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Boiling and Condensation Heat Transfer of Zeotropic Mixtures in Smooth Tubes

机译:沸石中均相混合物的沸腾和冷凝传热

摘要

Boiling and condensation of mixtures are widely encountered in liquefaction of natural gas process, refrigeration systems, and other chemical and power generation industries. Zeotropic mixtures present a temperature glide between the dew and bubble points. A variation in fluid temperature and shifts in vapor and liquid compositions occur during boiling and condensation processes of zeotropic mixtures. Heat transfer characteristics of mixtures are less investigated, comparing with pure fluids. Problems such as possibly reduced heat transfer performance of mixtures need to be further studied. Better understanding of boiling and condensation heat transfer of mixtures is significant for optimal design and improvement of energy efficiency.A comprehensive investigation of in-tube boiling and condensation of zeotropic binary mixtures was carried out in the present work. For boiling of mixtures, heat transfer and flow characteristics were studied numerically, with non-equilibrium models based on annular and annular-mist flow. It was found that both the fluid physical properties and mass transfer resistance are responsible for the heat transfer degradation during boiling of non-azeotropic mixtures. Moreover, dryout of binary mixtures boiling was investigated by examining effect of various setups for initial entrainment fraction and nucleation-induced entrainment on predicted dryout quality. The initial amount of entrainment was found to be important for the prediction at low critical qualities, while the history effect is unimportant for the prediction at high critical qualities.Condensation heat transfer of mixture was studied both theoretically and experimentally. Equilibrium and non-equilibrium models were presented for predicting condensation heat transfer coefficient of mixtures. For industrial design, a simple equilibrium and empirical model including mixture effects was proposed by studying five experimental datasets covering a wide range of fluids and working conditions. The experimental results were best predicted when applying the additional heat transfer resistance caused by the mixtures on both the annular and stratified heat transfer coefficient. Three models based on film theory were introduced to investigate thermodynamic and hydrodynamic non-equilibrium effects, as well as effect of separated vapor zones. The studies of non-equilibrium models provide references and suggestions for simulation of condensation process, which will further help to understand heat and mass transfer characteristics of binary mixtures. In particular, the thermodynamic non-equilibrium effect was shown to be the most significant one on the condensation heat transfer, while the hydrodynamic non-equilibrium effect and the effect caused by separated vapor are less evident in the present studied cases. For the experimental part, condensation tests were performed for R32/R1234ze(E) mixture at 25/75% mass composition inside an 8mm inner diameter tube, with mass velocity ranging from 100 to 600 kg/m2s at a pressure of 10 bar. Heat transfer coefficient was measured for further validation of the proposed model.
机译:混合物的沸腾和冷凝在天然气工艺,制冷系统以及其他化学和发电行业的液化中广泛遇到。共沸混合物在露点和气泡点之间存在温度滑移。在共沸混合物的沸腾和冷凝过程中,会发生流体温度的变化以及蒸气和液体成分的变化。与纯流体相比,很少研究混合物的传热特性。诸如混合物的传热性能可能降低的问题需要进一步研究。更好地理解混合物的沸腾和冷凝传热对于优化设计和提高能源效率具有重要意义。本工作对共沸二元混合物的管内沸腾和冷凝进行了全面研究。对于混合物的沸腾,利用基于环形和环形雾流的非平衡模型,对传热和流动特性进行了数值研究。已经发现,在非共沸混合物的沸腾过程中,流体的物理性质和传质阻力都是导致传热降解的原因。此外,通过检查初始夹杂分数和成核诱导的夹杂物对预测干out质量的各种设置的影响,研究了二元混合物沸腾的干out。发现初始夹带量对低临界质量下的预测很重要,而历史效应对高临界质量下的预测并不重要。理论和实验研究了混合物的冷凝传热。提出了平衡模型和非平衡模型来预测混合物的冷凝传热系数。对于工业设计,通过研究五个涵盖广泛流体和工作条件的实验数据集,提出了一个包含混合效应的简单平衡模型和经验模型。当将混合物引起的额外的传热阻力应用于环形和分层传热系数时,可以最好地预测实验结果。引入了基于薄膜理论的三种模型来研究热力学和流体力学的非平衡效应,以及分离的蒸汽区域的效应。非平衡模型的研究为冷凝过程的模拟提供了参考和建议,这将进一步帮助理解二元混合物的传热和传质特性。特别是,热力学非平衡效应被证明是对冷凝传热的最显着效应,而在当前研究案例中,流体力学非平衡效应和分离蒸汽所引起的效应则较不明显。对于实验部分,对内径为8mm的内径为25/75%的R32 / R1234ze(E)混合物进行了冷凝测试,在10 bar的压力下质量速度为100至600 kg / m2s。测量了传热系数,以进一步验证所提出的模型。

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  • 作者

    Deng Han;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 eng
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