Patents by Inventor Rebecca Roti

Rebecca Roti 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: 8011419
    Abstract: Thermal expansion defects, i.e. veining, are reduced in iron, steel, and nonferrous castings by adding a lithia-containing material in a sufficient amount to the silica sand mold. Adjusting current formulations to maximize the use of lesser expensive raw materials and minimize the use of more expensive raw materials to lower the overall percentages of lithia/metallic oxide containing additives while still reducing or eliminating thermal expansion related defects in the metal casting process reduces the overall cost to manufacture the product.
    Type: Grant
    Filed: October 1, 2008
    Date of Patent: September 6, 2011
    Assignee: IGC Technologies, LLC
    Inventors: Jeffrey Jon Cieplewski, Andrew Callan, Rebecca Roti
  • Patent number: 8007580
    Abstract: An additive to foundry sand molding and core aggregates is used to produce sand cores and molds comprising kyanite, spodumene, titanium dioxide, ilmenite and black iron oxide. The additive produces a sand-based foundry molding and core aggregate which resists the formation of some of the defects commonly associated with the production of castings produced by silica sand-based molding and core aggregates. In particular, the additive improves the quality of castings poured at temperatures higher than those of the pouring temperatures of molten iron, such as in steel castings, and in iron castings with “hot spots.
    Type: Grant
    Filed: November 6, 2008
    Date of Patent: August 30, 2011
    Assignee: IGC Technologies, LLC
    Inventors: Jeffrey J. Cieplewski, Andrew Callan, Rebecca Roti
  • Publication number: 20090114364
    Abstract: An additive to foundry sand molding and core aggregates is used to produce sand cores and molds. The additive produces a sand-based foundry molding and core aggregate which resists the formation of some of the defects commonly associated with the production of castings produced by silica sand-based molding and core aggregates. In particular, the additive improves the quality of castings poured at temperatures higher than those of the pouring temperatures of molten iron, such as in steel castings, and in iron castings with “hot spots.
    Type: Application
    Filed: November 6, 2008
    Publication date: May 7, 2009
    Inventors: Jeffrey J. Cieplewski, Andrew Callan, Rebecca Roti
  • Publication number: 20090114365
    Abstract: An additive to foundry sand molding and core aggregates is used to produce sand cores and molds. The additive produces a sand-based foundry molding and core aggregate which resists the formation of some of the defects commonly associated with the production of castings produced by silica sand-based molding and core aggregates. In particular, the additive improves the quality of castings poured at temperatures higher than those of the pouring temperatures of molten iron, such as in steel castings and in iron castings with “hot spots.
    Type: Application
    Filed: November 6, 2008
    Publication date: May 7, 2009
    Inventors: Jeffrey J. Cieplewski, Andrew Callan, Rebecca Roti
  • Publication number: 20090090485
    Abstract: Thermal expansion defects, i.e. veining, are reduced in iron, steel, and nonferrous castings by adding a lithia-containing material in a sufficient amount to the silica sand mold. Adjusting current formulations to maximize the use of lesser expensive raw materials and minimize the use of more expensive raw materials to lower the overall percentages of lithia/metallic oxide containing additives while still reducing or eliminating thermal expansion related defects in the metal casting process reduces the overall cost to manufacture the product.
    Type: Application
    Filed: October 1, 2008
    Publication date: April 9, 2009
    Inventors: JEFFREY JON CIEPLEWSKI, Andrew Callan, Rebecca Roti