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Raj Das

Publications and source records attributed to Raj Das.

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Fracture Properties of Green Nano Fibrous Network with Random and Aligned Fibre Distribution: A Hierarchical Molecular Dynamics and Peridynamics Approach

Polylactic acid (PLA) nanofibrous networks have gained substantial interest across various engineering and scientific disciplines, such as tissue engineering, drug delivery, and filtration, due to their unique and multifunctional attributes, including biodegradability, tunable mechanical properties, and surface functionality. However, predicting their mechanical behaviour remains challenging due to their structural complexity, multiscale features, and variability in material properties. This study presents a hierarchical approach to investigate fracture phenomena in both aligned and randomly oriented nanofibrous networks by integrating atomistic modelling and nonlocal continuum mechanics, namely peridynamics. At the nanoscale, all-atom molecular dynamics simulations are employed to apply tensile loads to freestanding pristine and silver-doped PLA nanofibres, where key mechanical properties such as Young's modulus, Poisson's ratio, and critical energy release rate are determined. A new method is introduced to transfer data from molecular dynamics to peridynamics by ensuring convergence of the tensile response of a single fiber in both frameworks. This nano-to-micro coupling technique is then used to examine the Young's modulus, fracture toughness in modes I and II, and crack propagation in PLA nanofibrous networks. The proposed framework can also incorporate the effects of surface coating and fiber arrangements on the measured properties. This research paves the way for the development of stronger and more durable eco-friendly nanofibrous networks with optimised performance.

cond-mat.mtrl-sci

3D printable multimaterial cellular auxetics with tunable stiffness

Auxetic materials are a novel class of mechanical metamaterials which exhibit an interesting property of negative Poisson ratio by virtue of their architecture rather than composition. It has been well established that a wide range of negative Poisson ratio can be obtained by varying the geometry and architecture of the cellular materials. However, the limited range of stiffness values obtained from a given geometry restricts their applications. Research trials have revealed that multi-material cellular designs have the capability to generate range of stiffness values as per the requirement of application. With the advancements in 3D printing, multi-material cellular designs can be realized in practice. In this work, multi-material cellular designs are investigated using finite element method. It was observed that introduction of material gradient/distribution in the cell provides a means to tune cellular stiffness as per the specific requirement. These results will aid in the design of wearable auxetic impact protection devices which rely on stiffness gradients and variable auxeticity.

physics.app-ph