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Transient hygrothermoelastic response in a cylinder considering non-Fourier hyperbolic heat-moisture coupling

机译:考虑非傅立叶双曲热湿耦合的圆柱体瞬态湿热弹性响应

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The classical theory of heat conduction (Fourier theory) predicts an infinite speed for thermal disturbance propagation, which is physically unrealistic. By extending the classical Fourier heat conduction and Fick's diffusion, this paper presents a hyperbolic diffusion law with different phase lags of thermal and moisture fluxes to simulate coupled heat-moisture diffusion-propagation behavior. Transient hygrothermal and elastic response of an infinitely long cylinder subjected to sudden hygrothermal loadings at the surface is studied. By using Laplace transform and decoupling technique, a closed form solution of temperature, moisture, displacements and stresses is determined. The analytical results show that the thermal and moisture relaxation times or phase lags of heat and moisture fluxes play a significant role in the early stage of transient response after heat/moisture shock. The classical results corresponding to vanishing phase lags can be recovered from the present ones. For non-vanishing phase lags, hygrothermal waves have finite propagation speeds. Numerical results are calculated and displayed graphically to show the influence of the phase lags of heat and moisture fluxes on transient hygrothermoelastic fields. A comparison between classic model and hyperbolic hygrothermal coupling model is given. Based on the non Fourier heat conduction and non-Fick diffusion, some shortcomings induced by the classical Fourier's and Fick's laws can be effectively avoided. (C) 2018 Elsevier Ltd. All rights reserved.
机译:经典的热传导理论(傅立叶理论)预测了无限大的热干扰传播速度,这在物理上是不现实的。通过扩展经典的傅立叶热传导和菲克扩散,本文提出了具有不同热和水分通量相位滞后的双曲线扩散定律,以模拟热湿扩散-传播耦合行为。研究了无限长圆柱体在表面突然遭受湿热载荷时的瞬时湿热和弹性响应。通过使用拉普拉斯变换和去耦技术,可以确定温度,湿度,位移和应力的闭合形式的解。分析结果表明,热湿潮的热湿松弛时间或相位滞后在热湿冲击后的瞬态响应的早期阶段起着重要作用。可以从当前结果中恢复与消失的相位滞后相对应的经典结果。对于不消失的相位滞后,潮热波具有有限的传播速度。计算结果并以图形方式显示数值结果,以显示热量和水分通量的相位滞后对瞬态湿热弹性场的影响。给出了经典模型与双曲线湿热耦合模型的比较。基于非傅立叶热传导和非菲克扩散,可以有效避免经典傅立叶和菲克定律引起的一些缺点。 (C)2018 Elsevier Ltd.保留所有权利。

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