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Optical Frequency Optimization of a High Intensity Laser Power Beaming System Utilizing VMJ Photovoltaic Cells

机译:利用VMJ光伏电池的高强度激光功率光束系统的光频率优化

摘要

An effective form of wireless power transmission (WPT) has been developed to enable extended mission durations, increased coverage and added capabilities for both space and terrestrial applications that may benefit from optically delivered electrical energy. The high intensity laser power beaming (HILPB) system enables long range optical 'refueling" of electric platforms such as micro unmanned aerial vehicles (MUAV), airships, robotic exploration missions and spacecraft platforms. To further advance the HILPB technology, the focus of this investigation is to determine the optimal laser wavelength to be used with the HILPB receiver, which utilizes vertical multi-junction (VMJ) photovoltaic cells. Frequency optimization of the laser system is necessary in order to maximize the conversion efficiency at continuous high intensities, and thus increase the delivered power density of the HILPB system. Initial spectral characterizations of the device performed at the NASA Glenn Research Center (GRC) indicate the approximate range of peak optical-to-electrical conversion efficiencies, but these data sets represent transient conditions under lower levels of illumination. Extending these results to high levels of steady state illumination, with attention given to the compatibility of available commercial off-the-shelf semiconductor laser sources and atmospheric transmission constraints is the primary focus of this paper. Experimental hardware results utilizing high power continuous wave (CW) semiconductor lasers at four different operational frequencies near the indicated band gap of the photovoltaic VMJ cells are presented and discussed. In addition, the highest receiver power density achieved to date is demonstrated using a single photovoltaic VMJ cell, which provided an exceptionally high electrical output of 13.6 W/sq cm at an optical-to-electrical conversion efficiency of 24 percent. These results are very promising and scalable, as a potential 1.0 sq m HILPB receiver of similar construction would be able to generate 136 kW of electrical power under similar conditions.
机译:已经开发了一种有效形式的无线电力传输(WPT),可以延长任务持续时间,增加覆盖范围并为空间和地面应用(可能会受益于光传输电能)增加功能。高强度激光功率束(HILPB)系统可为微型无人机(MUAV),飞艇,机器人探测任务和航天器平台等电动平台进行远距离光学“加油”,为进一步推进HILPB技术,研究是确定与HILPB接收器一起使用的最佳激光波长,该接收器使用垂直多结(VMJ)光伏电池,为了在连续高强度下最大化转换效率,有必要对激光系统进行频率优化。在美国国家航空航天局格伦研究中心(GRC)进行的该设备的初始光谱表征表明,峰值光电转换效率的范围近似,但是这些数据集代表了较低水平下的瞬态条件将这些结果扩展到高水平的稳态照明,并注意本文主要关注可商用的现成半导体激光源的兼容性和大气传输限制。提出并讨论了在四个不同的工作频率下利用高功率连续波(CW)半导体激光器在光伏VMJ电池的指定带隙附近进行的实验硬件结果。此外,使用单个光伏VMJ电池展示了迄今为止达到的最高接收器功率密度,它以24%的光电转换效率提供了13.6 W / sq cm的超高电输出。这些结果非常有希望且可扩展,因为类似结构的潜在1.0平方米HILPB接收器将能够在类似条件下产生136 kW的电能。

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