摘要
揭示熔盐在复杂换热结构内的对流换热规律,实现系统的高效换热是发展下一代先进核能发电技术和高温光热发电技术要解决的关键问题之一.本文首先回顾了熔盐对流换热实验的研究历程,总结发现其经历了从光滑管到强化管、从管内到换热器壳侧的发展过程;同时指出研究熔盐在换热器壳侧复杂结构内的换热规律是今后一项十分重要的工作.接着,系统介绍了作者团队近年来对熔盐在普通的管壳式换热器、大小孔折流板换热器、弓形折流板换热器、折流杆换热器的壳侧,以及印刷电路板换热器翼型肋片侧5种复杂结构内的对流换热规律的实验研究工作;总结了上述研究中获得的熔盐在5种复杂结构内的对流换热实验关联式,同时给出了关联式具体的参数适用范围.这些实验关联式具有形式简单、精度较高等特点,可以满足工程需求.最后,对上述复杂结构中的熔盐换热性能进行了对比分析.结果表明,4种管壳式换热器壳侧的换热能力为大小孔折流板换热器>折流杆换热器>弓形折流板换热器>普通的管壳式换热器;此外,还发现翼型印刷电路板换热器的单位体积换热量远大于4种管壳式换热器.最后,探讨了复杂换热结构内的熔盐对流换热方面需要进一步探究的内容.
The large-scale utilization of traditional fossil fuels causes global warming and environment pollution,which is constraining the sustainable development of human society.Recently,new energy utilization technologies,including solar power and nuclear power,have witnessed rapid developments because they can relieve these problems.For the new energy utilization,molten salts are widely used.Therefore,having a deep understanding on the convective heat transfer characteristics of molten salts flowing in complex heat transfer structures is a critical issue to realize the high heat-transfer performance for new energy utilization technologies,especially the next-generation advanced nuclear power plant and high-temperature concentrated solar power(CSP)plant.In this paper,experimental studies on the convective heat transfer characteristics of the molten salt are firstly reviewed.It can be concluded that these studies experienced a development process,which is from smooth tubes to enhanced tubes,from tube side to shell side.Meanwhile,it is pointed out that studying on the convective heat transfer characteristics of molten salt flowing in complex structures is of great importance in the future.Then,previous experimental studies by our team on the convective heat transfer characteristics of the molten salt flowing in 5 heat exchangers with complex structures are introduced systematically,including shell-and-tube heat exchangers(STHE)without baffle plate,STHE with large and small hole baffles,STHE with segmental baffles,STHE with rod baffles,and airfoil printed circuit heat exchanger(PCHE).Based on the above experimental studies,corresponding convective heat transfer correlations for the molten salt flowing in the five complex heat transfer structures were obtained;and the applicable temperature and Reynolds number ranges for these correlations were also provided.The results show that the obtained correlations have simple forms and high precision,which can meet the engineering requirement.Moreover,heat transfer performances of the above five heat exchangers are also compared with each other.The results show that Nusselt numbers of the five heat exchangers have the same changing trend with Reynolds number;and the order of the heat transfer performances of the STHEs is:STHE with large and small hole baffles>STHE with rod baffles>STHE with segmental baffles>STHE without baffle plate.In addition,the heat transfer rate per unit volume of the airfoil PCHE is 70 times that of the STHE.To conclude the experimental research status of the friction and heat transfer characteristics of molten salt flowing in typical heat exchangers with complex structures,it can be found that most of the investigations focused on the convective heat transfer performance,lacking the analysis of friction characteristics.Therefore,the friction performances of the heat exchangers with complex structures should be further studied to obtain the comprehensive performance.Moreover,most of the experimental studies on the convective heat transfer performance of molten salts are related with the traditional heat exchangers.Thus,novel heat exchangers,which can achieve high heat transfer performance and low pressure drop,should be investigated and developed to meet the need of high efficiency,high temperature,and high pressure in the nextgeneration advanced nuclear power plant and high-temperature CSP plant.
作者
何雅玲
王文奇
邱羽
郑章靖
杜保存
王坤
时红远
Yaling He;Wenqi Wang;Yu Qiu;Zhangjing Zheng;Baocun Du;Kun Wang;Hongyuan Shi(Key Laboratory of Thermo-Fluid Science and Engineering of Ministry of Education,School of Energy and Power Engineering,Xi'an Jiaotong University,Xi'an 710049,China)
出处
《科学通报》
EI
CAS
CSCD
北大核心
2019年第28期3007-3019,共13页
Chinese Science Bulletin
基金
国家自然科学基金(51436007,51721004)资助
关键词
熔盐
换热器
复杂换热结构
对流换热规律
新能源利用
molten salt
heat exchangers
complex heat transfer structures
convective heat transfer characteristics
new energy utilization