HR: 0800h
AN: A51B-0048 [Abstracts]
TI: Isoprene flux measurements using eddy covariance and disjunct eddy accumulation
AU: * Pressley, S N
EM: spressle@mail.wsu.edu
AF: Washington State University, Dept. of Civil and Environmental Engineering, Sloan Hall, Pullman, WA
99164
United States
AU: Lamb, B
EM: blamb@wsu.edu
AF: Washington State University, Dept. of Civil and Environmental Engineering, Sloan Hall, Pullman, WA
99164
United States
AU: Westberg, H
EM: westberg@mail.wsu.edu
AF: Washington State University, Dept. of Civil and Environmental Engineering, Sloan Hall, Pullman, WA
99164
United States
AU: Allwine, G
EM: allwineg@wsu.edu
AF: Washington State University, Dept. of Civil and Environmental Engineering, Sloan Hall, Pullman, WA
99164
United States
AU: Turnipseed, A
EM: turnip@ucar.edu
AF: National Center for Atmospheric Research, 1850 Table Mesa Drive, Boulder, CO 80305
United States
AU: Guenther, A
EM: guenther@acd.ucar.edu
AF: National Center for Atmospheric Research, 1850 Table Mesa Drive, Boulder, CO 80305
United States
AB:
Quantifying biogenic hydrocarbon (BHC) emissions is important for understanding the role they play in tropospheric chemistry.
Isoprene is a very reactive compound that affects the oxidative capacity of the atmosphere, which in turn determines the
lifetime of numerous atmospheric constituents such as methane (CH4) and CO. The oxidation of isoprene leads to the
production of peroxy radicals (RO2), which may lead to the formation of organic acids, or depending on the level of nitric
oxides present, to either production or consumption of tropospheric O3.
BHC emissions, in particular isoprene, are predominantly driven by increases in temperature and solar radiation, and there
can be significant variations in emissions from one hour to the next, and between days. To better understand the natural
variability of isoprene emissions, eddy covariance isoprene flux measurements are being collected on a long-term basis. This
long-term dataset, spanning from 1999-2005, provides a unique tool for validating biogenic emission inventories that are
used as input into regional photochemical models. This long-term dataset will be presented and compared to the biogenic
emission inventory system (BEIS3) model estimates.
Using isoprene as a compound of interest, the micrometeorological technique of disjunct eddy accumulation (DEA) was tested
side-by-side with the direct eddy covariance (EC) technique. One week of DEA and EC hourly flux measurements will be
presented, confirming the use of DEA to measure fluxes of other atmospheric compounds that, to date, has not been attainable.
DE: 0315 Biosphere/atmosphere interactions (0426, 1610)
DE: 0365 Troposphere: composition and chemistry
DE: 0452 Instruments and techniques
DE: 0490 Trace gases
DE: 3394 Instruments and techniques
SC: Atmospheric Sciences [A]
MN: Fall Meeting 2005