, 2011
    Date of Patent: January 28, 2014
    Assignee: L'Air Liquide Société Anonyme Pour l'Etude et l'Exploitation des Procedes Georges Claude
    Inventors: Nicolas Richet, Cédric Delbos, Gilles Lebain
  • Publication number: 20140000454
    Abstract: The various embodiments of the disclosure relate generally to carbon molecular sieve membranes (CMSM) and their associated fabrication processes, and more particularly to CMSM that maintain high gas selectivities without losing productivity. Methods for enriching a mixture of gases in one gas via the use of the CMS membranes, and gas enrichment devices using the same, are also disclosed.
    Type: Application
    Filed: May 30, 2013
    Publication date: January 2, 2014
    Inventors: Rachana Singh, William John Koros
  • Patent number: 8617291
    Abstract: A method of preparing a supported gas separation membrane, comprising: preparing crystalline seeds from a synthesis mixture comprising an aluminum source, a phosphorous source, a silicon source, at least one organic templating agent and water; applying the seeds to a porous support to produce a seeded porous support; contacting the seeded porous support with a synthesis gel under hydrothermal synthesis conditions to produce a coated porous support; and calcining the coated porous support is described. A supported gas separation membrane made by this method is also described.
    Type: Grant
    Filed: May 27, 2010
    Date of Patent: December 31, 2013
    Assignee: Shell Oil Company
    Inventors: Brendan Dermot Murray, Paul Jason Williams
  • Publication number: 20130333563
    Abstract: The invention relates to a method of generating oxygen. The method comprises the steps of: intermittently guiding a stream of oxygen comprising gas through at least one adsorption chamber (12) being equipped with an oxygen separation adsorbent (16), thereby defining an adsorption mode and a desorption mode of the at least one adsorption chamber (12), and thereby enriching the oxygen comprising gas with respect to oxygen, guiding the enriched oxygen comprising gas to a primary side of a dense membrane (52), heating the dense membrane(52) to a temperature at which it is permeable for oxygen, generating an oxygen flow through the dense membrane (52) to its secondary side, thereby separating the oxygen from the enriched oxygen comprising gas and forming a stream of oxygen. According to the invention, the invention further comprises the step of guiding at least a part of the generated oxygen through the at least one adsorption chamber (12) being in desorption mode.
    Type: Application
    Filed: February 27, 2012
    Publication date: December 19, 2013
    Applicant: KONINKLIJKE PHILIPS N.V.
    Inventors: Rainer Hilbig, Achim Gerhard Rolf Koerber, Mareike Klee, Wilco Cornelis Keur
  • Publication number: 20130305921
    Abstract: The invention concerns carbon molecular sieve membranes (“CMS membranes”), and more particularly the use of such membranes in gas separation. In particular, the present disclosure concerns an advantageous method for producing CMS membranes with desired selectivity and permeability properties. By controlling and selecting the oxygen concentration in the pyrolysis atmosphere used to produce CMS membranes, membrane selectivity and permeability can be adjusted. Additionally, oxygen concentration can be used in conjunction with pyrolysis temperature to further produce tuned or optimized CMS membranes.
    Type: Application
    Filed: June 28, 2013
    Publication date: November 21, 2013
    Inventors: Mayumi Kiyono, Paul Jason Williams, William John Koros
  • Patent number: 8574342
    Abstract: Method and apparatus for a membrane separation system, including process and installation for the separation of air by permeation, using two strategically placed heaters for the production of high purity nitrogen, uniquely designed multi-staged pre-filtration system and a novel method of controlling the nitrogen flow and purity. The system comprises in series an air compressor (1), an air cooler (2) cooled by air or liquid, moisture separator (3), mist removing filter (4), primary heat source (5), coalescing filter (8), carbon tower (9), particle filter (10), secondary heat source (11), membrane separator(s) (14), and control valve (19). The system is to provide and maintain superheated air to the membrane separator(s) using strategically located heaters to eliminate condensation of moisture in the carbon tower or membrane separator(s) eliminating the need for a separate compressed air dryer, or the need for insulation of pipes, vessels and the membrane separator(s).
    Type: Grant
    Filed: March 21, 2011
    Date of Patent: November 5, 2013
    Inventor: Charles M. Flowe
  • Patent number: 8568510
    Abstract: A gas separation process for treating off-gas streams from reaction processes, and reaction processes including such gas separation. The invention involves flowing the off-gas across the feed side of a membrane, flowing a sweep gas stream, usually air, across the permeate side, and passing the permeate/sweep gas mixture to the reaction. The process recovers unreacted feedstock that would otherwise be lost in the waste gases in an energy-efficient manner.
    Type: Grant
    Filed: January 5, 2012
    Date of Patent: October 29, 2013
    Assignee: Membrane Technology and Research, Inc
    Inventors: Johannes G Wijmans, Richard W Baker, Timothy C Merkel
  • Patent number: 8557022
    Abstract: A method of manufacturing a filled polymeric membrane includes a first step of preparing a filler suspension having a solvent for a glassy polymer and nanometer-sized particles. The nanometer-sized particles in the filler suspension are aggregated in aggregates having an average aggregate size in the range between 50 nm and smaller than 200 nm. In a following step, the glassy polymer is added to the filler suspension to obtain a polymer suspension. Next, the glassy polymer is dissolved in the polymer suspension. In a next step, the polymer suspension is cast on a substrate, followed by a step of removing the solvent. A filled polymeric membrane includes aggregates of nanometer-sized filler particles. The membrane is used in pervaporation and nanofiltration.
    Type: Grant
    Filed: August 25, 2008
    Date of Patent: October 15, 2013
    Assignee: Vlaamse Instelling Voor Technologisch Onderzoek N.V. (VITO)
    Inventors: Kristien De Sitter, Steven Mullens, Lieven Gevers
  • Publication number: 20130263734
    Abstract: Disclosed herein is a process for producing oxygen-enriched air that involves a membrane separation step that uses glassy polymer membranes that have a selectivity to oxygen over nitrogen of at least 2.4.
    Type: Application
    Filed: April 4, 2012
    Publication date: October 10, 2013
    Applicant: MEMBRANE TECHNOLOGY AND RESEARCH, INC
    Inventors: Nicholas P. Wynn, Haiqing Lin, Meijuan Zhou, Jennifer H. Ly, Timothy C. Merkel
  • Patent number: 8540800
    Abstract: The present invention discloses microporous UZM-5 zeolite membranes, methods for making the same, and methods of separating gases, vapors, and liquids using the same. The small-pore microporous UZM-5 zeolite membrane is prepared by two different methods, including in-situ crystallization of one or more layers of UZM-5 zeolite crystals on a porous membrane support, and a seeding method by in-situ crystallization of a continuous second layer of UZM-5 zeolite crystals on a seed layer of UZM-5 zeolite crystals supported on a porous membrane support. The membranes in the form of disks, tubes, or hollow fibers have superior thermal and chemical stability, good erosion resistance, high CO2 plasticization resistance, and significantly improved selectivity over polymer membranes for gas, vapor, and liquid separations.
    Type: Grant
    Filed: March 21, 2011
    Date of Patent: September 24, 2013
    Assignee: UOP LLC
    Inventors: Chunqing Liu, Jaime G. Moscoso, Stephen T. Wilson
  • Patent number: 8540808
    Abstract: Embodiments of the invention provide venting and filtration systems with a membrane that is permeable to gas and substantially impermeable liquid. The systems can remove a gas from a liquid entrained with gas. The systems can include a reservoir in fluid communication with the membrane and a liquid outlet. The membrane can help prevent the gas from reaching the liquid outlet.
    Type: Grant
    Filed: May 24, 2012
    Date of Patent: September 24, 2013
    Assignee: Porous Media Corporation
    Inventors: Robert O. Crowder, John H. Burban, Steven T. Jersey, Kevin Carlson, Michael Savellev
  • Patent number: 8540807
    Abstract: Embodiments of the invention provide venting and filtration systems with a membrane that is permeable to gas and substantially impermeable liquid. The systems can remove a gas from a liquid entrained with gas. The systems can include a reservoir in fluid communication with the membrane and a liquid outlet. The membrane can help prevent the gas from reaching the liquid outlet.
    Type: Grant
    Filed: October 29, 2009
    Date of Patent: September 24, 2013
    Assignee: Porous Media Corporation
    Inventors: Robert O. Crowder, John H. Burban, Steven T. Jersey, Kevin Carlson, Michael Saveliev
  • Patent number: 8535421
    Abstract: A blood storage system. The system has a collection bag for red blood cells; an oxygen/carbon dioxide depletion device; a storage bag for red blood cells; and tubing connecting the collection bag to the depletion device and the depletion device to the storage bag. The depletion device includes a receptacle of a solid material having an inlet and an outlet adapted to receiving and expelling a flushing gas; a plurality of hollow fibers or gas-permeable films extending within the receptacle from an entrance to an exit thereof. The hollow fibers or gas-permeable films are adapted to receiving and conveying red blood cells.
    Type: Grant
    Filed: October 8, 2010
    Date of Patent: September 17, 2013
    Assignee: New Health Sciences, Inc.
    Inventors: Tatsuro Yoshida, Paul J. Vernucci
  • Patent number: 8523982
    Abstract: A separation membrane module for separating a specific component from a mixture containing a plurality of components includes a plurality of separation stages each including a plurality of hollow fiber membranes arranged in parallel to each other. The separation stages are connected in series via connection portions allowing passage of the mixture. At lease one parameter relating to separation by the hollow fiber membrane or membranes in each separation stage is determined to provide effective separation throughout the separation stages.
    Type: Grant
    Filed: December 2, 2010
    Date of Patent: September 3, 2013
    Assignee: Aisan Kogyo Kabushiki Kaisha
    Inventors: Takashi Suefuji, Masataka Suzuki, Akio Muraishi, Shota Yamanaka, Yohsuke Koizumi, Hiroyoshi Ohya, Hirokazu Ohno
  • Publication number: 20130213226
    Abstract: There is provided a process for effecting permeation of at least an operative material component of an operative mixture from a higher pressure space, through a membrane, and into a lower pressure space, wherein the higher pressure space is disposed in mass transfer communication with the lower pressure space through the membrane.
    Type: Application
    Filed: February 22, 2012
    Publication date: August 22, 2013
    Inventors: Xianshe Feng, Darren F. Lawless
  • Publication number: 20130213227
    Abstract: The present invention relates to an arrangement for separating oxygen from an oxygen containing gas. It comprises a membrane unit (12), and an electrode unit (24). The membrane unit (12) comprises a porous substrate (20), a dense membrane (14) and at least one electrode (18), wherein the porous substrate (20) is directed towards the electrode unit (24), and wherein the electrode unit (24) comprises at least one electrode comprising at least one rotatable electrode wing (26) being at least partially electrically conductive. An arrangement according to the invention allows to separate oxygen with improved efficiency and improved convenience with respect to maintenance and noise.
    Type: Application
    Filed: October 18, 2011
    Publication date: August 22, 2013
    Applicant: KONINKLIJKE PHILIPS ELECTRONICS N.V.
    Inventors: Rainer Hilbig, Mareike Klee, Wilhelmus Cornelis Keur
  • Patent number: 8506678
    Abstract: Provided is a power plant for generating electrical energy comprising a combustion chamber for producing steam, at least one downstream flue gas purification stage, a separation stage for CO2, a recycling circuit for the flue gas, and a high-temperature O2 membrane, which is connected upstream of the combustion chamber. The high-temperature O2 membrane has an inlet and an outlet on the feed side which are thermally coupled by way of a heat exchanger. On the permeate side, the high-temperature O2 membrane has only an outlet which is connected to the combustion chamber and/or the flue gas recycling circuit and a means for cooling and/or compression which is disposed in this outlet.
    Type: Grant
    Filed: October 29, 2008
    Date of Patent: August 13, 2013
    Assignee: Forschungszentrum Juelich GmbH
    Inventors: Wilhelm Albert Meulenberg, Stefan Baumann, Ludger Blum, Ernst Riensche
  • Patent number: 8500872
    Abstract: The invention is a ceramic tube made of two parts. A first part of the tube is made of a sensitive material for facilitating oxygen separation in the membrane. The second part is made of a different material that does not react with CO2 and/or H2O. Accordingly, by means of this Invention, there is provided a ceramic tube that is stabilized and does not deteriorate upon exposure to CO2 and/or H2O at temperatures below the operating temperatures.
    Type: Grant
    Filed: December 31, 2008
    Date of Patent: August 6, 2013
    Assignee: Technion Research & Development Foundation Ltd.
    Inventor: Ilan Riess
  • Patent number: 8501668
    Abstract: The invention provides a porous nanoscale membrane. In one embodiment, the membrane can be used as a filtration device to screen agents that disrupt or prevent molecular interactions. In one embodiment, the membrane allows for screening agents that disrupt or prevent molecular interactions using a small sample volume with efficient high-throughput screening applications.
    Type: Grant
    Filed: September 9, 2010
    Date of Patent: August 6, 2013
    Assignee: University of Rochester
    Inventors: James L. McGrath, Harold C. Smith
  • Publication number: 20130192461
    Abstract: Technologies are generally described for a membrane that may incorporate a graphene layer perforated by a plurality of nanoscale pores. The membrane may also include a gas sorbent that may be configured to contact a surface of the graphene layer. The gas sorbent may be configured to direct at least one gas adsorbed at the gas sorbent into the nanoscale pores. The nanoscale pores may have a diameter that selectively facilitates passage of a first gas compared to a second gas to separate the first gas from a fluid mixture of the two gases. The gas sorbent may increase the surface concentration of the first gas at the graphene layer. Such membranes may exhibit improved properties compared to conventional graphene and polymeric membranes for gas separations, e.g., greater selectivity, greater gas permeation rates, or the like.
    Type: Application
    Filed: January 27, 2012
    Publication date: August 1, 2013
    Applicant: Empire Technology Development, LLC
    Inventors: Seth A. Miller, Gary L. Duerksen
  • Publication number: 20130192460
    Abstract: Technologies are generally described for perforated graphene monolayers and membranes containing perforated graphene monolayers. An example membrane may include a graphene monolayer having a plurality of discrete pores that may be chemically perforated into the graphene monolayer. The discrete pores may be of substantially uniform pore size. The pore size may be characterized by one or more carbon vacancy defects in the graphene monolayer. The graphene monolayer may have substantially uniform pore sizes throughout. In some examples, the membrane may include a permeable substrate that contacts the graphene monolayer and which may support the graphene monolayer. Such perforated graphene monolayers, and membranes comprising such perforated graphene monolayers may exhibit improved properties compared to conventional polymeric membranes for gas separations, e.g., greater selectivity, greater gas permeation rates, or the like.
    Type: Application
    Filed: January 26, 2012
    Publication date: August 1, 2013
    Applicant: Empire Technology Development, LLC
    Inventors: Seth A. Miller, Gary L. Duerksen
  • Patent number: 8486184
    Abstract: A composite membrane for selective gas separation, comprises a layer system having a continuously porous, mechanically stable carrier layer, which has an average pore size in the ?m range, further having at least one continuously porous intermediate layer, which is disposed on the carrier layer and has an average pore size in the range of 2 to 200 nm, and further having a gastight functional layer, which is disposed on the intermediate layer and is made of a mixed-conductive material having a maximum layer thickness of 1 ?m. The carrier layer comprises a structural ceramic, a metal, or a cermet and has a layer thickness of no more than 1 mm. The intermediate layer is present with a total layer thickness of no more than 100 ?m and has an average pore size in the range of 10 to 100 nm. The functional layer comprises a perovskite, a fluorite, or a material having a K2NiF4 structure, such as La1-xSrxCo1-yFeyO3-8 (LSCF).
    Type: Grant
    Filed: February 21, 2009
    Date of Patent: July 16, 2013
    Assignee: Forschungszentrum Juelich GmbH
    Inventors: Stefan Baumann, Jose Manuel Serra Alfaro, Wilhelm Albert Meulenberg, Hans-Peter Buchkremer, Detlev Stoever
  • Publication number: 20130146538
    Abstract: The present invention is for high permeance and high selectivity blend polymeric membranes comprising poly(ethylene glycol) (PEG) and a highly permeable polymer selected from the group consisting of polymers of intrinsic microporosity (PIMs), tetrazole-functionalized polymers of intrinsic microporosity (TZPIMs), or mixtures thereof. The present invention also involves the use of such membranes for separations of liquids and gases.
    Type: Application
    Filed: October 18, 2012
    Publication date: June 13, 2013
    Applicant: UOP LLC
    Inventor: UOP LLC
  • Patent number: 8460432
    Abstract: The present invention provides a membrane, comprising a porous support layer a gas tight electronically and ionically conducting membrane layer and a catalyst layer, characterized in that the electronically and ionically conducting membrane layer is formed from a material having a crystallite structure with a crystal size of about 1 to 100 nm, and a method for producing same.
    Type: Grant
    Filed: August 29, 2008
    Date of Patent: June 11, 2013
    Assignee: Technical University of Denmark
    Inventors: Peter Vang Hendriksen, Mogens Mogensen, Wei Guo Wang, Bjarke Thomas Dalslet
  • Patent number: 8455382
    Abstract: Process for fabricating a catalyzed ion transport membrane (ITM). In one embodiment, an uncatalyzed ITM is (a) contacted with a non-reducing gaseous stream while heating to a temperature and for a time period sufficient to provide an ITM possessing anion mobility; (b) contacted with a reducing gaseous stream for a time period sufficient to provide an ITM having anion mobility and essentially constant oxygen stoichiometry; (c) cooled while contacting the ITM with the reducing gaseous stream to provide an ITM having essentially constant oxygen stoichiometry and no anion mobility; and (d) treated by applying catalyst to at least one of (1) a porous mixed conducting multicomponent metallic oxide (MCMO) layer contiguous with a first side of a dense layer of MCMO and (2) a second side of the dense MCMO layer. In another embodiment, these steps are carried out in the alternative order of (a), (d), (b), and (c).
    Type: Grant
    Filed: May 25, 2010
    Date of Patent: June 4, 2013
    Assignee: Air Products and Chemicals, Inc.
    Inventors: Michael Francis Carolan, Charles Leonard Kibby
  • Patent number: 8449651
    Abstract: Disclosed herein is a method for preparing a crosslinked hollow fiber membrane. The method involves spinning a one phase solution comprising a monoesterified polyimide polymer, acetone as a volatile solvent, a spinning solvent, a spinning non-solvent, and optionally an organic and/or inorganic additive, wherein the volatile solvent is present in an amount of greater than 25 wt. % to about 50 wt. %, based on the total weight of the solution.
    Type: Grant
    Filed: August 25, 2010
    Date of Patent: May 28, 2013
    Assignee: Chevron U.S.A. Inc.
    Inventor: Shabbir Husain
  • Patent number: 8435332
    Abstract: A module and an apparatus incorporating such module utilizing a plurality of tubular membrane elements, each configured to separate oxygen from an oxygen containing feed stream when an electric potential difference is applied to induce oxygen ion transport in an electrolyte thereof. The tubular membrane elements can be arranged in a bundle that is held in place by end insulating members. The insulating members can be positioned within opposed openings of end walls of a heated enclosure and can incorporate bores to allow an oxygen containing feed stream to flow past exposed ends of the tubular membrane elements for cooling the end seals of such elements. Further, first and second manifolds can be provided in a module in accordance with the present invention to collect separated oxygen from two separate portions of the tubular membrane elements.
    Type: Grant
    Filed: April 8, 2011
    Date of Patent: May 7, 2013
    Assignee: Praxair Technology, Inc.
    Inventors: Gervase Maxwell Christie, David M. Reed, Jerrine L. Neff, Arthur C. Selover
  • Publication number: 20130108531
    Abstract: The present invention is directed toward a method for purifying a natural gas stream comprising: 1) removing the bulk of CO2 by at least one non-membrane gas separation means; and 2) removing oxygen and other impurities by at least one additional gas separation means, wherein the final natural gas product has low level of CO2 and oxygen.
    Type: Application
    Filed: October 28, 2011
    Publication date: May 2, 2013
    Applicant: Guild Associates, Inc.
    Inventor: Michael J. Mitariten
  • Patent number: 8419839
    Abstract: First, a first porous body is manufactured by stretching, in a uniaxial direction, a sheet made of polytetrafluoroethylene having a standard specific gravity of 2.155 or more, and a second porous body is manufactured by stretching, in biaxial directions, a sheet made of polytetrafluoroethylene. Next, the first porous body is integrated with the second porous body by stretching a laminate of the first porous body and the second porous body in the same direction as the uniaxial direction while heating the laminate at a temperature equal to or higher than a melting point of polytetrafluoroethylene. Thus, a porous polytetrafluoroethylene membrane is produced.
    Type: Grant
    Filed: November 11, 2008
    Date of Patent: April 16, 2013
    Assignee: Nitto Denko Corporation
    Inventor: Shunichi Shimatani
  • Patent number: 8419840
    Abstract: The present invention provides an air-conditioning system that supplies a gas to a space to be air-conditioned and/or discharges a gas from the space to be air-conditioned through a permeable membrane in order to provide an air-conditioning system that can sufficiently block suspended matter in the air such as SPM, and can sufficiently introduce outside air in which the permeable membrane is an asymmetric membrane formed of a polymeric material prepared by polymerizing a monomer composition containing a predetermined monomer.
    Type: Grant
    Filed: June 28, 2010
    Date of Patent: April 16, 2013
    Assignees: Shin-Etsu Polymer Co,. Ltd., Denso Corporation, Shin-Etsu Chemical Co., Ltd.
    Inventors: Junya Ishida, Katsunori Iwase, Manabu Maeda, Mamoru Hagiwara
  • Publication number: 20130081537
    Abstract: A hollow fiber fluid separation device includes a hollow fiber cartridge, comprising a plurality of hollow fiber membranes arranged around a central tubular core, a first tubesheet and a second tubesheet encapsulating respective distal ends of the hollow fiber bundle. The tubesheets have boreholes in fluid communication with bores of the hollow fiber membrane. In at least one of the tubesheets, the boreholes are formed radially and are in communication with the central tubular core. The hollow fiber fluid separation device can be utilized in liquid separation applications such as ultrafiltration and in gas separation processes such as air separation. The design disclosed herein is light weight and compact and is particularly advantageous at high operating temperatures when the pressure of the feed fluid introduced into the bores of hollow fibers is higher than the pressure on the shell side of the device.
    Type: Application
    Filed: June 8, 2012
    Publication date: April 4, 2013
    Inventors: Benjamin Bikson, Stephen Etter, Nathaniel Ching
  • Patent number: 8409323
    Abstract: A method and apparatus for controlling the electrical power applied to an electrically driven oxygen separation device having one or more composite membrane elements to separate oxygen from an oxygen containing feed. The composite membrane elements have a resistance increasing during the operation thereof that would act to reduce oxygen output if applied voltage were held constant. In order to increase the time interval for renewing the composite membrane elements, the electrical potential difference is controlled such that the electric current drawn by the elements remains at a substantially constant level by increasing the electrical potential difference as the resistance increases until a predetermined voltage level is reached. Once this level is obtained, the electrical potential difference is maintained at a constant level and the electric current being drawn and the oxygen output is allowed to decay to a predetermined low level after which the element or elements are replaced.
    Type: Grant
    Filed: April 7, 2011
    Date of Patent: April 2, 2013
    Assignee: Praxair Technology, Inc.
    Inventors: Michael J. Collins, David F. Suggs, Sadashiv M. Swami, Richard M. Kelly
  • Patent number: 8394181
    Abstract: A permselective material has a polymer having an organosiloxane skeleton and containing a dispersed solid additive. When oxygen and nitrogen are passed through a membrane having the permselective material, the relation between the permeability coefficients [cm3·cm·sec?1·cm?2·cmHg?1] of oxygen and nitrogen at a temperature of 23±2° C. under a pressure difference of 1.05 atm to 1.20 atm through the membrane is expressed by Formula (1): 0.94 ? P ? ( O 2 ) P ? ( N 2 ) < 1 ( 1 ) where P(O2) denotes the permeability coefficient of oxygen, while P(N2) denotes the permeability coefficient of nitrogen.
    Type: Grant
    Filed: December 26, 2007
    Date of Patent: March 12, 2013
    Assignees: Shin-Etsu Polymer Co., Ltd., DENSO CORPORATION, Shin-Etsu Chemical Co., Ltd.
    Inventors: Junya Ishida, Katsunori Iwase, Akira Yamamoto, Masahiko Minemura
  • Patent number: 8394183
    Abstract: An asymmetric membrane contains a porous layer and a dense layer adjacent thereto. The porous layer and the dense layer are formed of a polymeric material. The porous layer and/or dense layer contains a filler. The amount of the filler is 11 parts by mass or more per 100 parts by mass of the polymeric material contained in the asymmetric membrane.
    Type: Grant
    Filed: October 27, 2008
    Date of Patent: March 12, 2013
    Assignees: Shin-Etsu Polymer Co., Ltd., Denso Corporation, Shin-Etsu Chemical Co., Ltd.
    Inventors: Junya Ishida, Mitsuaki Negishi, Yuzo Morioka, Mika Kawakita, Katsunori Iwase, Manabu Maeda, Masahiko Minemura, Mamoru Hagiwara