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Computational fluid dynamic modeling of gas flow characteristics of the high-power CW CO_2 laser 被引量:1
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作者 黄鸿雁 王又青 《Chinese Optics Letters》 SCIE EI CAS CSCD 2011年第1期60-63,共4页
To increase the photoelectronic conversion efficiency of the single discharge tube and to meet the requirements of the laser cutting system, optimization of the discharge tube structure and gas flow field is necessary... To increase the photoelectronic conversion efficiency of the single discharge tube and to meet the requirements of the laser cutting system, optimization of the discharge tube structure and gas flow field is necessary. We present a computational fluid dynamic model to predict the gas flow characteristics of high-power fast-axial flow CO2 laser. A set of differential equations is used to describe the operation of the laser. Gas flow characteristics, are calculated. The effects of gas velocity and turbulence intensity on discharge stability are studied. Computational results are compared with experimental values, and a good agreement is observed. The method presented and the results obtained can make the design process more efficient. 展开更多
关键词 FLOW Computational fluid dynamic modeling of gas flow characteristics of the high-power CW CO2 laser CO HIGH
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Computational fluid dynamics simulation of hydrodynamics in the riser of an external loop airlift reactor 被引量:6
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作者 Xuedong Jiang Ning Yang Bolun Yang 《Particuology》 SCIE EI CAS CSCD 2016年第4期95-101,共7页
Local hydrodynamics in the riser of an external loop airlift reactor (EL-ALR) are identified and the performances of three drag models are evaluated in computational fluid dynamics simulation. The simulation results... Local hydrodynamics in the riser of an external loop airlift reactor (EL-ALR) are identified and the performances of three drag models are evaluated in computational fluid dynamics simulation. The simulation results show that the Schiller-Naumann drag model underestimated the local gas holdup at lower superficial gas velocity whereas the Tomiyama drag model overestimated that at higher superficial gas velocity. By contrast, the dual-bubble-size (DBS)-local drag model gave more reasonable radial and axial distri-butions of gas holdup in all cases. The reason is that the DBS-local drag model gave correct values of the lumped parameter, i,e., the ratio of the drag coefficient to bubble diameter, for varying operating conditions and radial positions. This ratio is reasonably expected to decrease with increasing superficial gas velocity and be smaller in the center and larger near the wall. Only the DBS-local drag model correctly reproduced these trends. The radial profiles of the axial velocity of the liquid and gas predicted by the DBS-local model also agreed well with experimental data. 展开更多
关键词 Computational fluid dynamics External loop airlift reactor Drag model gas holdup Mnltiscale Mesoscale
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