Nonlinear distributed parameter model and dynamic characteristics of parabolic trough direct steam generation solar collectors

被引:0
|
作者
College of Energy and Environment, Southeast University, Nanjing 210096, Jiangsu Province, China [1 ]
不详 [2 ]
机构
[1] Guo, Su
[2] Liu, Deyou
[3] Zhang, Yaoming
[4] Xu, Chang
[5] Wang, Pei
来源
Guo, S. (guosu81@126.com) | 1779年 / Chinese Society for Electrical Engineering卷 / 34期
关键词
Solar radiation - Mass transfer - Solar collectors - Steam generators;
D O I
10.13334/j.0258-8013.pcsee.2014.11.009
中图分类号
学科分类号
摘要
Direct steam generation (DSG) in parabolic trough solar power system has long solar collector and obvious distributed parameter characteristics. Therefore, a nonlinear distributed parameter model for parabolic trough DSG solar collectors was built in this paper. As a boundary condition, fluid temperature and mass flow had to be provided at the inlet as well as the pressure at the outlet, and the finite differential approach with an upwind scheme was adopted to discrete and solve the model. Compared with experimental results from the literature, the correctness of the model was validated by simulation results during the main conditions such as solar radiation intensity, inlet fluid temperature and inlet mass flow change. Simulation results show that fluid temperature at the outlet decreases quickly when solar radiation intensity is declined; Furthermore, the responses of fluid temperature and mass flow at the outlet delay largely and stabilize slowly when mass flow or temperature at the inlet declined slightly; Most significantly, a pulsation phenomenon of outlet mass flow may happen in some conditions, which should be avoided or declined in practical application. © 2014 Chinese Society for Electrical Engineering.
引用
收藏
相关论文
共 50 条
  • [31] Thermo-Hydraulic Analysis of Parabolic trough Collectors for Direct Steam Generation with Relap5
    Valenzuela, Loreto
    Saynes, Jacobo
    Moya, Sara L.
    TECNOLOGIA Y CIENCIAS DEL AGUA, 2016, 7 (03) : 75 - 91
  • [32] Impact of pressure losses in small-sized parabolic-trough collectors for direct steam generation
    Lobon, David H.
    Valenzuela, Loreto
    ENERGY, 2013, 61 : 502 - 512
  • [33] A dynamic model for once-through direct steam generation in linear focus solar collectors
    Soares, Joao
    Oliveira, Armando C.
    Valenzuela, Loreto
    RENEWABLE ENERGY, 2021, 163 : 246 - 261
  • [34] Closed-form modeling of direct steam generation in a parabolic trough solar receiver
    Xu, Rong
    Wiesner, Theodore F.
    ENERGY, 2015, 79 : 163 - 176
  • [35] Experience of operating a solar parabolic trough direct steam generation power plant with superheating
    Willwerth, Lisa
    Feldhoff, Jan Fabian
    Krueger, Dirk
    Keller, Lothar
    Eickhoff, Martin
    Krueger, Joachim
    Pandian, Yuvaraj
    Tiedemann, Joerg
    Succo, Manuel
    Khenissi, Abdallah
    SOLAR ENERGY, 2018, 171 : 310 - 319
  • [36] Investigation of stress and deflection in absorber of parabolic trough solar collector for direct steam generation
    Pal, Ram Kumar
    Kumar, K. Ravi
    Malan, Anish
    ENERGY REPORTS, 2023, 9 : 223 - 229
  • [37] Investigation of stress and deflection in absorber of parabolic trough solar collector for direct steam generation
    Pal, Ram Kumar
    Kumar, K. Ravi
    Malan, Anish
    ENERGY REPORTS, 2023, 9 : 223 - 229
  • [38] Direct steam generation solar systems with screw expanders and parabolic trough collectors: Energetic assessment at part-load operating conditions
    Iodice, Paolo
    Langella, Giuseppe
    Amoresano, Amedeo
    CASE STUDIES IN THERMAL ENGINEERING, 2020, 19
  • [39] Thermal hydraulic RELAP5 model for a solar direct steam generation system based on parabolic trough collectors operating in once-through mode
    Serrano-Aguilera, J. J.
    Valenzuela, L.
    Parras, L.
    ENERGY, 2017, 133 : 796 - 807
  • [40] Modeling and dynamic simulation of a steam generation system for a parabolic trough solar power plant
    Li, Xiaolei
    Xu, Ershu
    Ma, Linrui
    Song, Shuang
    Xu, Li
    RENEWABLE ENERGY, 2019, 132 : 998 - 1017