TY - JOUR
T1 - Experimental Study of Heat Transfer and Film Cooling Performance of Upstream Ejected Coolant on a Turbine Endwall
AU - Zhang, Jie
AU - Liu, Cunliang
AU - Zhang, Li
AU - Yao, Chunyi
AU - Li, Lin
N1 - Publisher Copyright:
© 2023, Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature.
PY - 2023/3
Y1 - 2023/3
N2 - An upstream coolant injection that is different from the known leakage flow was introduced to protect the turbine endwall. This coolant is ejected tangentially from a row of cylindrical holes situated at the side of a backward-facing step. In this experiment, the effects of mass flow ratio and leakage slot width on the endwall heat transfer characteristics were investigated. The dimensionless heat transfer coefficient (Nu) and adiabatic film cooling effectiveness (η) on an axisymmetric turbine endwall were measured by the stable-state thermochromic liquid crystal (TLC) technique and the pressure sensitive paint (PSP) technique, respectively. Three mass flow ratios (MFR) of 0.64%, 0.85%, and 1.07%, as well as two leakage slot widths (W) of 3.93 mm, and 7.86 mm were considered. Results indicate that the injection film suppresses the strength of the passage vortex, which leads to the coolant covering almost the entire endwall. This result is more evident for the higher MFR cases, meanwhile, the corresponding averaged film cooling effectiveness is increased with the enhancement of the MFR. However, the case with a higher MFR produces a higher heat transfer coefficient distribution, especially in the region close to the leakage slot edge. Besides, when the W is lower, the endwall presents a higher η and a lower Nu for all the cases, which can guide the optimal design of the endwall.
AB - An upstream coolant injection that is different from the known leakage flow was introduced to protect the turbine endwall. This coolant is ejected tangentially from a row of cylindrical holes situated at the side of a backward-facing step. In this experiment, the effects of mass flow ratio and leakage slot width on the endwall heat transfer characteristics were investigated. The dimensionless heat transfer coefficient (Nu) and adiabatic film cooling effectiveness (η) on an axisymmetric turbine endwall were measured by the stable-state thermochromic liquid crystal (TLC) technique and the pressure sensitive paint (PSP) technique, respectively. Three mass flow ratios (MFR) of 0.64%, 0.85%, and 1.07%, as well as two leakage slot widths (W) of 3.93 mm, and 7.86 mm were considered. Results indicate that the injection film suppresses the strength of the passage vortex, which leads to the coolant covering almost the entire endwall. This result is more evident for the higher MFR cases, meanwhile, the corresponding averaged film cooling effectiveness is increased with the enhancement of the MFR. However, the case with a higher MFR produces a higher heat transfer coefficient distribution, especially in the region close to the leakage slot edge. Besides, when the W is lower, the endwall presents a higher η and a lower Nu for all the cases, which can guide the optimal design of the endwall.
KW - axisymmetric turbine endwall
KW - coolant injection
KW - film cooling effectiveness
KW - heat transfer coefficient
KW - leakage slot
UR - http://www.scopus.com/inward/record.url?scp=85146177149&partnerID=8YFLogxK
U2 - 10.1007/s11630-023-1754-6
DO - 10.1007/s11630-023-1754-6
M3 - 文章
AN - SCOPUS:85146177149
SN - 1003-2169
VL - 32
SP - 718
EP - 728
JO - Journal of Thermal Science
JF - Journal of Thermal Science
IS - 2
ER -