TY - JOUR
T1 - NUMERICAL INVESTIGATION OF FLOW AND HEAT TRANSFER CHARACTERISTICS OF SUPERCRITICAL CO2 IN HIGH-SPEED ROTATING ANNULUS
AU - Chen, Junbin
AU - Guo, Chaohong
AU - Jiang, Yuyan
AU - Sun, Yuxuan
AU - Guo, Cong
N1 - Publisher Copyright:
2021 by Begell House.
PY - 2021
Y1 - 2021
N2 - Focusing on the excess temperature problem of supercritical carbon dioxide (SCO2) turbine shaft, this paper conducts a numerical investigation of flow and heat transfer characteristics with SCO2 in the high-speed rotating annulus. The numerical method for simulation of SCO2 Taylor–Couette–Poiseuille (TCP) flow and heat transfer is validated by existing experimental results. The key factors of Taylor vortices formation and shaft cooling performance are analyzed and discussed at the range of Ta = 1.33 × 1010–6.51 × 1011. As the results show, firstly, the Taylor vortices will be generated in the annulus, which easily leads to the excitation phenomenon on turbines. The initial position of the vortex is related to axial ratio, radius ratio, Taylor number, and axial Reynolds number. Secondly, rotational and axial velocities have important influence on the global heat transfer performance compared with Taylor vortices. Finally, a correlation for SCO2 TCP flow heat transfer is presented with effective Reynolds number and Prandtl number, and the error of the correlation is within ± 10%.
AB - Focusing on the excess temperature problem of supercritical carbon dioxide (SCO2) turbine shaft, this paper conducts a numerical investigation of flow and heat transfer characteristics with SCO2 in the high-speed rotating annulus. The numerical method for simulation of SCO2 Taylor–Couette–Poiseuille (TCP) flow and heat transfer is validated by existing experimental results. The key factors of Taylor vortices formation and shaft cooling performance are analyzed and discussed at the range of Ta = 1.33 × 1010–6.51 × 1011. As the results show, firstly, the Taylor vortices will be generated in the annulus, which easily leads to the excitation phenomenon on turbines. The initial position of the vortex is related to axial ratio, radius ratio, Taylor number, and axial Reynolds number. Secondly, rotational and axial velocities have important influence on the global heat transfer performance compared with Taylor vortices. Finally, a correlation for SCO2 TCP flow heat transfer is presented with effective Reynolds number and Prandtl number, and the error of the correlation is within ± 10%.
KW - CFD
KW - Taylor vortices
KW - Taylor–Couette–Poiseuille flow
KW - heat transfer
KW - supercritical carbon dioxide
UR - http://www.scopus.com/inward/record.url?scp=85169781275&partnerID=8YFLogxK
U2 - 10.1615/HeatTransRes.2021037848
DO - 10.1615/HeatTransRes.2021037848
M3 - Article
AN - SCOPUS:85169781275
SN - 1064-2285
VL - 52
SP - 67
EP - 95
JO - Heat Transfer Research
JF - Heat Transfer Research
IS - 12
ER -