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Investigation into the microscopic mechanisms influencing convective heat transfer of water flow in graphene nanochannels

机译:影响石墨烯纳米通道中水流对流换热的微观机理研究

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摘要

Convection heat transfer is assessed for laminarly flowing liquid water through graphene nanochannels via molecular dynamics (MD) simulations. The use of MD simulations allows for direct assessment of the minute details and mechanisms influencing overall heat transfer behaviors within our study; despite the presence of unrealistic axial conduction from temperature resetting and periodic boundary conditions within MD, hydrodynamically and thermally fully-developed water flow conditions are observed. It is indicated that the physics of convective heat transfer deviate from traditional macroscale theory as the no-slip boundary condition is violated with dimensional sizes descending towards the nanoscale; investigation into hydrodynamic slip and thermal slip, termed microscopic mechanisms, is performed for their influence on nanoscale convective outcomes. The parameters of graphene-water interaction strength, channel height, water velocity, and wall temperature are manipulated to evaluate resultant convection behaviors while comparing the effects of differing magnitudes of microscopic mechanisms imposed under various test conditions. This study finds microscopic interfacial mechanisms to significantly augment momentum and thermal behaviors and thus the conduct of convective heat transfer. Hydrodynamic and thermal slip are strongly correlated in all test case scenarios with the exception of velocity manipulation; the influence of thermal slip is found to dominate over that of hydrodynamic slip as surface advection is insignificant in high heat flux environments. Convective performance correlation is suggested as the ratio of thermal slip length to system size.
机译:对流传热通过分子动力学(MD)模拟来评估层流液态水通过石墨烯纳米通道的流动。使用MD模拟可以直接评估影响研究中整体传热行为的细节和机制。尽管存在MD内温度重置和周期性边界条件引起的不切实际的轴向传导,但仍观察到了流体动力学和热学方面充分发展的水流条件。结果表明,对流传热的物理性质不同于传统的宏观理论,因为无滑动边界条件受到破坏,其尺寸尺寸朝纳米尺度减小。对流体动力滑移和热滑移(称为微观机制)的研究是由于它们对纳米级对流结果的影响。石墨烯与水的相互作用强度,通道高度,水速和壁温的参数可通过操作来评估对流行为,同时比较在各种测试条件下施加的不同微观机制的影响。这项研究发现微观界面机制可以显着增强动量和热行为,从而增强对流传热。除了速度操纵外,在所有测试案例中,水动力和热滑移都密切相关。由于在高热通量环境中表面平流无关紧要,因此发现热滑移的影响要强于流体滑移的影响。对流性能相关性建议为热滑移长度与系统尺寸的比率。

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    Department of Mechanical, Aerospace, and Biomedical Engineering, The University of Tennessee, Knoxville, TN 37996, USA;

    Department of Mechanical, Aerospace, and Biomedical Engineering, The University of Tennessee, Knoxville, TN 37996, USA;

    Department of Mechanical, Aerospace, and Biomedical Engineering, The University of Tennessee, Knoxville, TN 37996, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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