Patents by Inventor Nataliya V. Fedorova

Nataliya V. Fedorova 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: 10850368
    Abstract: Nonwoven abrasive articles comprise a nonwoven abrasive member having an overlayer composition comprising a fatty acid metal salt disposed thereon adjacent to a working surface. The nonwoven abrasive member comprises abrasive particles adhered to a fiber web by a binder. The abrasive particles may be exposed and/or the nonwoven abrasive member may have suitable frictional properties. Methods of making the same are also disclosed.
    Type: Grant
    Filed: July 26, 2019
    Date of Patent: December 1, 2020
    Assignee: 3M Innovative Properties Company
    Inventors: Edward J. Woo, Nataliya V. Fedorova, Jaime A. Martinez, Scott A. Baum
  • Publication number: 20190345897
    Abstract: Nonwoven abrasive articles comprise a nonwoven abrasive member having an overlayer composition comprising a fatty acid metal salt disposed thereon adjacent to a working surface. The nonwoven abrasive member comprises abrasive particles adhered to a fiber web by a binder. The abrasive particles may be exposed and/or the nonwoven abrasive member may have suitable frictional properties. Methods of making the same are also disclosed.
    Type: Application
    Filed: July 26, 2019
    Publication date: November 14, 2019
    Inventors: Edward J. Woo, Nataliya V. Fedorova, Jaime A. Martinez, Scott A. Baum
  • Publication number: 20190291242
    Abstract: An abrasive article having first and second major surfaces includes a lofty open nonwoven fiber web comprising entangled fibers. The fiber web includes a densified outer layer comprising a portion of nonwoven fiber web proximate to the first major surface. At least a portion the entangled fibers in the densified outer layer are melt-bonded to one another. An abrasive material is coated on the densified outer layer. The abrasive material includes abrasive particles having a median particle diameter D50 in the range of 1 to 15 microns retained in a binder material. The abrasive article has a Stiffness Test force of 0.1 to 5.0 pounds (0.45 to 2.27 kg) or less. The abrasive article can be used to abrade a workpiece.
    Type: Application
    Filed: May 23, 2019
    Publication date: September 26, 2019
    Inventors: Jacob M. Zwier, Edward J. Woo, Nataliya V. Fedorova, Daniel E. Bygd, Juan A. Munoz
  • Patent number: 10414023
    Abstract: Nonwoven abrasive articles comprise a nonwoven abrasive member having an overlayer composition comprising a fatty acid metal salt disposed thereon adjacent to a working surface. The nonwoven abrasive member comprises abrasive particles adhered to a fiber web by a binder. The abrasive particles may be exposed and/or the nonwoven abrasive member may have suitable frictional properties. Methods of making the same are also disclosed.
    Type: Grant
    Filed: March 19, 2014
    Date of Patent: September 17, 2019
    Assignee: 3M Innovative Properties Company
    Inventors: Edward J. Woo, Nataliya V. Fedorova, Jaime A. Martinez, Scott A. Baum
  • Patent number: 10343260
    Abstract: An abrasive article having first and second major surfaces includes a lofty open nonwoven fiber web comprising entangled fibers. The fiber web includes a densified outer layer comprising a portion of nonwoven fiber web proximate to the first major surface. At least a portion the entangled fibers in the densified outer layer are melt-bonded to one another. An abrasive material is coated on the densified outer layer. The abrasive material includes abrasive particles having a median particle diameter D50 in the range of 1 to 15 microns retained in a binder material. The abrasive article has a Stiffness Test force of 0.1 to 5.0 pounds (0.45 to 2.27 kg) or less. The abrasive article can be used to abrade a workpiece.
    Type: Grant
    Filed: February 2, 2015
    Date of Patent: July 9, 2019
    Assignee: 3M Innovative Properties Company
    Inventors: Jacob M. Zwier, Edward J. Woo, Nataliya V. Fedorova, Daniel E. Bygd, Juan A. Munoz
  • Publication number: 20160354899
    Abstract: An abrasive article having first and second major surfaces includes a lofty open nonwoven fiber web comprising entangled fibers. The fiber web includes a densified outer layer comprising a portion of nonwoven fiber web proximate to the first major surface. At least a portion the entangled fibers in the densified outer layer are melt-bonded to one another. An abrasive material is coated on the densified outer layer. The abrasive material includes abrasive particles having a median particle diameter D50 in the range of 1 to 15 microns retained in a binder material. The abrasive article has a Stiffness Test force of 0.1 to 5.0 pounds (0.45 to 2.27 kg) or less. The abrasive article can be used to abrade a workpiece.
    Type: Application
    Filed: February 2, 2015
    Publication date: December 8, 2016
    Inventors: Jacob M. Zwier, Edward J. Woo, Nataliya V. Fedorova, Daniel E. Bygd, Juan A. Munoz
  • Publication number: 20160341119
    Abstract: A melt blowing process comprising: (a) providing a thermoplastic polymer material that includes at least one or a plurality of polyester polymers and at least one or a combination of different meltable metal phosphinates; and (b) melt blowing the thermoplastic polymer material into at least one fiber or a plurality of fibers, with each fiber having a diameter or thickness that is less than about 10 microns. The metal phosphinate is in an amount that (a) reduces the viscosity of the polyester polymer and (b) functions as a crystallizing agent, which at least promotes crystallization of the polyester polymer, when the thermoplastic polymer material is melt blown into the at least one fiber. Non-woven and woven fibrous structures can be made using fibers made from this process.
    Type: Application
    Filed: August 3, 2016
    Publication date: November 24, 2016
    Inventors: Nataliya V. Fedorova, Eric M. Moore, Sehyun Nam, Pamela A. Percha, Sachin Talwar
  • Patent number: 9447523
    Abstract: A melt blowing process comprising: (a) providing a thermoplastic polymer material that includes at least one or a plurality of polyester polymers and at least one or a combination of different meltable metal phosphinates; and (b) melt blowing the thermoplastic polymer material into at least one fiber or a plurality of fibers, with each fiber having a diameter or thickness that is less than about 10 microns. The metal phosphinate is in an amount that (a) reduces the viscosity of the polyester polymer and (b) functions as a crystallizing agent, which at least promotes crystallization of the polyester polymer, when the thermoplastic polymer material is melt blown into the at least one fiber. Non-woven and woven fibrous structures can be made using fibers made from this process.
    Type: Grant
    Filed: December 20, 2012
    Date of Patent: September 20, 2016
    Assignee: 3M INNOVATIVE PROPERTIES COMPANY
    Inventors: Nataliya V. Fedorova, Eric M. Moore, Sehyun Nam, Pamela A. Percha, Sachin Talwar
  • Patent number: 9314903
    Abstract: An abrasive article useful for finishing painted or clear coated surfaces is disclosed. The abrasive article included a structured abrasive layer disposed on a backing that is adhesively attached to nonwoven layer useful for providing conformability and attachment to a hook layer. The structured abrasive layer includes a central aperture and a plurality of surrounding apertures.
    Type: Grant
    Filed: May 30, 2013
    Date of Patent: April 19, 2016
    Assignee: 3M Innovative Properties Company
    Inventors: Edward J. Woo, Juan A. Munoz, Nataliya V. Fedorova, Mark W. Orlando, Charles J. Studiner, IV, Nicholas B. Manor
  • Publication number: 20160052106
    Abstract: Nonwoven abrasive articles comprise a nonwoven abrasive member having an overlayer composition comprising a fatty acid metal salt disposed thereon adjacent to a working surface. The nonwoven abrasive member comprises abrasive particles adhered to a fiber web by a binder. The abrasive particles may be exposed and/or the nonwoven abrasive member may have suitable frictional properties. Methods of making the same are also disclosed.
    Type: Application
    Filed: March 19, 2014
    Publication date: February 25, 2016
    Inventors: Edward J. Woo, Nataliya V. Fedorova, Jaime A. Martinez, Scott A. Baum
  • Publication number: 20150190902
    Abstract: An abrasive article useful for finishing painted or clear coated surfaces is disclosed. The abrasive article included a structured abrasive layer disposed on a backing that is adhesively attached to nonwoven layer useful for providing conformability and attachment to a hook layer. The structured abrasive layer includes a central aperture and a plurality of surrounding apertures.
    Type: Application
    Filed: May 30, 2013
    Publication date: July 9, 2015
    Inventors: Edward J. Woo, Juan A. Munoz, Nataliya V. Fedorova, Mark W. Orlando, Charles J. Studiner, IV, Nicholas B. Manor
  • Publication number: 20150125696
    Abstract: A melt blowing process comprising: (a) providing a thermoplastic polymer material that includes at least one or a plurality of polyester polymers and at least one or a combination of different meltable metal phosphinates; and (b) melt blowing the thermoplastic polymer material into at least one fiber or a plurality of fibers, with each fiber having a diameter or thickness that is less than about 10 microns. The metal phosphinate is in an amount that (a) reduces the viscosity of the polyester polymer and (b) functions as a crystallizing agent, which at least promotes crystallization of the polyester polymer, when the thermoplastic polymer material is melt blown into the at least one fiber. Non-woven and woven fibrous structures can be made using fibers made from this process.
    Type: Application
    Filed: December 20, 2012
    Publication date: May 7, 2015
    Inventors: Nataliya V. Fedorova, Eric M. Moore, Sehyun Nam, Pamela A. Percha, Sachin Talwar
  • Publication number: 20130165007
    Abstract: The invention provides methods for the preparation of nonwoven spunbonded fabrics and various materials prepared using such spunbonded fabrics. The method generally comprises extruding multicomponent fibers having an islands in the sea configuration such that upon removal of the sea component, the island components remain as micro- and nanofibers. The method further comprises mechanically entangling the multicomponent fibers to provide a nonwoven spunbonded fabric exhibiting superior strength and durability without the need for thermal bonding.
    Type: Application
    Filed: December 18, 2012
    Publication date: June 27, 2013
    Applicant: North Carolina State University
    Inventors: Behnam Pourdeyhimi, Nataliya V. Fedorova, Stephen R. Sharp
  • Patent number: 8420556
    Abstract: The subject matter disclosed herein relates generally to fabrics composed of micro-denier fibers wherein said fibers are formed as bicomponent fibrillated fiber. The energy is sufficient for fibrillating as well as entangling (bonding) the fibers. These fabrics can be woven or knitted and made from made from bicomponent islands in the sea fibers and filaments or can be nonwovens and formed by either spunbonding or through the use of bicomponent staple fibers formed into a web by any one of several means and bonded similarly to those used for the spunbonded filament webs.
    Type: Grant
    Filed: June 24, 2011
    Date of Patent: April 16, 2013
    Assignee: North Carolina State University
    Inventors: Behnam Pourdeyhimi, Nataliya V. Fedorova, Stephen R. Sharp
  • Patent number: 8349232
    Abstract: The invention provides methods for the preparation of nonwoven spunbonded fabrics and various materials prepared using such spunbonded fabrics. The method generally comprises extruding multicomponent fibers having an islands in the sea configuration such that upon removal of the sea component, the island components remain as micro- and nanofibers. The method further comprises mechanically entangling the multicomponent fibers to provide a nonwoven spunbonded fabric exhibiting superior strength and durability without the need for thermal bonding.
    Type: Grant
    Filed: March 28, 2007
    Date of Patent: January 8, 2013
    Assignee: North Carolina State University
    Inventors: Behnam Pourdeyhimi, Nataliya V. Fedorova, Stephen R. Sharp
  • Publication number: 20110318986
    Abstract: The invention provides methods for the preparation of nonwoven spunbonded fabrics and various materials prepared using such spunbonded fabrics. The method generally comprises extruding multicomponent fibers having an islands in the sea configuration such that upon removal of the sea component, the island components remain as micro- and nanofibers. The method further comprises mechanically entangling the multicomponent fibers to provide a nonwoven spunbonded fabric exhibiting superior strength and durability without the need for thermal bonding.
    Type: Application
    Filed: March 28, 2007
    Publication date: December 29, 2011
    Inventors: Behnam Pourdeyhimi, Nataliya V. Fedorova, Stephen R. Sharp
  • Publication number: 20110250812
    Abstract: The subject matter disclosed herein relates generally to fabrics composed of micro-denier fibers wherein said fibers are formed as bicomponent fibrillated fiber. The energy is sufficient for fibrillating as well as entangling (bonding) the fibers. These fabrics can be woven or knitted and made from made from bicomponent islands in the sea fibers and filaments or can be nonwovens and formed by either spunbonding or through the use of bicomponent staple fibers formed into a web by any one of several means and bonded similarly to those used for the spunbonded filament webs.
    Type: Application
    Filed: June 24, 2011
    Publication date: October 13, 2011
    Inventors: Behnam Pourdeyhimi, Nataliya V. Fedorova, Stephen R. Sharp
  • Patent number: 7981226
    Abstract: The subject matter disclosed herein relates generally to fabrics composed of micro-denier fibers wherein said fibers are formed as bicomponent fibrillated fiber. The energy is sufficient for fibrillating as well as entangling (bonding) the fibers. These fabrics can be woven or knitted and made from made from bicomponent islands in the sea fibers and filaments or can be nonwovens and formed by either spunbonding or through the use of bicomponent staple fibers formed into a web by any one of several means and bonded similarly to those used for the spunbonded filament webs.
    Type: Grant
    Filed: June 23, 2006
    Date of Patent: July 19, 2011
    Assignee: North Carolina State University
    Inventors: Behnam Pourdeyhimi, Nataliya V. Fedorova, Stephen R. Sharp
  • Patent number: 7935645
    Abstract: A method of producing a nonwoven fabric comprising spinning a set of bicomponent fibers which include an external fiber component and an internal fiber component. The external fiber enwraps said internal fiber and has a higher elongation to break value than the internal fiber and a lower melting temperature than the internal fiber component. The set of bicomponent fibers are positioned onto a web and thermally bonded to produce a nonwoven fabric.
    Type: Grant
    Filed: September 26, 2008
    Date of Patent: May 3, 2011
    Assignee: North Carolina State University
    Inventors: Behnam Pourdeyhimi, Nataliya V. Fedorova, Stephen R. Sharp
  • Publication number: 20090017708
    Abstract: A method of producing a nonwoven fabric comprising spinning a set of bicomponent fibers which include an external fiber component and an internal fiber component. The external fiber enwraps said internal fiber and has a higher elongation to break value than the internal fiber and a lower melting temperature than the internal fiber component. The set of bicomponent fibers are positioned onto a web and thermally bonded to produce a nonwoven fabric.
    Type: Application
    Filed: September 26, 2008
    Publication date: January 15, 2009
    Inventors: Behnam Pourdeyhimi, Nataliya V. Fedorova, Stephen R. Sharp