地理学报 ›› 2021, Vol. 76 ›› Issue (10): 2379-2390.doi: 10.11821/dlxb202110004
杨建平1(), 哈琳1(
), 康韵婕2, 肖杰1, 陈虹举1,3, 贺青山1,3
收稿日期:
2020-10-09
修回日期:
2021-04-30
出版日期:
2021-10-25
发布日期:
2021-12-25
通讯作者:
哈琳(1990-), 女, 甘肃天水人, 硕士, 研究方向为冰冻圈变化与区域可持续发展。E-mail: hal213@126.com作者简介:
杨建平(1971-), 女, 山西方山人, 博士, 研究员, 研究方向为气候变化风险与适应、冰冻圈与区域可持续发展。E-mail: jianping@lzb.ac.cn
基金资助:
YANG Jianping1(), HA Lin1(
), KANG Yunjie2, XIAO Jie1, CHEN Hongju1,3, HE Qingshan1,3
Received:
2020-10-09
Revised:
2021-04-30
Published:
2021-10-25
Online:
2021-12-25
Supported by:
摘要:
在探讨“美丽冰冻圈”内涵的基础上,从自然属性与社会经济两个层面、致利与致害两条线,分析了“美丽冰冻圈”与区域可持续发展的关系,“美丽冰冻圈”、区域社会经济发展、人类福祉构成冰冻圈—人类社会经济复合命运共同体。基于中国冰冻圈要素及其变化影响的区域差异性,选取祁连山—河西地区、青藏高原三江源地区、横断山大香格里拉地区,分别代表冰冻圈水资源影响区、冰冻圈灾害影响区、冰冻圈旅游经济区,围绕冰冻圈水资源服务与绿洲经济、雪灾害风险与畜牧业经济、冰雪旅游与区域经济等核心问题,从冰冻圈资源服务与灾害风险视角,详细阐述了冰冻圈融入不同区域发展的途径与模式。在干旱半干旱内陆地区,冰冻圈主要以水源涵养、水量供给与径流调节服务,融入绿洲社会经济发展,是一种冰冻圈水资源支撑型区域发展模式;在青藏高原高寒区,冰冻圈生态环境决定了畜牧业经济的脆弱性,冰冻圈灾害负向影响畜牧业经济,是一种冰冻圈生态支撑+灾害影响型区域发展模式;在冰冻圈旅游经济区,直接依托冰雪资源发展冰雪旅游业,是一种基于冰冻圈资源的旅游经济驱动型区域发展模式。
杨建平, 哈琳, 康韵婕, 肖杰, 陈虹举, 贺青山. “美丽冰冻圈”融入区域发展的途径与模式[J]. 地理学报, 2021, 76(10): 2379-2390.
YANG Jianping, HA Lin, KANG Yunjie, XIAO Jie, CHEN Hongju, HE Qingshan. Approaches and models of 'Beautiful Cryosphere' integration into regional development, China[J]. Acta Geographica Sinica, 2021, 76(10): 2379-2390.
[1] | Hu Jingtao. Firmly March on the Path of Socialism with Chinese Characteristics and Strive to Complete the Building of Moderately Prosperous Society in All Respects: Report to the Eighteenth National Congress of the Communist Party of China. Beijing: People's Publishing House, 2012. |
[ 胡锦涛. 坚定不移沿着中国特色社会主义道路前进为全面建成小康社会而奋斗: 在中国共产党第十八次全国代表大会上的报告. 北京: 人民出版社, 2012.] | |
[2] | Xi Jinping. Secure a Decisive Victory in Building a Moderately Prosperous Society in All Respects and Strive for the Great Success of Socialism with Chinese Characteristics for a New Era: Report to the Nineteenth National Congress of the Communist Party of China. Beijing: People's Publishing House, 2017. |
[ 习近平. 决胜全面建成小康社会夺取新时代中国特色社会主义伟大胜利: 在中国共产党第十九次全国代表大会上的报告. 北京: 人民出版社, 2017.] | |
[3] | Ministry of Ecology and Environment of the People's Repubilic of China. Outline of National Ecologically Vulnerable Areas Protection Planning (No.92). http://www.mee.gov.cn/gkml/hbb/bwj/200910/t20091022_174613.htm , 2008. |
[中华人民共和国生态环境部. 《全国生态脆弱区保护规划纲要》环发〔2008〕92号. http://www.mee.gov.cn/gkml/hbb/bwj/200910/t20091022_174613.htm , 2008.] | |
[4] | Qin Dahe, Yao Tandong, Ding Yongjian, et al. An Introduction to Cryosphere Science. Beijing: Science Press, 2018. |
[ 秦大河, 姚檀栋, 丁永建, 等. 冰冻圈科学概论. 北京: 科学出版社, 2018.] | |
[5] | IPCC. Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change Cambridge: Cambridge University Press, 2007. |
[6] | Ding Yongjian, Yang Jianping, et al. Vulnerability and Adaptation of Cryosphere Change in China. Beijing: Science Press, 2019. |
[ 丁永建, 杨建平, 等. 中国冰冻圈变化的脆弱性与适应研究. 北京: 科学出版社, 2019.] | |
[7] | National Development and Reform Commission. "Ice and Snow Sports Development Planning (2016-2025)" Style Scripture No.645. https://www.ndrc.gov.cn/fzggw/jgsj/shs/sjdt/201611/t20161115_1121759.html , 2016-11-25. |
[中华人民共和国国家发展和改革委员会. 冰雪运动发展规划(2016—2025)》体经字[2016]645号. https://www.ndrc.gov.cn/fzggw/jgsj/shs/sjdt/201611/t20161115_1121759.html , 2016-11-25.] | |
[8] |
Hill M. Adaptive capacity of water governance: Cases from the Alps and the Andes. Mountain Research and Development, 2013, 33(3):248-259.
doi: 10.1659/MRD-JOURNAL-D-12-00106.1 |
[9] |
McDowell G, Ford J D, Lehner B, et al. Climate-related hydrological change and human vulnerability in remote mountain regions: A case study from Khumbu, Nepal. Regional Environmental Change, 2013, 13(2):299-310.
doi: 10.1007/s10113-012-0333-2 |
[10] | Haeberli W, Whiteman C. Snow and Ice-Related Hazards, Risks and Disasters. Amsterdam: Elsevier, 2014. |
[11] |
Fang Y P, Zhao C, Ding Y J, et al. Impacts of snow disaster on meat production and adaptation: An empirical analysis in the Yellow River source region. Sustainability Science, 2016, 11(2):249-260.
doi: 10.1007/s11625-015-0325-5 |
[12] |
Kääb A, Leinss S, Gilbert A, et al. Massive collapse of two glaciers in western Tibet in 2016 after surge-like instability. Nature Geoscience, 2018, 11(2):114-120.
doi: 10.1038/s41561-017-0039-7 |
[13] |
Ding Y J, Zhang S Q, Zhao L, et al. Global warming weakening the inherent stability of glaciers and permafrost. Science Bulletin, 2019, 64(4):245-253.
doi: 10.1016/j.scib.2018.12.028 |
[14] | Committee on Himalayan Glaciers, Hydrology, Climate Change, and Implications for Water Security, Himalayan Glaciers: Climate Change, Water Resources, and Water Security. Washington D C: The National Academies Press, 2012. |
[15] | Grover V I, Axel B, Jürgen H B, et al. Impact of Global Changes on Mountains: Responses and Adaptation Boca Taton, London, New York: CRC Press, 2015. |
[16] | French H, Slaymaker O. Changing Cold Environments: A Canadian Perspective. Chichester: John Wiley & Sons, Ltd, 2011. |
[17] | IPCC. Climate Change 2014: Impacts, Adaptation and Vulnerability Cambridge: Cambridge University Press, 2014. |
[18] | AMAP. Snow, Water, Ice and Permafrost in the Arctic (SWIPA) 2017. Arctic Monitoring and Assessment Programme (AMAP), Oslo, Norway, 2017. |
[19] |
Immerzeel W W, van Beek L P H, Bierkens M F P. Climate change will affect the Asian water towers. Science, 2010, 328(5984):1382-1385.
doi: 10.1126/science.1183188 pmid: 20538947 |
[20] | Nolin A W, Phillippe J, Jefferson A, et al. Present-day and future contributions of glacier runoff to summertime flows in a Pacific Northwest watershed: Implications for water resources. Water Resources Research, 2010, 46(12):W12509. DOI: 10.1029/2009WR008968. |
[21] |
Chen J L, Kang S C, Chen C S, et al. Changes in sea ice and future accessibility along the Arctic Northeast Passage. Global and Planetary Change, 2020, 195:103319. DOI: 10.1016/j.gloplacha.2020.103319.
doi: 10.1016/j.gloplacha.2020.103319 |
[22] | AMAP. Climate Change Update 2019: An Update to Key Findings of Snow, Water, Ice and Permafrost in the Arctic (SWIPA) 2017. Arctic Monitoring and Assessment Programme (AMAP), Oslo, Norway, 2019. |
[23] |
Boelens R. Cultural politics and the hydrosocial cycle: Water, power and identity in the Andean highlands. Geoforum, 2014, 57:234-247.
doi: 10.1016/j.geoforum.2013.02.008 |
[24] |
Allison E A. The spiritual significance of glaciers in an age of climate change. Wiley Interdisciplinary Reviews: Climate Change, 2015, 6(5):493-508.
doi: 10.1002/wcc.2015.6.issue-5 |
[25] |
Konchar K M, Staver B, Salick J, et al. Adapting in the shadow of Annapurna: A climate tipping point. Journal of Ethnobiology, 2015, 35(3):449-471.
doi: 10.2993/0278-0771-35.3.449 |
[26] |
Ding Y J, Mu C C, Wu T H, et al. Increasing cryospheric hazards in a warming climate. Earth-Science Reviews, 2021, 213:103500. DOI: 10.1016/j.earscirev.2020.103500.
doi: 10.1016/j.earscirev.2020.103500 |
[27] | Xiao Cunde, Wang Shijin, Qin Dahe. A preliminary study on cryosphere service function and its value estimation. Climate Change Research, 2016, 12(1):45-52. |
[ 效存德, 王世金, 秦大河, 冰冻圈服务功能及其价值评估初探. 气候变化研究进展, 2016, 12(1):45-52.] | |
[28] | Xiao Cunde, Su Bo, Wang Xiaoming, et al. Cascading risks to the deterioration in cryospheric functions and services. Chinese Science Bulletin, 2019, 64(19):1975-1984. |
[ 效存德, 苏勃, 王晓明, 等. 冰冻圈功能及其服务衰退的级联风险. 科学通报, 2019, 64(19):1975-1984.] | |
[29] |
Immerzeel W W, Lutz A F, Andrade M, et al. Importance and vulnerability of the world's water towers. Nature, 2020, 577:364-369.
doi: 10.1038/s41586-019-1822-y |
[30] |
Su B, Xiao C, Chen D, et al. Cryosphere services and human well-being. Sustainability, 2019, 11(16):4365. DOI: 10.3390/su11164365.
doi: 10.3390/su11164365 |
[31] | Vaughan D G, Comiso J C, Allison I J, et al. 2013. Observations: Cryosphere//Stocker TF, et al. Climate Change 2013: IPCC AR5. Cambridge: Cambridge University Press, 2013. |
[32] | Field C B, Barros V R, Dokken D J, et al. Technical summary//Field et al. Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. IPCC AR5 Cambridge, United Kingdom and New York, NY, USA: Cambridge University Press, 2014: 35-94. |
[33] | Richter-Menge J, Overland J E, Mathis J T, et al. Arctic Report Card 2017, 2017 http://www.arctic.noaa.gov/Report-Card . |
[34] |
Qin D H, Ding Y J, Xiao C D, et al. Cryospheric Science: Research framework and disciplinary system. National Science Review, 2018, 5(2):255-268.
doi: 10.1093/nsr/nwx108 |
[35] | Boy M, Thomson E S, Acosta Navarro J C, et al. Interactions between the atmosphere, cryosphere and ecosystems at northern high latitudes. Atmospheric Chemistry and Physics, 2019, 19(3):2015-2061. |
[36] | Wang Shijin, Xiao Cunde. Global cryospheric disaster at high risk areas: Impacts and trend. Chinese Science Bulletin, 2019, 64(9):890-900. |
[ 王世金, 效存德. 全球冰冻圈灾害高风险区: 影响与态势. 科学通报, 2019, 64(9):890-900.] | |
[37] | Xu Zhongmin, Cheng Guodong. The theory and application of fundamental orientations of the sustainable development systems. Scientia Geographica Sinica, 2001, 21(1):7-11. |
[ 徐中民, 程国栋. 可持续发展系统评价的属性细分理论与应用. 地理科学, 2001, 21(1):7-11.] | |
[38] | Lin Shu, Li Hongying, Dang Bing, et al. The latest evidences of a warm-wet climatic shift in Hexi Corridor, Gansu. Journal of Glaciology and Geocryology, 2014, 36(5):1111-1121. |
[ 林纾, 李红英, 党冰, 等. 甘肃河西走廊地区气候暖湿转型后的最新事实. 冰川冻土, 2014, 36(5):1111-1121.] | |
[39] | Ding Yongjian, Zhang Shiqiang, Chen Rensheng. Water Science Frontier Series: Introduction to Hydrology in Cold Regions. Beijing: Science Press, 2017: 18. |
[ 丁永建, 张世强, 陈仁升. 水科学前沿丛书: 寒区水文导论. 北京: 寒科学出版社, 2017: 18.] | |
[40] | Chen Rensheng, Zhang Shiqiang, Yang Yong, et al. Effects of Cryosphere Change on Runoff in the Cold Regions of Western China. Beijing: Science Press, 2019. |
[ 陈仁升, 张世强, 阳勇, 等. 冰冻圈变化对中国西部寒区径流的影响. 北京: 科学出版社, 2019.] | |
[41] | Liu Caihong, Yu Jinhua, Fang Ke, et al. Numerical simulation of the response of the snow disaster on the Tibetan Plateau to the anomalous tropical ocean temperature. Journal of the Meteorological Sciences, 2020, 40(6):810-818. |
[ 刘彩红, 余锦华, 方珂, 等. 青藏高原雪灾变化对热带海洋海温异常响应的数值模拟. 气象科学, 2020, 40(6):810-818.] | |
[42] | Lu Mengmeng, Wu Renguang, Yang Song, et al. Relationship between Eurasian cold-season snows and Asian summer monsoons: Regional characteristics and seasonality. Transactions of Atmospheric Sciences, 2020, 43(1):93-103. |
[ 鲁萌萌, 吴仁广, 杨崧, 等. 欧亚大陆冷季积雪与亚洲夏季风的关系: 区域特征与季节性. 大气科学学报, 2020, 43(1):93-103.] | |
[43] | Liu Qiao, Fan Jihui, Cheng Genwei, et al. Characteristics and exploitation of glacier resources for tourism in the Shangri-la ecotourism region in China. Territory & Natural Resources Study, 2006(1):63-64. |
[ 刘巧, 范继辉, 程根伟, 等. 川滇藏三省交界地区冰川旅游资源的特征及其开发. 国土与自然资源研究, 2006(1):63-64.] | |
[44] | China National Tourism Administration. Master Plan for Shangri-La Eco-Tourism Area of China (2007-2020). Beijing: China Travel & Tourism Press, 2008: 59-61. |
[中华人民共和国国家旅游局. 中国香格里拉生态旅游区总体规划(2007—2020), 北京: 中国旅游出版社, 2008: 59-61.] | |
[45] |
Wang Shijin, Qin Dahe, Ren Jiawen. Spatial development and distribution of glacier tourism in China. Scientia Geographica Sinica, 2012, 32(4):464-470.
doi: 10.13249/j.cnki.sgs.2012.04.464 |
[ 王世金, 秦大河, 任贾文. 中国冰川旅游资源空间开发布局研究. 地理科学, 2012, 32(4):464-470.] |
[1] | 李寻欢, 周扬, 陈玉福. 区域多维贫困测量的理论与方法[J]. 地理学报, 2020, 75(4): 753-768. |
[2] | 陆大道, 刘彦随, 方创琳, 陈明星, 王姣娥, 席建超. 人文与经济地理学的发展和展望[J]. 地理学报, 2020, 75(12): 2570-2592. |
[3] | 唐志鹏, 张进, 刘卫东. 自然过程与人文过程模拟之差异比较分析[J]. 地理学报, 2010, 65(12): 1581-1590. |
[4] | 岳天祥. 资源与环境模型标准文档库及其与GIS集成[J]. 地理学报, 2001, 56(1): 107-112. |
[5] | 郑度. 中国21世纪议程与地理学[J]. 地理学报, 1994, 49(6): 481-489. |