Modeling Multiphase Effects in CO2 Compressors at Subcritical Inlet Conditions

Author:

Hosangadi Ashvin1,Liu Zisen2,Weathers Timothy2,Ahuja Vineet2,Busby Judy3

Affiliation:

1. Vice President CRAFT Tech, Pipersville, PA 18947 e-mail:

2. CRAFT Tech, Pipersville, PA 18947 e-mail:

3. JB Design & Consulting LLC, Golden, CO 80403 e-mail:

Abstract

An advanced numerical framework to model CO2 compressors over a wide range of subcritical conditions is presented in this paper. Thermodynamic and transport properties are obtained through a table look-up procedure with specialized features for subcritical conditions. Phase change is triggered by the difference between the local values of pressure and saturation pressure, and both vaporization and condensation can be modeled. Rigorous validation of the framework is presented for condensation in high pressure CO2 using test data in a De Laval nozzle. The comparisons between computations and test data include: condensation onset locations, Wilson line, and nozzle pressure profiles as a function of inlet pressures. The framework is applied to the Sandia compressor that has been modeled over broad range of conditions spanning the saturation dome including: near critical inlet conditions (305.4 K, and 7.843 MPa), pure liquid inlet conditions (at 295 K), pure vapor inlet conditions (at 302 K), and two-phase inlet conditions (at 290 K). Multiphase effects ranging from cavitation at the liquid line to condensation at the vapor line have been simulated. The role of real fluid effects in enhancing multiphase effects at elevated temperatures closer to the critical point has been identified. The performance of the compressor has been compared with test data; the computational fluid dynamics (CFD) results also show that the head-flow coefficient curve collapses with relatively minor scatter, similar to the test data, when the flow coefficient is defined on the impeller exit meridional velocity.

Funder

Small Business Innovative Research and Small Business Technology Transfer

Publisher

ASME International

Subject

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

Reference23 articles.

1. Modeling and Experimental Results for Condensing Supercritical CO2 Power Cycles,2011

2. Pelton, R., Allison, T., Jung, S., and Smith, N., 2017, “Design of a Wide-Range Centrifugal Compressor Stage for Supercritical CO2 Power Cycles,” ASME Paper No. GT2017-65172.10.1115/GT2017-65172

3. Noall, J. S., and Pasch, J. J., 2014, “Achievable Efficiency and Stability of Supercritical CO2 Compression Systems,” Supercritical CO2 Power Cycles Symposium, Pittsburgh, PA, Sept. 9–10, Paper No. 51.

4. Predicting the Phase Equilibria, Critical Phenomena, and Mixing Enthalpies of Binary Aqueous Systems Containing Alkanes, Cycloalkanes, Aromatics, Alkenes, and Gases (N2, CO2, H2S, H2) With the PPR78 Equation of State;Ind. Eng. Chem. Res.,2013

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