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Please use this identifier to cite or link to this item: http://repository.iitr.ac.in/handle/123456789/13022
Title: Spatial distribution of nanodiamond and its effect on mechanical behaviour of epoxy based composite using 2D modulus mapping
Authors: Bisht A.
Kumar R.M.
Dasgupta K.
Lahiri, Debrupa
Published in: Mechanics of Materials
Abstract: The present study has taken an initiative to understand the distribution of nanophase reinforcement in polymer matrix and their behaviour during loading, using 2D modulus mapping. The composite system, being studied here, is a nanodiamond reinforced epoxy resin matrix. Modulus Mapping gives an idea of distribution of nanodiamond in matrix, in terms of spatial distribution of micron level higher modulus regions in epoxy matrix. The modulus mapping studies, carried out on composites with and without application of uniaxial tensile stresses, reveals the active role being played by nanodiamond in modulating the mechanical behaviour of the epoxy matrix and the evolution of distribution of the former with application of stress. Hardness and elastic modulus of epoxy is improved by ∼470% and ∼94% with 1 wt% nanodiamond. The stiffening effect of nanodiamond dispersed in epoxy matrix, evaluated through experiment is also in concurrence with results simulated using finite element method (FEM) of the representative volume element (RVE). Tensile strength and fracture toughness also showed an improvement of ∼56% and ∼85%, respectively, with 0.3 wt% ND. Interestingly, % strain (at break) also increased by ∼66%. TEM showed good dispersion and strong interaction of NDs with epoxy matrix. SEM analysis validates crack pinning and crack deflection as dominant toughening mechanism, while, efficient load sharing between ND and epoxy is found as main strengthening mechanism. As a whole, this study develops 2D modulus mapping technique as a generalized tool for evaluating the quality of dispersion of the nanoscale reinforcement phases and their role in mechanical behaviour of the macro-scale composite structures. © 2019
Citation: Mechanics of Materials (2019), 135(): 114-128
URI: https://doi.org/10.1016/j.mechmat.2019.05.008
http://repository.iitr.ac.in/handle/123456789/13022
Issue Date: 2019
Publisher: Elsevier B.V.
Keywords: Epoxy
FEM
Modulus mapping
Nano-phase dispersion
Nanodiamond
ISSN: 1676636
Author Scopus IDs: 56711100300
56556778200
23011658300
26326345700
Author Affiliations: Bisht, A., Biomaterials and Multiscale Mechanics Lab, Department of Metallurgical and Materials Engineering, Indian Institute of Technology RoorkeeUttarakhand 247667, India
Kumar, R.M., Biomaterials and Multiscale Mechanics Lab, Department of Metallurgical and Materials Engineering, Indian Institute of Technology RoorkeeUttarakhand 247667, India
Dasgupta, K., Materials Group, Bhabha Atomic Research Centre Mumbai400085, India
Lahiri, D., Biomaterials and Multiscale Mechanics Lab, Department of Metallurgical and Materials Engineering, Indian Institute of Technology RoorkeeUttarakhand 247667, India
Funding Details: DL acknowledges the financial support from Board of Research in Nuclear Sciences ( BRNS ), India ( 36(2)/14/17/2016-BRNS ) and the faculty initiation grant ( FIG-100613 ) by IIT Roorkee for carrying out this research. The authors also wish to thank the laboratory staffs from the Department of Metallurgical and Materials Engineering, IIT Roorkee, for maintaining the experimental facilities.
Corresponding Author: Lahiri, D.; Biomaterials and Multiscale Mechanics Lab, Department of Metallurgical and Materials Engineering, Indian Institute of Technology RoorkeeIndia; email: dlahifmt@iitr.ac.in
Appears in Collections:Journal Publications [MT]

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