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Ground and Airborne Methane Measurements using Optical Parametric AmplifiersWe report on an initial airborne demonstration of atmospheric methane column measurements at 1.65 micrometers using a widely tunable, seeded optical parametric amplifier (OPA) lidar and a photon counting detector. Methane is an important greenhouse gas and accurate knowledge of its sources and sinks is needed for climate modeling. Our lidar system uses 20 pulses at increasing wavelengths and integrated path differential absorption (IPDA) to map a methane line at 1650.9 nanometers. The wavelengths are generated by using a Nd:YAG pump laser at 1064.5 nanometers and distributed feedback diode laser at 1650.9 nanometers and a periodically-poled lithium niobate (PPLN) crystal. The pulse width was 3 nanoseconds and the pulse repetition rate was 6.28 KHz. The outgoing energy was approximately 13 microJoules/pulse. A commercial 20 nanometer diameter fiber-coupled telescope with a photon counting detector operated in analog mode with a 0.8 nanometer bandpass filter was used as the lidar receiver. The lidar system was integrated on NASA's DC-8 flying laboratory, based at Dryden Airborne operations Facility (DAOF) in Palmdale CA. Three flights were performed in the central valley of California. Each flight lasted about 2.5 hours and it consisted of several flight segments at constant altitudes at approximately 3, 4.5, 6, 7.6, 9.1, 10.6 km (l0, 15, 20, 25, 30, 35 kft). An in-situ cavity ring down spectrometer made by Picarro Inc. was flown along with the lidar instrument provided us with the "truth" i.e. the local CH4, CO2 and H2O concentrations at the constant flight altitude segments. Using the aircraft's altitude, GPS, and meteorological data we calculated the theoretical differential optical depth of the methane absorption at increasing altitudes. Our results showed good agreement between the experimentally derived optical depth measurements from the lidar instrument and theoretical calculations as the flight altitude was increased from 3 to 10.6 kilometers, assuming a constant methane mixing ratio of 1.8 parts per million. The in-situ spectrometer did not show any significant deviations from the ambient concentrations. Further analysis using meteorological data from the Global Modeling and Assimilation Office (http://gmao.gsfc.nasa.gov/) to derive the theoretical optical depth also showed good agreement with the experimentally derived values. The OPA lidar system with slight modifications has also been used to measure CO2, water vapor, and CO in the near and mid-infrared spectral regions on the ground.
Document ID
20120011242
Acquisition Source
Goddard Space Flight Center
Document Type
Abstract
Authors
Riris, Haris
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Numata, Kenji
(Maryland Univ. College Park, MD, United States)
Li, Steve
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Wu, Stewart
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Kawa, Stephan R.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Abshire, James
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Dawsey, Martha
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Ramanathan, Anand
(Oak Ridge Associated Universities, Inc. TN, United States)
Date Acquired
August 26, 2013
Publication Date
June 17, 2012
Subject Category
Lasers And Masers
Report/Patent Number
GSFC.ABS.01007.2012
Report Number: GSFC.ABS.01007.2012
Meeting Information
Meeting: 8th International Workshop on Greenhouse Gas Measurements from Space
Location: Pasadena, CA
Country: United States
Start Date: June 17, 2012
End Date: June 20, 2012
Distribution Limits
Public
Copyright
Public Use Permitted.
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