Abstract
AbstractMeasuring the in-plane mechanical stress in a taut membrane is challenging, especially if its material parameters are unknown or altered by the stress. Yet being able to measure the stress is of fundamental interest to basic research and practical applications that use soft membranes, from engineering to tissues. Here, we present a robust non-destructive technique to measure directly in-situ stress and strain in soft thin films without the need to calibrate material parameters. Our method relies on measuring the speed of elastic waves propagating in the film. Using optical coherence tomography, we verify our method experimentally for a stretched rubber membrane, a piece of cling film (about 10 μm thick), and the leather skin of a traditional Irish frame drum. We find that our stress predictions are highly accurate and anticipate that our technique could be useful in applications ranging from soft matter devices to biomaterial engineering and medical diagnosis.
Funder
Natural Science Foundation of Zhejiang Province
National Natural Science Foundation of China
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy
Reference23 articles.
1. Gómez-González, M., Latorre, E., Arroyo, M. & Trepat, X. Measuring mechanical stress in living tissues. Nat. Rev. Phys. 2, 300–317 (2020).
2. Schajer, G. S. Advances in hole-drilling residual stress measurements. Exp. Mech. 50, 159–168 (2009).
3. Butt, H.-J., Graf, K. & Kappl, M. Physics and chemistry of interfaces (John Wiley & Sons, 2013).
4. Erbil, H. Y. et al. Surface chemistry of solid and liquid interfaces (Blackwell, 2006).
5. Aumaitre, E., Vella, D. & Cicuta, P. On the measurement of the surface pressure in Langmuir films with finite shear elasticity. Soft Matter 7, 2530–2537 (2011).
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