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首页> 外文期刊>International Journal of Heat and Mass Transfer >Particle concentration levels of various nanofluids in plate heat exchanger for best performance
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Particle concentration levels of various nanofluids in plate heat exchanger for best performance

机译:板式换热器中各种纳米流体的颗粒浓度水平可实现最佳性能

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摘要

A heat exchange device using nanofluid needs to operate at best nanopartide loading to get the maximum heat transfer performance. In this paper, an attempt has been made to optimize different nanofluid particle volume fractions based on a maximum heat transfer rate, convective heat transfer coefficient, overall heat transfer coefficient, effectiveness and performance index. The novelty of the present study is the optimization of particle volume fraction of various nanofluids based on experimentation in the commercial plate heat exchanger for wide range of nanopartide volume fraction (0-3%). Effects of other operating conditions on the optimization have been discussed as well. Results show that for maximum enhancement of heat transfer characteristics, different nanofluids work at different optimum volume concentrations. For CeO_2/water, Al_2O_3/water, TiO_2/water and SiO_2/water nanofluids, the optimum volume concentrations are 0.75%, 1%, 0.75% and 1.25%, respectively, at the flow rate of 3 lpm. The corresponding maximum heat transfer enhancements are about 35.9%, 26.3%, 24.1%, and 13.9%, respectively. Present study indicates that the optimum concentration for maximum performance index is lower than that for maximum heat transfer rate. Moreover the effect of nanomaterials is more predominant than that of heat transfer fluid temperature or volume flow rate.
机译:使用纳米流体的热交换设备需要在最佳的纳米粒子负载下运行,以获得最大的传热性能。在本文中,已经尝试基于最大传热速率,对流传热系数,总传热系数,有效性和性能指标来优化不同的纳米流体颗粒体积分数。本研究的新颖之处在于,基于在商用板式换热器中对各种纳米微粒体积分数(0-3%)进行实验,优化了各种纳米流体的微粒体积分数。还讨论了其他操作条件对优化的影响。结果表明,为了最大程度地提高传热特性,不同的纳米流体在不同的最佳体积浓度下工作。对于CeO_2 /水,Al_2O_3 /水,TiO_2 /水和SiO_2 /水纳米流体,在3 lpm的流速下,最佳体积浓度分别为0.75%,1%,0.75%和1.25%。相应的最大传热增强分别为约35.9%,26.3%,24.1%和13.9%。目前的研究表明,最大性能指标的最佳浓度低于最大传热速率的最佳浓度。而且,纳米材料的作用比传热流体温度或体积流量的作用更重要。

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