Original Article Graphene-reinforced thermoplastic polyurethane nanocomposites: A simulation and experimental study Animesh Talapatra and Debasis Datta Abstract Multiscale modelling and simulations, based on molecular dynamics (MD) and object- oriented finite element method (OOFEM), are two important simulation tools to predict property enhancement of polymer nanocomposites for designing armor-type components in requisite applications. In this study, MD simulation software (Materials Studio) is used to develop 0.5%, 1%, 2%, 3%, and 4% (by weight) single-layer graphene (SLGR)-reinforced thermoplastic polyurethane (TPU) nanocomposites to find out their mechanical properties (mainly elastic moduli and Poisson’s ratio) using constant strain method. OOFEM simulation software (OOF2) is used for mechanical char- acterization of 0.5%, 3%, and 4% (by weight) SLGR-reinforced TPU nanocomposites from scanning electron microscopy–generated microstructures. Properties obtained from both the simulations are compared with experimental results to know the nanoreinforcement effect in atomic level as well as in microlevel in the nanocompo- sites. It is observed that the results based on OOF2 simulation are closer to the experimental results compared with the results obtained from MD simulation in this multiscale modelling and simulation study. Keywords Graphene, thermoplastic polyurethane, nanocomposites, molecular dynamic simulation, object-oriented finite element simulation Department of Mechanical Engineering, Indian Institute of Engineering Science and Technology, Shibpur, Howrah, West Bengal, India Corresponding author: Animesh Talapatra, Department of Mechanical Engineering, Indian Institute of Engineering Science and Technology, Shibpur, Howrah, West Bengal, PIN-711103, India. Email: animesh_talapatra.rs2015@mech.iiests.ac.in Journal of Thermoplastic Composite Materials 1–19 ª The Author(s) 2019 Article reuse guidelines: sagepub.com/journals-permissions DOI: 10.1177/0892705719839459 journals.sagepub.com/home/jtc