Stepwise changes in stratospheric water vapor?

被引:29
|
作者
Fueglistaler, S. [1 ,2 ]
机构
[1] Princeton Univ, Dept Geosci, Princeton, NJ 08544 USA
[2] Princeton Univ, AOS, Princeton, NJ 08544 USA
关键词
QBO VARIATIONS; TAPE-RECORDER; PIPE MODEL; DATA SET; METHANE; TRANSPORT; AEROSOL; TRENDS; AGE; TEMPERATURE;
D O I
10.1029/2012JD017582
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
The sparse data available of stratospheric water vapor since the 1950s suggests a positive long-term trend that cannot be explained by the methane increase and what is known about temperature trends around the tropical tropopause, which constrain the amount of water entering the stratosphere. Here, we discuss the 1991-2005 time series of stratospheric water (and methane) measurements from the Halogen Occultation Experiment (HALOE). The high sampling, global coverage and measurement of methane render HALOE data ideal to check the data for self-consistency and to pinpoint the time of changes in entry mixing ratios. In addition to the well-known 'drop' in October 2000, the HALOE data at 10 hPa and less suggest a steep increase in entry mixing ratios shortly before the beginning of the HALOE measurements. Model calculations using simple representations of the stratospheric age of air spectrum in the tropics show that the very dry phase may be explained by a range of scenarios: A long (several years) dry phase followed by a step increase with amplitude 0.3 ppmv; a shorter (>= 1 year) dry pulse with amplitude 0.6 ppmv; or steep linear trends over about 2 years with total increases similar to the step scenarios. The drop in October 2000 coincides with anomalously large eddy heat fluxes in the Southern hemisphere and low tropopause temperatures, but no such relation is found for the situation around 1991. The coincidence with the eruption of Mt. Pinatubo is discussed. The evidence for the results presented here is circumstantial, but they would imply that decoupling between stratospheric water trends and tropical tropopause temperatures can occur on short timescales.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] LATITUDINAL PROFILES OF STRATOSPHERIC WATER-VAPOR
    KUHN, PM
    STEARNS, LP
    LOJKO, MS
    GEOPHYSICAL RESEARCH LETTERS, 1975, 2 (06) : 227 - 230
  • [32] Advection-condensation paradigm for stratospheric water vapor
    Liu, Y. S.
    Fueglistaler, S.
    Haynes, P. H.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2010, 115
  • [33] Assessing the climate impact of trends in stratospheric water vapor
    Forster, PMD
    Shine, KP
    GEOPHYSICAL RESEARCH LETTERS, 2002, 29 (06) : 10 - 1
  • [34] Low stratospheric water vapor measured by an airborne DIAL
    Ehret, G
    Fix, A
    Poberaj, G
    Assion, A
    Kiemle, C
    Hoinka, KP
    Busen, R
    IGARSS 2000: IEEE 2000 INTERNATIONAL GEOSCIENCE AND REMOTE SENSING SYMPOSIUM, VOL I - VI, PROCEEDINGS, 2000, : 1462 - 1464
  • [35] Isotopic composition of stratospheric water vapor: Measurements and photochemistry
    Johnson, DG
    Jucks, KW
    Traub, WA
    Chance, KV
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2001, 106 (D11) : 12211 - 12217
  • [36] RADIOMETRIC OBSERVATIONS OF VARIABILITY OF LOWER STRATOSPHERIC WATER VAPOR
    KUHN, PM
    STEARNS, LP
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1972, 53 (04): : 383 - +
  • [37] Stratospheric Water Vapor Feedback Disclosed by a Locking Experiment
    Huang, Yi
    Wang, Yuwei
    Huang, Han
    GEOPHYSICAL RESEARCH LETTERS, 2020, 47 (12)
  • [38] Climate and ozone response to increased stratospheric water vapor
    Shindell, DT
    GEOPHYSICAL RESEARCH LETTERS, 2001, 28 (08) : 1551 - 1554
  • [39] Impacts of tropical tropopause warming on the stratospheric water vapor
    Yan Xia
    Yi Huang
    Yongyun Hu
    Jun Yang
    Climate Dynamics, 2019, 53 : 3409 - 3418
  • [40] Lower stratospheric water vapor measured by UARS MLS
    Pumphrey, HC
    Clark, HL
    Harwood, RS
    GEOPHYSICAL RESEARCH LETTERS, 2000, 27 (12) : 1691 - 1694