Integrated Aerodynamic and Mechanical Design of a Large-Scale Axial Turbine Operating With A Supercritical Carbon Dioxide Mixture

Author:

Abdeldayem Abdelrahman1ORCID,Paggini Andrea2,Diurno Tommaso2,Orazi Claudio2,White Martin34,Ruggiero Marco2ORCID,Sayma Abdulnaser1

Affiliation:

1. Energy, Sustainability and Net-zero Research Centre, School of Science and Technology, City, University of London , London EC1V 0HB, UK

2. Baker Hughes , Via Felice Matteucci, Firenze 50127, Italy

3. Energy, Sustainability and Net-zero Research Centre, School of Science and Technology, City, University of London , London EC1V 0HB, UK ; , Falmer, Brighton BN1 9RH, UK

4. Thermo-Fluid Mechanics Research Centre, School of Engineering and Informatics, University of Sussex , London EC1V 0HB, UK ; , Falmer, Brighton BN1 9RH, UK

Abstract

Abstract In this paper, the design of a large-scale axial turbine operating with supercritical carbon dioxide (sCO2) blended with sulfur dioxide (SO2) is presented considering aerodynamic and mechanical design aspects as well as the integration of the whole turbine assembly. The turbine shaft power is 130 MW, designed for a 100 MWe concentrated-solar power plant with turbine inlet conditions of 239.1 bar and 700 °C, total-to-static pressure ratio of 2.94, and mass-flow rate of 822 kg/s. The aerodynamic flow path, obtained in a previous study, is first summarized before the aerodynamic performance of the turbine is evaluated using both steady-state and unsteady three-dimensional numerical models. Whole-annulus unsteady simulations are performed for the last turbine stage and the exhaust section to assess the unsteady loads on the rotor due to downstream pressure field distortion and to assess the aerodynamic losses within the diffuser and exhaust section. The potential low engine order excitation at the last rotor stage natural frequency modes due to downstream pressure distortion is assessed. The design of the turbine assembly is constrained by current manufacturing capabilities and the properties of the proposed working fluid. High-level flow-path design parameters, such as pitch diameter and number of stages, are established considering a trade-off between weight and footprint, turbine efficiency, and rotordynamics. Rotordynamic stability is assessed considering the high fluid density and related cross coupling effects. Finally, shaft end sizing, cooling system design, and the integration of dry gas seals are discussed.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference37 articles.

1. Review of Supercritical CO2 Technologies and Systems for Power Generation;Appl. Therm. Eng.,2021

2. Review of Supercritical CO2 Power Cycles Integrated With CSP;Int. J. Energy Res.,2020

3. Scarabeus: Supercritical Carbon Dioxide/Alternative Fluid Blends for Efficiency Upgrade of Solar Power Plants,2020

4. Thermo-Economic Analysis of Transcritical CO2 Power Cycle and Comparison With Kalina Cycle and ORC for a Low-Temperature Heat Source;Energy Convers. Manage.,2019

5. Supercritical Carbon Dioxide/Alternative Fluids Blends for Efficiency Upgrade of Solar Power Plant,2019

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