在一个沉浸的微拉伸热弹性介质中,使用两个模型对温度依赖性特征和非局部行为的比较研究
Mohamed I A Othman1, Ebtesam E M Eraki2, Mohamed F Ismail3
1Department of Mathematics, Faculty of Science, ZagazigUniversity, P.O. Box 44519, Zagazig, Egypt. m_i_a_othman@yahoo.com.
Scientific reports
|November 7, 2024
概括
这项研究探讨了浸泡在流体中的非局部微拉伸介质中的热弹性,使用格林-纳格迪 (G-N III) 理论和三相滞后 (3PHL) 模型. 非局部效应显著影响物理量,通过在不同频率上进行比较.
科学领域:
- 连续力学 连续力学
- 热弹性 热弹性 热弹性
- 非局部理论 非局部理论
背景情况:
- 研究微拉伸材料的热弹性行为对于先进的工程应用至关重要.
- 了解非局部效应和流体相互作用对材料反应的影响是复杂的.
- 现有的模型经常简化或忽略这些复杂的相互作用.
研究的目的:
- 分析非局部微拉伸介质在非粘性流体中的热弹性反应.
- 应用和比较绿色-纳格迪 (G-N III) 理论和三相滞后 (3PHL) 模型.
- 评估非局部效应在温度依赖条件下对热弹性量的影响.
主要方法:
- 基于格林-纳格迪 (G-N III) 理论和3PHL模型的基本方程的导出.
- 在分析解决方案中使用正常模式技术.
- 使用水中的晶元素进行实验比较.
主要成果:
- 非局部效应显著影响所有被调查的物理量.
- 在G-N III理论和3PHL模型之间观察到热弹性反应的明显差异.
- 该研究强调了基于不同频率值的结果变化.
结论:
- 流体中的非局部微拉伸热弹性是通过G-N III和3PHL理论有效建模的.
- 非局部影响至关重要,必须考虑它才能准确预测.
- 理论模型和频率的选择显著影响了热弹性反应分析.
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