Patents by Inventor Ryan J. Mondschein

Ryan J. Mondschein 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: 10767005
    Abstract: Bibenzoate copolyesters are based on (4,4?-biphenyl dicarboxylic acid-co-3,4?-biphenyl dicarboxylic acid) as the diacid component, and on an alicyclic diol compound such as 1,4-cyclohexanedimethanol as a portion of the diol component. Copolyesters are based on 4,4?-biphenyl dicarboxylic acid, and/or 3,4?-biphenyl dicarboxylic acid as the diacid component and may include a multifunctional acid. Copolymers may optionally base an essentially amorphous morphology, high glass transition temperature, high elongation at break, and/or high melting temperature.
    Type: Grant
    Filed: October 7, 2016
    Date of Patent: September 8, 2020
    Assignees: ExxonMobil Chemical Patents Inc., Virginia Tech Intellectual Properties, Inc
    Inventors: Ryan J. Mondschein, Haoyu Liu, Ting Chen, Timothy E. Long, S. Richard Turner
  • Publication number: 20200262971
    Abstract: Copolyesters are based on a diacid component containing terephthalate and 4,4?-biphenyl dicarboxylate or 3,4?-biphenyl dicarboxylate, and a diol component containing an alkylene diol, e.g., ethylene glycol or NPG, and an alicyclic polyhydroxyl compound, e.g., CHDM. The copolyesters may have a glass transition temperature more than 100° C. and mechanical, thermal and/or barrier characteristics at least comparable to some commercially available copolyesters. A method to control the morphology and properties of a copolyester involves contacting diacid and diol components in the presence of a catalyst, selecting proportions of terephthalic and 4,4?-biphenyl dicarboxylic or 3,4?-biphenyl dicarboxylic acids or ester producing equivalents thereof in the diacid component, and selecting the alkylene diol and proportions of the CHDM (or other alicyclic polyhydroxyl compound) and the alkylene diol in the diol component, to obtain the desired morphology and other properties.
    Type: Application
    Filed: October 7, 2016
    Publication date: August 20, 2020
    Inventors: Haoyu Liu, Ryan J. Mondschein, Ting Chen, Timothy E. Long, S. Richard Turner
  • Publication number: 20190211153
    Abstract: A polyimide oligomer of the formula wherein G is a group having a valence of t, each R is independently a C1-30 divalent bridging group, a C1-20 alkylene-X, or a C6-30 arylene-X wherein —X is —O-M?, —C(O)O-M?, —OC(O)O-M?, —S-M?, —S(O)2-M?, —S(O)3-M?, —OS(O)3-M?, or —OP(O)3-M? wherein each M? is independently Li, Na, K, Cs, Mg, Ca, Sr, Cr, Mn, Fe, Co, Ni, Cu, Zn, Cd, B, Al, Ga, In, Ge, Sn, Pb, As, or Sb, provided that at least one R is C1-20 alkylene-X or C6-30 arylene-X, q is 0 or 1, m is 0 or 1, d is 0 or 1, p is 1 or 2, t is 1 to 6, and each n is independently 1 to 1,000, the total of all values of n is greater than 4, the polyimide oligomer is thermoplastic, and Q, M, D, and V are as provided herein.
    Type: Application
    Filed: December 31, 2018
    Publication date: July 11, 2019
    Inventors: Roy Ray ODLE, Ke CAO, Guoliang LIU, Timothy Edward LONG, Joseph Michael DENNIS, Ryan J. MONDSCHEIN
  • Publication number: 20180282475
    Abstract: Bibenzoate copolyesters are based on (4,4?-biphenyl dicarboxylic acid-co-3,4?-biphenyl dicarboxylic acid) as the diacid component, and on an alicyclic diol compound such as 1,4-cyclohexanedimethanol as a portion of the diol component. Copolyesters are based on 4,4?-biphenyl dicarboxylic acid, and/or 3,4?-biphenyl dicarboxylic acid as the diacid component and may include a multifunctional acid. Copolymers may optionally base an essentially amorphous morphology, high glass transition temperature, high elongation at break, and/or high melting temperature.
    Type: Application
    Filed: October 7, 2016
    Publication date: October 4, 2018
    Inventors: Ryan J. Mondschein, Haoyu Liu, Ting Chen, Timothy E. Long, S. Richard Turner