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Thermal transport across nanoparticle-fluid interfaces: the interplay of interfacial curvature and nanoparticle-fluid interactions

机译:跨纳米颗粒-流体界面的热传输:界面曲率和纳米颗粒-流体相互作用的相互作用

摘要

We investigate the general dependence of the thermal transport across nanoparticle-fluid interfaces using molecular dynamics computations. We show that the thermal conductance depends strongly both on the wetting characteristics of the nanoparticle-fluid interface and on the nanoparticle size. Strong nanoparticle-fluid interactions, leading to full wetting states in the host fluid, result in high thermal conductances and efficient interfacial transport of heat. Weak interactions result in partial drying or full drying states, and consistently low thermal conductances. The variation of the thermal conductance with particle size is found to depend on the fluid-nanoparticle interactions. Strong interactions coupled with large interfacial curvatures lead to optimum interfacial heat transport. This complex dependence can be modelled using an equation that includes the interfacial curvature as a parameter. In this way, we rationalise the existing experimental and computer simulation results and show that the thermal transport across nanoscale interfaces is determined by the correlations of both interfacial curvature and nanoparticle-fluid interactions.
机译:我们使用分子动力学计算研究了跨纳米粒子-流体界面的热传输的一般依赖性。我们表明,热导率强烈地取决于纳米颗粒-流体界面的润湿特性和纳米颗粒的尺寸。强大的纳米粒子-流体相互作用导致主体流体中的完全润湿状态,从而导致高导热率和有效的热量界面传输。弱相互作用导致部分干燥或完全干燥状态,以及始终较低的热导率。发现导热系数随粒径的变化取决于流体-纳米粒子的相互作用。强烈的相互作用加上较大的界面曲率会导致最佳的界面传热。可以使用包括界面曲率作为参数的方程来建模这种复杂的依赖性。通过这种方式,我们合理化了现有的实验和计算机仿真结果,并表明跨纳米级界面的热传输是由界面曲率和纳米粒子-流体相互作用的相关性决定的。

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