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相关概念视频

Absorption of Radiation01:05

Absorption of Radiation

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The rate of heat transfer by emitted radiation is described by the Stefan-Boltzmann law of radiation:
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Just as interesting as the effects of heat transfer on a system are the methods by which the heat transfer occur. Whenever there is a temperature difference, heat transfer occurs. It may occur rapidly, such as through a cooking pan, or slowly, such as through the walls of a picnic ice box. So many processes involve heat transfer that it is hard to imagine a situation where no heat transfer occurs. Yet, every heat transfer takes place by only three methods: conduction, convection, and radiation.
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Mechanisms of Heat Transfer II01:20

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In convection, thermal energy is carried by the large-scale flow of matter. Ocean currents and large-scale atmospheric circulation, which result from the buoyancy of warm air and water, transfer hot air from the tropics toward the poles and cold air from the poles toward the tropics. The Earth’s rotation interacts with those flows, causing the observed eastward flow of air in the temperate zones. Convection dominates heat transfer by air, and the amount of available space for the airflow...
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There are three methods by which heat transfer can take place: conduction, convection, and radiation. Each method has unique and interesting characteristics, but all three have two things in common: they transfer heat solely because of a temperature difference; and the greater the temperature difference, the faster the heat transfer.
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Heat transfer between the human body and its environment occurs through four main mechanisms: conduction, convection, radiation, and evaporation.
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Understanding heat transfer mechanisms is essential for understanding how our bodies maintain balance in different environmental conditions. When the environment is thermoneutral, the body is in a state of balance, neither using nor releasing energy to maintain its core temperature. However, when the environment is not thermoneutral, the body employs four heat transfer mechanisms to maintain homeostasis: conduction, convection, evaporation, and radiation. These mechanisms facilitate heat...
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Performance of α‑, β- and γ‑GeSe Monolayers for Near-Field Radiative Heat Transfer: An Ab Initio Study.

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Subsurface Defect Localization by Structured Heating Using Laser Projected Photothermal Thermography
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层状β-GeSe板块之间的近场辐射热传递:第一原则方法

A Gusso1, F Sánchez-Ochoa2, R Esquivel-Sirvent2

  • 1Departamento de Ciencias Exactas-EEIMVR, Universidad Federal Fluminense, 27255-125 Volta Redonda, Brazil.

Langmuir : the ACS journal of surfaces and colloids
|May 10, 2024
PubMed
概括

少数层的化 (GeSe) 显示了适合近场辐射热传递 (NFRHT) 的光学特性. 这些少数层系统的传热性能与单层GeSe.Se相提并论.

科学领域:

  • 材料科学 材料科学 材料科学
  • 凝聚物质物理学 凝聚物质物理学
  • 纳米技术纳米技术

背景情况:

  • 第四组单基化物,特别是化 (GeSe) 单层,表现出独特的异性质物理性质.
  • 虽然GeSe单层已经得到了很好的研究,但几个层的同型结构,接近2D系统,仍未得到充分探索.
  • 近场辐射热传递 (NFRHT) 是纳米级热管理中的一个关键现象.

研究的目的:

  • 为了研究独立的少数层β-GeSe.Se的光学特性.
  • 评估少数层β-GeSe在近场辐射热传递 (NFRHT) 的性能.
  • 为了提供更现实的预测NFRHT在层次的2Dβ-GeSe材料之间.

主要方法:

  • 密度函数理论 (DFT) 的计算,包括旋转轨道合,用于确定光导率.
  • 波段结构和有效电子质量被计算为最多五个层.
  • 带内和带间的过渡以及离子振动 (光学声子) 都被认为是光学特性.

主要成果:

  • 计算了少数层β-GeSe的光导率,并结合了电子和振动贡献.
  • 该研究分析了兴奋剂诱导的自由电子和带间过渡的带内过渡.
  • 计算包括了活跃光学声子对NFRHT的影响.

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结论:

  • 在NFRHT中,发现少数层β-GeSe的传热性能与单层β-GeSe相似.
  • 包括电子和离子贡献在内,可以更准确地预测NFRHT在二维 β-GeSe.
  • 这项研究突出了几层GeSe在NFRHT应用中的潜力.