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Investigating size effects of complex nanostructures through Young-Laplace equation and finite element analysis

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posted on 2024-07-10, 00:31 authored by Dingjie Lu, Yi Min Xie, Qing Li, Xiaodong HuangXiaodong Huang, Shiwei Zhou
Analytical studies on the size effects of a simply-shaped beam fixed at both ends have successfully explained the sudden changes of effective Young's modulus as its diameter decreases below 100 nm. Yet they are invalid for complex nanostructures ubiquitously existing in nature. In accordance with a generalized Young-Laplace equation, one of the representative size effects is transferred to non-uniformly distributed pressure against an external surface due to the imbalance of inward and outward loads. Because the magnitude of pressure depends on the principal curvatures, iterative steps have to be adopted to gradually stabilize the structure in finite element analysis. Computational results are in good agreement with both experiment data and theoretical prediction. Furthermore, the investigation on strengthened and softened Young's modulus for two complex nanostructures demonstrates that the proposed computational method provides a general and effective approach to analyze the size effects for nanostructures in arbitrary shape.

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On-Line Direct Digital Control of Extrusion Processes

Directorate for Engineering

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ISSN

1089-7550

Journal title

Journal of Applied Physics

Volume

118

Issue

20

Article number

article no. 204301

Pagination

1 p

Publisher

AIP Publishing LLC

Copyright statement

Copyright © 2015 AIP Publishing LLC. The published version of the article is reproduced here with permission of the publisher. It may be downloaded for personal use only. Any other use requires prior permission of the author and the American Institute of Physics. The following article appeared in Journal of Applied Physics and may be found at https://doi.org/10.1063/1.4935819.

Language

eng

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