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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Laminar Convective Nanofluid Flow Over a Backward-Facing Step With an Elastic Bottom Wall
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Laminar Convective Nanofluid Flow Over a Backward-Facing Step With an Elastic Bottom Wall

机译:层状对流纳米流体流过于面向后底壁的落后步骤

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In the present study, laminar forced convective nanofluid flow over a backward-facing step was numerically investigated. The bottom wall downstream of the step was flexible, and finite element method was used to solve the governing equations. The numerical simulation was performed for a range of Reynolds number (between 25 and 250), elastic modulus of the flexible wall (between and 10(4) and 10(6)), and solid particle volume fraction (between 0 and 0.035). It was observed that the flexibility of the bottom wall results in the variation of the fluid flow and heat transfer characteristics for the backward-facing step problem. As the value of Reynolds number and solid particle volume fraction enhances, local and average heat transfer rates increase. At the highest value of Reynolds number, heat transfer rate is higher for the case with the wall having lowest value of elastic modulus whereas the situation is reversed for other value of Reynolds number. Average Nusselt number reduces by about 9.21% and increases by about 6.1% for the flexible wall with the lowest elastic modulus as compared to a rigid bottom wall for Reynolds number of 25 and 250. Adding nano-additives to the base fluid results in higher heat transfer enhancements. Average heat transfer rates enhance by about 35.72% and 35.32% at the highest solid particle volume fraction as compared to nanofluid with solid volume fraction of 0.01 for the case with wall at the lowest and highest elastic modulus. A polynomial type correlation for the average Nusselt number along the flexible hot wall was proposed, which is dependent on the elastic modulus and solid particle volume fraction. The results of this study are useful for many thermal engineering problems where flow separation and reattachment coupled with heat transfer occur. Control of convective heat transfer for such configurations with wall flexibility and nanoparticle inclusion to the base fluid, was aimed in this study to find the effects of various pertinent parameters for heat transfer enhancement.
机译:在本研究中,在数值上研究了层状前步骤的层状强制对流纳米流体流动。下游下游的底壁是柔性的,并且使用有限元方法来解决控制方程。对雷诺数(在25和250)的范围内进行数值模拟,柔性壁的弹性模量(在10(4)和10(6)之间)和固体颗粒体积分数(0和0.035之间)。观察到底壁的柔韧性导致流体流动和热传递特性的变化,用于后向后的步骤问题。随着雷诺数和固体颗粒体积分数的值,局部和平均传热率增加。在雷诺数的最高值下,对于具有弹性模量的最低值的壁的壳体的传热速率较高,而这种情况逆转了雷诺数的其他值。与雷诺数为25和250的刚性底壁相比,平均纽扣数量减少了约9.21%的柔性壁的柔性壁增加了约9.21%,增加了弹性模量的柔性模量的约6.1%。向基础流体中加入纳米添加剂导致较高的热量转移增强。与纳米流体相比,平均传热速率在最高的固体体积分数为0.01的壳体处于最低和最高弹性模量的情况下,在最高的固体颗粒体积分数中增强了约35.72%和35.32%。提出了沿着柔性热壁的平均冲泡数的多项式类型相关性,这取决于弹性模量和固体颗粒体积分数。该研究的结果对于许多热工程问题是有用的,其中流动分离和与传热耦合的重新附接。对具有壁柔性和纳米颗粒包裹在基础液中的这种配置的对流传热控制,旨在本研究,以找到各种相关参数对传热增强的影响。

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