Modeling and Computer Simulation of Centrifugal CO2 Compressors at Supercritical Pressures

Author:

Behafarid Farhad1,Podowski Michael Z.2

Affiliation:

1. Mem. ASME Department of Aerospace Engineering Sciences, University of Colorado at Boulder, Boulder, CO 80309 e-mail:

2. Professor Mem. ASME Center for Multiphase Research, Rensselaer Polytechnic Institute, Troy, NY 12180 e-mail:

Abstract

The use of supercritical carbon dioxide (SC-CO2) as a working fluid in energy conversion systems has many benefits, including high efficiency, compact turbomachinery, and the abundance of CO2. A very important issue for design optimization and performance analysis of future SC Brayton cycles is concerned with the SC-CO2 flow inside high-speed compressors and turbines. The objective of this paper is to present a novel modeling approach to, and its use in numerical simulations of, SC-CO2 flow inside a high-speed compact compressor. The proposed approach capitalizes on using three different physical and mathematical formulations of one-dimensional (1D) models, i.e., compressible and incompressible flow models using actual properties of SC-CO2 and a compressible ideal gas model, as a reference to verify the predictive capabilities of a three-dimensional (3D) incompressible flow model. The incompressible model has been used to perform simulations for a complete detailed multidimensional model of an SC-CO2 high-speed compact compressor. The advantages of the new model include numerical stability, computational efficiency, and physical accuracy. In particular, it has been shown that the model's predictions are consistent with selected published technical data.

Publisher

ASME International

Subject

Mechanical Engineering

Reference29 articles.

1. Brown, D. W., 2000, “A Hot Dry Rock Geothermal Energy Concept Utilizing Supercritical CO2 Instead of Water,” 25th Workshop on Geothermal Reservoir Engineering, Stanford University, Stanford, CA.http://www.geothermal-energy.org/pdf/IGAstandard/SGW/2000/Brown.pdf

2. Performance of Supercritical Cycles for Geothermal Binary Design;J. Energy Convers. Manage.,2002

3. Optimization of Cyclic Parameters of a Supercritical Cycle for Geothermal Power Generation;J. Energy Convers. Manage.,2001

4. Supercritical Carbon Dioxide Brayton Cycle for Concentrated Solar Power;J. Supercrit. Fluids,2013

5. Operation and Analysis of a Supercritical CO2 Brayton Cycle,2010

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