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On the Increase in Signal Depth due to High-Order Effects in Micro- and Nanosized Deformable Conductors

机译:由于微型和纳米化可变形导体中的高阶效应导致信号深度的增加

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摘要

With regard to the transmission of a thermomechanical signal on extremely short temporal and spatial scales, which represents an issue particularly important dealing with micro- and nanosized electromechanical systems, it is well known that the so-called non-Fourier effects become not negligible. In addition, it has to be considered that the interaction among multiple energy carriers has, as a direct consequence, the involvement of high-order terms in the time-differential formulation of the dual-phase lag heat conduction constitutive equation linking the heat flux vector with the temperature variation gradient. Accepting that the deformations caused by the temperature variations are small enough to be modeled under the assumptions typical of the linear thermoelasticity, in the present article we take into account the highest Taylor expansion orders able to guarantee (under appropriate assumptions) stability conditions, thermodynamic consistency, and at the same time the existence of an influence domain of the external data linked to the energy transmission as thermal waves. To this aim, a cylindrical domain filled by an anisotropic and inhomogeneous thermoelastic material is investigated, although the results obtained will be independent from the considered geometry: for such a reason, we will be able to consider as illustrative examples some simulations referred to single-layer graphene and to show how the expansion orders selected strongly influence the domain of influence depth.
机译:关于在极短的时间和空间尺度上传输热机械信号,这代表了尤其重要的处理微型和纳米型机电系统的问题,众所周知,所谓的非傅里叶效应变得不可忽略。另外,必须认为多个能量载体之间的相互作用是直接后果,高阶项在连接热通量向量的双相滞导热传导本构式方程的时差制剂中的参与温度变化梯度。接受由温度变化引起的变形足够小,以便在线性热弹性的典型假设下建模,在本文中,我们考虑了能够保证(根据适当假设)稳定条件,热力学稠度的最高泰勒膨胀订单并且同时存在与能量传输相关的外部数据的影响域作为热波。为此,研究了由各向异性和不均匀热弹性材料填充的圆柱形结构域,尽管所获得的结果与所考虑的几何形状无关:出于这样的原因,我们将能够考虑说明性示例,其中一些模拟引用单个模拟图层石墨烯和展示如何选择的膨胀顺序如何强烈影响影响深度的领域。

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    Vittorio Zampoli;

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  • 年度 2019
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  • 原文格式 PDF
  • 正文语种 eng
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