Long-term trends in Antarctic winter hydroxyl temperatures

被引:23
作者
French, W. John R. [1 ]
Klekociuk, A. R. [1 ]
机构
[1] Australian Antarctic Div, Kingston, Tas 7050, Australia
关键词
MESOPAUSE REGION TEMPERATURES; MIDDLE ATMOSPHERE; SOLAR-CYCLE; TRANSITION-PROBABILITIES; ROTATIONAL TEMPERATURES; MESOSPHERIC TEMPERATURE; LOWER THERMOSPHERE; AURORAL STATION; DAVIS STATION; MODEL;
D O I
10.1029/2011JD015731
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Observations of the hydroxyl nightglow emission with a scanning spectrometer at Davis station, Antarctica (68 degrees S, 78 degrees E), have been maintained over each winter season since 1995. Rotational temperatures are derived from the P-branch lines of the OH(6-2) band near lambda 840 nm and are a layer-weighted proxy for kinetic temperatures near 87 km altitude. The current 16 year record allows tentative estimation of the atmospheric response in the mesopause region to solar cycle forcing and the underlying long-term linear temperature trend. Seven years of new data have been added since the last reported trend assessments using these data. A multivariate regression analysis on seasonally detrended winter mean hydroxyl temperatures yields a solar cycle coefficient of 4.8 +/- 1.0 K/100 solar flux units (SFU) and a linear long-term cooling coefficient of -1.2 +/- 0.9 K/decade. These coefficients are consistent within uncertainties for nightly, monthly, and annual mean trend evaluations. A distinct seasonal variation in trend coefficients is found in 30 day sliding window or monthly trend analyses. The largest solar activity response (similar to 7 K/100 SFU) is measured in March, May-June, and September, and there is little or no solar response in April and August. The long-term trend coefficient shows the largest cooling rate (4-5 K/decade) in August-September, through to warming (2-3 K/decade) for the March and May-June periods. Comparisons of trend results are made with other important hydroxyl measurement sites. Variability in the remaining residual temperatures is examined using lag correlation analyses for the influence of planetary waves, the quasi-biennial oscillation, the polar vortex intensity, and the southern annular mode.
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页数:15
相关论文
共 69 条
[1]   Cooling of the mesosphere and lower thermosphere due to doubling of CO2 [J].
Akmaev, RA ;
Fomichev, VI .
ANNALES GEOPHYSICAE-ATMOSPHERES HYDROSPHERES AND SPACE SCIENCES, 1998, 16 (11) :1501-1512
[2]   A model estimate of cooling in the mesosphere and lower thermosphere due to the CO2 increase over the last 3-4 decades [J].
Akmaev, RA ;
Fomichev, VI .
GEOPHYSICAL RESEARCH LETTERS, 2000, 27 (14) :2113-2116
[3]  
[Anonymous], P SPIE INT SOC OPT E
[4]   Solar cycle signature and secular long-term trend in OH airglow temperature observations at South Pole, Antarctica [J].
Azeem, S. M. I. ;
Sivjee, G. G. ;
Won, Y. -I. ;
Mutiso, Charles .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2007, 112 (A1)
[5]   ROCKET MEASUREMENTS OF THE ALTITUDE DISTRIBUTIONS OF THE HYDROXYL AIRGLOW [J].
BAKER, DJ ;
STAIR, AT .
PHYSICA SCRIPTA, 1988, 37 (04) :611-622
[6]  
Baldwin M.P., 2003, SPARC Newsletter, V20, P24
[7]   SOLAR-CYCLE AND THE QBO EFFECT ON THE MESOSPHERIC TEMPERATURE AND NIGHTGLOW EMISSIONS AT A LOW-LATITUDE STATION [J].
BATISTA, PP ;
TAKAHASHI, H ;
CLEMESHA, BR .
EARTHS MIDDLE ATMOSPHERE, 1994, 14 (09) :221-224
[8]   Review of mesospheric temperature trends -: art. no. 1015 [J].
Beig, G ;
Keckhut, P ;
Lowe, RP ;
Roble, RG ;
Mlynczak, MG ;
Scheer, J ;
Fomichev, VI ;
Offermann, D ;
French, WJR ;
Shepherd, MG ;
Semenov, AI ;
Remsberg, EE ;
She, CY ;
Lübken, FJ ;
Bremer, J ;
Clemesha, BR ;
Stegman, J ;
Sigernes, F ;
Fadnavis, S .
REVIEWS OF GEOPHYSICS, 2003, 41 (04)
[9]   Overview of the temperature response in the mesosphere and lower thermosphere to solar activity [J].
Beig, G. ;
Scheer, J. ;
Mlynczak, M. G. ;
Keckhut, P. .
REVIEWS OF GEOPHYSICS, 2008, 46 (03)
[10]   Trends in the mesopause region temperature and our present understanding - an update [J].
Beig, Gufran .
PHYSICS AND CHEMISTRY OF THE EARTH, 2006, 31 (1-3) :3-9