Experimental Investigation of Discharge Coefficient of Smooth-Crested Pattern Notches Entitled of Various Profiles

Author(s):  
Arti K. Golait ◽  
Neeta A. Mandhare ◽  
Padmakar A. Deshmukh
2019 ◽  
Vol 23 (2) ◽  
pp. 87-101
Author(s):  
R. Monjezi ◽  
M. Heidarnejad ◽  
A. R. Masjedi ◽  
M. H. Pourmohammadi ◽  
A. Kamanbedast ◽  
...  

Author(s):  
A. N. Sabirzyanov ◽  
A. N. Kirillova

We used contemporary computational fluid dynamics techniques to evaluate how the geometric parameters of a recessed nozzle affect the perfection of flow processes. We verified our numerical simulation and obtained acceptable agreement between numerical and experimental investigation results in terms of specific impulse loss. We plotted the discharge coefficient as a function of the geometrical parameters of a recessed nozzle. Our numerical investigation forms the basis of certain guidelines we developed for designing arc-based recessed nozzles.


2017 ◽  
Vol 54 ◽  
pp. 236-242 ◽  
Author(s):  
Hamid Saadatnejadgharahassanlou ◽  
Amin Gharehbaghi ◽  
Saeid Mehdizadeh ◽  
Birol Kaya ◽  
Javad Behmanesh

1966 ◽  
Vol 88 (1) ◽  
pp. 9-13 ◽  
Author(s):  
M. V. Ramamoorthy ◽  
K. Seetharamiah

This paper presents the results of an experimental investigation on the discharge coefficient of a quadrant-edge orifice meter at high Reynolds numbers (in the range of 20,000 to 600,000). Results show that the coefficient of discharge can be related qualitatively with the drag of a cylinder in an infinite fluid medium. Results regarding upper constancy limit and reproducibility are also furnished.


Energies ◽  
2021 ◽  
Vol 14 (16) ◽  
pp. 4757
Author(s):  
Zhong Ren ◽  
Xiaoyu Yang ◽  
Xunfeng Lu ◽  
Xueying Li ◽  
Jing Ren

With the development in additive manufacturing, the use of surface treatments for gas turbine design applications has greatly expanded. An experimental investigation of the pressure loss and heat transfer characteristics within impingement jet arrays with arrays of target surface micro cooling units is presented. The discharge coefficient and Nusselt number are measured and determined for an evaluation of the pressure loss of the flow system and heat transfer level, respectively. Considered are effects of impingement jet Reynolds number ranging from 1000 to 15,000 and micro cooling units (square pin fin) height (h) with associated values of 0.01, 0.02, 0.05, 0.2, and 0.4 D, where D is the impingement hole diameter. Presented are variations of Nusselt number, and Nusselt number ratio, discharge coefficient, discharge coefficient ratio, discharge coefficient correlation. Depending upon the micro cooling unit height, discharge coefficient ratios slightly decrease with height, and the ratio values generally remain unit value (1.0). When Rej = 1000 and 2500 for several cooling units height values, discharge coefficient ratios show the pressure loss decreases about 2–18% and 3–6%, respectively, when compared to the data of a baseline smooth target surface plate. The observed phenomenon is due to the effects of flow blockage of micro cooing units, local flow separation, and near-wall viscous sublayer reattachment. Results also show that heat transfer levels increase 20–300% for some of the tested toughened target surface plates when compared to smooth target surface plates. The heat transfer level enhancement is because of an increase in thermal transport and near-wall mixing, as well as the increased wetted area. In addition, micro cooling units elements break the viscous sublayer and cause greater turbulence intensity when compared to the smooth target surface. Overall, results demonstrate that the target surface micro cooling units do not result in a visible increment in pressure loss and reduce pressure loss of the flow system for some of the tested patterns. Moreover, results show the significant ability of micro cooling units to enhance the surface heat transfer capability of impingement cooling relative to smooth target surfaces.


2014 ◽  
Author(s):  
Shane Close ◽  
Victoria Adkins ◽  
Kandice Perry ◽  
Katheryn Eckles ◽  
Jill Brown ◽  
...  

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