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DOI10.5194/acp-21-1357-2021
Secular change in atmospheric Arĝ•N2 and its implications for ocean heat uptake and Brewer-Dobson circulation
Ishidoya S.; Sugawara S.; Tohjima Y.; Goto D.; Ishijima K.; Niwa Y.; Aoki N.; Murayama S.
发表日期2021
ISSN1680-7316
起始页码1357
结束页码1373
卷号21期号:2
英文摘要Systematic measurements of the atmospheric Ar=N2 ratio have been made at ground-based stations in Japan and Antarctica since 2012. Clear seasonal cycles of the Ar=N2 ratio with summertime maxima were found at middleto high-latitude stations, with seasonal amplitudes increasing with increasing latitude. Eight years of the observed Ar=N2 ratio at Tsukuba (TKB) and Hateruma (HAT), Japan, showed interannual variations in phase with the observed variations in the global ocean heat content (OHC). We calculated secularly increasing trends of 0.75±0.30 and 0.89±0.60 per meg per year from the Ar=N2 ratio observed at TKB and HAT, respectively, although these trend values are influenced by large interannual variations. In order to examine the possibility of the secular trend in the surface Ar=N2 ratio being modified significantly by the gravitational separation in the stratosphere, two-dimensional model simulations were carried out by arbitrarily modifying the mass stream function in the model to simulate either a weakening or an enhancement of the Brewer-Dobson circulation (BDC). The secular trend of the Ar=N2 ratio at TKB, corrected for gravitational separation under the assumption of weakening (enhancement) of BDC simulated by the 2-D model, was 0.60±0.30 (0.88±0.30) per meg per year. By using a conversion factor of 3.5×10-23 per meg per joule by assuming a one-box ocean with a temperature of 3.5 °C, average OHC increase rates of 17.1±8.6 ZJ yr-1 and 25.1±8.6 ZJ yr-1 for the period 2012-2019 were estimated from the corrected secular trends of the Ar=N2 ratio for the weakened- and enhanced- BDC conditions, respectively. Both OHC increase rates from the uncorrected- and weakened-BDC secular trends of the Ar=N2 ratio are consistent with 12.2±1.2 ZJ yr-1 reported by ocean temperature measurements, while that from the enhanced-BDC is outside of the range of the uncertainties. Although the effect of the actual atmospheric circulation on the Ar=N2 ratio is still unclear and longer-term observations are needed to reduce uncertainty of the secular trend of the surface Ar=N2 ratio, the analytical results obtained in the present study imply that the surface Ar=N2 ratio is an important tracer for detecting spatiotemporally integrated changes in OHC and BDC. © Author(s) 2021.
语种英语
scopus关键词annual variation; atmospheric circulation; sea surface temperature; secular variation; spatial variation; stratosphere; temporal variation; Antarctica; Japan
来源期刊ATMOSPHERIC CHEMISTRY AND PHYSICS
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/247186
作者单位Environmental Management Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, 305-8569, Japan; Faculty of Education, Miyagi University of Education, Sendai, 980-0845, Japan; Center for Environmental Measurement and Analysis, National Institute for Environmental Studies, Tsukuba, 305-8506, Japan; Division for Research and Education, National Institute of Polar Research, Tokyo, 190-8518, Japan; Department of Climate and Geochemistry Research, Meteorological Research Institute, Tsukuba, 305-0052, Japan
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Ishidoya S.,Sugawara S.,Tohjima Y.,等. Secular change in atmospheric Arĝ•N2 and its implications for ocean heat uptake and Brewer-Dobson circulation[J],2021,21(2).
APA Ishidoya S..,Sugawara S..,Tohjima Y..,Goto D..,Ishijima K..,...&Murayama S..(2021).Secular change in atmospheric Arĝ•N2 and its implications for ocean heat uptake and Brewer-Dobson circulation.ATMOSPHERIC CHEMISTRY AND PHYSICS,21(2).
MLA Ishidoya S.,et al."Secular change in atmospheric Arĝ•N2 and its implications for ocean heat uptake and Brewer-Dobson circulation".ATMOSPHERIC CHEMISTRY AND PHYSICS 21.2(2021).
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