双曲双温双相滞后传热条件下静态预应力对硅粘热弹性纳米谐振器热品质因子的影响分析

IF 2.8 3区 材料科学 Q3 CHEMISTRY, PHYSICAL Silicon Pub Date : 2024-10-22 DOI:10.1007/s12633-024-03174-7
B. M. Alotaibi, Haifa A. Al-Yousef, Alaa A. El-Bary, Hamdy M. Youssef, Norah A. M. Alsaif, Mohammed F. Alotiby, Thaqal M. Alhuzaymi
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引用次数: 0

摘要

对于纳米光束谐振器来说,了解如何调节能量阻尼和热质量因子是至关重要的。在调节能量阻尼时,热松弛期和机械松弛期是非常重要的。在本研究的范围内,本工作的新颖之处在于构建了一个分析热模型,以研究在双曲双温双相滞后热传导模型的背景下,静态预应力以及热松弛期和机械松弛期对粘热弹性硅纳米谐振器的影响。研究了长度尺度、机械松弛时间、热松弛时间、静态预应力和等温频率等因素对热质量的影响。可以改变长度尺度参数,以及静态预应力、热和机械松弛时间,以实现热质量因子的显着增加。等温频率是影响粘热弹性硅纳米谐振器热质量因子的另一个重要因素。
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An Analysis of the Static-Pre-Stress Effect on the Thermal Quality Factor of a Silicon Viscothermoelastic Nano Resonator Under the Hyperbolic Two-Temperature Dual-Phase-Lag Heat Transfer

For nanobeam resonators, it is of the utmost importance to have a solid understanding of how to tune the energy damping and thermal quality factor. The periods of thermal and mechanical relaxation are quite important when it comes to adjusting energy damping. Within the scope of this study, the novelty of this work is constructing an analytical thermal model to investigate the effects of the static pre-stress, as well as the thermal and mechanical relaxation periods, on a viscothermoelastic silicon nano resonator in the context of a hyperbolic two-temperature dual-phase-lag heat conduction model. Several factors, including the length scale, mechanical relaxation time, thermal relaxation times, static-pre-stress, and isothermal frequency, have been investigated concerning the thermal quality factor. It is possible to alter the length-scale parameters, as well as the static-pre-stress, thermal, and mechanical relaxation times, to achieve a significant increase in the thermal quality factor. The isothermal frequency is another factor that has a major impact on the thermal quality factor of the viscothermoelastic silicon nano resonator.

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来源期刊
Silicon
Silicon CHEMISTRY, PHYSICAL-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.90
自引率
20.60%
发文量
685
审稿时长
>12 weeks
期刊介绍: The journal Silicon is intended to serve all those involved in studying the role of silicon as an enabling element in materials science. There are no restrictions on disciplinary boundaries provided the focus is on silicon-based materials or adds significantly to the understanding of such materials. Accordingly, such contributions are welcome in the areas of inorganic and organic chemistry, physics, biology, engineering, nanoscience, environmental science, electronics and optoelectronics, and modeling and theory. Relevant silicon-based materials include, but are not limited to, semiconductors, polymers, composites, ceramics, glasses, coatings, resins, composites, small molecules, and thin films.
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