Free vibrations of functionally graded porous hanging and standing cantilever beams

Ma’en S Sari, S. Faroughi
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Abstract

The free oscillations of a functionally graded (FG) porous vertical cantilever beam in the frame work of Euler–Bernoulli beam theory is investigated. The beam is subjected to the gravity-load and the properties of the FG material such as the modulus of elasticity and the density are supposed to change through the thickness of the beam according to power-law relations. The equation of motion is derived using Newton’s second law. The Numerical Chebyshev collocation method is utilized to determine the transverse frequencies of the FG porous hanging and standing cantilever Euler–Bernoulli beams. A parametric study is conducted to determine the effects of various factors such as the transverse functionally graded index, the porosity factor, and the elastic and the mass density ratios on the natural frequencies and the mode shapes of the FG porous vertical hanging and standing cantilever thin beams under their self-weight. The accuracy of the proposed numerical method is evaluated through comparisons of the frequencies obtained from the present approach with those available in previous literature. In general, it was observed that the elastic ratio has a softening impact on the frequencies except for the fundamental frequency which remains constant as the elastic ratio increases. Moreover, the porosity parameter and the power-law index may have a softening or hardening impact on the frequencies, and the behavior of these frequencies depends on the values of the elastic and the mass density ratios.
功能分级多孔悬挂梁和立悬臂梁的自由振动
在欧拉-伯努利梁理论的框架下,研究了功能分层(FG)多孔垂直悬臂梁的自由振荡。悬臂梁承受重力荷载,弹性模量和密度等功能分层材料的特性根据幂律关系在梁的厚度上发生变化。运动方程使用牛顿第二定律推导。利用数值切比雪夫定位法确定了多孔悬挂 FG 梁和立悬臂欧拉-伯努利梁的横向频率。通过参数研究确定了横向功能分级指数、孔隙度系数、弹性和质量密度比等各种因素对自重下 FG 多孔垂直悬挂薄梁和立悬臂薄梁的固有频率和模态振型的影响。通过将本方法获得的频率与以往文献中的频率进行比较,评估了所提出的数值方法的准确性。总体而言,除了基频随着弹性比的增加而保持不变外,弹性比对频率有软化影响。此外,孔隙度参数和幂律指数也会对频率产生软化或硬化影响,这些频率的行为取决于弹性比和质量密度比的值。
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