Non-contact experimental methods to characterise the response of a hyper-elastic membrane

IF 3.4 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Mechanical and Materials Engineering Pub Date : 2017-07-24 DOI:10.1186/s40712-017-0082-6
M. Kamper, A. Bekker
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引用次数: 2

Abstract

Membranes often feature in dynamic structures. The design of such structures generally includes the evaluation of their dynamic characteristics, such as natural frequecies and mode shapes.

The quasi-statics ad dyamic responses of thin rubber sheeting were investigated through non-contact experimental techniques. The rubber sheeting was modelled as a membrane structure and the material was assumed to be hyper-elastic, isotopic and incompressible. Two hyper-elastic material models were considered, namely the Mooney-Rivlin model and the Neo-Hookean model. The natural frequencies and mode shapes of the hyprt-elastic membrane were anatically and numerically calculated by assuming small linear vibrations and an equi-bi-axial stress state in the membrane. To validate the mathematical analyses, experimental modal analysis was performed where the vibration response was measured with a laser Doppler vibrometer.

The analytical model, shows that the natural frequencies of the membrane depend on the initial stretch. Mathematical and experimental results agree well at the lower modes. However, measurement resolution is found to be a vital factor which limits the extraction of closely spaced modes due to difficulties with the accurate identification of nodal line in a purely experimental approach.

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表征超弹性膜响应的非接触实验方法
膜通常是动态结构的特征。这种结构的设计通常包括对其动态特性的评估,如固有频率和模态振型。采用非接触实验技术研究了薄胶板的准静力学和动态响应。将橡胶板建模为膜结构,并假设该材料具有超弹性、同位素和不可压缩性。考虑了两种超弹性材料模型,即Mooney-Rivlin模型和Neo-Hookean模型。通过假设超弹性膜具有小的线性振动和等双轴应力状态,对超弹性膜的固有频率和模态振型进行了数值计算。为了验证数学分析,用激光多普勒测振仪测量了振动响应,进行了实验模态分析。解析模型表明,膜的固有频率依赖于初始拉伸。在较低的模态下,数学和实验结果吻合得很好。然而,由于在纯实验方法中难以准确识别节点线,因此测量分辨率是限制近间隔模态提取的重要因素。
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来源期刊
CiteScore
8.60
自引率
0.00%
发文量
1
审稿时长
13 weeks
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