@inproceedings{ec0a146531a040d4a5566e8c72a53f78,
title = "Numerical study on the influence of trench width on film cooling characteristics of double-wave trench",
abstract = "Film cooling performance of the double-wave trench was numerically studied to improve the film cooling characteristics. Double-wave trench was formed by changing the leading edge and trailing edge of transverse trench into cosine wave. The film cooling characteristics of transverse trench and double-wave trench were numerically studied using Reynolds Averaged Navier Stokes (RANS) simulations with realizable k-ϵ turbulence model and enhanced wall treatment. The film cooling effectiveness and heat transfer coefficient of doublewave trench at different trench width (W=0.8D, 1.4D, 2.1D) conditions are investigated, and the distribution of temperature field and flow field were analyzed. The results show that double-wave trench effectively improves the film cooling effectiveness and the uniformity of jet at the downstream wall of the trench. The span-wise averaged film cooling effectiveness of the double-wave trench model increases 20- 63% comparing with that of the transverse trench at high blowing ratio. The anti-counter-rotating vortices which can press the film on near-wall are formed at the downstream wall of the double-wave trench. With the double-wave trench width decreasing, the film cooling effectiveness gradually reduces at the hole center-line region of the downstream trench. With the increase of the blowing ratio, the span-wise averaged heat transfer coefficient increases. The span-wise averaged heat transfer coefficient of the double-wave trench with 0.8D and 2.1D trench width is higher than that of the double-wave trench with 1.4D trench width at the high blowing ratio conditions.",
author = "Zhang, {Bo Lun} and Li Zhang and Zhu, {Hui Ren} and Wei, {Jian Sheng} and Fu, {Zhong Yi}",
note = "Publisher Copyright: Copyright {\textcopyright} 2017 ASME.; ASME Turbo Expo 2017: Turbomachinery Technical Conference and Exposition, GT 2017 ; Conference date: 26-06-2017 Through 30-06-2017",
year = "2017",
doi = "10.1115/GT2017-63552",
language = "英语",
series = "Proceedings of the ASME Turbo Expo",
publisher = "American Society of Mechanical Engineers (ASME)",
booktitle = "Heat Transfer",
}