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Experimental and numerical analysis of heat transfer including viscous dissipation in a scraped surface heat exchanger

机译:刮板式换热器中包括粘性耗散在内的传热实验和数值分析

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Viscous dissipation plays an important role in the dynamics of fluids with strongly temperature-dependent viscosity because of the coupling between the energy and momentum equations. The heat generated by viscous friction causes a local temperature increase in the high shearing zone with a consequent decrease of the viscosity which may dramatically change the temperature and velocity distribution. These processes are mainly controlled by the Brinkman number, the rotating velocity and the thermal boundary conditions. This work analyses forced convection heat transfer including the viscous dissipation in a scraped surface heat exchanger (SSHE). In this study the increase of the temperature due to the viscous dissipation is analysed both experimentally and numerically for Newtonian and non-Newtonian fluids. Heat transfer simulations including viscous dissipation were carried out by means of the CFD code of the software Fluent, version 6.3, with solving momentum and energy equations. Two thermal boundary conditions were considered: pseudo-adiabatic wall and constant temperature on the stator wall exchange. In the case of Newtonian fluid (pure HV45), for both considered thermal boundary conditions, an important increase of the temperature was obtained. In the case of non-Newtonian shear thinning fluid (2 wt% CMC solution), viscous dissipation is neglected. The developed numerical model agrees well with experimental results. The validated numerical model was then used to study the effect of index and consistency behaviour of shear thinning fluid using power-law Theological behaviour on the viscous dissipation, and correlation using dimensionless analysis expressed with different dimensioniess process numbers is proposed for Newtonian and non-Newtonian shear thinning fluid.
机译:由于能量和动量方程之间的耦合,粘性耗散在具有强烈温度依赖性粘度的流体动力学中起着重要作用。粘滞摩擦产生的热量会导致高剪切区的局部温度升高,从而导致粘度降低,从而极大地改变温度和速度分布。这些过程主要由布林克曼数,旋转速度和热边界条件控制。这项工作分析了强制对流换热,包括刮板式换热器(SSHE)中的粘性耗散。在这项研究中,通过实验和数值分析了牛顿流体和非牛顿流体由于粘性耗散而引起的温度升高。借助于粘性软件6.3版的CFD代码进行了包括粘性耗散的传热模拟,并求解了动量和能量方程。考虑了两个热边界条件:假绝热壁和定子壁交换处的恒温。在牛顿流体(纯HV45)的情况下,对于两种考虑的热边界条件,都获得了温度的重要升高。在非牛顿剪切稀化流体(2 wt%CMC溶液)的情况下,粘性耗散被忽略。建立的数值模型与实验结果吻合良好。然后使用验证的数值模型,利用幂律神学行为研究剪切稀化液的指数和稠度行为对粘滞耗散的影响,并提出了使用不同维数的无因次分析表示的牛顿和非牛顿相关性剪切稀化液。

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