Investigation of Thermal Conductivity of a Polymer Solution as Function of Shearing Rate

M. Kostic, H. Tong, Vapor Corp, A. Westinghouse
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引用次数: 12

Abstract

A novel research apparatus is developed to measure the fluid thermal conductivity while in shearing flow, and to determine its dependence on the shearing itself, contrary to the current state-of-the-art of measuring thermal conductivity under the condition of motionless fluid. A concentric cylinders’ apparatus was developed to provide controlled heat transfer in the radial direction, orthogonal to the circumferential fluid velocity, thus virtually preserving pure conductive heat transfer mode. The measurement and control are accomplished and integrated by using a computerized data acquisition system and a comprehensive virtual instrument, developed using the LabVIEW application software. It was found that the thermal conductivity of a Newtonian fluid, such as distilled water, was virtually independent of the fluid motion, as expected. However, for non-Newtonian fluids such as 1000 and 2000 wppm aqueous polyacrylamide (Praestol) solutions, there was up to 10–20% increase of thermal conductivity in the operating shear rate range (40 ≤ γ ≤ 510 sec−1) at 27°C average fluid temperature.
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聚合物溶液热导率随剪切速率函数的研究
针对目前流体静止状态下热导率的测量方法,研制了一种新型的剪切流体热导率测量装置,以确定剪切流体热导率对剪切本身的依赖关系。研制了一种同心圆柱体装置,在径向上提供与周向流体速度正交的受控传热,从而实际上保留了纯传导传热模式。采用LabVIEW应用软件开发的计算机数据采集系统和综合虚拟仪器,完成了测量和控制的集成。人们发现,牛顿流体(如蒸馏水)的热导率实际上与流体运动无关,正如所预期的那样。然而,对于非牛顿流体,如1000 wppm和2000 wppm的水性聚丙烯酰胺(Praestol)溶液,在27°C的平均流体温度下,在工作剪切速率范围内(40≤γ≤510秒−1),导热系数增加了10-20%。
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