Journal of South China University of Technology (Natural Science Edition) ›› 2021, Vol. 49 ›› Issue (9): 46-55.doi: 10.12141/j.issn.1000-565X.200641

Special Issue: 2021年化学化工

• Chemistry & Chemical Engineering • Previous Articles     Next Articles

Simulation and Experiment Investigation into Specific Heat Capacity Enhancement of Nitrate Molten Salt Nanofluid

WEI XiaolanLIN GuoqingDING JingWANG WeilongLU JianfengLIU Shule2   

  1. 1.School of Chemistry and Chemical Engineering,South China University of Technology,Guangzhou 510640,Guangdong,
    China;2.School of Materials Science and Engineering,Sun Yat-Sen University,Guangzhou 510006,Guangdong,China
  • Received:2020-10-26 Revised:2021-03-26 Online:2021-09-25 Published:2021-09-01
  • Contact: 丁静(1963-),女,教授,主要从事储热材料和系统、储热材料结构效应与界面效应、热质输运研究。 E-mail:dingjing@mail.sysu.edu.cn
  • About author:魏小兰(1963-),女,教授,主要从事纳米能源材料、太阳能储存材料研究。E-mail:xlwei@scut.edu.cn
  • Supported by:
    Supported by the National Natural Science Foundation of China(52036011)and the Joint Fund of the National Natural Science Foundation of China and Guangdong Province(U1601215)

Abstract: Nanofluid composed of molten salt and nanoparticles are important materials for the effective power ge-neration and heat storage system of solar energy.It is of great significance to find out why nanoparticles are able to enhance the specific heat capacity of molten salt.In this paper,nanoparticles were added in molten salt at diffe-rent contents,and the specific heat capacity variation of complex fluids was measured by means of DSC.Then,the molecular dynamic simulation was adopted to explore the reason for the rise of specific heat capacity of complex fluids.In the simulation,the number of molten salt molecules is fixed and the content of nanoparticles is changeable,so as to analyze the effects of the content of nanoparticles on the specific heat capacity,structure and distribution of molten salt.It is indicated that,when the mass fraction of nanoparticles is 1.0%~1.5%,the increase of specific heat capacity is the largest.The additional interaction force produced by the high-density clustering of molten salt anions on the surface of nanoparticles or by the regular restricted distribution on the surface of nanoparticles with smaller particle size (about 1nm) is the main reason for the increase of the specific heat capacity of nano-fluids.In addition,calculation results confirm the positive correlation between the dispersity of the nanoparticles and the increase of specific heat capacity.The addition of nanoparticles can reduce the distance between anion and cation in molten salt to a certain extent,resulting in the change of Coulomb energy,which is another reason for the increase of specific heat capacity.

Key words: heat transfer and storage material, molten salt, nanofluid, molecular simulation, specific heat capacity, microstructure

CLC Number: