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A 50-kW Module Power Station of Directly Solar-Pumped Iodine Laser

机译:太阳能直接泵浦碘激光器的50 kW模块电站

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摘要

The conceptual design of a 50 kW Directly Solar-Pumped Iodine Laser (DSPIL) module was developed for a space-based power station which transmits its coherent-beam power to users such as the moon, Martian rovers, or other satellites with large (greater than 25 kW) electric power requirements. Integration of multiple modules would provide an amount of power that exceeds the power of a single module by combining and directing the coherent beams to the user's receiver. The model developed for the DSPIL system conservatively predicts the laser output power (50 kW) that appears much less than the laser output (93 kW) obtained from the gain volume ratio extrapolation of experimental data. The difference in laser outputs may be attributed to reflector configurations adopted in both design and experiment. Even though the photon absorption by multiple reflections in experimental cavity setup was more efficient, the maximum secondary absorption amounts to be only 24.7 percent of the primary. However, the gain volume ratio shows 86 percent more power output than theoretical estimation that is roughly 60 percent more than the contribution by the secondary absorption. Such a difference indicates that the theoretical model adopted in the study underestimates the overall performance of the DSPIL. This fact may tolerate more flexible and radical selection of design parameters than used in this design study. The design achieves an overall specific power of approximately 5 W/kg and total mass of 10 metric tons.
机译:50 kW直接太阳能泵浦碘激光器(DSPIL)模块的概念设计是为一个太空发电厂开发的,该发电厂将其相干光束功率传输给用户,例如月球,火星探测器或其他大型(更大)卫星超过25千瓦)的电力需求。多个模块的集成将通过组合相干光束并将其引导至用户的接收器,从而提供超过单个模块功率的功率。为DSPIL系统开发的模型保守地预测激光输出功率(50 kW)看起来比通过实验数据的增益体积比外推法获得的激光输出(93 kW)小得多。激光输出的差异可能归因于设计和实验中采用的反射器配置。尽管在实验腔设置中通过多次反射进行的光子吸收更为有效,但最大的次级吸收量仅为初级的24.7%。但是,增益体积比显示的功率输出比理论估计值高86%,比次级吸收的贡献大约高60%。这种差异表明研究中采用的理论模型低估了DSPIL的整体性能。这个事实可能比本设计研究中所允许的设计参数更灵活,更激进。该设计实现了约5 W / kg的总比功率和10公吨的总质量。

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