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Detailed analysis of kinetic and fluid dynamic processes in diode-pumped alkali lasers

机译:二极管泵浦碱金属激光器的动力学和流体动力学过程的详细分析

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Kinetic and fluid dynamic processes in diode-pumped alkali lasers (DPALs) are analyzed in detail using a simple, semi-analytical model, applicable to both static and flowing-gas devices. Unlike other models, it takes into account the effects of temperature rise, excitation of neutral alkali atoms to high lying electronic states and their losses due to ionization and chemical reactions, resulting in a decrease in pump absorption, slope efficiency, and lasing power. Effects of natural convection in static DPALs are also taken into account. The applicability of the model is demonstrated in Cs DPALs by (1) obtaining good agreement with measurements in static [Electron. Lett. 44, 582 (2008)] and flowing-gas [Quantum Electron. 42, 95 (2012)] DPALs, (2) predicting the dependence of power on the flow velocity in flowing-gas DPALs, and (3) checking the effect of using a buffer gas with high molar heat capacity and a large relaxation rate constant between the ~2P_(3/2) and ~2P_(1/2) fine-structure levels of the alkali atom. The power strongly increases with flow velocity and by replacing, e.g., ethane by propane as a buffer gas, the power may be further increased by up to 30%; 7 kW is achievable in a small-scale laser with 10 cm3 of propane for a 20 kW pump at a flow velocity of 20 m/s.
机译:使用简单的半分析模型对二极管泵浦碱金属激光器(DPAL)中的动力学和流体动力学过程进行了详细分析,该模型适用于静态和流动气体设备。与其他模型不同,它考虑了温度升高,中性碱原子激发到高位电子态的影响以及由于电离和化学反应而造成的损失,从而导致泵浦吸收,斜率效率和激光功率降低。还考虑了静态DPAL中自然对流的影响。该模型的适用性在Cs DPAL中得到了证明,方法是:(1)获得与静态测量的良好一致性[电子。来吧44,582(2008)]和流动气体[Quantum Electron。 42,42,95(2012)] DPAL,(2)预测功率对流动气体DPAL中流速的依赖性,以及(3)检查使用具有高摩尔热容和大弛豫速率常数的缓冲气体的效果在碱原子的〜2P_(3/2)和〜2P_(1/2)精细结构能级之间。功率随流速而强烈增加,通过用丙烷作为缓冲气体代替例如乙烷,功率可进一步提高高达30%。对于20 kW的泵,在20 m / s的流速下,使用10 cm3丙烷的小型激光器可以达到7 kW。

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