A modified couple stress model to analyze the effect of size-dependent on thermal interactions in rotating nanobeams whose properties change with temperature

A. Abouelregal, Mohammed NA Rabih, Hind A Alharbi, Sami F. Megahid
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Abstract

Understanding the behavior of rotating materials and structures on small scales is crucial for many scientific and engineering fields, and such studies play an important role in this regard. This paper aims to propose a novel paradigm for analyzing the vibrational characteristics of thermoelastic nanobeams with diverse physical attributes. The incorporation of size effects in the structural and thermal constitutive relationships involves the consideration of nonlocal elasticity theory (NET) and the modified couple stress (MCS) model, together with the utilization of the Euler–Bernoulli assumptions for thin beams. The work also involves the development of a new non-Fourier thermoelasticity model that incorporates the Moore–Gibson–Thompson (MGT) equation. Furthermore, it was taken into account that the thermal conductivity of the flexible materials is not consistent but rather changes with temperature. Periodic pulse heating was applied to rotating nanobeams, and the behavior of the nanobeams was investigated with respect to thermal, rotational, and length-scale effects. To demonstrate the impact of the distinctive characteristics of the MCS and MGT thermoelastic models on the physical fields, a range of numerical data are presented. The study also investigated the propagation characteristics of thermo-mechanical waves, taking into account aspects such as thermal relaxation time and the influence of temperature change on physical properties. Based on the observed results, including the size impact in the structural and thermal equations can lead to significant disparities when compared to conventional models. The inclusion of the length-scale component in the MCS theory, which increases the rigidity and hardiness of the nanobeam structure, may help to explain the observed effect.
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用修正的耦合应力模型分析旋转纳米梁中随温度变化而变化的热相互作用的尺寸效应
了解旋转材料和结构在小尺度上的行为对许多科学和工程领域至关重要,此类研究在这方面发挥着重要作用。本文旨在提出一种新的范例,用于分析具有不同物理属性的热弹性纳米梁的振动特性。将尺寸效应纳入结构和热构成关系涉及对非局部弹性理论(NET)和修正耦合应力(MCS)模型的考虑,以及对薄梁欧拉-伯努利假设的利用。这项工作还包括开发一种新的非傅里叶热弹性模型,其中包含摩尔-吉布森-汤普森(MGT)方程。此外,还考虑到柔性材料的热导率并不一致,而是随温度变化。对旋转纳米梁进行了周期性脉冲加热,并研究了纳米梁在热效应、旋转效应和长度尺度效应方面的行为。为了证明 MCS 和 MGT 热弹性模型的独特特性对物理场的影响,研究提供了一系列数值数据。研究还考虑了热弛豫时间和温度变化对物理特性的影响等方面,研究了热机械波的传播特性。根据观察结果,与传统模型相比,将尺寸影响纳入结构方程和热方程会导致显著差异。在 MCS 理论中加入长度尺度分量可提高纳米梁结构的刚度和硬度,这可能有助于解释观察到的效果。
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