Radiation Boundary Conditions for Computational Fluid Dynamics Models of High-Temperature Cavity Receivers

被引:27
|
作者
Khalsa, Siri Sahib S. [1 ]
Ho, Clifford K. [1 ]
机构
[1] Sandia Natl Labs, Concentrating Solar Technol Dept, Albuquerque, NM 87185 USA
关键词
CFD; cavity receiver; Fluent; discrete ordinates; irradiance;
D O I
10.1115/1.4004274
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
Rigorous computational fluid dynamics (CFD) codes can accurately simulate complex coupled processes within an arbitrary geometry. CFD can thus be a cost-effective and time-efficient method of guiding receiver design and testing for concentrating solar power technologies. However, it can be computationally prohibitive to include a large multifaceted dish concentrator or a field of hundreds or thousands of heliostats in the model domain. This paper presents a method to allow the CFD code to focus on a cavity receiver domain alone, by rigorously transforming radiance distributions calculated on the receiver aperture into radiance boundary conditions for the CFD simulations. This method allows the incoming radiation to interact with participating media such as falling solid particles in a high-temperature cavity receiver. The radiance boundary conditions of the CFD model can take into consideration complex beam features caused by sun shape, limb darkening, slope errors, heliostat facet shape, multiple heliostats, off-axis aberrations, atmospheric effects, blocking, shading, and multiple focal points. This paper also details implementation examples in ANSYS FLUENT for a heliostat field and a dish concentrator, which are validated by comparison to results from DELSOL and the ray-tracing code ASAP, respectively. [DOI: 10.1115/1.4004274]
引用
收藏
页数:6
相关论文
共 50 条
  • [1] Dynamic boundary conditions in computational fluid dynamics
    Storti, Mario A.
    Nigro, Norberto M.
    Paz, Rodrigo R.
    Dalcin, Lisandro D.
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2008, 197 (13-16) : 1219 - 1232
  • [2] A cone concentrator for high-temperature solar cavity-receivers
    University of Dortmund, Department of Chemical Engineering, D-44221 Dortmund, Germany
    Sol. Energy, 1 (33-41):
  • [3] A cone concentrator for high-temperature solar cavity-receivers
    Hahm, T
    Schmidt-Traub, H
    Lessmann, B
    SOLAR ENERGY, 1999, 65 (01) : 33 - 41
  • [4] Computational Fluid Dynamics and Analysis of Heat Resistance of the Manipulator in High-Temperature Environment
    Park, Sang Hwan
    Chang, Kyoungsik
    Kim, Byeong Cheon
    TRANSACTIONS OF THE KOREAN SOCIETY OF MECHANICAL ENGINEERS B, 2020, 44 (07) : 459 - 465
  • [5] Radiation Models for Computational Fluid Dynamics Simulations of Photocatalytic Reactors
    Barbosa, Isabel S. O.
    Santos, Ricardo J.
    Dias, Madalena M.
    Faria, Joaquim L.
    Silva, Claudia G.
    CHEMICAL ENGINEERING & TECHNOLOGY, 2023, 46 (06) : 1059 - 1077
  • [6] Modification of the Riemann problem and the application for the boundary conditions in computational fluid dynamics
    Kyncl, Martin
    Pelant, Jaroslav
    EXPERIMENTAL FLUID MECHANICS 2016 (EFM16 ), 2017, 143
  • [7] Nonlinear boundary conditions for initial boundary value problems with applications in computational fluid dynamics
    Nordstrom, Jan
    JOURNAL OF COMPUTATIONAL PHYSICS, 2024, 498
  • [8] High-temperature heat exchanger tube-sheet assembly investigation with computational fluid dynamics
    Porter, Michael A.
    Martens, Dennis H.
    Duffy, Thomas
    McGuffie, Sean
    JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2007, 129 (02): : 313 - 315
  • [9] Design of Flow Fields for High-Temperature PEM Fuel Cells Using Computational Fluid Dynamics
    Chowdhury, Prantik Roy
    Gladen, Adam C.
    ENERGIES, 2024, 17 (19)
  • [10] High-temperature dynamics in quantum compass models
    Briffa, A. K. R.
    Zotos, X.
    PHYSICAL REVIEW B, 2018, 97 (06)