Numerical investigation of falling film generation outside vertical tube with ammonia-water nanofluid

Q1 Engineering Energy and Built Environment Pub Date : 2025-04-01 Epub Date: 2023-12-01 DOI:10.1016/j.enbenv.2023.11.010
Yanjun Li , Weixue Jiang , Jinwei Song , Zuo Xu , Xinyu Tang , Shuhong Li , Kai Du
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Abstract

This paper constructed a mathematical model of ammonia-water nanofluid falling film generation outside the vertical tube, which considers the change of the film thickness of the falling film solution, the thermal convection along the film thickness direction and the physical properties of the solution. By solving the mathematical model, the temperature field and other elements of the liquid film were determined. The influence of the properties of the working fluid on the heat and mass transfer in the falling film process is investigated. According to the calculation results, a method of adding nanoparticles in the process of ammonia falling film generation is proposed. The simulation results showed that the heat efficiency of entire falling film process can be enhanced by adding an appropriate amount of Al2O3 nanoparticles. When the added Al2O3 nanoparticles are 1 vol.%, the coefficient of the heat transfer is increased by about 4%, and the mass transfer effect is also improved by about 12%. In brief, the establishment of this model aims to improve heat and mass transfer efficiency and promote the application and integration of low-grade waste heat or renewable energy technologies in built environment.

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氨水纳米流体在垂直管外形成降膜的数值研究
本文建立了垂直管外氨-水纳米流体降膜生成的数学模型,该模型考虑了降膜溶液的膜厚变化、沿膜厚方向的热对流以及溶液的物理性质。通过求解数学模型,确定了液膜的温度场和其他元素。研究了降膜过程中工质性质对传热传质的影响。根据计算结果,提出了在氨降膜生成过程中加入纳米粒子的方法。模拟结果表明,加入适量的Al2O3纳米颗粒可以提高整个降膜过程的热效率。当Al2O3纳米颗粒添加量为1 vol.%时,传热系数提高约4%,传质效果提高约12%。简而言之,该模型的建立旨在提高传热传质效率,促进低品位废热或可再生能源技术在建筑环境中的应用和整合。
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来源期刊
Energy and Built Environment
Energy and Built Environment Engineering-Building and Construction
CiteScore
15.90
自引率
0.00%
发文量
104
审稿时长
49 days
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