The MaCWAVE program to study gravity wave influences on the polar mesosphere

被引:24
作者
Goldberg, R. A.
Fritts, D. C.
Schmidlin, F. J.
Williams, B. P.
Croskey, C. L.
Mitchell, J. D.
Friedrich, M.
Russell, J. M., III
Bium, U.
Fricke, K. H.
机构
[1] NASA, Goddard Space Flight Ctr, Greenbelt, MD 20771 USA
[2] NW Res Assoc, Colorado Res Associates Div, Boulder, CO 80301 USA
[3] NASA, Goddard Space Flight Ctr, Wallops Flight Facil, Wallops Isl, VA 23337 USA
[4] Penn State Univ, Dept Elect Engn, University Pk, PA 16802 USA
[5] Graz Univ Technol, A-8010 Graz, Austria
[6] Hampton Univ, Ctr Atmospher Res, Hampton, VA 23681 USA
[7] Forsvarets Forskningsinst, NO-2027 Kjeller, Norway
[8] Univ Bonn, Inst Phys, D-53115 Bonn, Germany
关键词
atmospheric composition and structure; pressure density and temperature; meteorology and atmospheric dynamics; waves and tides; middle atmosphere dynamics;
D O I
10.5194/angeo-24-1159-2006
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
MaCWAVE (Mountain and Convective Waves Ascending VErtically) was a highly coordinated rocket, ground-based, and satellite program designed to address gravity wave forcing of the mesosphere and lower thermosphere (MLT). The MaCWAVE program was conducted at the Norwegian Andoya Rocket Range (ARR, 69.3 degrees N) in July 2002, and continued at the Swedish Rocket Range (Esrange, 67.9 degrees N) during January 2003. Correlative instrumentation included the ALOMAR MF and MST radars and RMR and Na lidars, Esrange MST and meteor radars and RMR lidar, radiosondes, and TIMED (Thermosphere Ionosphere Mesosphere Energetics and Dynamics) satellite measurements of thermal structures. The data have been used to define both the mean fields and the wave field structures and turbulence acneration leading to forcing of the large-scale flow. In summer, launch sequences coupled with ground-based measurements at ARR addressed the forcing of the summer mesopause environment by anticipated convective and shear generated gravity waves. These motions were measured with two 12-h rocket sequences, each involving one Terrier-Orion payload accompanied by a mix of MET rockets, all at ARR in Norway. The MET rockets were used to define the temperature and wind structure of the stratosphere and mesosphere. The Terrier-Orions were designed to measure small-scale plasma fluctuations and turbulence that might be induced by wave breaking in the mesosphere. For the summer series, three European MIDAS (Middle Atmosphere Dynamics and Structure) rockets were also launched from ARR in coordination with the MaCWAVE payloads. These were designed to measure plasma and neutral turbulence within the MLT. The summer program exhibited a number of indications of significant departures of the mean wind and temperature structures from "normal" polar summer conditions, including an unusually warm mesopause and a slowing of the formation of polar mesospheric summer echoes (PMSE) and noctilucent clouds (NLC). This was suggested to be due to enhanced planetary wave activity in the Southern Hemisphere and a surprising degree of interhemispheric coupling. The winter program was designed to study the upward propagation and penetration of mountain waves from northern Scandinavia into the MLT at a site favored for such penetration. As the major response was expected to be downstream (east) of Norway, these motions were measured with similar rocket sequences to those used in the summer campaign, but this time at Esrange. However, a major polar stratospheric warming just prior to the rocket launch window induced small or reversed stratospheric zonal winds, which prevented mountain wave penetration into the mesosphere. Instead, mountain waves encountered critical levels at lower altitudes and the observed wave structure in the mesosphere originated from other sources. For example, a large-amplitude semidiurnal tide was observed in the mesosphere on 28 and 29 January, and appears to have contributed to significant instability and small-scale structures at higher altitudes. The resulting energy deposition was found to be competitive with summertime values. Hence, our MaCWAVE measurements as a whole are the first to characterize influences in the MLT region of planetary wave activity and related stratospheric warmings during both winter and summer.
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页码:1159 / 1173
页数:15
相关论文
共 49 条
[1]  
BACMEISTER JT, 1994, WEATHER FORECAST, V9, P241, DOI 10.1175/1520-0434(1994)009<0241:AAFFMW>2.0.CO
[2]  
2
[3]   High Rossby-wave activity in austral winter 2002:: Modulation of the general circulation of the MLT during the MaCWAVE/MIDAS northern summer program -: art. no. L24S03 [J].
Becker, E ;
Müllemann, A ;
Lübken, FJ ;
Körnich, H ;
Hoffmann, P ;
Rapp, M .
GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (24) :1-4
[4]   Rocket probing of PMSE and NLC -: Results from the recent MIDAS/MACWAVE campaign [J].
Blix, TA ;
Bekkeng, JK ;
Latteck, R ;
Lübken, FJ ;
Rapp, M ;
Schöch, A ;
Singer, W ;
Smiley, B ;
Strelnikov, B .
CHEMISTRY, DYNAMICS AND LAYERED STRUCTURES OF THE ATMOSPHERE, 2003, 31 (09) :2061-2067
[5]   On Doppler-spreading models of internal waves [J].
Broutman, D ;
Macaskill, C ;
McIntyre, ME ;
Rottman, JW .
GEOPHYSICAL RESEARCH LETTERS, 1997, 24 (22) :2813-2816
[6]   Coordinated investigation of plasma and neutral density fluctuations and particles during the MaCWAVE/MIDAS summer 2002 program [J].
Croskey, CL ;
Mitchell, JD ;
Goldberg, RA ;
Blix, TA ;
Rapp, M ;
Latteck, R ;
Friedrich, M ;
Smiley, B .
GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (24) :1-5
[7]  
DUNKERTON TJ, 1982, J ATMOS SCI, V39, P1711, DOI 10.1175/1520-0469(1982)039<1711:SPOGWS>2.0.CO
[8]  
2
[9]  
ECKERMANN SD, 1997, J ATMOS SCI, V54, P2544
[10]   ON THE INTERACTIONS BETWEEN GRAVITY-WAVES AND THE DIURNAL PROPAGATING TIDE [J].
FORBES, JM ;
JUN, G ;
MIYAHARA, S .
PLANETARY AND SPACE SCIENCE, 1991, 39 (09) :1249-1257