Patents by Inventor Naomi KLINGHOFFER

Naomi KLINGHOFFER 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).

  • Patent number: 11471825
    Abstract: Processes and systems for the capture of CO2 from a CO2-containing gas stream are provided. The CO2-containing gas stream is passed to a membrane contactor absorber wherein the CO2-containing gas contacts or passes a first side of a membrane element while a CO2 selective solvent with a viscosity between 0.2 and 7 cP contacts, passes or flows on second side of the membrane, opposed to the first side. The CO2 permeates through the hollow fiber membrane pores and is chemically absorbed into the solvent.
    Type: Grant
    Filed: March 14, 2019
    Date of Patent: October 18, 2022
    Assignee: GAS TECHNOLOGY INSTITUTE
    Inventors: Shiguang Li, Travis Pyrzynski, Howard Meyer, Naomi Klinghoffer, Timothy Tamale
  • Publication number: 20190282953
    Abstract: Processes and systems for the capture of CO2 from a CO2-containing gas stream are provided. The CO2-containing gas stream is passed to a membrane contactor absorber wherein the CO2-containing gas contacts or passes a first side of a membrane element while a CO2 selective solvent with a viscosity between 0.2 and 7 cP contacts, passes or flows on second side of the membrane, opposed to the first side. The CO2 permeates through the hollow fiber membrane pores and is chemically absorbed into the solvent.
    Type: Application
    Filed: March 14, 2019
    Publication date: September 19, 2019
    Applicant: GAS TECHNOLOGY INSTITUTE
    Inventors: Shiguang LI, Travis PYRZYNSKI, Howard MEYER, Naomi KLINGHOFFER, Timothy TAMALE
  • Patent number: 10150721
    Abstract: Methods and systems or devices for synthesis of dimethyl ether (DME) from carbon dioxide and hydrogen are provided. A high surface area hollow fiber catalytic membrane reactor such as with hollow fibers coated with a water permeable membrane material is used. The reactor also contains a bi-functional methanol synthesis component and dehydration catalyst component such that the two-step reaction takes place on the catalyst surface. Produced water permeates through the membrane, exiting the reactor immediately after it is formed. Unreacted reactants and products flow to the reactor exit.
    Type: Grant
    Filed: March 23, 2017
    Date of Patent: December 11, 2018
    Assignee: GAS TECHNOLOGY INSTITUTE
    Inventors: Naomi Klinghoffer, Shiguang Li
  • Patent number: 9963399
    Abstract: Aspects of the invention are associated with the discovery of processes for converting methane (CH4), present in a methane-containing feedstock that may be obtained from a variety of sources such as natural gas, to higher hydrocarbons (e.g., C4+ hydrocarbons) such as gasoline, diesel fuel, or jet fuel boiling-range hydrocarbons, which may optionally be separated (e.g., by fractionation) for use as transportation fuels, or otherwise as blending components for such fuels. Particular aspects of the invention are associated with advantages arising from maintaining reaction conditions that improve the yield of C4+ hydrocarbons. Further aspects relate to the advantages gained by integration of the appropriate reactions to carry out the methane conversion, with downstream separation to recover and recycle desirable components of the reaction effluent, thereby improving process economics to the extent needed for commercial viability.
    Type: Grant
    Filed: October 7, 2016
    Date of Patent: May 8, 2018
    Assignee: Gas Technology Institute
    Inventors: Terry Marker, Martin Linck, Jim Wangerow, Pedro Ortiz-Toral, Naomi Klinghoffer
  • Publication number: 20180016218
    Abstract: Methods and systems or devices for synthesis of dimethyl ether (DME) from carbon dioxide and hydrogen are provided. A high surface area hollow fiber catalytic membrane reactor such as with hollow fibers coated with a water permeable membrane material is used. The reactor also contains a bi-functional methanol synthesis component and dehydration catalyst component such that the two-step reaction takes place on the catalyst surface. Produced water permeates through the membrane, exiting the reactor immediately after it is formed. Unreacted reactants and products flow to the reactor exit.
    Type: Application
    Filed: March 23, 2017
    Publication date: January 18, 2018
    Applicant: GAS TECHNOLOGY INSTITUTE
    Inventors: Naomi KLINGHOFFER, Shiguang LI
  • Publication number: 20170101352
    Abstract: Aspects of the invention are associated with the discovery of processes for converting methane (CH4), present in a methane-containing feedstock that may be obtained from a variety of sources such as natural gas, to higher hydrocarbons (e.g., C4+ hydrocarbons) such as gasoline, diesel fuel, or jet fuel boiling-range hydrocarbons, which may optionally be separated (e.g., by fractionation) for use as transportation fuels, or otherwise as blending components for such fuels. Particular aspects of the invention are associated with advantages arising from maintaining reaction conditions that improve the yield of C4+ hydrocarbons. Further aspects relate to the advantages gained by integration of the appropriate reactions to carry out the methane conversion, with downstream separation to recover and recycle desirable components of the reaction effluent, thereby improving process economics to the extent needed for commercial viability.
    Type: Application
    Filed: October 7, 2016
    Publication date: April 13, 2017
    Inventors: Terry MARKER, Martin LINCK, Jim WANGEROW, Pedro ORTIZ-TORAL, Naomi KLINGHOFFER