沉积(地质)
冷却液
微粒
材料科学
颗粒沉积
水冷
冷却流量
粒子(生态学)
涡轮机
核工程
热的
机械工程
冶金
复合材料
环境科学
化学
热力学
工程类
物理
航程(航空)
地质学
古生物学
沉积物
有机化学
海洋学
银河系
量子力学
作者
Michael van de Noort,Charlie Hickling,Florian Y. A. Villain,Peter Ireland,David R. H. Gillespie,Janendra C. Telisinghe
标识
DOI:10.1115/gt2025-152405
摘要
Abstract As Turbine Entry Temperatures of modern aeroengines continue to rise in pursuit of greater turbine thermal efficiencies, increasingly innovative and complex cooling systems are required to maintain turbine component temperatures at acceptable levels. Double-Wall Effusion Cooling Systems are one possible answer to this challenge — by combining dense arrays of impingement holes and pedestals for internal cooling with tightly packed effusion holes for external cooling, high metal cooling effectiveness can be achieved at relatively low rates of coolant consumption. However, the intricate nature of these cooling schemes leaves them vulnerable to the deposition of ingested particulate matter, which can eventually lead to cooling passage blockage and the failure of the cooling system. This paper details an experimental investigation into four factors affecting deposition: the metal temperature, the cooling system geometry, the particulate matter’s composition, and the metal the cooling system is produced from. These tests were carried out using the Oxford Thermofluids Institute’s High Temperature Rig, capable of operating at metal temperatures exceeding 1200 K. Deposition was evaluated both in terms of the proportion of inputted particulate matter that adhered to the metal surface, and where said deposition took place — the latter of which was done using a 3D Profilometer. Results are used to identify situations where measures would need to be put in place to limit the ingestion of particles into the turbine’s secondary air system. In particular, deposition rates are seen to increase as the metal temperature increases, and as the impingement spacing to diameter ratio decreases.
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