Abstract
Turbine blades are often exposed to the 'hot‘ gas environment and thus it is essential to apply effective cooling technique to extend the blade lifetime. In the present work, wall heat transfer characteristics inside a blade trailing-edge coolant passage were investigated by analyzing two baseline configurations experimentally studied by previous researchers. In addition, three new configurations were proposed by varying shape and orientation against an incoming
airflow. All these five configurations adopted similar layout with five-row elliptic pin-fins in the main coolant region and one-row fillet circular pin-fin in the exit region. Validation study was started by two baseline configurations by comparing CFD predictions with experimental measurements, followed by wall heat transfer predictions of three newly proposed configurations. It was found that pin-fin shape and its orientation have considerable effects on the wall heat
transfer characteristics, and that by rotating the pin-fin against incoming flow, some compromises could be achieved,
such as higher heat transfer coefficient and lower pressure loss.
| Original language | English |
|---|---|
| Title of host publication | Published in Listyawan, Anto Budi, Hidayati, Nurul, Setiawan, Wisnu, Riyadi, Tri Widodo Besar, Prasetyo, Hari, Nugroho, Munajat Tri and Hidayati, Nurul (eds.) AIP Conference Proceedings 2114, 020008 (2019). |
| DOIs | |
| Publication status | Published - Dec 2018 |
| Externally published | Yes |
Bibliographical note
Note: Published in Listyawan, Anto Budi, Hidayati, Nurul, Setiawan, Wisnu, Riyadi, Tri Widodo Besar, Prasetyo, Hari, Nugroho, Munajat Tri and Hidayati, Nurul (eds.) AIP Conference Proceedings 2114, 020008 (2019).Keywords
- Mechanical, aeronautical and manufacturing engineering
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Dive into the research topics of 'Pin-fin shape and orientation effects on wall heat transfer predictions of gas turbine blade'. Together they form a unique fingerprint.Research output
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Pin-fin shape and orientation effects on wall heat transfer predictions of gas turbine blade
Yao, Y., Effendy, M., Yao, J. & Marchant, D. R., Dec 2018.Research output: Contribution to conference › Paper › peer-review
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