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CFD analysis of shell and tube heat exchanger with different baffle orientation and baffle cut

机译:不同挡板取向和挡板壳管热交换器的CFD分析

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This paper emphasizes on the effects of certain baffle orientation and baffle cut for a simple shell and tube heat exchanger. As heat being transferred between separate medium might contribute some heat loss to the surroundings resulting in an ineffective heat transfer, this calls for the remedy to minimize the loss and improve heat transfer characteristics. This is where baffle orientation and baffle cut plays its role and improves the heat transfer phenomena. The analysis constitutes of employing baffles (or flow directing or obstructing vanes or panels) at a particular distance inside a shell and tube type heat exchanger. Two categories of orientation includes horizontal as well as vertical orientation of baffles. Moreover, the baffle cut undergoes some variation for proper optimization. The process involves the utilization of a commercial CFD software package FLUENT. The geometry consists of seven tubes and ten baffles within the shell where water is considered as the working substance and only shell side flow characteristics is observed. During the solver setup, Realizable k-epsilon (2-eqn) is utilized and boundary conditions at the inlet, outlet and wall are properly assigned as per required for this study. After examining the result it is noticed that pressure drop and heat transfer coefficient both decreases as the baffle cut is increased for a particular Reynolds number, but as the Reynolds number is increased keeping the baffle cut constant, pressure drop and heat transfer coefficient both increases. Last but not the least the above findings can be used for further study and there is also scopes for some improvement of the current study.
机译:本文强调某些挡板取向和挡板切口的一个简单的管壳式换热器的效果。由于热而分离介质之间传送的可能贡献一些热量损失,从而导致无效的传热周围的环境,这需要补救,以尽量减少损失,提高热传递特性。这是挡板方向和隔板缺口发挥其作用,提高了热传递现象。采用挡板的分析构成(或流动引导或阻碍叶片或板)中的壳管式换热器内的特定距离。两类取向的包括挡板的水平以及垂直方向。此外,隔板缺口进行了适当的优化一些变化。这一过程涉及商业CFD软件FLUENT包的利用率。几何形状由7管且其中水被认为是为工质和只壳侧流动特性被观察到在外壳内10个挡板。在解算器设置,可实现的k的ε-(2-等式)用于和按需要用于该研究在入口,出口和壁的边界条件被适当地分配。检查结果后,注意到作为挡板切割为特定的雷诺数增加的压降和传热系数都减小,但是随着雷诺数的增加保持挡板切口恒定,压降和传热系数都增大。最后但并非最不重要的上述调查结果可以用于进一步的研究和也有作用域的当前研究的一些改进。

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