高强度激光功率集束接收机的方形和径向几何形状的比较

D. Raible, Brian Fast, D. Dinca, T. Nayfeh, Andrew Jalics
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引用次数: 3

摘要

为了进一步推进无线电力传输(WPT)的可实现形式,高强度激光功率集束(HILPB)已被开发用于空间和地面应用。采用独特的光电接收器与近红外(IR-A)连续波(CW)半导体激光器对HILPB系统进行实验研究。本文考虑了寄生反馈、不均匀光照和接收机阵列几何形状的影响,并给出了HILPB的实验硬件结果。激光束的TEM00高斯能量分布对接收器进行有效光电转换的有效性提出了挑战,因为由此产生的光伏电池阵列的不均匀照明。在本研究中,接收器的几何形状被认为是一种调整接收器设计以适应高斯光束轮廓的技术,并且在这样做的过程中,证明了这种方法可以成功地从7.2 cm2的光伏电池中产生达到25 W的大块接收器输出功率水平。这些结果是可扩展的,并且可以通过实施接收器阵列和利用更高功率源激光器来实现能够产生超过30千瓦电力的1.0 m2接收器。这种类型的系统将使远程光学“加油”的电动平台,如MUAV的,飞艇,机器人探索任务和提供动力的航天器平台,可能利用它来驱动电力推进手段。此外,较小的HILPB接收器孔径可用于在包含高水平背景辐射的环境中建立稳健的光通信链路,以实现高信噪比。
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Comparison of square and radial geometries for high intensity laser power beaming receivers
In an effort to further advance a realizable form of wireless power transmission (WPT), high intensity laser power beaming (HILPB) has been developed for both space and terrestrial applications. Unique optical-to-electrical receivers are employed with near infrared (IR-A) continuous-wave (CW) semiconductor lasers to experimentally investigate the HILPB system. In this paper, parasitic feedback, uneven illumination and the implications of receiver array geometries are considered and experimental hardware results for HILPB are presented. The TEM00 Gaussian energy profile of the laser beam presents a challenge to the effectiveness of the receiver to perform efficient photoelectric conversion, due to the resulting non-uniform illumination of the photovoltaic cell arrays. In this investigation, the geometry of the receiver is considered as a technique to tailor the receiver design to accommodate the Gaussian beam profile, and in doing so it is demonstrated that such a methodology is successful in generating bulk receiver output power levels reaching 25 W from 7.2 cm2 of photovoltaic cells. These results are scalable, and may be realized by implementing receiver arraying and utilizing higher power source lasers to achieve a 1.0 m2 receiver capable of generating over 30 kW of electrical power. This type of system would enable long range optical ‘refueling’ of electric platforms, such as MUAV's, airships, robotic exploration missions and provide power to spacecraft platforms which may utilize it to drive electric means of propulsion. In addition, a smaller HILPB receiver aperture size could be utilized to establish a robust optical communications link within environments containing high levels of background radiance, to achieve high signal to noise ratios.
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