DEVELOPMENT OF HIGH TEMPERATURE LIQUID METAL HEAT TRANSFER FLUIDS FOR CSP APPLICATIONS

被引:0
|
作者
Warrier, Gopinath R. [1 ]
Ju, Y. Sungtaek [1 ]
Schroers, Jan [2 ]
Asta, Mark [3 ]
Hosemann, Peter [3 ]
机构
[1] Univ Calif Los Angeles, Los Angeles, CA 90095 USA
[2] Yale Univ, New Haven, CT USA
[3] Univ Calif Berkeley, Berkeley, CA 94720 USA
关键词
THERMAL-CONDUCTIVITY; CORROSION; STEELS; LEAD;
D O I
暂无
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In response to the DOE Sunshot Initiative to develop low-cost, high efficiency CSP systems, UCLA is leading a multi-university research effort to develop new high temperature heat transfer fluids capable of stable operation at 800 degrees C and above. Due to their operating temperature range, desirable heat transfer properties and very low vapor pressure, liquid metals were chosen as the heat transfer fluid. An overview of the ongoing research effort is presented. Development of new liquid metal coolants begins with identification of suitable candidate metals and their alloys. Initial selection of candidate metals was based on such parameters as melting temperature, cost, toxicity, stability/reactivity Combinatorial sputtering of the down selected candidate metals is used to fabricate large compositional spaces (similar to 800), which are then characterized using high-throughput techniques (e.g., X-ray diffraction). Massively parallel optical methods are used to determine melting temperatures. Thermochemical modeling is also performed concurrently to compliment the experimental efforts and identify candidate multicomponent alloy systems that best match the targeted properties. The modeling effort makes use of available thermodynamic databases, the computational thermodynamic CALPHAD framework and molecular-dynamics simulations of molten alloys. Refinement of available thermodynamics models are performed by comparison with available experimental data. Characterizing corrosion in structural materials such as steels, when using liquid metals, and strategies to mitigate them are an integral part of this study. The corrosion mitigation strategy we have adopted is based on the formation of stable oxide layers on the structural metal surface which prevents further corrosion. As such oxygen control is crucial in such liquid metal systems. Liquid metal enhanced creep and embrittlement in commonly used structural materials are also being investigated. Experiments with oxygen control are ongoing to evaluate what structural materials can be used with liquid metals. Characterization of the heat transfer during forced flow is another key component of the study. Both experiments and modeling efforts have been initiated. Key results from experiments and modeling performed over the last year are highlighted and discussed.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Assessment and Perspectives of Heat Transfer Fluids for CSP Applications
    Giaconia, Alberto
    Tizzoni, Anna Chiara
    Sau, Salvatore
    Corsaro, Natale
    Mansi, Emiliana
    Spadoni, Annarita
    Delise, Tiziano
    ENERGIES, 2021, 14 (22)
  • [2] Minimum system entropy production as the FOM of high temperature heat transfer fluids for CSP systems
    Zhang, Ye
    Li, Peiwen
    SOLAR ENERGY, 2017, 152 : 80 - 90
  • [3] High temperature heat transfer fluids
    Dotiwalla, K.K.
    Chemical Engineering World, 1995, 30 (04): : 37 - 41
  • [4] Evaluation of Phenylnaphthalenes as Heat Transfer Fluids for High Temperature Energy Applications
    McFarlane, J.
    Luo, H.
    Garland, M.
    Steele, W. V.
    SEPARATION SCIENCE AND TECHNOLOGY, 2010, 45 (12-13) : 1908 - 1920
  • [5] Study on Heat Transfer Limitation of Liquid Metal High-temperature Heat Pipe
    Zhang J.
    Tian Z.
    Wang C.
    Tian W.
    Guo K.
    Qiu S.
    Su G.
    Yuanzineng Kexue Jishu/Atomic Energy Science and Technology, 2022, 56 (10): : 2024 - 2031
  • [6] High-Temperature Resistant Heat Transfer Fluids with a Wide Range of Applications.
    Gardener, William
    Chemie-Technik (Heidelberg), 1986, 15 (04): : 57 - 58
  • [7] Select heat-transfer fluids for low temperature applications
    Mohapatra, SC
    CHEMICAL ENGINEERING PROGRESS, 2001, 97 (08) : 47 - 50
  • [8] A perspective on high-temperature heat storage using liquid metal as heat transfer fluid
    Niedermeier, Klarissa
    ENERGY STORAGE, 2023, 5 (08)
  • [9] Capillary character and evaporation heat transfer in the wicks of high temperature liquid metal heat pipe
    Yin, Liang
    Liu, Hongpeng
    Liu, Weiqiang
    APPLIED THERMAL ENGINEERING, 2020, 175
  • [10] Numerical prediction of heat transfer in liquid metal applications
    Schumm, T.
    Niemann, M.
    Magagnato, F.
    Frohnapfel, B.
    Froehlich, J.
    PROCEEDINGS OF THE EIGHTH INTERNATIONAL SYMPOSIUM ON TURBULENCE HEAT AND MASS TRANSFER (THMT-15), 2015, : 263 - 266