首页> 外文会议>ASME Turbo Expo vol.1; 20050606-09; Reno-Tahoe,NV(US) >DESIGN CONSIDERATIONS FOR COMPACT CERAMIC OFF-SET STRIP FIN HIGH TEMPERATURE HEAT EXCHANGERS
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DESIGN CONSIDERATIONS FOR COMPACT CERAMIC OFF-SET STRIP FIN HIGH TEMPERATURE HEAT EXCHANGERS

机译:紧凑型陶瓷偏置翅片高温换热器的设计注意事项

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This paper deals with the development of a three-dimensional numerical model to predict the overall performance of an advanced high temperature heat exchanger design, up to 1000℃, for the production of hydrogen by the sulfur iodine thermo-chemical cycle used in advanced nuclear reactor concepts. The design is an offset strip-fin, hybrid plate compact heat exchanger made from a liquid silicon impregnated carbon composite material. The two working fluids are helium gas and molten salt (Flinak). The offset strip-fin is chosen as a method of heat transfer enhancement due to the boundary layer restart mechanism between the fins that has a direct effect on heat transfer enhancement. The effects of the fin geometry on the flow field and heat transfer are studied in three-dimensions using Computational Fluid Dynamics (CFD) techniques. The pre-processor GAMBIT is used to create a computational mesh, and the CFD software package FLUENT that is based on the finite volume method is used to produce the numerical results. Fin dimensions need to be chosen that optimize heat transfer and minimize pressure drop. Comparison of the overall performance between two fin shapes (rectangular versus curved edges) is performed using analytical calculations (where available) as well as computational fluid dynamics techniques. The analytical calculations predict larger pressure losses than the numerical simulations. The model developed in this paper will be used to investigate the heat exchanger design parameters in order to find an optimal design.
机译:本文涉及三维数值模型的开发,以预测先进的高温换热器设计(高达1000℃)的整体性能,该设计用于先进核反应堆中的硫碘热化学循环生产氢概念。该设计是由液态硅浸渍碳复合材料制成的带状偏翅片,混合板紧凑型热交换器。两种工作流体是氦气和熔融盐(Flinak)。由于翅片之间的边界层重启机制直接影响传热的增强,因此选择偏置条形翅片作为传热的方法。使用计算流体动力学(CFD)技术,从三维角度研究了翅片几何形状对流场和传热的影响。预处理器GAMBIT用于创建计算网格,而基于有限体积方法的CFD软件包FLUENT用于生成数值结果。需要选择散热片尺寸,以优化传热并使压降最小。使用分析计算(如果有)以及计算流体动力学技术来比较两个散热片形状(矩形和弯曲边缘)之间的总体性能。与数值模拟相比,解析计算预测的压力损失更大。本文开发的模型将用于研究热交换器的设计参数,以便找到最佳设计。

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