气候与全球变化

近47年环渤海地区不同级别降水事件变化

展开
  • 1. 天津市气候中心,天津 300074;
    2. 中国气象局气候研究开放室,国家气候中心,北京100080
郭军(1966-),男,天津人,高级工程师。主要从事气候变化与短期气候预测研究。 E-mail:guojun@cma.gov.cn

收稿日期: 2009-11-03

  修回日期: 2010-06-26

  网络出版日期: 2010-12-20

基金资助

国家"十一五"科技支撑计划课题(2007BAC03A01和2007BAC29B02);全国流域综合规划修编研究专题;中国气象局气候变化专项(CCSF-09-01)

Variations of precipitation of different categories in the Bohai Rim area in recent 47 years

Expand
  • 1. Tianjin Climate Center, Tianjin 300074, China;
    2. Laboratory for Climate Studies, National Climate Center, CMA, Beijing 100080, China

Received date: 2009-11-03

  Revised date: 2010-06-26

  Online published: 2010-12-20

摘要

利用1961~2007年逐日降水资料,分析了环渤海地区不同级别降水日数、降水量和降水强度的气候特征和变化趋势。结果表明:年及四季雨日均呈减少趋势,雨日的减少主要体现在微雨和小雨日数的显著减少;降水强度略有增加,但主要是源于微雨和小雨降水强度的增加;20世纪90年代以来,小雨和中雨雨量对年总降水量的贡献较大,极端强降水频率和降水量减少,其对年总降水量的贡献偏小,造成环渤海地区年降水量减少,气象干旱加重;雨日的减少使连续无降水事件频率加大,也在一定程度上加剧了干旱程度。

本文引用格式

郭军, 任国玉, 李明财 . 近47年环渤海地区不同级别降水事件变化[J]. 地理研究, 2010 , 29(12) : 2271 -2280 . DOI: 10.11821/yj2010120016

Abstract

In line with the global climate change, the surface air temperature in the Bohai Rim area significantly increased for the 20th century. Accompanying the change of surface air temperature, heavy and very heavy precipitation has greatly changed, especially in recent years. Changes in patterns of extreme precipitation events and the possible mechanism for the changes have received more and more attention worldwide. The study aims to investigate the climatic characters and changing trend of rainfall days, rainfall amount and rainfall intensity in the Bohai Rim area by using daily precipitation data from 1961 to 2007. The results show that the number of annual and seasonal rainfall days (days with rainfall more than 0.1 mm) significantly decreases, and the decrease of rainfall days dominantly results from the significant decline in trace and light rainfall days, especially in autumn. In contrast, rainfall intensity shows a weak increase, mainly due to the increase in trace and light rainfall intensities. In comparison of the contribution of different categories of precipitation to annual total rainfall, it is found that there is a significant interannual variation in the contribution. Since the 1990s, annual rainfall has mainly come from light and moderate rainfall, whereas extreme heavy rainfall has contributed less to the annual rainfall due to the decrease in frequency and amount of extreme heavy rain. The results indicate that the decrease of trace and light rainfall days, which leads to the increase in frequency of events of continuous non-rain days, might have partly exacerbated the extent of drought in this area. However, the decline of annual rainfall as a result of the decrease of heavy rain or rainstorms, which is the dominant contribution to total rainfall, is the main factor for producing the severe meteorological drought after 1980.

参考文献


[1] Climate Change 2007-The Physical Science Basis, Contribution of Working Group I to the Third Assessment Report of the IPCC. Solomon S, Qin D, et al, Cambridge: Cambridge University Press. 1996.

[2] Alexander L V, Zhang X, Peterson T C, et al. Global observed changes in daily climate extremes of temperature and precipitation. Journal of Geophysical Research, 2006, 111: D05109, doi: 10.1029/2005JD006290.

[3] Frich P, Alexander L V, Della-Marta P, et al. Observed coherent changes in climatic extremes during the second half of the twentieth century. Climate Research, 2002, 19: 193~212.

[4] Klein Tank A M G, K?nnen G P. Trends in indices of daily temperature and precipitation extremes in Europe, 1946-1999. Journal of Climate, 2003, 16: 3665~3680.

[5] Groisman P Y, Knight R W, Karl T R, et al. Contemporary changes of the hydrological cycle over the contiguous United States: Trends derived from in situ observations. Journal of Hydrometeorology, 2004, 5: 64~85.

[6] Dai A, Trenberth K E. Global variation in droughts and wet spells: 1900-1995. Geophysical Research Letters, 1998, 25(17): 3367~3370.

[7] 刘吉峰,丁裕国, 江志红.全球变暖加剧对极端气候概率影响的初步探讨. 高原气象, 2007, 26(4): 837~842.

[8] 王大钧, 陈列, 丁裕国. 近40年来中国降水量、雨日变化趋势及与全球温度变化的关系. 热带气象学报, 2006, 22(3): 283~289.

[9] 姜晓艳, 刘树华, 马明敏, 等. 东北地区近百年降水时间序列变化规律的小波分析. 地理研究, 2009, 28(2): 354~362.

[10] 蔡敏,丁裕国, 江志红. 我国东部极端降水时空分布及其概率特征. 高原气象, 2007, 26(2): 309~318.

[11] 苏布达, 姜彤, 任国玉, 等.长江流域1960~2004年极端强降水时空变化趋势. 气候变化研究进展, 2006, 2(1): 9~14.

[12] 翟盘茂, 潘晓华.中国北方近50年温度和降水极端事件变化研究. 地理学报, 2003, 58(1): 1~10.

[13] 刘小宁. 我国暴雨极端事件的气候变化特征. 灾害学, 1999, 14(1): 54~59.

[14] 王小玲, 翟盘茂. 1957~2004年中国不同强度级别降水的变化趋势特征. 热带气象学报, 2008, 24(5): 459~466.

[15] 李宁, 刘珍, 顾卫. 渤海与环渤海地区年降水量的统计分析. 地理研究, 2006, 25(6): 1022~1030.

[16] 施能, 黄先香, 杨扬. 1948~2000年全球陆地年降水量场趋势变化的时、空特征. 大气科学, 2003, 27(6): 971~982.

[17] 施能. 北半球冬季大气环流遥相关型的长期变化及其与我国气候变化的关系. 气象学报, 1996, 54(6): 675~683.

[18] 王颖, 施能, 顾骏强, 等. 中国雨日的气候变化. 大气科学, 2006, 30(1):162~170.

[19] 闵山山. 钱永甫.我国近40年各类降水事件的变化趋势. 中山大学学报(自然科学版), 2008, 47(3):105~111.

[20] 任国玉, 吴虹, 陈正洪.我国降水变化趋势的空间特征. 应用气象学报, 2000, 11(3):322~330.

[21] 宁 亮, 钱永甫.中国年和各季等级日降水量的变化趋势分析. 高原气象, 2008, 27(5):1010~1020.

[22] 孙凤华, 杨素英, 任国玉.东北地区降水日数、强度和持续时间的年代际变化. 应用气象学报, 2007, 18(5):610~618.

[23] 辛渝, 崔彩霞, 张广兴, 等.博州不同级别降水及极端降水事件的时空变化. 中国沙漠, 2008, 28(2):362~369.

[24] Rosenfeld D. Suppression of rain and snow by urban and industrial air pollution. Science, 2000, 287:1793~1796.

[25] 石广玉, 王喜红, 张立盛,等.人类活动对气候影响的研究 Ⅱ. 对东亚和中国气候变化的影响. 气候与环境研究, 2002, 7(2):255~266.

[26] 秦大河, 丁一汇, 苏纪兰.中国气候与环境演变. 北京: 科学出版社, 2005. 562.

[27] 段婧, 毛节泰.华北地区气溶胶对区域降水的影响. 科学通报, 2008, 53(23):2947~2955.

[28] 丁一汇, 任国玉.中国气候变化科学概论. 北京: 气象出版社, 2008. 281.

[29] 周连童, 黄荣辉.关于我国夏季气候年代际变化特征及其可能成因的研究. 气候与环境研究, 2003, 8(3):274~290.

文章导航

/