Heat Characteristics and Viscous Flow in a Moving Isothermal Cylindrical Duct with Nanoparticles

Emmanuel O. Sangotayo, Kasali A. Adedeji, Joel Ovo Ogidiga
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Abstract

Extrusion, melt spinning, glass fiber production, food processing, and mechanical molding rely on heat transmission. Isothermal techniques have been employed in highly structured equipment and living cell temperature regulators. The flow and heat properties of CuO nanofluids flowing through a moving cylindrical isothermal conduit were examined, in the presence of nanoparticles and viscous dissipation. Two-dimensional flows of an incompressible Newtonian fluid via a cylindrical conduit with uniform surface velocity and temperature were utilized. The flow’s partial differential equations were transformed to a non-dimensional form and numerically solved using a finite difference scheme built in the C++ program. The effect of nanoparticle size (0.0 to 0.6) and viscous dissipation (0, 20, 40) on heat behavior and fluid movement are examined and profiles are used to present the numerical findings. The findings revealed that decreasing the variable nanoparticle parameter increased fluid velocity, stream function, and circulation while decreasing fluid temperature. The temperature of the fluid rises in direct proportion, as the viscous dissipation factor improves. This study improves understanding of the viscous flow and heat behavior of boundary layer problems when a nanofluid is used as the heat transfer working fluid in various engineering isothermal processes such as boiling and condensation.
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运动等温圆柱形纳米颗粒管道的热特性和粘性流动
挤出、熔融纺丝、玻璃纤维生产、食品加工、机械成型等都依赖于传热。等温技术已应用于高度结构化的设备和活细胞温度调节器。研究了在纳米颗粒和黏性耗散存在的情况下,CuO纳米流体在移动的圆柱形等温管道中的流动和热性能。研究了不可压缩牛顿流体在均匀表面速度和温度的圆柱形管道中的二维流动。将流场的偏微分方程转化为无量纲形式,利用c++程序中的有限差分格式进行数值求解。研究了纳米颗粒尺寸(0.0 ~ 0.6)和粘性耗散(0,20,40)对热行为和流体运动的影响,并使用剖面来呈现数值结果。研究结果表明,降低可变纳米颗粒参数可以提高流体速度、流函数和循环,同时降低流体温度。随着黏性耗散系数的提高,流体的温度成正比地升高。本研究提高了对纳米流体作为传热工质在沸点和冷凝等工程等温过程中边界层问题的粘性流动和热行为的理解。
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