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Heat transfer and entropy generation through nanofluid filled direct absorption solar collector

机译:纳米流体填充的直接吸收式太阳能收集器的传热和熵产生

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Sustainable energy generation is one of the most important challenges facing society today. Solar energy is one of the best sources of renewable energy with minimal environmental impact which offers a solution. The present work investigates the heat transfer performance and entropy generation of forced convection through a direct absorption solar collector. The working fluid is Cu-water nanofluid. The simulations focus specifically on the effect of solid volume fraction of nanoparticle and Reynolds number on the mean Nusselt number, mean entropy generation, Bejan number and collector efficiency. Also Isotherms and heatfunction are presented for various solid volume fraction and inertia force. The governing partial differential equations are solved using penalty finite element method with Galerkins weighted residual technique. The results show that both the mean Nusselt number and entropy generation increase as the volume fraction of Cu nanoparticles and Reynolds number increase. The results presented in this study provide a useful source of reference for enhancing the forced convection heat transfer performance while simultaneously reducing the entropy generation.
机译:可持续能源发电是当今社会面临的最重要挑战之一。太阳能是可再生能源的最佳来源之一,对环境的影响最小,可以提供解决方案。本工作研究了通过直接吸收式太阳能集热器的热传递性能和强制对流的熵产生。工作流体是铜水纳米流体。模拟特别关注纳米颗粒的固体体积分数和雷诺数对平均努塞尔数,平均熵生成,贝詹数和收集器效率的影响。还介绍了各种固体体积分数和惯性力的等温线和热函数。用Galerkins加权残差法,用惩罚有限元法求解控制偏微分方程。结果表明,随着铜纳米粒子的体积分数和雷诺数的增加,平均努塞尔数和熵产生均增加。这项研究中提出的结果为增强强制对流换热性能同时减少熵产生提供了有用的参考来源。

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