热弹性理论与一个依赖于内存的动态响应,用于一个热电平电子功能分级旋转杆的热弹性理论
Ahmed E Abouelregal1, S S Askar2, M Marin3
1Department of Mathematics, Faculty of Science, Mansoura University, Mansoura, 35516, Egypt.
Scientific reports
|June 3, 2023
概括
本研究使用扩展的热弹性模型研究了功能分级的压电棒的热力学行为. 结果表明,增加材料不均性会削弱物理场和电潜力动态.
科学领域:
- 材料科学 材料科学 材料科学
- 固体力学 固体力学是什么
- 热弹性 热弹性
背景情况:
- 层层压电和柔性材料可以提高电子设备的性能.
- 在热负荷下理解功能分级压电结构 (FGP) 对智能结构至关重要.
- 经典的热弹性面临着热浪传播速度的挑战.
研究的目的:
- 在轴向供热下分析FGP杆的热力学行为.
- 调查材料不均质和记忆依赖衍生物 (MDD) 对FGP棒的影响.
- 探索FGP结构的扩展热弹性模型的应用.
主要方法:
- 采用了修改后的Lord-Shulman模型,其中包含了一个记忆依赖衍生 (MDD).
- 在杆轴上假设物理性质的指数变化.
- 采用拉普拉斯变换法来计算物理场分布.
主要成果:
- 这项研究检查了固定,隔热的FGP棒的热力学反应,没有电位差异.
- 结果通过不同的异质性,内核功能,延迟时间和供热速度与现有文献进行了验证.
- 发现不均质指数的增加削弱了研究的物理场和动态电位行为.
结论:
- 用MDD修改的Lord-Shulman模型有效地捕捉了FGP杆的热力学行为.
- 材料不均性显著影响了压电结构的动态反应.
- 扩展热弹性模型对于准确描述FGP材料中的热传递至关重要.
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