Ruan Binglu, Jacobi Anthony M
Mechanical Science and Engineering, University of Illinois, Urbana, IL, 61801-2906, USA.
Nanoscale Res Lett. 2012 Feb 14;7(1):127. doi: 10.1186/1556-276X-7-127.
The preparation of nanofluids is very important to their thermophysical properties. Nanofluids with the same nanoparticles and base fluids can behave differently due to different nanofluid preparation methods. The agglomerate sizes in nanofluids can significantly impact the thermal conductivity and viscosity of nanofluids and lead to a different heat transfer performance. Ultrasonication is a common way to break up agglomerates and promote dispersion of nanoparticles into base fluids. However, research reports of sonication effects on nanofluid properties are limited in the open literature. In this work, sonication effects on thermal conductivity and viscosity of carbon nanotubes (0.5 wt%) in an ethylene glycol-based nanofluid are investigated. The corresponding effects on the agglomerate sizes and the carbon nanotube lengths are observed. It is found that with an increased sonication time/energy, the thermal conductivity of the nanofluids increases nonlinearly, with the maximum enhancement of 23% at sonication time of 1,355 min. However, the viscosity of nanofluids increases to the maximum at sonication time of 40 min, then decreases, finally approaching the viscosity of the pure base fluid at a sonication time of 1,355 min. It is also observed that the sonication process not only reduces the agglomerate sizes but also decreases the length of carbon nanotubes. Over the current experimental range, the reduction in agglomerate size is more significant than the reduction of the carbon nanotube length. Hence, the maximum thermal conductivity enhancement and minimum viscosity increase are obtained using a lengthy sonication, which may have implications on application.
纳米流体的制备对其热物理性质非常重要。具有相同纳米颗粒和基础流体的纳米流体,由于制备方法不同,其表现也会有所不同。纳米流体中的团聚体尺寸会显著影响纳米流体的热导率和粘度,并导致不同的传热性能。超声处理是一种常见的打散团聚体并促进纳米颗粒分散到基础流体中的方法。然而,关于超声处理对纳米流体性质影响的研究报告在公开文献中较为有限。在这项工作中,研究了超声处理对乙二醇基纳米流体中碳纳米管(0.5 wt%)的热导率和粘度的影响。观察了对团聚体尺寸和碳纳米管长度的相应影响。研究发现,随着超声处理时间/能量的增加,纳米流体的热导率呈非线性增加,在超声处理时间为1355分钟时,最大增强率为23%。然而,纳米流体的粘度在超声处理时间为40分钟时增加到最大值,然后下降,最终在超声处理时间为1355分钟时接近纯基础流体的粘度。还观察到超声处理过程不仅减小了团聚体尺寸,还缩短了碳纳米管的长度。在当前实验范围内,团聚体尺寸的减小比碳纳米管长度的减小更为显著。因此,长时间超声处理可获得最大的热导率增强和最小的粘度增加,这可能对应用有影响。