POLYMER | 卷:90 |
Bi-modal polymer networks: Viscoelasticity and mechanics from molecular dynamics simulation | |
Article | |
Sirk, Timothy W.1  Karim, Mir2  Lenhart, Joseph L.1  Andzelm, Jan W.1  Khare, Rajesh2  | |
[1] US Army Res Lab, Macromol Sci & Technol Branch, Aberdeen Proving Ground, MD USA | |
[2] Texas Tech Univ, Dept Chem Engn, Box 43121, Lubbock, TX 79409 USA | |
关键词: Molecular dynamics; Mixed network; Viscoelasticity; Epoxy; High strain-rate; | |
DOI : 10.1016/j.polymer.2016.03.024 | |
来源: Elsevier | |
【 摘 要 】
The high strain-rate rheological and mechanical properties of bi-modal epoxy polymer networks were characterized using molecular dynamics simulation. The complex Young's modulus was found by applying a cyclic sinusoidal strain over a wide range of temperatures spanning the glass transition. The non-linear stress response was studied in the glass transition region using uni-axial deformation. We discuss special considerations in computing viscoelastic properties at the high strain-rates available to molecular dynamics. As in experimental studies, the complex modulus is shown to be a function of the network composition and strain rate. However, the high strain-rate simulations performed here predict the existence of broad peaks in the temperature-dependent loss modulus and slow relaxation of the storage modulus. In general, it is observed that network compositions with larger amounts of short, stiff 4,4'-methylenebis(cyclohexylamine) (MCA) cross-linkers lead to an increase in the mechanical glass transition temperature as well as the breadth of the glass transition compared to longer, more flexible poly(oxypropylene) diamine (POP) cross-linkers. When the networks of any composition were deformed beyond the linear region, the stress response displayed a plateau that was associated with the extension of network chains. Published by Elsevier Ltd.
【 授权许可】
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【 预 览 】
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