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Numerical simulation on buoyancy-driven heat transfer enhancement of nanofluids in an inclined triangular enclosure

机译:倾斜三角形外壳中纳米流体浮力驱动热传递增强的数值模拟

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Heat transfer enhancement in a two-dimensional inclined lid-driven triangular enclosure utilizing nanofluids is investigated numerically for various pertinent parameters. The present model is developed to analyze the heat transfer performance of nanofluids inside an enclosure taking into account the solid volume fraction 5, variable velocity and thermal boundary conditions. Fluid mechanics and conjugate heat transfer, described in terms of continuity, linear momentum and energy equations. The transport equations are solved numerically using the Galerkin finite element method. Results are obtained for a wide range of parameters such as the Grashof numbers. Copper-water nanofluids is used with Prandtl number, Pr = 6.2 and solid volume fraction 5 is varied from 0%-20%. The streamlines, isotherm plots and heat transfer correlation of the average Nusselt number at the hot surface as well as average fluid temperature in the enclosure is presented and discussed in detailed. It is found that heat transfer increased by 28% as volume fraction 5 increases from 0% to 20% at Gr =105. Moreover, the variation of the average Nusselt number and average fluid temperature in the cavity is linear with the solid volume fraction.
机译:在数值上对各种相关参数进行了数量地研究了利用纳米流体的二维倾斜盖驱动三角形外壳中的传热增强。开发了本模型以分析外壳内的纳米流体的传热性能,考虑到固体体积分数5,可变速度和热边界条件。流体力学和缀合物传热,在连续性,线性动量和能量方程方面描述。运输方程用Galerkin有限元法在数值上进行解决。获得的结果是各种参数,例如Grashof数。铜水纳米流体与Prandtl数一起使用,Pr = 6.2和固体体积级分5变化,0%-20%。呈现并在外壳中的平均露面的流动线,等温线图和传热相关性,并详细讨论了外壳中的平均流体温度。结果发现,由于体积馏分5增加28%,在GR = 105时增加0%至20%。此外,腔中的平均冲泡数和平均流体温度的变化是具有固体体积分数的线性。

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