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Pool boiling characteristics of nano-fluids

机译:纳米流体的池沸腾特性

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Common fluids with particles of the order of nanometers in size are termed as 'nano-fluids' which have created considerable interest in recent times for their improved heat transfer capabilities. With very small volume fraction of such particles the thermal conductivity and convective heat transfer capability of these suspensions are significantly enhanced without the problems encountered in common slurries such as clogging, erosion, sedimentation and increase in pressure drop. This naturally brings out the question whether such fluids can be used for two phase applications or in other words phase change in such suspensions will be assistant or detrimental to the process of heat transfer. The present paper investigates into this question through experimental study of pool boiling in water-Al_2O_3 nano-fluids. The results indicate that the nano-particles have pronounced and significant influence on the boiling process deteriorating the boiling characteristics of the fluid. It has been observed that with increasing particle concentration, the degradation in boiling performance takes place which increases the heating surface temperature. This indicates that the role of transient conduction in pool boiling is overshadowed by some other effect. Since the particles under consideration are one to two orders of magnitude smaller than the surface roughness it was concluded that the change of surface characteristics during boiling due to trapped particles on the surface is the cause for the shift of the boiling characteristics in the negative direction. The results serve as a guidance for the design of cooling systems with nano-fluids where an overheating may occur if saturation temperature is attained. It also indicates the possibility of such engineered fluids to be used in material processing or heat treatment applications where a higher pre-assigned surface temperature is required to be maintained without changing the fluid temperature.
机译:具有纳米级颗粒大小的普通流体被称为“纳米流体”,由于其改进的传热能力,近来引起了极大的兴趣。由于这种颗粒的体积分数非常小,因此这些悬浮液的导热率和对流传热能力得到了显着提高,而不会出现普通浆料遇到的问题,例如堵塞,侵蚀,沉降和压降增加。这自然提出了这样的问题:这种流体是否可以用于两相应用,换句话说,这种悬浮液中的相变将对传热过程起到辅助或有害作用。本文通过水-Al_2O_3纳米流体池沸腾的实验研究,对该问题进行了研究。结果表明,纳米颗粒对沸腾过程具有显着且显着的影响,从而使流体的沸腾特性恶化。已经观察到,随着颗粒浓度的增加,沸腾性能下降,这会增加加热表面温度。这表明瞬时传导在池沸腾中的作用已被其他一些作用所掩盖。由于所考虑的颗粒比表面粗糙度小一到两个数量级,因此可以得出结论,沸腾过程中由于表面上截留的颗粒而引起的表面特性变化是导致沸腾特性向负方向移动的原因。结果可为设计具有纳米流体的冷却系统提供指导,如果达到饱和温度,可能会发生过热。这也表明这种工程流体可用于需要保持较高的预分配表面温度而不改变流体温度的材料加工或热处理应用中。

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