随时间变化的温度梯度的频率开关产生的热传递滞后。

IF 2.1 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Entropy Pub Date : 2024-12-30 DOI:10.3390/e27010018
Renai Chen, Galen T Craven
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引用次数: 0

摘要

应用随机能量学框架来研究周期性地改变随时间变化的振荡温度梯度的频率如何影响纳米级分子模型中的热传递。我们特别研究了频率切换的影响,即瞬间改变温度梯度的振荡频率,对连接到两个热浴的粒子产生的热传递滞后曲线的形状有影响,每个热浴的温度都是随时间振荡的。导出了系统和槽内能量通量的解析表达式,所得结果与非平衡态分子动力学模拟结果吻合较好。我们发现热输运迟滞曲线的形状可以通过在快振荡和慢振荡之间转换频率而显著改变。我们还观察到,由于频移,迟滞曲线中出现了掐环和复杂的多环模式等特征。所提出的结果对热神经形态器件如热忆阻器和热忆电容的设计具有指导意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Heat Transport Hysteresis Generated Through Frequency Switching of a Time-Dependent Temperature Gradient.

A stochastic energetics framework is applied to examine how periodically shifting the frequency of a time-dependent oscillating temperature gradient affects heat transport in a nanoscale molecular model. We specifically examine the effects that frequency switching, i.e., instantaneously changing the oscillation frequency of the temperature gradient, has on the shape of the heat transport hysteresis curves generated by a particle connected to two thermal baths, each with a temperature that is oscillating in time. Analytical expressions are derived for the energy fluxes in/out of the system and the baths, with excellent agreement observed between the analytical expressions and the results from nonequilibrium molecular dynamics simulations. We find that the shape of the heat transport hysteresis curves can be significantly altered by shifting the frequency between fast and slow oscillation regimes. We also observe the emergence of features in the hysteresis curves such as pinched loops and complex multi-loop patterns due to the frequency shifting. The presented results have implications in the design of thermal neuromorphic devices such as thermal memristors and thermal memcapacitors.

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来源期刊
Entropy
Entropy PHYSICS, MULTIDISCIPLINARY-
CiteScore
4.90
自引率
11.10%
发文量
1580
审稿时长
21.05 days
期刊介绍: Entropy (ISSN 1099-4300), an international and interdisciplinary journal of entropy and information studies, publishes reviews, regular research papers and short notes. Our aim is to encourage scientists to publish as much as possible their theoretical and experimental details. There is no restriction on the length of the papers. If there are computation and the experiment, the details must be provided so that the results can be reproduced.
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