Molecular dynamics simulations of highly cross-linked polymer networks: prediction of thermal and mechanical properties

ORAL

Abstract

We use all-atom molecular dynamics (MD) simulations to predict the mechanical and thermal properties of thermosetting polymers. Atomistic simulation is a promising tool which can provide detailed structure-property relationships of densely cross-linked polymer networks. In this work we study the thermo-mechanical properties of thermosetting polymers based on amine curing agents and epoxy resins and have focused on the DGEBA/DETDA epoxy system. At first we describe the modeling approach to construction of realistic all-atom models of densely cross-linked polymer matrices. Subsequently, a series of atomistic simulations was carried out to examine the simulation cell size effect as well as the role of cross-linking density and chain length of the resin strands on thermo-mechanical properties at different temperatures. Two different methods were used to deform the polymer networks. Both static and dynamic approaches to calculating the mechanical properties were considered and the thermo-mechanical properties obtained from our simulations were found in reasonable agreement with experimental values.

Authors

  • Natalia Shenogina

    • Wright State University, Dayton, OH
  • Mesfin Tsige

    • Department of Polymer Science, University of Akron, Akron, Ohio
    • University of Akron, Akron, OH
    • University of Akron
    • Department of Polymer Science, University of Akron
    • Department of Polymer Science, The University of Akron
    • The University of Akron
    • Department of Polymer Science, Goodyear Polymer Center 1021, The University of Akron, Akron, OH 44325-3909
  • Sharmila Mukhopadhyay

    • Wright State University, Dayton, OH
  • Soumya S. Patnaik

    • Wright-Patterson Air Force Base, Dayton, OH
    • Propulsion Directorate, Air Force Research Laboratory, Wright Patterson Air Force Base, OH 45433, USA