NUMERICAL SIMULATION OF NATURAL CONVECTION IN SOLAR CAVITY RECEIVERS

被引:0
|
作者
Yuan, James K. [1 ]
Ho, Clifford K. [1 ]
Christian, Joshua M. [1 ]
机构
[1] Sandia Natl Labs, Concentrating Solar Technol Dept, Albuquerque, NM 87185 USA
关键词
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
Cavity receivers used in solar power towers and dish concentrators may lose considerable energy by natural convection, which reduces the overall system efficiency. A validated numerical receiver model is desired to better understand convection processes and aid in heat loss minimization efforts. The purpose of this investigation was to evaluate heat loss predictions using the commercial computational fluid dynamics software packages FLUENT 13.0 and Solid Works Flow Simulation 2011 against experimentally measured heat losses for a heated cubical cavity model [1] and a cylindrical dish receiver model [2]. Agreement within 10% was found between software packages across most simulations. However, simulated convective heat loss was under predicted by 45% for the cubical cavity when experimental wall temperatures were implemented on cavity walls, and 32% when implementing the experimental heat flux from the cavity walls. Convective heat loss from the cylindrical dish receiver model was accurately predicted within experimental uncertainties by both simulation codes using both isothermal and constant heat flux wall boundary conditions except at inclination angles below 15 and above 75, where losses were under- and over-predicted by FLUENT and SolidWorks, respectively. Comparison with empirical correlations for convective heat loss from heated cavities showed that correlations by Siebers and Kraabel [1] and for an assembly of heated flat plates oriented to the cavity geometry [3] predicted heat losses from the cubical cavity within experimental uncertainties, while correlations by Clausing [4] and Paitoonsurikarn et al. [8] were able to do the same for the cylindrical dish receiver. No single correlation was valid for both receiver models. Different turbulence and air-property models within FLUENT were also investigated and compared in this study.
引用
收藏
页码:281 / 290
页数:10
相关论文
共 50 条
  • [41] Numerical Simulation of Natural Convection in a Rectangular Cavity with Triangles of Different Orientation in Presence of Magnetic Field
    Alam, Md. Shahidul
    Alim, M. A.
    Mollah, Md. S. H.
    7TH BSME INTERNATIONAL CONFERENCE ON THERMAL ENGINEERING (ICTE), 2017, 1851
  • [42] Numerical simulation of double-diffusion natural convection in rectangular square cavity with porous enclosure
    Wang, Hanqing
    Zhao, Yue
    Tian, Ling
    2019 3RD INTERNATIONAL WORKSHOP ON RENEWABLE ENERGY AND DEVELOPMENT (IWRED 2019), 2019, 267
  • [43] Direct Numerical Simulation of the turbulent natural convection flow in an open cavity of aspect ratio 4
    Chiva, J.
    Lehmkuhl, O.
    Borrell, R.
    Oliva, A.
    THMT-12. PROCEEDINGS OF THE SEVENTH INTERNATIONAL SYMPOSIUM ON TURBULENCE, HEAT AND MASS TRANSFER, 2012, : 1528 - 1536
  • [44] Numerical simulation of solar magneto-convection
    Schüssler, M
    ADVANCED SOLAR POLARIMETRY: THEORY, OBSERVATION, AND INSTRUMENTA TION, 2001, 236 : 343 - 354
  • [45] Lattice Boltzmann simulation of natural convection in a square cavity
    Onishi, J
    Chen, Y
    Ohashi, H
    JSME INTERNATIONAL JOURNAL SERIES B-FLUIDS AND THERMAL ENGINEERING, 2001, 44 (01) : 53 - 62
  • [46] PARALLEL LATTICE BGK SIMULATION OF NATURAL CONVECTION IN A CAVITY
    SHI Bao-chang Parallel Computing Institute
    Journal of Hydrodynamics, 2005, (05) : 48 - 54
  • [47] PARALLEL LATTICE BGK SIMULATION OF NATURAL CONVECTION IN A CAVITY
    Shi Bao-chang
    Liu Hong-juan
    JOURNAL OF HYDRODYNAMICS, 2005, 17 (05) : 564 - 570
  • [48] Mesoscale Simulation of Natural Convection in an Inclined Square Cavity
    Azwadi, C. S. Nor
    Izual, N. I. Nik
    RECENT ADVANCES AND APPLICATIONS OF COMPUTER ENGINEERING: PROCEEDINGS OF THE 9TH WSEAS INTERNATIONAL CONFERENCE (ACE 10), 2010, : 164 - +
  • [49] MPS SIMULATION OF NATURAL CONVECTION WITH INTERNAL HEATING IN A CAVITY
    Kawaguchi, Tatsuya
    PARTICLE-BASED METHODS III: FUNDAMENTALS AND APPLICATIONS, 2013, : 865 - 874
  • [50] Simulation and optimization of a natural convection solar drier
    Bala, B.K.
    Woods, J.L.
    1600, American Inst of Physics, Woodbury, NY, USA (100):