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Use of nanofluids as coolants in buoyancy-driven thermal management of embedded heating components of small-scale devices

机译:在浮力驱动的小型设备嵌入式加热组件的热管理中使用纳米流体作为冷却剂

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摘要

A two-phase model based on the double-diffusive approach is used to perform a numerical study on natural convection of water-based nanofluids in square cavities partially heated at the bottom wall and cooled at both sides, assuming that Brownian diffusion and thermophoresis are the only slip mechanisms by which the solid phase can develop a significant relative velocity with respect to the liquid phase. Numerical simulations are basically executed for Al2O3 + H2O, using the diameter and the average volume fraction of the suspended nanoparticles, the cavity width, the heated fraction of the bottom wall, the average temperature and the temperature difference imposed across the cavity, as independent variables. Additional simulations are also performed using CuO or TiO2 nanoparticles. It is found that the cooperation between the solutal and thermal buoyancy forces results in a significant enhancement of the heat transfer performance of the nanofluid compared with the pure base liquid.
机译:假设布朗扩散和热泳是最主要的方法,使用基于双扩散方法的两相模型对底部腔中部分加热且两侧均冷却的方腔中水基纳米流体的自然对流进行数值研究。只有滑动机制,通过该机制,固相可以相对于液相产生显着的相对速度。对于Al2O3 + H2O,基本上使用悬浮颗粒的直径和平均体积分数,空腔宽度,底壁的加热分数,平均温度和施加在空腔上的温差作为独立变量,对数值进行了模拟。 。还使用CuO或TiO2纳米粒子进行了其他模拟。发现溶质力和热浮力之间的配合导致与纯基础液体相比纳米流体的传热性能显着增强。

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