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The effect of geometrical modifications to a shell and tube heat exchanger on performance and freezing risk during LNG regasification

机译:几何修改对壳管和管热交换器对液化天然气再升值期间性能和冻结风险的影响

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摘要

The regasification of LNG is a crucial process in a majority of LNG applications and can be conducted in various types of heat exchangers. The low boiling temperature of LNG makes the vaporization process prone to the risk of ice formation, which can obstruct the flow of the heating fluid. This, in turn, can lead to a significant drop in pressure, decrease in heat transfer or even to the destruction of the heat exchanger itself. In a wide range of important applications, the heating fluid is often water or a water-glycol mixture, characterized by a freezing temperature that is substantially higher than the boiling temperature of LNG. Consequently, this can intensify the ice formation process. In the current research, a numerical model was proposed and developed to analyze the risk of ice formation during the LNG vaporization process within a shell-and-tube type of heat exchanger (STHX). The model consists of two distinct parts: heat transfer through the boiling LNG and the freezing dynamics of the heating fluid. To generalize the developed model for various boiling regimes a continuous and differentiable expression of the boiling curve of LNG was proposed. The expression smoothly connected the nucleate with the film boiling regions and methodically filled the gap of the transition region. The developed numerical model was used to investigate a wide range of flow conditions and various shapes and spacing of tubes within the STHX. It was shown that the risk of total freezing could be indicated by a critical value of the Reynolds number. The conducted study made it possible to define a heat-flux-to-pump-duty-ratio coefficient, which showed that flattened tubes could ensure better heat transfer, higher reliability and also decrease the pump duty needed to supply the STHX.
机译:LNG的重新调节是大多数LNG应用中的重要过程,并且可以在各种类型的热交换器中进行。 LNG的低沸点温度使汽化过程容易出现冰层的风险,这可能阻碍加热流体的流动。这反过来可以导致压力大幅下降,传热减少甚至是热交换器本身的破坏。在广泛的重要应用中,加热流体通常是水或水 - 二醇混合物,其特征在于冷冻温度,其基本上高于LNG的沸腾温度。因此,这可以加剧冰形成过程。在目前的研究中,提出了一种数值模型,并开发出分析液体交换器(STHX)内的LNG汽化过程中的冰形成风险。该模型由两个不同的部件组成:通过沸腾的LNG和加热流体的冷冻动力学传热。为了概括各种沸腾制度的开发模型,提出了LNG沸腾曲线的连续和可分视曲线表达。表达式平滑地与膜沸点区域平滑地连接核心,并有条理地填充过渡区域的间隙。使用开发的数字模型来研究STHX内的各种流动条件和各种形状和间隔。结果表明,雷诺数的临界值可以指示总冻结的风险。进行的研究使得可以定义热量通量 - 泵送 - 占空比系数,这表明扁平管可以保证更好的传热,更高的可靠性,并且还降低提供STHX所需的泵占空比。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第11期|120247.1-120247.12|共12页
  • 作者单位

    Department of Cryogenic Aeronautic and Process Engineering Wroclaw University of Science and Technology 50-370 Wroclaw Poland;

    Department of Cryogenic Aeronautic and Process Engineering Wroclaw University of Science and Technology 50-370 Wroclaw Poland;

    Department of Cryogenic Aeronautic and Process Engineering Wroclaw University of Science and Technology 50-370 Wroclaw Poland;

    Department of Cryogenic Aeronautic and Process Engineering Wroclaw University of Science and Technology 50-370 Wroclaw Poland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Liquid natural gas; Regasification; Freezing risk; Heat exchanger;

    机译:液体天然气;重新分配;冻结风险;热交换器;

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