Engineering topics
Chen, Luke
Publications and source records attributed to Chen, Luke.
AIRS Retrieval of Atmospheric CO2 in Three Layers (Progress Toward Satellite Retrieval of a Profile)
No abstract available
Reaching for the Middle Strat and Lower Trop for AIRS CO2 (Progress Toward Satellite Retrieval of a Profile)
No abstract available
Middle Strat (25km) and Lower Trop (2.2km) CO2 from AIRS (Progress Toward Satellite Retrieval of a Profile)
No abstract available
AIRS: Improving Weather Forecasting and Providing New Data on Greenhouse Gases
This paper discusses the performance of AIRS and examines how it is meeting its operational and research objectives based on the experience of more than 2 yr with AIRS data. We describe the science background and the performance of AIRS in terms of the accuracy and stability of its observed spectral radiances. We examine the validation of the retrieved temperature and water vapor profiles against collocated operational radiosondes, and then we assess the impact thereof on numerical weather forecasting of the assimilation of the AIRS spectra and the retrieved temperature. We close the paper with a discussion on the retrieval of several minor tropospheric constituents from AIRS spectra.
AIRS CO2 Retrievals Using the Method of Vanishing Partial Derivatives (VPD)
This document consists of presentation slides that review the work being done with observations from the Atmospheric Infrared Sounder (AIRS) using the concept of Vanishing Partial Derivatives. The infrared region is where several minor gases such as CO2, O3, CO, CH4 and SO2 are radiatively active.
Characteristics of the cloudy atmosphere observed by AIRS
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Validation of AIRS/AMSU/HSB retrieved products
We describe preliminary comparisons of AIRS/AMU/HSB retrieved geophysical products with correlative data sets to constrain retrieval uncertainties. The results are relevant to oceans at latitudes from 40S to 40N where infrared retrievals are completed, or about 70% of retrieval footprints.
Detection of climate forcing using emission spectra
We discuss the use of thermal emission spectra recorded by satellites to construct climate indices that can detect the evolution of a specific climate forcing in a time series. The two important issues are selectivity against climate forcings other than one that is sought, and sensitivity to the required forcing. We show that indices with selectivity can be found, and that their sensitivity can be high.
Accuracy Of The Correlated-k Method
Report discusses accuracy of correlated-k method of calculating spectral radiances of vertically nonhomogeneous atmospheres. Presents brief description of method. Discusses some theoretical considerations, showing method correct when applied to weak spectral lines, strong pressure-broadened spectral lines, spectral lines affected by Doppler shifts at constant temperatures, and overlapping spectral bands.
Transformations For Atmospheric-Radiation Calculations
Atmospheric radiation calculations essential part of climate models and inversion techniques for analyzing remote sensing observations. Two spectral mapping transformation methods developed to reduce computing time and storage requirements greatly while preserving accuracy achievable with rigorous methods. Evolved from "correlated-k" (c-k) method.
Mapping transformations for broadband atmospheric radiation calculations
Two methods of mapping the line-by-line absorption coefficient (k) spectrum onto a new variable to produce a set of k coefficients which can be used for accurate and efficient broadband radiative transfer calculations in vertically inhomogeneous, nongray scattering atmospheres are described. These methods are intended for applications for which the less accurate correlated-k method is inadequate. These methods are tested for model atmospheres containing CO2 and H2O, with pressure in the range 0.05-0.9 bar. The results obtained differed by no more than 1 or 2 percent from the line-by-line results if the number of k coefficients was about 100 times less than the number required for the line-by-line calculation. These algorithms can be used for gas mixtures and for a variety of pressure-temperature profiles.