振动下牛顿与非牛顿纳米流体流动中的熵产生

S. Mishra, Alka Mishra, Pushpendra Singh
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摘要

对振动对牛顿和非牛顿纳米流体流经管道时的传热和熵产生的影响进行的数值研究表明,通过加强流体搅拌和改善颗粒分散,传热得到了增强。机械振动破坏了流体流动和传热的稳定性,但通过诱导漩涡运动和加强径向混合提高了传热率,从而使温度分布更加均匀。热熵生成分析表明,振动流动的不可逆性降低,表明流动混合得到改善。振动通过加强流体搅拌和促进颗粒在管壁附近的分散来增强传热,从而使管道沿线的温度分布明显更加均匀,约为稳态流动的 100 倍。这项研究强调了振动在优化纳米流体系统传热和减少熵产生方面的潜力,同时强调了振动对速度和流变的影响。将牛顿流体和非牛顿流体的振动流动与稳态流动进行比较后发现,在振动条件下,尤其是在雷诺数较低时,非牛顿流体会表现出明显的影响,因此振动对流体有显著的改善作用。未来的研究方向包括探索热辐射对熵产生的影响、分析不同的纳米流体成分以及研究不同的边界条件和几何形状,以促进对这一领域的理解。这项研究为了解纳米流体流动中振动、流体动力学和热传递之间复杂的相互作用提供了宝贵的见解。其研究结果对优化各种工程应用中的热管理系统具有实际意义
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Entropy generation in Newtonian Vs Non-Newtonian nanofluid flow under vibration
Numerical investigation into the effects of vibration on heat transfer and entropy generation in Newtonian and Non-Newtonian nanofluid flows through pipes reveals enhanced heat transfer via intensified fluid agitation and improved particle dispersion. Mechanical vibrations destabilize fluid flow and heat transfer but increase heat transfer rates by inducing swirling motion and enhancing radial mixing, leading to a more uniform temperature distribution. Thermal entropy generation analysis shows reduced irreversibility in vibrated flow, indicating improved flow mixing. Vibration enhances heat transfer by intensifying fluid agitation and promoting particle dispersion near the wall, resulting in a significantly more uniform temperature distribution along the pipe, approximately 100 times more than steady-state flow. This study underscores vibration's potential to optimize heat transfer and reduce entropy generation in nanofluid systems, emphasizing velocity and rheological impacts. Comparison of vibrated flow to steady-state flow for Newtonian and non-Newtonian fluids reveals significant improvements under vibration, particularly at lower Reynolds numbers where non-Newtonian fluids exhibit pronounced effects. Future research directions include exploring thermal radiation's impact on entropy generation, analyzing different nanofluid compositions, and investigating varied boundary conditions and geometries to advance understanding in this field. This study provides valuable insights into the complex interplay among vibration, fluid dynamics, and heat transfer in nanofluid flows. Its findings have practical implications for optimizing thermal management systems in diverse engineering applications
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