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Local heat transfer analysis for boiling of hydrocarbons in complex geometries: A new approach for heat transfer prediction in staggered tube bundle

机译:复杂几何形状中烃沸腾的局部传热分析:交错管束传热预测的新方法

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This paper deals with heat transfer analysis for boiling flow in staggered tube bundle. A local analysis is performed to determine the heat transfer coefficient linked to local flow regimes by optical fibre. The first part of the paper is devoted to the literature survey of the main existing studies on the topic. We show that published heat transfer correlations deviate largely from each others and also from the experimental results that have been carried out. On these features, a new approach has been developed. It is based on the relationship between flow regimes and thermal characteristics. An experimental setup has been developed for the determination of the local heat transfer and the two-phase flow void fraction. A detailed analysis of the two-phase flow has been performed in a previous paper [1 ] in which two regimes were identified. In the present paper, focus is done on the heat transfer analysis in relation with the flow regime map. This new approach allows a better prediction of the heat transfer coefficient. For the bubbly flow, the heat transfer coefficient is well predicted by a classical correlation corresponding to nucleate boiling regime. For the dispersed flow, classical correlations for convective boiling are not adapted anymore for tube bundle. We evidenced that heat coefficient is mainly controlled by the vapour flow and a heat transfer law is derived using the vapour Reynolds number and vapour Prandlt number. These two heat transfer laws are used to evaluate heat transfer coefficient in the intermediate regime.
机译:本文对交错管束中的沸腾流动进行传热分析。进行局部分析以确定通过光纤链接到局部流动状态的传热系数。本文的第一部分致力于对该主题的主要现有研究的文献综述。我们表明,已发布的传热相关性彼此之间以及与已进行的实验结果之间存在很大差异。在这些功能上,开发了一种新方法。它基于流动状态与热特性之间的关系。已经开发了用于确定局部传热和两相流动空隙率的实验装置。在之前的论文[1]中已经对两相流进行了详细分析,其中确定了两种状态。在本文中,重点是与流态图相关的传热分析。这种新方法可以更好地预测传热系数。对于气泡流,通过与核沸腾状态相对应的经典相关性可以很好地预测传热系数。对于分散流,对流沸腾的经典相关不再适用于管束。我们证明了热系数主要受蒸气流量控制,并且利用蒸气雷诺数和蒸气普朗特数推导了传热规律。这两个热传递定律用于评估中间状态下的热传递系数。

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