Experiments and Computational Modeling of a Sealed Open Cell Foam in an Underwater Shock Tube

IF 2.4 3区 工程技术 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
E. L. Guzas, B. M. Casper, M. A. Babina, I. N. Chenwi, A. Shukla
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引用次数: 0

Abstract

Background

Open cell foams have recently been used as a simulant for lung parenchyma to model underwater blast injury and thus the foam’s mechanical response characteristics are of interest to the underwater blast community.

Objective

The compressive response of a soft, sealed open cell foam (FlexFoam-iT! VIII) subjected to underwater hydrostatic pressure and shock is investigated through an experimental and computational study.

Methods

Real-time deformation of the foam during loading is captured via high-speed cameras, and a 3D digital image correlation technique calculates the foam’s transient volumetric strain. Fully coupled fluid–structure interaction (FSI) models of the experiments are developed for the FSI code Dynamic System Mechanics Advanced Simulation (DYSMAS), where the Arruda-Boyce hyperelastic model calculates the foam constitutive behavior.

Results

Simulated foam volumetric strains exhibit excellent correlation to shock test data. Hydrostatic experiments show that deformation of the sealed foam under hydrostatic compression is similar to the behavior of compressed air, until reaching volumetric strain levels exceeding 50%. Quasistatic DYSMAS simulations at numerous applied hydrostatic pressures produce volumetric strains between those measured in hydrostatic experiments with sealed foam (lower bound of strain at a given pressure) and in confined compression experiments with unsealed foam (upper bound).

Conclusion

The FSI modeling approach in DYSMAS showed a strong correlation with experimental results. Given this foam's prior successful use in a physical lung simulant, this computational approach is a good candidate for future modeling of human lung tissue response to underwater shock.

水下激波管内密封开孔泡沫的实验与计算模型
最近,开孔泡沫被用作肺实质模拟物来模拟水下爆炸损伤,因此泡沫的力学响应特性引起了水下爆炸界的兴趣。目的研究柔性密封开孔泡沫塑料(FlexFoam-iT!通过实验和计算研究了水下静水压力和冲击作用。方法通过高速摄像机捕捉泡沫在加载过程中的实时变形,并利用三维数字图像相关技术计算泡沫的瞬态体积应变。基于FSI程序动态系统力学高级模拟(DYSMAS),建立了全耦合流固耦合(FSI)实验模型,其中Arruda-Boyce超弹性模型计算了泡沫的本构行为。结果模拟泡沫体应变与冲击试验数据具有良好的相关性。静水实验表明,密封泡沫在静水压缩下的变形与压缩空气的行为相似,直到达到超过50%的体积应变水平。在许多应用静水压力下的准静态DYSMAS模拟产生的体积应变介于密封泡沫静水实验(给定压力下应变的下界)和非密封泡沫密闭压缩实验(上界)中测量的体积应变之间。结论FSI建模方法与实验结果具有较强的相关性。考虑到这种泡沫之前在物理肺部模拟中的成功应用,这种计算方法是未来模拟人体肺组织对水下冲击反应的一个很好的选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Experimental Mechanics
Experimental Mechanics 物理-材料科学:表征与测试
CiteScore
4.40
自引率
16.70%
发文量
111
审稿时长
3 months
期刊介绍: Experimental Mechanics is the official journal of the Society for Experimental Mechanics that publishes papers in all areas of experimentation including its theoretical and computational analysis. The journal covers research in design and implementation of novel or improved experiments to characterize materials, structures and systems. Articles extending the frontiers of experimental mechanics at large and small scales are particularly welcome. Coverage extends from research in solid and fluids mechanics to fields at the intersection of disciplines including physics, chemistry and biology. Development of new devices and technologies for metrology applications in a wide range of industrial sectors (e.g., manufacturing, high-performance materials, aerospace, information technology, medicine, energy and environmental technologies) is also covered.
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