Numerical investigation of heat-mass transfer characteristics of LiCl solution droplet in frost-prone ambient air

IF 5.8 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Shuaijie Ding , Yi Zhang , Zheng Zhang , Guanmin Zhang , Maocheng Tian
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Abstract

Optimizing the structure and operating mode of the heat source tower to enhance its heat transfer performance is beneficial for it to play a greater role in clean heating engineering. In this study, firstly, an improved closed-type heat source tower using a spray zone to replace the fin-tube heat exchanger in the traditional structure was proposed; next, a modified numerical model for the heat and mass transfer between anti-frost droplet and moist air in the improved structure was established; then, the heat and mass transfer mechanism between anti-frost droplet and moist air and the effects of moist air velocity and initial droplet diameter were studied. The results show that the convection effect and diffusion effect jointly dominate the mass transfer between the anti-frost droplet and moist air, and more than 90% of mass transfer resistance is concentrated on gas side; interfacial shear stress affects the mass transfer coefficient by thinning the concentration boundary layer on windward side of anti-frost droplet and influencing the quantity and intensity of vortices inside droplet; the mass transfer rates on both the windward and leeward sides of anti-frost droplet are promoted by interfacial shear stress, and the mass transfer rate on the leeward side of droplet is also enhanced by the returning moist air; when the moist air velocity is 0.2 m/s, the average mass transfer coefficient exhibits a quadratic functional relationship with time, however, as the moist air velocity and droplet diameter increase, the relationship between them gradually approaches linearity; finally, based on the research results, a Sh calculation model incorporating the effect of interfacial shear stress was established (R2 = 0.99947).
易结霜环境空气中LiCl溶液液滴传热传质特性的数值研究
优化热源塔的结构和运行方式,提高热源塔的传热性能,有利于热源塔在清洁供热工程中发挥更大的作用。本文首先提出了一种改进的闭式热源塔,采用喷雾区代替传统结构中的翅片管换热器;其次,建立了改进结构中抗冻液滴与湿空气传热传质的数值模型;在此基础上,研究了液滴与湿空气的传热传质机理以及湿空气速度和液滴初始直径的影响。结果表明:对流效应和扩散效应共同主导了防霜液滴与湿空气之间的传质,90%以上的传质阻力集中在气体侧;界面剪切应力通过减薄防霜液滴迎风面浓度边界层和影响液滴内部涡旋的数量和强度来影响传质系数;界面剪切应力促进了抗冻液滴迎风面和背风面的传质速率,回潮的湿空气也增强了抗冻液滴背风面的传质速率;当湿空气速度为0.2 m/s时,平均传质系数与时间呈二次函数关系,但随着湿空气速度和液滴直径的增大,两者之间的关系逐渐接近线性;最后,根据研究结果,建立了考虑界面剪应力影响的Sh计算模型(R2 = 0.99947)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
10.30
自引率
13.50%
发文量
1319
审稿时长
41 days
期刊介绍: International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems. Topics include: -New methods of measuring and/or correlating transport-property data -Energy engineering -Environmental applications of heat and/or mass transfer
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