NASA NTRS · 20000013014
High-Efficiency Autonomous Coherent Lidar
Abstract
A useful measure of sensor performance is the transceiver system efficiency n (sub sys). Which consists of the antenna efficiency n (sub a) and optical and electronic losses. Typically, the lidar equation and the antenna efficiency are defined in terms of the telescope aperture area. However, during the assembly of a coherent transceiver, it is important to measure the system efficiency before the installation of the beamexpanding telescope (i.e., the untruncated-beam system efficiency). Therefore, to accommodate both truncated and untruncated beam efficiency measurements, we define the lidar equation and the antenna efficiency in terms of the beam area rather than the commonly used aperture area referenced definition. With a well-designed Gaussian-beam lidar, aperture area referenced system efficiencies of 15 to 20 % (23-31% relative to the beam area) are readily achievable. In this paper we compare the differences between these efficiency definitions. We then describe techniques by which high efficiency can be achieved, followed by a discussion several novel auto alignment techniques developed to maintain high efficiency.
Keep this discovery
Explore connections, maps & timelines
Philip Gatt, Sammy W. Henderson, Stephen M. Hannon. 1999-11-01. High-Efficiency Autonomous Coherent Lidar. https://ntrs.nasa.gov/citations/20000013014
Cite the original work for its findings. Save a collection to share your selection of sources.