Innovative fiber-laser architecture-based compact wind lidar

SPIE OPTO Pub Date : 2016-03-28 DOI:10.1117/12.2218226
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引用次数: 4

Abstract

This paper describes an innovative, compact and eyesafe coherent lidar system developed for use in wind and wake vortex sensing applications. This advanced lidar system is field ruggedized with reduced size, weight, and power consumption (SWaP) configured based on an all-fiber and modular architecture. The all-fiber architecture is developed using a fiber seed laser that is coupled to uniquely configured fiber amplifier modules and associated photonic elements including an integrated 3D scanner. The scanner provides user programmable continuous 360 degree azimuth and 180 degree elevation scan angles. The system architecture eliminates free-space beam alignment issues and allows plug and play operation using graphical user interface software modules. Besides its all fiber architecture, the lidar system also provides pulsewidth agility to aid in improving range resolution. Operating at 1.54 microns and with a PRF of up to 20 KHz, the wind lidar is air cooled with overall dimensions of 30” x 46” x 60” and is designed as a Class 1 system. This lidar is capable of measuring wind velocities greater than 120 +/- 0.2 m/s over ranges greater than 10 km and with a range resolution of less than 15 m. This compact and modular system is anticipated to provide mobility, reliability, and ease of field deployment for wind and wake vortex measurements. The current lidar architecture is amenable for trace gas sensing and as such it is being evolved for airborne and space based platforms. In this paper, the key features of wind lidar instrumentation and its functionality are discussed followed by results of recent wind forecast measurements on a wind farm.
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基于光纤激光结构的创新型紧凑型风力激光雷达
本文介绍了一种创新的、紧凑的、安全的用于风和尾流传感应用的相干激光雷达系统。这种先进的激光雷达系统是基于全光纤和模块化架构配置的,具有更小的尺寸、重量和功耗(SWaP)。全光纤架构是使用光纤种子激光器开发的,该激光器与独特配置的光纤放大器模块和相关的光子元件(包括集成的3D扫描仪)耦合在一起。该扫描仪为用户提供可编程的连续360度方位和180度仰角扫描角度。系统架构消除了自由空间波束对准问题,并允许使用图形用户界面软件模块进行即插即用操作。除了全光纤结构外,激光雷达系统还提供脉冲宽度灵活性,以帮助提高距离分辨率。该风激光雷达工作在1.54微米,PRF高达20 KHz,采用空气冷却,整体尺寸为30“x 46”x 60”,设计为1类系统。该激光雷达能够测量风速大于120 +/- 0.2米/秒,距离大于10公里,距离分辨率小于15米。这种紧凑的模块化系统有望为风和尾流测量提供机动性、可靠性和易于现场部署的能力。目前的激光雷达架构适用于痕量气体传感,因此它正在为机载和天基平台发展。本文讨论了风力激光雷达仪器的主要特点及其功能,然后介绍了最近在风电场进行的风力预报测量的结果。
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