Heat transfer and flow characteristics of six ribbed channels of square cross section having different rib structure are computed with the objective of improving heat transfer in the lee-side of the ribs. Six ribs are installed on the bottom walls of each channel. The rib pitch-to-height ratio (P/e) is 10. Details of the turbulent flow structure, temperature fields, local heat transfer coefficients, flow friction coefficients, normalized heat transfer rates, and normalized friction factors are reported. The simulations use the v(2)f turbulence model and inlet Reynolds number range of 8,000 to 24,000. A uniform heat flux is appropriately applied on all surfaces. The heat transfer performances features of the ribbed channels of various design...
Ribs are often employed in internal cooling passages of turbine blades to augment heat transfer with...
The repeated ribs surfaces are known for their effective enhancement of heat transfer, which is wide...
Augmentation of heat transfer must always be judged against an additional pressure loss. To this con...
Heat transfer and flow characteristics of six ribbed channels of square cross section having differe...
Square cross-section ribbed channels with deflectors are computationally simulated to determine thei...
The present study employs square cross-section ribbed channels with different arrangements of downst...
In the fast development of advanced gas turbines with increasing output power, the inlet temperature...
Purpose - The purpose of this paper is to augment heat transfer rates of traditional rib-elements wi...
Enhancement of bottom wall forced convection heat transfer rates in a ribbed cooling channel combine...
This work presents the results of an experimental investigation into the effects of variations in th...
Numerical studies of the flow field and heat transfer in a fully developed ribbed channel have been ...
For internal cooling of a turbine blade, various advanced rib turbulators can markedly contribute to...
In internal cooling passages in a turbine blade, rib structures are widely applied to augment convec...
This paper presents an experimental and numerical study of flow and heat transfer char teristics in ...
To intensify inner cooling of the turbine blades, the ribbed surfaces with ribs located at an attack...
Ribs are often employed in internal cooling passages of turbine blades to augment heat transfer with...
The repeated ribs surfaces are known for their effective enhancement of heat transfer, which is wide...
Augmentation of heat transfer must always be judged against an additional pressure loss. To this con...
Heat transfer and flow characteristics of six ribbed channels of square cross section having differe...
Square cross-section ribbed channels with deflectors are computationally simulated to determine thei...
The present study employs square cross-section ribbed channels with different arrangements of downst...
In the fast development of advanced gas turbines with increasing output power, the inlet temperature...
Purpose - The purpose of this paper is to augment heat transfer rates of traditional rib-elements wi...
Enhancement of bottom wall forced convection heat transfer rates in a ribbed cooling channel combine...
This work presents the results of an experimental investigation into the effects of variations in th...
Numerical studies of the flow field and heat transfer in a fully developed ribbed channel have been ...
For internal cooling of a turbine blade, various advanced rib turbulators can markedly contribute to...
In internal cooling passages in a turbine blade, rib structures are widely applied to augment convec...
This paper presents an experimental and numerical study of flow and heat transfer char teristics in ...
To intensify inner cooling of the turbine blades, the ribbed surfaces with ribs located at an attack...
Ribs are often employed in internal cooling passages of turbine blades to augment heat transfer with...
The repeated ribs surfaces are known for their effective enhancement of heat transfer, which is wide...
Augmentation of heat transfer must always be judged against an additional pressure loss. To this con...