N. Prasad, R. Sibell, S. Vetorino, R. Higgins, A. Tracy
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引用次数: 19
Abstract
This paper discusses an innovative, compact and eyesafe coherent lidar system developed for wind and wake vortex sensing applications. With an innovative all-fiber and modular transceiver architecture, the wind lidar system has reduced size, weight and power requirements, and provides enhanced performance along with operational elegance. This all-fiber architecture is developed around fiber seed laser coupled to uniquely configured fiber amplifier modules. The innovative features of this lidar system, besides its all fiber architecture, include pulsewidth agility and user programmable 3D hemispherical scanner unit. Operating at a wavelength of 1.5457 microns and with a PRF of up to 20 KHz, the lidar transmitter system is designed as a Class 1 system with dimensions of 30”(W) x 46”(L) x 60”(H). With an operational range exceeding 10 km, the wind lidar is configured to measure wind velocities of greater than 120 m/s with an accuracy of +/- 0.2 m/s and allow range resolution of less than 15 m. The dynamical configuration capability of transmitted pulsewidths from 50 ns to 400 ns allows high resolution wake vortex measurements. The scanner uses innovative liquid metal slip ring and is built using 3D printer technology with light weight nylon. As such, it provides continuous 360 degree azimuth and 180 degree elevation scan angles with an incremental motion of 0.001 degree. The lidar system is air cooled and requires 110 V for its operation. This compact and modular lidar system is anticipated to provide mobility, reliability, and ease of field deployment for wind and wake vortex measurements. Currently, this wind lidar is undergoing validation tests under various atmospheric conditions. Preliminary results of these field measurements of wind characteristics that were recently carried out in Colorado are discussed.
本文讨论了一种创新的、紧凑的、安全的用于风和尾流传感的相干激光雷达系统。凭借创新的全光纤和模块化收发器架构,风激光雷达系统减小了尺寸、重量和功率要求,并提供了增强的性能和操作优雅。这种全光纤架构是围绕光纤种子激光器与独特配置的光纤放大器模块耦合而开发的。除了全光纤结构外,该激光雷达系统的创新特点还包括脉冲宽度灵活性和用户可编程的3D半球形扫描仪单元。工作波长为1.5457微米,PRF高达20 KHz,激光雷达发射机系统被设计为1类系统,尺寸为30“(W) x 46”(L) x 60“(H)。风激光雷达的工作距离超过10公里,可测量大于120米/秒的风速,精度为+/- 0.2米/秒,距离分辨率小于15米。传输脉冲宽度从50纳秒到400纳秒的动态配置能力允许高分辨率尾流涡测量。该扫描仪采用创新的液态金属滑环,采用轻质尼龙3D打印机技术制造。因此,它提供连续的360度方位角和180度仰角扫描角,增量运动为0.001度。激光雷达系统是空气冷却的,需要110伏的电压才能运行。这种紧凑的模块化激光雷达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,该风激光雷达正在各种大气条件下进行验证测试。讨论了最近在科罗拉多州进行的这些风特征野外测量的初步结果。