Review of high-temperature central receiver designs for concentrating solar power

被引:533
|
作者
Ho, Clifford K. [1 ]
Iverson, Brian D. [1 ]
机构
[1] Sandia Natl Labs, Concentrating Solar Technol Dept, Albuquerque, NM 87185 USA
来源
关键词
Concentrating solar; Receiver; Volumetric; External; Cavity; Solid particle; HEAT-TRANSFER; DIRECT ABSORPTION; OPTICAL-PROPERTIES; NITRATE SALTS; MASS-TRANSFER; LIQUID-FILMS; STABILITY; MODEL; CYCLE; FLOW;
D O I
10.1016/j.rser.2013.08.099
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This paper reviews central receiver designs for concentrating solar power applications with high-temperature power cycles. Desired features include low-cost and durable materials that can withstand high concentration ratios (similar to 1000 suns), heat-transfer fluids that can withstand temperatures > 650 degrees C, high solar absorptance, and low radiative and convective heat losses leading to a thermal efficiency > 90%. Different receiver designs are categorized and evaluated in this paper: (1) gas receivers, (2) liquid receivers, and (3) solid particle receivers. For each design, the following information is provided: general principle and review of previous modeling and testing activities, expected outlet temperature and thermal efficiency, benefits, perceived challenges, and research needs. Emerging receiver designs that can enable higher thermal-to-electric efficiencies (50% or higher) using advanced power cycles such as supercritical CO2 closed-loop Brayton cycles include direct heating of CO2 in tubular receiver designs (external or cavity) that can withstand high internal fluid pressures (similar to 20 MPa) and temperatures (similar to 700 degrees C). Indirect heating of other fluids and materials that can be stored at high temperatures such as advanced molten salts, liquid metals, or solid particles are also being pursued, but challenges include stability, heat loss, and the need for high-temperature heat exchangers. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:835 / 846
页数:12
相关论文
共 50 条
  • [41] Determining the Cost Benefit of High-Temperature Coatings for Concentrating Solar Power Thermal Storage Using Probabilistic Cost Analysis
    Glatzmaier, Greg C.
    Gomez, Judith C.
    [J]. JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2015, 137 (04):
  • [42] Polyhedral oligomeric silsesquioxanes as protective monolayer coatings against the high-temperature corrosion of concentrating solar power absorber surfaces
    Noc, Luka
    Licen, Matjaz
    Olenik, Irena Drevensek
    Chouhan, Raghuraj Singh
    Kovac, Janez
    Mandler, Daniel
    Jerman, Ivan
    [J]. SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2021, 223
  • [43] High temperature solar thermal central-receiver billboard design
    Boerema, Nicholas
    Morrison, Graham
    Taylor, Robert
    Rosengarten, Gary
    [J]. SOLAR ENERGY, 2013, 97 : 356 - 368
  • [44] A review of thermal load and performance characterisation of a high concentrating photovoltaic (HCPV) solar receiver assembly
    Maka, Ali O. M.
    O'Donovan, Tadhg S.
    [J]. SOLAR ENERGY, 2020, 206 : 35 - 51
  • [45] On-Sun Performance Evaluation of Alternative High-Temperature Falling Particle Receiver Designs
    Ho, Clifford K.
    Christian, Joshua M.
    Yellowhair, Julius E.
    Armijo, Kenneth
    Kolb, William J.
    Jeter, Sheldon
    Golob, Matthew
    Nguyen, Clayton
    [J]. JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2019, 141 (01):
  • [46] Modelling of the thermal behaviour of solar high concentrating photovoltaic receiver
    Maka, Ali O. M.
    O'Donovan, Tadhg S.
    [J]. THERMAL SCIENCE AND ENGINEERING PROGRESS, 2019, 9 : 281 - 288
  • [47] Concentrating Solar Thermal Power Technologies: A Review
    Machinda, G. T.
    Chowdhury, S. P.
    Chowdhury, S.
    Kibaara, S.
    Arscott, R.
    [J]. 2011 ANNUAL IEEE INDIA CONFERENCE (INDICON-2011): ENGINEERING SUSTAINABLE SOLUTIONS, 2011,
  • [48] Risk assessment in a central concentrating solar power plant
    Nojavan, Sayyad
    Pashaei-Didani, Hamed
    Saberi, Kasra
    Zare, Kazem
    [J]. SOLAR ENERGY, 2019, 180 : 293 - 300
  • [49] Advancing high temperature materials and manufacturing for concentrating solar-thermal power
    Shultz, Avi
    [J]. Advanced Materials and Processes, 2021, 179 (04): : 15 - 21
  • [50] DEVELOPMENT OF HIGH TEMPERATURE, CORROSION RESISTANT SENSORS FOR CONCENTRATING SOLAR POWER SYSTEMS
    Usrey, Michael W.
    Liu, Yiping
    Anderson, Mark
    Lubbers, Jon
    Knowles, Brady
    Harsh, Kevin
    Pilant, Evan
    [J]. PROCEEDINGS OF THE ASME 8TH INTERNATIONAL CONFERENCE ON ENERGY SUSTAINABILITY, 2014, VOL 1, 2014,