TY - JOUR
T1 - A study of vortex generator effects on fan-shaped hole cooling performance
AU - Wang, Haichao
AU - Guo, Huayu
AU - Zhao, Guoqin
AU - Li, Yumeng
AU - Liu, Cunliang
N1 - Publisher Copyright:
© 2024 Elsevier Masson SAS
PY - 2024/6
Y1 - 2024/6
N2 - To improve film cooling performance, many shaped holes have been developed. Among them, laidback fan-shaped hole is widely applied. Expansion at the outlet increases cooling effectiveness (η) greatly but decreases jet inertia. Facing crossflow, it may reduce η instead. Therefore, a chevron structure was added to the expansion part to improve the jet inertia. Its effects were studied by PSP experiments and numerical simulations. Mainstream Reynolds number (Re) was 10000 based on the characteristic length of film hole diameter. Five momentum ratios (I) and three expansion widths (Lw) at the outlet were set as test cases. The results show that the averaged-η increases with I until 1.73. And the chevron hole indicates better cooling performance especially in downstream. As to Lw effect, it widens film width but shortens film length. Case of Lw = 2.3d gets the best cooling performance. Moreover, in cases of I = 0.11, large Lw weakens film spread along spanwise direction due to lower momentum along spanwise, reducing η on both sides of the expansion. The chevron structure helps to solve the problem and ensure high cooling performance in wide range of I. And it can help to resist crossflow effect.
AB - To improve film cooling performance, many shaped holes have been developed. Among them, laidback fan-shaped hole is widely applied. Expansion at the outlet increases cooling effectiveness (η) greatly but decreases jet inertia. Facing crossflow, it may reduce η instead. Therefore, a chevron structure was added to the expansion part to improve the jet inertia. Its effects were studied by PSP experiments and numerical simulations. Mainstream Reynolds number (Re) was 10000 based on the characteristic length of film hole diameter. Five momentum ratios (I) and three expansion widths (Lw) at the outlet were set as test cases. The results show that the averaged-η increases with I until 1.73. And the chevron hole indicates better cooling performance especially in downstream. As to Lw effect, it widens film width but shortens film length. Case of Lw = 2.3d gets the best cooling performance. Moreover, in cases of I = 0.11, large Lw weakens film spread along spanwise direction due to lower momentum along spanwise, reducing η on both sides of the expansion. The chevron structure helps to solve the problem and ensure high cooling performance in wide range of I. And it can help to resist crossflow effect.
UR - http://www.scopus.com/inward/record.url?scp=85186534396&partnerID=8YFLogxK
U2 - 10.1016/j.ijthermalsci.2024.108969
DO - 10.1016/j.ijthermalsci.2024.108969
M3 - 文章
AN - SCOPUS:85186534396
SN - 1290-0729
VL - 200
JO - International Journal of Thermal Sciences
JF - International Journal of Thermal Sciences
M1 - 108969
ER -