Patents by Inventor Iver E. Anderson

Iver E. Anderson 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: 9981315
    Abstract: A concentric ring gas atomization nozzle with isolated gas supply manifolds is provided for manipulating the close-coupled atomization gas structure to improve the yield of atomized powders.
    Type: Grant
    Filed: September 24, 2014
    Date of Patent: May 29, 2018
    Assignee: Iowa State University Research Foundation, Inc.
    Inventors: Joel R. Rieken, Andrew J. Heidloff, Iver E. Anderson
  • Publication number: 20180133793
    Abstract: A method for gas atomization of a titanium alloy, nickel alloy, or other alumina (Al2O3)-forming alloy wherein the atomized particles are exposed as they solidify and cool in a very short time to multiple gaseous reactive agents for the in-situ formation of a passivation reaction film on the atomized particles wherein the reaction film retains a precursor halogen alloying element that is subsequently introduced into a microstructure formed by subsequent thermally processing of the atomized particles to improve oxidation resistance.
    Type: Application
    Filed: November 6, 2017
    Publication date: May 17, 2018
    Inventors: Andrew J. Heidloff, Joel R. Rieken, Iver E. Anderson
  • Patent number: 9833835
    Abstract: A method of making dispersion-strengthened alloy particles involves melting an alloy having a corrosion and/or oxidation resistance-imparting alloying element, a dispersoid-forming element, and a matrix metal wherein the dispersoid-forming element exhibits a greater tendency to react with a reactive species acquired from an atomizing gas than does the alloying element. The melted alloy is atomized with the atomizing gas including the reactive species to form atomized particles so that the reactive species is (a) dissolved in solid solution to a depth below the surface of atomized particles and/or (b) reacted with the dispersoid-forming element to form dispersoids in the atomized particles to a depth below the surface of said atomized particles. The atomized alloy particles are solidified as solidified alloy particles or as a solidified deposit of alloy particles.
    Type: Grant
    Filed: September 3, 2014
    Date of Patent: December 5, 2017
    Assignee: Iowa State University Research Foundation, Inc.
    Inventors: Iver E. Anderson, Robert L. Terpstra
  • Patent number: 9833837
    Abstract: A method for gas atomization of a titanium alloy, nickel alloy, or other alumina (Al2O3)-forming alloy wherein the atomized particles are exposed as they solidify and cool in a very short time to multiple gaseous reactive agents for the in-situ formation of a passivation reaction film on the atomized particles wherein the reaction film retains a precursor halogen alloying element that is subsequently introduced into a microstructure formed by subsequent thermally processing of the atomized particles to improve oxidation resistance.
    Type: Grant
    Filed: June 18, 2014
    Date of Patent: December 5, 2017
    Assignee: Iowa State University Research Foundation, Inc.
    Inventors: Andrew J. Heidloff, Joel R. Rieken, Iver E. Anderson
  • Publication number: 20170334803
    Abstract: A method for gas atomization of oxygen-reactive reactive metals and alloys wherein the atomized particles are exposed as they solidify and cool in a very short time to multiple gaseous reactive agents for the in-situ formation of a protective reaction film on the atomized particles. The present invention is especially useful for making highly pyrophoric reactive metal or alloy atomized powders, such as atomized magnesium and magnesium alloy powders. The gaseous reactive species (agents) are introduced into the atomization spray chamber at locations downstream of a gas atomizing nozzle as determined by the desired powder or particle temperature for the reactions and the desired thickness of the reaction film.
    Type: Application
    Filed: April 11, 2017
    Publication date: November 23, 2017
    Inventors: Iver E. Anderson, Andrew D. Steinmetz, David J. Byrd
  • Publication number: 20170305808
    Abstract: A method for gas atomization of oxygen-reactive reactive metals and alloys wherein the atomized particles are exposed as they solidify and cool in a very short time to multiple gaseous reactive agents for the in-situ formation of a protective reaction film on the atomized particles. The present invention is especially useful for making highly pyrophoric reactive metal or alloy atomized powders, such as atomized magnesium and magnesium alloy powders. The gaseous reactive species (agents) are introduced into the atomization spray chamber at locations downstream of a gas atomizing nozzle as determined by the desired powder or particle temperature for the reactions and the desired thickness of the reaction film.
    Type: Application
    Filed: April 24, 2017
    Publication date: October 26, 2017
    Inventors: Iver E. Anderson, Andrew D. Steinmetz, David J. Byrd
  • Patent number: 9782827
    Abstract: A method of making dispersion-strengthened alloy particles involves melting an alloy having a corrosion and/or oxidation resistance-imparting alloying element, a dispersoid-forming element, and a matrix metal wherein the dispersoid-forming element exhibits a greater tendency to react with a reactive species acquired from an atomizing gas than does the alloying element. The melted alloy is atomized with the atomizing gas including the reactive species to form atomized particles so that the reactive species is (a) dissolved in solid solution to a depth below the surface of atomized particles and/or (b) reacted with the dispersoid-forming element to form dispersoids in the atomized particles to a depth below the surface of said atomized particles. The atomized alloy particles are solidified as solidified alloy particles or as a solidified deposit of alloy particles.
    Type: Grant
    Filed: September 3, 2014
    Date of Patent: October 10, 2017
    Assignee: Iowa State University Research Foundation, Inc.
    Inventors: Iver E. Anderson, Robert L. Terpstra
  • Publication number: 20170283893
    Abstract: Magnet microstructure manipulation in the solid state by controlled application of a sufficient stress in a direction during high temperature annealing in a single-phase region of heat-treatable magnet alloys, e.g., alnico-type magnets is followed by magnetic annealing and draw annealing to improve coercivity and saturation magnetization properties. The solid-state process can be termed highly controlled abnormal grain growth (hereafter AGG) and will make aligned sintered anisotropic magnets that meet or exceed the magnetic properties of cast versions of the same alloy types.
    Type: Application
    Filed: March 28, 2017
    Publication date: October 5, 2017
    Inventors: Iver E. Anderson, Emma Marie Hamilton White, Matthew J. Kramer, Aaron G. Kassen, Kevin W. Dennis
  • Patent number: 9650309
    Abstract: A method for gas atomization of oxygen-reactive reactive metals and alloys wherein the atomized particles are exposed as they solidify and cool in a very short time to multiple gaseous reactive agents for the in-situ formation of a protective reaction film on the atomized particles. The present invention is especially useful for making highly pyrophoric reactive metal or alloy atomized powders, such as atomized magnesium and magnesium alloy powders. The gaseous reactive species (agents) are introduced into the atomization spray chamber at locations downstream of a gas atomizing nozzle as determined by the desired powder or particle temperature for the reactions and the desired thickness of the reaction film.
    Type: Grant
    Filed: April 10, 2013
    Date of Patent: May 16, 2017
    Assignee: Iowa State University Research Foundation, Inc.
    Inventors: Iver E. Anderson, Andrew D. Steinmetz, David J. Byrd
  • Publication number: 20170121783
    Abstract: Provided is an Alnico alloy that is lean (i.e., lower) in Co content and yet at least retains substantially the same or better magnetic properties as the corresponding more costly, commercially available Alnico grade alloy with higher Co content, such as grades 8 and 9, which include 31.5 atomic % or more Co, in order to save significant material costs.
    Type: Application
    Filed: November 2, 2016
    Publication date: May 4, 2017
    Inventors: Andriy Palasyuk, Ralph W. McCallum, Iver E. Anderson, Matthew Kramer, Lin Zhou, Wei Tang
  • Publication number: 20170095891
    Abstract: A composite solder material for mixing with flux to provide a composite solder paste. The solder material includes a mixture having a relatively low melting solder or solder-forming powder and a relatively high melting Ni-containing reinforcement powder. Use of the solder paste under solder reflow conditions produces a high melting point solder joint by liquid phase diffusion bonding wherein a Ni-stabilized high temperature hexagonal (Cu,Ni)6Sn5 phase is the solder joint matrix that bonds together the Ni-containing reinforcement powder particles. With each reflow cycle, more of the low melting solder or solder-forming powder is converted to the hexagonal (Cu,Ni)6Sn5 matrix phase, raising the final melting temperatures of the post-processed solder joint and giving the solder the ability to withstand higher Joule-heating, all while improving resistance to solder joint cracking.
    Type: Application
    Filed: September 28, 2016
    Publication date: April 6, 2017
    Inventors: Iver E. Anderson, Stephanie M. Choquette, Kathlene N. Reeve, Joel L. Harringa
  • Publication number: 20160023277
    Abstract: A concentric ring gas atomization nozzle with isolated gas supply manifolds is provided for manipulating the close-coupled atomization gas structure to improve the yield of atomized powders.
    Type: Application
    Filed: September 24, 2014
    Publication date: January 28, 2016
    Inventors: Joel R. Rieken, Andrew J. Heidloff, Iver E. Anderson
  • Publication number: 20150231741
    Abstract: A solder alloy includes Sn, optional Ag, Cu, and Al wherein the alloy composition is controlled to provide a strong, impact-and thermal aging-resistant solder joint that has beneficial microstructural features and is substantially devoid of Ag3Sn blades.
    Type: Application
    Filed: February 24, 2015
    Publication date: August 20, 2015
    Inventors: Iver E. Anderson, Joel L. Harringa, Adam J. Boesenberg
  • Publication number: 20150040724
    Abstract: A method of making dispersion-strengthened alloy particles involves melting an alloy having a corrosion and/or oxidation resistance-imparting alloying element, a dispersoid-forming element, and a matrix metal wherein the dispersoid-forming element exhibits a greater tendency to react with a reactive species acquired from an atomizing gas than does the alloying element. The melted alloy is atomized with the atomizing gas including the reactive species to form atomized particles so that the reactive species is (a) dissolved in solid solution to a depth below the surface of atomized particles and/or (b) reacted with the dispersoid-forming element to form dispersoids in the atomized particles to a depth below the surface of said atomized particles. The atomized alloy particles are solidified as solidified alloy particles or as a solidified deposit of alloy particles.
    Type: Application
    Filed: September 3, 2014
    Publication date: February 12, 2015
    Inventors: Iver E. Anderson, Robert L. Terpstra
  • Publication number: 20150040723
    Abstract: A method of making dispersion-strengthened alloy particles involves melting an alloy having a corrosion and/or oxidation resistance-imparting alloying element, a dispersoid-forming element, and a matrix metal wherein the dispersoid-forming element exhibits a greater tendency to react with a reactive species acquired from an atomizing gas than does the alloying element. The melted alloy is atomized with the atomizing gas including the reactive species to form atomized particles so that the reactive species is (a) dissolved in solid solution to a depth below the surface of atomized particles and/or (b) reacted with the dispersoid-forming element to form dispersoids in the atomized particles to a depth below the surface of said atomized particles. The atomized alloy particles are solidified as solidified alloy particles or as a solidified deposit of alloy particles.
    Type: Application
    Filed: September 3, 2014
    Publication date: February 12, 2015
    Inventors: Iver E. Anderson, Robert L. Terpstra
  • Publication number: 20140373679
    Abstract: A method for gas atomization of a titanium alloy, nickel alloy, or other alumina (Al2O3)-forming alloy wherein the atomized particles are exposed as they solidify and cool in a very short time to multiple gaseous reactive agents for the in-situ formation of a passivation reaction film on the atomized particles wherein the reaction film retains a precursor halogen alloying element that is subsequently introduced into a microstructure formed by subsequent thermally processing of the atomized particles to improve oxidation resistance.
    Type: Application
    Filed: June 18, 2014
    Publication date: December 25, 2014
    Inventors: Andrew J. Heidloff, Joel R. Rieken, Iver E. Anderson
  • Patent number: 8864870
    Abstract: A method of making dispersion-strengthened alloy particles involves melting an alloy having a corrosion and/or oxidation resistance-imparting alloying element, a dispersoid-forming element, and a matrix metal wherein the dispersoid-forming element exhibits a greater tendency to react with a reactive species acquired from an atomizing gas than does the alloying element. The melted alloy is atomized with the atomizing gas including the reactive species to form atomized particles so that the reactive species is (a) dissolved in solid solution to a depth below the surface of atomized particles and/or (b) reacted with the dispersoid-forming element to form dispersoids in the atomized particles to a depth below the surface of said atomized particles. Bodies made from the dispersion strengthened solidified particles exhibit enhanced fatigue and creep resistance and reduced wear as well as enhanced corrosion and/or oxidation resistance at high temperatures.
    Type: Grant
    Filed: May 9, 2012
    Date of Patent: October 21, 2014
    Assignee: Iowa State University Research Foundation, Inc.
    Inventors: Iver E. Anderson, Robert L. Terpstra
  • Publication number: 20140158423
    Abstract: A solder alloy includes Sn, optional Ag, Cu, and Al wherein the solder alloy composition together with the solder alloy superheat temperature and rapid cooling rate from the superheat temperature are controlled to provide a dispersion of fine hard Cu—Al intermetallic particles in an as-solidified solder alloy microstructure wherein the particles are retained even after multiple solder reflow cycles often used in modern electronic assembly procedures to provide a particle strengthening to the solder joint microstructure as well as exert a grain refining effect on the solder joint microstructure, providing a strong, impact- and thermal aging-resistant solder joint that has beneficial microstructural features and is substantially devoid of Ag3Sn blades.
    Type: Application
    Filed: February 6, 2014
    Publication date: June 12, 2014
    Applicant: Iowa State University Research Foundation, Inc.
    Inventors: Iver E. Anderson, Kathlene N. Lindley
  • Patent number: 8647536
    Abstract: A composite is provided having an electrically conducting Al matrix and elongated filaments comprising Ca and/or Sr and/or Ba disposed in the matrix and extending along a longitudinal axis of the composite. The filaments initially comprise Ca and/or Sr and/or Ba metal or alloy and then may be reacted with the Al matrix to form a strengthening intermetallic compound comprising Al and Ca and/or Sr and/or Ba. The composite is useful as a long-distance, high voltage power transmission conductor.
    Type: Grant
    Filed: August 4, 2011
    Date of Patent: February 11, 2014
    Assignee: Iowa State University Research Foundation, Inc.
    Inventors: Alan M. Russell, Iver E. Anderson, Hyong J. Kim, Andrew E. Freichs
  • Patent number: 8603213
    Abstract: A method of making dispersion-strengthened alloy particles involves melting an alloy having a corrosion and/or oxidation resistance-imparting alloying element, a dispersoid-forming element, and a matrix metal wherein the dispersoid-forming element exhibits a greater tendency to react with an introduced reactive species than does the alloying element and wherein one or more atomizing parameters is/are modified to controllably reduce the amount of the reactive species, such as oxygen, introduced into the atomized particles so as to reduce anneal times and improve reaction (conversion) to the desired strengthening dispersoids in the matrix. The atomized alloy particles are solidified as solidified alloy particles or as a solidified deposit of alloy particles.
    Type: Grant
    Filed: February 25, 2008
    Date of Patent: December 10, 2013
    Assignee: Iowa State University Research Foundation, Inc.
    Inventors: Iver E. Anderson, Joel Rieken