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Petal formation law in a cellophane diaphragm subjected to a pressure difference

Gaku Fukushima*, Jun Hagiwara, Yusuke Nakamura, and Akihiro Sasoh

  • Department of Aerospace Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8603, Japan

  • *fukushima.gaku.d8@s.mail.nagoya-u.ac.jp

Phys. Rev. E 106, L043001 – Published 17 October, 2022

DOI: https://doi.org/10.1103/PhysRevE.106.L043001

Abstract

In this study, a layer of cellophane, subjected to an air-pressure difference, was ruptured using a piercing needle. Accordingly, petal-like fragmentation was observed in the layer via high-speed imaging. Two types of crack-propagation regimes were subsequently observed experimentally. If a tensile stress lower than 20.6 MPa acted on the cellophane diaphragm, a single crack was generated, whose propagation speed was lower than that under higher-stress conditions. For tensile stresses greater than 23.7 MPa, the crack-propagation speed remained constant at approximately 0.86 km/s, even after altering the device size, pressure, and humidity on the low-pressure side. The number of cracks equidistant from the piercing point was expressed as a linear function of the tensile stress acting on the diaphragm.

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