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contributor authorLange, Yair
contributor authorKırmızıgöl, S. Fatih
contributor authorAcarer, Sercan
contributor authorCukurel, Beni
date accessioned2023-08-16T18:07:22Z
date available2023-08-16T18:07:22Z
date copyright3/31/2023 12:00:00 AM
date issued2023
identifier issn1948-5085
identifier othertsea_15_5_051001.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4291453
description abstractA quasi-1D conjugate reduced order model (ROM) is developed to capture aero-thermal physics of effusion cooling in turbine airfoils. This framework explicitly considers the coolant supply from the leading edge and its distribution to both suction and pressure sides, the internal boundary layer flow between the shell and the inner core, the hole flow, the conduction on the solid walls, as well as the external film coverage. The solid temperature is allowed to vary both in metal shell thickness and the streamwise directions. Empirical correlations are employed to model pressure loss and heat transfer in the internal sections. Compound effect of multiple effusion cooling rows are utilized to capture cooling effectiveness and the heat load. Influence of mainstream static pressure, varying blowing ratios, hole’s diameter, hole’s pitch, coolant total pressure, and total temperature distributions along streamwise direction are taken into account. In Part I, the development and validation of the model is presented, which is shown to be capable of capturing complex internal aero-thermal physics of a turbine airfoil. Film coverage capability is separately validated successfully against available flat plate experimental data, with one case including internal channel and metal conduction. In Part II of this work, effusion cooling configuration is applied over an entire micro turbine vane and an exemplary optimization is carried out in the design space to minimize coolant flow while retaining metal temperature and its gradient below some limits. It is shown in the two-part work that the developed model is suitable for parametric studies of single-wall effusion turbine cooling such that comparative accuracy is obtained at a computational time 105 times lower than computational fluid dynamics (CFD) on a whole turbine vane/blade. Together, these two papers are intended to present, validate, and optimize the ROM for skin cooling in turbine airfoils by single-wall effusion.
publisherThe American Society of Mechanical Engineers (ASME)
titleSkin Cooling of Turbine Airfoils by Single Wall Effusion: Part I—Reduced Order Modeling
typeJournal Paper
journal volume15
journal issue5
journal titleJournal of Thermal Science and Engineering Applications
identifier doi10.1115/1.4056876
journal fristpage51001-1
journal lastpage51001-12
page12
treeJournal of Thermal Science and Engineering Applications:;2023:;volume( 015 ):;issue: 005
contenttypeFulltext


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