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Three-dimensional numerical simulation of shell-and-tube heat exchangers. Part II: Heat transfer

机译:壳管式换热器的三维数值模拟。第二部分:传热

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A three-dimensional, colocated, fully implicit control volume based calculation procedure MEATY [1] has been developed over the past 3 years to simulate flow and heat transfer in shell-and-tube heat exchangers. The three-dimensional model uses the distributed resistance concept of Patankar and Spalding [2], in conjunction with surface permeabilities and volumetric porosities to model the tubes in the heat exchanger. Part I of this article describes the details of the distributed resistance formulation, leakage modeling, geometry modeling, and the turbulence model. Details of the shell-side and tube-side heat transfer are given in this second part. The tube-side temperature field is computed by solving an enthalpy equation for the tube-side fluid. Coupling between the shell-sine and the tube-side equations is described, and numerical results are compared with the Delaware project experimental data. We have made use of the symmetry of the heat exchanger to speed up our calculations. Good agreement was obtained between our three-dimensional numerical simulations and experimental results for overall pressure drop and temperature differences. Computed overall pressure drops and temperature differences were within 15% of experimental results. [References: 8]
机译:在过去的三年中,已经开发了一种基于三维,共置,完全隐式控制量的计算程序MEATY [1],以模拟管壳式换热器中的流动和传热。三维模型使用Patankar和Spalding [2]的分布式阻力概念,结合表面渗透率和体积孔隙率对热交换器中的管道进行建模。本文的第一部分描述了分布式阻力公式,泄漏建模,几何建模和湍流模型的详细信息。在第二部分中给出了壳侧和管侧传热的详细信息。通过求解管侧流体的焓方程来计算管侧温度场。描述了壳正弦方程和管侧方程之间的耦合,并将数值结果与Delaware项目的实验数据进行了比较。我们利用热交换器的对称性来加快计算速度。我们的三维数值模拟与实验结果之间的总体压降和温差获得了很好的一致性。计算得出的总压降和温差在实验结果的15%以内。 [参考:8]

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