首页> 外文会议>ASME biennial conference on engineering systems design and analysis;ESDA2010 >CONVECTIVE HEAT TRANSFER ENHANCEMENT WITH NANOFLUIDS: THE EFFECT OF TEMPERATURE-VARIABLE THERMAL CONDUCTIVITY
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CONVECTIVE HEAT TRANSFER ENHANCEMENT WITH NANOFLUIDS: THE EFFECT OF TEMPERATURE-VARIABLE THERMAL CONDUCTIVITY

机译:对流换热与纳米流体的增强:温度变化的热导率的影响

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A nanofluid is defined as the suspension of nanoparticles in a base liquid. Studies in the last decade have shown that significant amount of thermal conductivity and heat transfer enhancement can be obtained by using nanofluids. In the first part of this study, classical forced convection heat transfer correlations developed for pure fluids are used to predict the experimental values of heat transfer enhancement of nanofluids. It is seen that the experimental values of heat transfer enhancement exceed the enhancement predictions of the classical correlations. On the other hand, a recent correlation based on the thermal dispersion phenomenon created by the random motion of nanoparticles predicts the experimental data well. In the second part of the study, in order to further examine the validity of the thermal dispersion approach, a numerical analysis of forced convection heat transfer of Al_2O_3/water nanofluid inside a circular tube in the laminar flow regime is performed by utilizing single phase assumption. A thermal dispersion model is applied to the problem and variation of thermal conductivity with temperature and variation of thermal dispersion with local axial velocity are taken into account. The agreement of the numerical results with experimental data might be considered as an indication of the validity of the approach.
机译:纳米流体定义为纳米颗粒在基础液体中的悬浮液。过去十年的研究表明,使用纳米流体可以显着提高热导率和传热效率。在本研究的第一部分中,为纯流体开发的经典强制对流传热相关性用于预测纳米流体传热增强的实验值。可以看出,传热增强的实验值超过了经典相关性的增强预测。另一方面,基于由纳米粒子的随机运动产生的热分散现象的最新相关性很好地预测了实验数据。在研究的第二部分中,为了进一步检验热扩散方法的有效性,利用单相假设对层流中圆管内Al_2O_3 /水纳米流体的强迫对流换热进行了数值分析。 。将热扩散模型应用于该问题,并考虑了导热系数随温度的变化以及热扩散随局部轴向速度的变化。数值结果与实验数据的一致性可能被认为是该方法有效性的指标。

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