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Full-coverage Film Cooling on Flat, Isothermal Surfaces: Data and Predictions

Full-coverage Film Cooling on Flat, Isothermal Surfaces: Data and Predictions PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages : 120

Book Description


Full-coverage Film Cooling on Flat, Isothermal Surfaces: Data and Predictions

Full-coverage Film Cooling on Flat, Isothermal Surfaces: Data and Predictions PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages : 120

Book Description


Full-coverage Film Cooling on Flat, Isothermal Surfaces

Full-coverage Film Cooling on Flat, Isothermal Surfaces PDF Author: Michael E. Crawford
Publisher:
ISBN:
Category : Boundary layer
Languages : en
Pages : 120

Book Description


An investigation of the heat transfer for full coverage film cooling of a flat plate with normal holes

An investigation of the heat transfer for full coverage film cooling of a flat plate with normal holes PDF Author: Grady Blair Kelly
Publisher:
ISBN:
Category :
Languages : en
Pages : 322

Book Description


Surface Measurements and Predictions of Full-coverage Film Cooling

Surface Measurements and Predictions of Full-coverage Film Cooling PDF Author: Greg Natsui
Publisher:
ISBN:
Category :
Languages : en
Pages : 126

Book Description
Full-coverage film cooling is investigated both experimentally and numerically. First, surface measurements local of adiabatic film cooling eeffectiveness and heat transfer augmentation for four different arrays are described. Reported next is a comparison between two very common turbulence models, Realizable k-[epsilon] and SST k-[omega], and their ability to predict local film cooling effectiveness throughout a full-coverage array. The objective of the experimental study is the quantification of local heat transfer augmentation and adiabatic film cooling effectiveness for four surfaces cooled by large, both in hole count and in non-dimensional spacing, arrays of film cooling holes. The four arrays are of two different hole-to-hole spacings (P/D = X/D = 14.5; 19.8) and two different hole inclination angles ([alpha] = 30°; 45°), with cylindrical holes compounded relative to the flow ([beta] = 45°) and arranged in a staggered configuration. Arrays of up to 30 rows are tested so that the superposition effect of the coolant film can be studied. In addition, shortened arrays of up to 20 rows of coolant holes are also tested so that the decay of the coolant film following injection can be studied. Levels of laterally averaged effectiveness reach values as high as [eta with line above]= 0.5, and are not yet at the asymptotic limit even after 20-30 rows of injection for all cases studied. Levels of heat transfer augmentation asymptotically approach values of h=h0 [almost equal to] 1.35 rather quickly, only after 10 rows. It is conjectured that the heat transfer augmentation levels off very quickly due to the boundary layer reaching an equilibrium in which the perturbation from additional film rows has reached a balance with the damping effect resulting from viscosity. The levels of laterally averaged adiabatic film cooling effectiveness far exceeding [eta with line above]= 0.5 are much higher than expected. The heat transfer augmentation levels off quickly as opposed to the film effectiveness which continues to rise (although asymptotically) at large row numbers. This ensures that an increased row count represents coolant well spent. The numerical predictions are carried out in order to test the ability of the two most common turbulence models to properly predict full-coverage film cooling. The two models chosen, Realizable k-[epsilon] (RKE) and Shear Stress Transport k-[omega] (SSTKW), are both two-equation models coupled with Reynolds Averaged governing equations which make several gross physical assumptions and require several empirical values. Hence, the models are not expected to provide perfect results. However, very good average values are seen tobe obtained through these simple models. Using RKE in order to model full-coverage filmcooling will yield results with 30% less error than selecting SSTKW.

Full Coverage Film Cooling Heat Transfer Studies: a Summary of the Data for Normal Hole Injection and 30 Degrees Slant Hole Injection

Full Coverage Film Cooling Heat Transfer Studies: a Summary of the Data for Normal Hole Injection and 30 Degrees Slant Hole Injection PDF Author: Stanford University. Thermosciences Division. Thermosciences Division
Publisher:
ISBN:
Category :
Languages : en
Pages : 110

Book Description


Full-coverage Film Cooling Heat Transfer Study: Summary of Data for Normal-hole Injection and 30 Deg Slant-hole Injection

Full-coverage Film Cooling Heat Transfer Study: Summary of Data for Normal-hole Injection and 30 Deg Slant-hole Injection PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages : 162

Book Description


Film Cooling on a Convex Wall

Film Cooling on a Convex Wall PDF Author: Kokichi Furuhama
Publisher:
ISBN:
Category : Turbines
Languages : en
Pages : 196

Book Description


Adiabatic effectiveness for full coverage film cooling with normal holes on a flat plate

Adiabatic effectiveness for full coverage film cooling with normal holes on a flat plate PDF Author: Mark Kenneth Harrington
Publisher:
ISBN:
Category :
Languages : en
Pages : 236

Book Description


Full-coverage Film Cooling

Full-coverage Film Cooling PDF Author: S. Yavuzkurt
Publisher:
ISBN:
Category : Boundary layer
Languages : en
Pages : 238

Book Description


Film Cooling Over Flat, Convex and Concave Surfaces

Film Cooling Over Flat, Convex and Concave Surfaces PDF Author: Y.-L. Lin
Publisher:
ISBN:
Category :
Languages : en
Pages :

Book Description