Discussion on Decompression Path and Wave Speed of Supercritical and Dense CO2 with Impurities

Decompression of dense and supercritical CO2 containing impurities was investigated using an equilibrium isentropic model coupled with NIST REFPROP 10 and GERG-2008. The pressure plateau was determined from the intersection of the isentropic path and the bubble line. The adopted numerical settings, ΔP = 0.5 kPa and 500 pressure points, changed the plateau pressure by less than 1%. Validation included 18 binary phase-equilibrium points, seven shock-tube cases, and four large-scale tests. The mean absolute relative deviations were 1.25%, 4.54% and 1.75%, respectively. For the shock-tube cases, the deviation range was −10.14% to 8.19%; six cases had R2 ≥ 0.95 and RMSE ≤ 0.53 MPa, whereas the H2-containing case gave RMSE = 1.42 MPa. At 15 MPa and 40 °C, 3 mol% of CH4, Ar, N2, O2, CO or H2 increased the bubble pressure at 20 °C by 0.76–2.06 MPa relative to pure CO2, following the order H2 > CO > O2 > N2 > Ar > CH4. The plateau pressure increased with impurity concentration and initial temperature, whereas initial pressure mainly shifted the isentropic path. These results provide a basis for impurity screening and fracture-control assessment in CO2 pipelines.

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Journal
Computation
Published
2026-09-24
DOI
https://doi.org/10.3390/computation14100227
Primary Topic
Wind and Air Flow Studies
Type
article
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article

Discussion on Decompression Path and Wave Speed of Supercritical and Dense CO2 with Impurities

Zhenxi Liu, Lei Shi, Xiaolin Wang, Xingqing Yan et al.
Computation
Wind and Air Flow Studies
article

Discussion on Decompression Path and Wave Speed of Supercritical and Dense CO2 with Impurities

Zhenxi Liu, Lei Shi, Xiaolin Wang, Xingqing Yan, Yuxin Wang
article en

Abstract

Decompression of dense and supercritical CO2 containing impurities was investigated using an equilibrium isentropic model coupled with NIST REFPROP 10 and GERG-2008. The pressure plateau was determined from the intersection of the isentropic path and the bubble line. The adopted numerical settings, ΔP = 0.5 kPa and 500 pressure points, changed the plateau pressure by less than 1%. Validation included 18 binary phase-equilibrium points, seven shock-tube cases, and four large-scale tests. The mean absolute relative deviations were 1.25%, 4.54% and 1.75%, respectively. For the shock-tube cases, the deviation range was −10.14% to 8.19%; six cases had R2 ≥ 0.95 and RMSE ≤ 0.53 MPa, whereas the H2-containing case gave RMSE = 1.42 MPa. At 15 MPa and 40 °C, 3 mol% of CH4, Ar, N2, O2, CO or H2 increased the bubble pressure at 20 °C by 0.76–2.06 MPa relative to pure CO2, following the order H2 > CO > O2 > N2 > Ar > CH4. The plateau pressure increased with impurity concentration and initial temperature, whereas initial pressure mainly shifted the isentropic path. These results provide a basis for impurity screening and fracture-control assessment in CO2 pipelines.

ComputationVol. 14(10)
Sinopec (China) (CN), Dalian University of Technology (CN), Dalian University (CN)
Openalex Percentile: Top 19%
Wind and Air Flow Studies
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Discussion on Decompression Path and Wave Speed of Supercritical and Dense CO2 with Impurities — Zhenxi Liu, Lei Shi, et al. · Computation (2026) | TGRS Research Map | TGRS