High-Temperature Receiver Designs for Supercritical CO2 Closed-Loop Brayton Cycles

Author:

Ho C. K.1,Conboy T.1,Ortega J.2,Afrin S.2,Gray A.3,Christian J. M.1,Bandyopadyay S.4,Kedare S. B.4,Singh S.4,Wani P.4

Affiliation:

1. Sandia National Laboratories, Albuquerque, NM

2. University of Texas, El Paso, TX

3. National Renewable Energy Laboratory, Golden, CO

4. Indian Institute of Technology, Bombay, India

Abstract

High-temperature receiver designs for solar powered supercritical CO2 Brayton cycles that can produce ∼1 MW of electricity are being investigated. Advantages of a supercritical CO2 closed-loop Brayton cycle with recuperation include high efficiency (∼50%) and a small footprint relative to equivalent systems employing steam Rankine power cycles. Heating for the supercritical CO2 system occurs in a high-temperature solar receiver that can produce temperatures of at least 700 °C. Depending on whether the CO2 is heated directly or indirectly, the receiver may need to withstand pressures up to 20 MPa (200 bar). This paper reviews several high-temperature receiver designs that have been investigated as part of the SERIIUS program. Designs for direct heating of CO2 include volumetric receivers and tubular receivers, while designs for indirect heating include volumetric air receivers, molten-salt and liquid-metal tubular receivers, and falling particle receivers. Indirect receiver designs also allow storage of thermal energy for dispatchable electricity generation. Advantages and disadvantages of alternative designs are presented. Current results show that the most viable options include tubular receiver designs for direct and indirect heating of CO2 and falling particle receiver designs for indirect heating and storage.

Publisher

American Society of Mechanical Engineers

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Combined direct oxy‐combustion and concentrated solar supercritical carbon dioxide power system—Thermo, exergoeconomic, and quadruple optimization analyses;International Journal of Energy Research;2022-03-09

2. Thermodynamic cycles for solar thermal power plants: A review;WIREs Energy and Environment;2021-10-17

3. Supercritical Fluids and Their Applications in Power Generation;Handbook of Research on Advancements in Supercritical Fluids Applications for Sustainable Energy Systems;2021

4. Evaluation of Alternative Designs for a High Temperature Particle-to-sCO2 Heat Exchanger;Journal of Solar Energy Engineering;2019-01-08

5. A review on solar‐assisted gas turbines;Energy Science & Engineering;2018-09-12

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