具有滑壁条件的电磁辐射艾林-鲍威尔流体的热分布和粘性加热

Q1 Chemical Engineering
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引用次数: 0

摘要

该研究探讨了应用于热交换器、冷却系统、生物医学设备、能源生产、聚合物加工等领域的里加滑动装置中艾林-鲍威尔微流体传热、电磁辐射和粘性加热之间的复杂关系。流体的粘弹性由 Eyring-Powell Cauchy 流体模型表征,该模型具有剪切增厚和剪切减薄现象,在多个热传输过程和热管理中非常有用。所开发的控制模型取自构成关系和守恒原理,并通过自适应分区加权残差法求解。对流动和热分布特征的基本流体项敏感性进行了系统研究。对结果进行了适当的验证和比较,发现在数量上是一致的,这证实了所提交结果的正确性。结果表明,热流体条款的相互作用对粘性流体和热行为产生了重大影响。如图所示,滑移条件瞬间增加了靠近边界壁约 1.7% 至 2.4% 的流速梯度,从而提高了微流体热传播率(非牛顿流体和边界层厚度为 3.7%)。此外,由于辐射和洛伦兹力的作用,热梯度和分布的复杂性在流体体系中也会受到调节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal distribution and viscous heating of electromagnetic radiative Eyring–Powell fluid with slippery wall conditions

The research examines the intricate between Eyring-Powell microfluidic heat transfer, electromagnetic radiation and viscous heating in a Riga slippery device as applied in heat exchangers, cooling systems, biomedical devices, energy generation, polymer processing, and others. The viscoelastic property of the fluid is characterized by the Eyring-Powell Cauchy fluid model with shear-thickening and shear-thinning phenomena that are useful in several heat transport processes and thermal management. The developed governing model is taken from the constitutive relations and conservation principles and solved via an adaptive partition weighted residual method. The essential fluid term sensitivities are systematically investigated on the flow and thermal distribution characteristics. An appropriate validation and comparison of results is done and found to agree quantitatively, this confirmed the correctness of the presented outcomes. The results reveal the significant impact of the thermofluidic terms interaction on the viscous flowing fluid and thermal behaviour. As seen, slip conditions momentously increase the flow rate gradients for about 1.7% to 2.4% close to the boundary wall and consequently raise the microfluidic thermal propagation rates with 3.7% non-Newtonian fluid and thickness of the boundary layer. Moreover, the thermal gradient and distribution complexities are modulated within the fluid regime due to radiation and Lorentz force.

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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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