Thermal characteristics of Boger-micropolar tri-hybrid nanofluid magnetized squeezing flow within concentric parallel discs

IF 3 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL Journal of Thermal Analysis and Calorimetry Pub Date : 2024-10-03 DOI:10.1007/s10973-024-13629-z
Subhajit Panda, Rupa Baithalu, S. R. Mishra
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Abstract

The flow of non-Newtonian Boger-micropolar fluid combined with tri-hybrid nanoparticles in the base fluid ethylene glycol under the influence of magnetic field is analysed in this discussion. The three-dimensional squeezing flow through two concentric parallel discs is considered. The interaction of thermal radiation with various thermophysical properties energies the flow phenomena significantly. The enhanced thermal characteristic is exhibited due to the implementation of viscosity, electrical and thermal conductivity based on the spherical, cylindrical, and platelet shape nanoparticles. The standard transformation rules are employed for the governing equations in dimensional forms to transform into non-dimensional and ordinary set of differential equations. The resulting partial differential equations are solved numerically by employing Runge–Kutta fourth-order technique, followed by shooting. Key findings show that the combined effects of nanoparticle concentration, micropolar parameters, and magnetic field intensity have a considerable impact on the hybrid nanofluid's effective assets. The effective features of various factors involved in the proposed model are deployed graphically, and the physical behaviour is illustrated briefly. However, the squeezing flow within concentric discs allows for the efficient heat management devices in a variety of industrial and biomedical areas. The primary findings indicate that fluid velocity is significantly affected by an increase in the micropolar parameter, which signifies the non-Newtonian attributes of the material. Furthermore, fluid transportation is hampered in both permeable and impermeable surface conditions by the resistance caused by the permeability of the porous matrix.

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同心平行圆盘内波格-微波三混合纳米流体磁化挤压流的热特性
本讨论分析了在磁场影响下,基液乙二醇中的非牛顿博格三元流体与三元杂化纳米粒子的流动。考虑了流经两个同心平行圆盘的三维挤压流。热辐射与各种热物理性质的相互作用显著增强了流动现象的能量。球形、圆柱形和板状纳米粒子的粘度、导电性和导热性增强了热特性。采用标准转换规则将一维形式的控制方程转换为非一维常微分方程组。通过采用 Runge-Kutta 四阶技术对所得到的偏微分方程进行数值求解,然后进行拍摄。主要研究结果表明,纳米粒子浓度、微波参数和磁场强度的综合效应对混合纳米流体的有效资产有相当大的影响。我们以图形方式展示了所提模型中涉及的各种因素的有效特征,并简要说明了其物理行为。然而,同心圆盘内的挤压流使各种工业和生物医学领域的高效热管理设备成为可能。主要研究结果表明,流体速度受微波参数增加的影响很大,微波参数表示材料的非牛顿属性。此外,在渗透和不渗透表面条件下,多孔基质的渗透性所产生的阻力都会阻碍流体的输送。
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来源期刊
CiteScore
8.50
自引率
9.10%
发文量
577
审稿时长
3.8 months
期刊介绍: Journal of Thermal Analysis and Calorimetry is a fully peer reviewed journal publishing high quality papers covering all aspects of thermal analysis, calorimetry, and experimental thermodynamics. The journal publishes regular and special issues in twelve issues every year. The following types of papers are published: Original Research Papers, Short Communications, Reviews, Modern Instruments, Events and Book reviews. The subjects covered are: thermogravimetry, derivative thermogravimetry, differential thermal analysis, thermodilatometry, differential scanning calorimetry of all types, non-scanning calorimetry of all types, thermometry, evolved gas analysis, thermomechanical analysis, emanation thermal analysis, thermal conductivity, multiple techniques, and miscellaneous thermal methods (including the combination of the thermal method with various instrumental techniques), theory and instrumentation for thermal analysis and calorimetry.
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