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首页> 外文期刊>International communications in heat and mass transfer >Thermal performance of a new nanofluid containing biologically functionalized graphene nanoplatelets inside tubes equipped with rotating coaxial double-twisted tapes
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Thermal performance of a new nanofluid containing biologically functionalized graphene nanoplatelets inside tubes equipped with rotating coaxial double-twisted tapes

机译:装有旋转同轴双扭带的管内包含生物功能化石墨烯纳米片的新型纳米流体的热性能

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摘要

This research attempts to investigate the benefits of utilizing two heat transfer enhancement methods simultaneously. These techniques include employing biological graphene-based nanofluid and using rotating coaxial double-twisted tapes (RCDTT) to enhance heat transfer inside tubes. Using the nanofluid is desirable such that at twisted ratio of 2.5 and rotational speed of 0 rpm, the heat transfer coefficient improves about 16.3% by increase of the concentration from 0 to 0.1%. Furthermore, higher rotational speed is suggested such that its increase from 0 to 900 rpm, at twisted ratio of 3.5 and concentration of 0%, causes a 77% increment in the heat transfer coefficient. Lower twisted ratios are also more effective for enhancing heat transfer rate. The rotational speed increment has the great impact on the pressure drop, such that a 34% increment in the pressure drop occurs with increasing the rotational speed from 300 rpm to 900 rpm at weight fraction of 0.075% and twisted ratio of 3.5. Owing to the more intense disturbances generated by greater rotational speeds, the particle residence time becomes greater leading to pumping power increment. The figure of merit for all the cases is higher than 1, which is an excellent outcome from energy efficiency viewpoint.
机译:本研究试图探讨同时使用两种传热增强方法的好处。这些技术包括使用生物石墨烯基纳米流体和使用旋转同轴双绞带(RCDTT)来增强管内的热传递。使用纳米流体是理想的,使得在2.5的扭曲比和0rpm的旋转速度下,通过将浓度从0增加到0.1%,传热系数提高约16.3%。此外,建议采用更高的转速,以使其在0的扭曲比和浓度为0%的情况下从0 rpm增加到900 rpm,使传热系数增加77%。较低的扭曲比对于提高热传递速率也更有效。旋转速度的增加对压降有很大的影响,使得当重量分数为0.075%和扭曲比为3.5时,旋转速度从300 rpm增加到900 rpm时,压降增加了34%。由于更高的旋转速度会产生更大的干扰,因此颗粒的停留时间会变长,从而导致泵浦功率增加。所有情况下的品质因数均高于1,从能源效率的角度来看,这是一个极好的结果。

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