基于Web of Science(WOS)和中国知网(CNKI)文献数据库,采用文献计量学的原理方法,对2000—2020年间汉江流域相关研究的发文量、国际合作、主要作者、主要机构、期刊分布和关键词等进行了分析。结果表明:2000—2020年期间WOS和CNKI数据库收录汉江流域相关的论文分别有560篇和553篇,且基本保持稳定增长状态。WOS中相关论文涉及的国家有46个,其中我国的发文量占比86%,主要与美国、澳大利亚等国家合作。来自中国科学院武汉植物园的张全发研究员共发表43篇中外文论文,位列全球之首,且为WOS数据库中作者合作网络的中心。WOS数据库中论文发表在Journal of Hydroloy期刊的数量最多,占比4%以上;CNKI数据库中《长江流域与资源环境》发文量最多,占比7.7%。“气候变化”和“丹江口水库”是两个数据库中共同的高频关键词,表明汉江流域主要关注丹江口库区及气候变化对流域的影响。该研究成果可以为汉江流域未来的研究提供科学支撑。
Abstract
The number of research papers,cooperative nations,core authors,major institutions,source publications and key words of Hanjiang River research from 2000 to 2020 are analyzed by using bibliometric approach based on WOS and CNKI databases.Results demonstrate that: the WOS and CNKI databases collected 560 and 533 research papers regarding Hanjiang River Basin from 2000 to 2020,respectively,and this number maintained a steady growth.Authors from 46 countries involved in papers indexed by WOS,of which 86% are from China,mainly in cooperation with the United States and Australia.Chinese researcher Zhang Quan-fa from Wuhan Botanical Garden of Chinese Academy of Sciences has published 43 papers in total,ranking first in the world,staying in the center of the author's cooperation network in the WOS database.The Journal of Hydrology published the largest number of papers in the WOS database,accounting for more than 4%,while the Yangtze River Basin,Resources and Environment ranks top in the CNKI database,covering a proportion of 7.7%.Climate Change and Dangjiangkou Reservoir are common high-frequency keywords in the two databases,indicating that the Hanjiang River Basin is mainly concerned with the Danjiangkou Reservoir area and the impact of climate change on the river basin.The research findings offer scientific support for future research on the Hanjiang River Basin.
关键词
汉江 /
WOS /
CNKI /
合作 /
研究态势 /
文献计量
Key words
Hanjiang River /
WOS /
CNKI /
cooperation /
research trend /
bibliometric
{{custom_sec.title}}
{{custom_sec.title}}
{{custom_sec.content}}
参考文献
[1] AI L,SHI Z H,YUN W,et al.Spatial and Seasonal Patterns Instream Water Contamination across Mountainous Watersheds: Linkage with Landscape Characteristics[J].Journal of Hydrology,2015,523: 398-408.
[2] MAO P N,PANG J L,HUANG C L.Chemical Weathering Characteristics and Regional Comparative Study of the Loess Deposits in the Upper Hanjiang River[J].Acta Georaphica Sinica,2017,72(2): 279-291.
[3] 卢金友,林 莉.汉江生态经济带水生态环境问题及对策[J].环境科学研究,2020,33(5):1179-1186.
[4] 王 薇,郝兴顺,张春辉,等.汉中市肥料资源利用现状的调查[J].浙江农业科学,2018,59(8): 1454-1456.
[5] JI D,WELLS S A,YANG Z,et al.Impacts of Water Level Rise on Algal Bloom Prevention in the Tributary of the Three Gorges Reservoir,China[J].Ecological Engineering,2017,98: 70-81.
[6] XIA R,ZHANG Y,WANG G S,et al.Multi-factor Identification and Modelling Analyses for Managing Large River Algal Bloom[J].Environmental Pollution,2019,254,doi: 10.1016/j.envpol.2019.113056.
[7] CHENG B F,XIA R,ZHANG Y,et al.Characterization and Causes Analysis for Large Blooms in Large River System[J].Sustainable Cities and Society,2019,51,doi: 10.1016/j.scs.2019.101707.
[8] CHARITON M B,BOWES M J,HUTCHINS M G,et al. Mapping Eutrophication Risk from Climate Change: Future Phosphorus concentrations in English Rivers[J].Science of the Total Environment,2018,613: 1510-1526.
[9] NGUYEN T T N,NEMERY J,GRATIOT N,et al.Nutrient Dynamics and Eutrophication Assessment in the Tropical River System of Saigon-Dongnai(Southern Vietnam)[J].Science of the Total Environment,2019,653: 370-383.
[10] JARVIE H P,SMITH D R,NORTON L R,et al.Phosphorus and Nitrogen Limitation and Impairment of Headwaters Streams Relative to Rivers in Great Britain: A National Perspective on Eutrophication[J].Science of the Total Environment,2018,621: 849-862.
[11] CONLEY D J,PAERL H W,HOWARTH R W,et al.Controlling Eutrophication: Nitrogen and Phosphorus[J].Science,2019,323: 1014-1015.
[12] XIA R,WANG G S,ZHANG Y,et al.River Algal Blooms are Well Predicted by Antecedent Environmental Conditions[J].Water Research,2020,185,doi: 10.1016/j.watres.2020.116221.
[13] 李晓玲,吴 波.南水北调中线水源区汉江流域水环境容量研究[J].水土保持通报,2009,29(6): 221-224.
[14] 王钦安,马耀峰.南水北调中线工程陕南水源区水环境研[J].水资源与水工程学报,2008,19(1): 77-80.
[15] 许 策,李 晔,束继年,等.汉江流域荆门段面源污染负荷时空分布与污染现状评价[J].水土保持通报,2017,37(4): 63-68.
[16] 邱均平,王月芬.文献计量内容分析法[M].北京: 北京图书馆出版社,2008: 25.
[17] PALMER M A.Water Resources:Beyond Infrastructure[J].Nature,2010,467(7315): 534-535.
[18] VOROSMARTY C J,MCINTYRE P B,GESSNER M O, et al. Global Threats to Human Water Security and River Biodiversity[J].Nature,2010,467(7315): 555-561.
[19] BAKKER K.Water Security: Research Challenges and Opportunities[J].Science,2012,337(6097): 914-915.
[20] OCONNOR J E,DUDA J J,GRANT G E,et al.1000 Dams down and Counting[J].Sciences,2015,348(6234): 496-497.
[21] 刘 勇,王银堂,陈元芳,等.丹江口水库秋汛期长期径流预报[J].水科学进展,2010,21(6): 771-778.
[22] 冯小冲,王银堂,刘 勇,等.基于物理统计方法的丹江口水库月入库径流快报[J].河海大学学报(自然科学版),2011,39(3): 242-247.
[23] 池仕运,赵先富,高少波,等.丹江口水库秋季底栖动物群落状态和空间分布及其与环境因子的关系[J].生态学报,2021,41(3):1229-1241.
[24] 郭诗君,尹泰来,吴冬雨,等.1951—2019年丹江口库区降水量时空变化研究[J].人民长江,2020,51(增刊2):57-62.
[25] PIAO S,CIAIS P,HUANG Y,et al.The Impacts of Climate Change on Water Resources and Agriculture in China[J].Nature,2010(467): 43-51.Doi: 10.1038/nature09364.
[26] GUO Y,HUANG S,HUANG Q,et al.Propagation Thresholds of Meteorological Drought for Triggering Hydrological Drought at Various Levels[J].Science of the Total Environment,2020,712: 136502.
基金
中国科学院研究所自主部署项目(E0ZG281010);中国科学院青年创新促进会人才支撑专项(Y8ZG041003)