专题——农业基础性长期性科技工作

不同管理模式下土壤质量演变的研究态势分析——基于文献计量

展开
  • 1.中国农业科学院农业资源与农业区划研究所,北京 100081
    2.耕地培育技术国家工程实验室,北京 100081
    3.武汉理工大学资源与环境工程学院,武汉 430070
冉继伟,男,硕士研究生,研究方向:环境化学与污染防治;E-mail: 2862099492@qq.com

收稿日期: 2020-12-01

  网络出版日期: 2021-03-11

基金资助

农业科技创新联盟建设-农业基础性长期性科研工作(Y2017LM06)

A Bibliometric Analysis of the Research Status of Soil Quality Evolution under Different Management Modes

Expand
  • 1.Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Beijing 100081, China
    2.National Engineering Laboratory for Improving Quality of Arable Land, Beijing 100081, China
    3.School of Resources and Environmental Engineering, Wuhan University of Technology, Wuhan 430070, China

Received date: 2020-12-01

  Online published: 2021-03-11

摘要

目的

随着人与土地资源的矛盾加剧,集约化种植下农田土壤质量演变受到了国内外学者的广泛关注。客观分析不同管理模式下土壤质量研究的发展脉络与现状,明确当前的研究前沿与热点问题,为耕地质量领域研究提供参考。

方法

利用文献计量学方法,基于Web of Science和CNKI数据库,根据发文量、发文国家、发文机构、载文期刊、论文被引频次及关键词方面分析近30年来土壤质量研究的发展态势、前沿领域以及国际合作状况等。

结论

分析发现,该领域在时间序列上的相关文献数量整体保持良好的上升趋势;美国、中国、印度、巴西、加拿大是国际文献发文量较多的国家;共现网络图谱分析表明,长期施肥及耕作、轮作等措施与土壤养分、土壤结构、土壤生物与群落结构、土壤功能与监测评价仍是当前土壤质量研究的热点。近年来国内相关研究逐渐向基于土壤生物学土壤质量提升模式方向靠拢,但与国际领先水平仍有一定差距。【展望】土壤生物学在土壤质量演变中的机理研究、土壤生态系统服务功能的量化及其应用可能是未来该领域研究的两大热点,综合利用信息技术、生物技术及大数据分析技术来实现土壤质量动态监测与预测预警是未来土壤质量研究的重要方向。

本文引用格式

冉继伟, 李鑫, 田彦芳, 邬磊, 孙楠, 徐明岗, 张文菊 . 不同管理模式下土壤质量演变的研究态势分析——基于文献计量[J]. 农业大数据学报, 2020 , 2(4) : 95 -106 . DOI: 10.19788/j.issn.2096-6369.200412

Abstract

Objective

As human pressures on land resources intensify, the evolution of farmland soil quality under intensive cultivation has attracted extensive attention from scholars around the world. Objective analysis of the development context and current status of soil quality research under different management modes can identify the current research frontiers and leading research topics, and provide reference for cultivated land quality research.

Methods

Using bibliometrics based on the Web of Science and China National Knowledge Infrastructure (CNKI) databases, the development trends, frontier fields and status of collaborative soil quality research over the past 30 years were analyzed in terms of the volume, country and institution of publication, as well as citation frequency of papers and keywords.

Results

It was found that the number of relevant articles in the field of time series increased steadily overall, and that the United States, China, India, Brazil and Canada had the highest output of international collaborative research publications. Co-occurrence network analysis showed that long-term fertilization, tillage and crop rotation, as well as measures such as soil nutrients, structure, biology, community structure, function, monitoring and evaluation were still leading topics in soil quality research. In recent years, domestic research has gradually moved toward the soil quality improvement model based on soil biology, but is still somewhat behind the level of current international research. [Prospect] The mechanism of soil biology in the process of soil quality improvement and the quantification of soil ecosystem service function will become two leading research topics in the near future. The combination of information technology, biotechnology and big data analysis technology to perfect dynamic monitoring and evaluation of soil quality will also attract more attention for soil quality improvement and soil health in the future.

参考文献

1 朱永官,李刚,张甘霖,等. 土壤安全:从地球关键带到生态系统服务[J]. 地理学报, 2015, 70(12): 1859-1869.
1 Zhu Y G, Li G, Zhang G L, et al. Soil Security: From Earth's Critical Zone to Ecosystem Services. Acta Geographica Sinica, 2015, 70(12): 1859-1869.
2 Doran J W, Parkin T.B. Defining and assessing soil quality [J]. Soil Science Society of America Journal Special Publication, 1994, (35): 3-21.
3 Karlen D L, Mausbach M J, Doran J W, et al. Soil quality: A concept, definition, and framework for evaluation (a guest editorial)[J]. Soil Science Society of America Journal, 1997, 61(1): 4-10.
4 温良友,孔祥斌,辛芸娜,等. 对耕地质量内涵的再认识[J]. 中国农业大学学报, 2019, 24(03): 156-164.
4 Wen L Y, Kong X B, Xin Y N, et al. Evolution of cultivated land quality connotation and its recognition[J]. Journal of China Agricultural University, 2019, 24(03): 156-164.
5 沈仁芳,陈美军,孔祥斌,等. 耕地质量的概念和评价与管理对策[J]. 土壤学报, 2012, 49(06): 1210-1217.
5 Shen R F, Chen M J, Kong X B, et al. Conception and Evaluation of Quality of Arable Land and Strategies For its Management[J]. Acta Pedologica Sinic, 2012, 49(06): 1210-1217.
6 Bünemann E K, Bongiorno G, Bai Z, et al. Soil Quality-A Critical Review[J]. Soil Biology and Biochemistry, 2018, 120: 105-125.
7 Lehmann J, Bossio D A, Koge-Knabner I, et al. The Concept and Future Prospects of Soil Health [J]. Nature Reviews Earth & Environment, 2020, 1(10): 544-553.
8 Tebrügge F, Düring R A. Reducing Tillage Intensity–A Review of Results from a Long-term Study in Germany [J].Soil & Tillage Research, 1999, 53(1):15–28.
9 Karlen D L., Veum K S., Sudduth K A, et al. Soil Health Assessment: Past Accomplishments, Current activities, and Future Opportunities [J]. Soil & Tillage Research, 2019, 195: 104365.
10 吕真真,吴向东,侯红乾,等. 有机-无机肥配施比例对双季稻田土壤质量的影响[J]. 植物营养与肥料学报, 2017, 23(04): 904-913.
10 Lv Z Z, Wu X D, Hou H Q, et al. Effect of Different Application Ratios of Chemical and Organic Fertilizers on Soil Quality in Double Cropping Paddy Fields [J]. Journal of Plant Nutrition and Fertilizers, 2017, 23(04): 904-913.
11 吴玉红,田霄鸿,南雄雄,等. 基于因子和聚类分析的保护性耕作土壤质量评价研究[J]. 中国生态农业学报, 2010, 18(02): 223-228.
11 Wu Y H, Tian X H, Nan X X, et al. Evaluation of Soil Quality Under Conservation Tillage via Factor and Cluster Analyses [J]. Chinese Journal of Eco-Agriculture, 2010, 18(02): 223-228.
12 Sithole N J, Magwaza L S, Mafongoya P L. Conservation Agriculture and Its Impact on Soil Quality and Maize Yield: A South African Perspective [J]. Soil & Tillage Research, 2016, 162: 55-67.
13 刘占锋,傅伯杰,刘国华,等. 土壤质量与土壤质量指标及其评价[J]. 生态学报, 2006,(03):901-913.
13 Liu Z F, Fu B J, Liu G H, et al. Soil Quality: Concept, Indicators and Its assessment [J]. Acta Ecologica Sinica, 2006,(03): 901-913.
14 Diacono M, Montemurro F. Long-term Effects of Organic Amendments on Soil Fertility-A Review [J]. Agronomy for Sustainable Development, 2010, 30(2): 401-422.
15 徐明岗,卢昌艾,张文菊,等. 我国耕地质量状况与提升对策[J]. 中国农业资源与区划, 2016, 37(07): 8-14.
15 Xu M G, Lu C A, Zhang W J, et al. Situation of The Quality of Arable Land in China and Improvement Strategy [J]. Chinese Journal of Agricultural Resources and Regional Planning, 2016, 37(07): 8-14.
16 朱永官, 彭静静, 韦中, 等. 土壤微生物组与土壤健康[J/OL]. 中国科学: 生命科学:1-11[2021-01-08]..
16 Zhu Y G, Peng J J, Wei Z, et al. Linking the soil microbiome to soil health[J/OL]. Scientia Sinica(Vitae):1-11[2021-01-08]..
17 Ritz K, Black H I J, Campbell C D, et al. Selecting biological indicators for monitoring soils: A framework for balancing scientific and technical opinion to assist policy development[J]. Ecological Indicators, 2009, 9(06): 1212–1221.
18 Hermans S M, Buckley H L, Case B S, et al. Using soil bacterial communities to predict physico-chemical variables and soil quality[J]. Microbiome, 2020, 8(01): 79.
19 Vincent Quentin, Auclerc Apolline, Beguiristain Thierry,et al. Assessment of derelict soil quality: Abiotic, biotic and functional approaches[J]. The Science of the Total Environment, 2018, 613-614(feb.1): 990-1002.
20 Xianping Li, Huimin Zhu, Manqiang Liu. Agriculture erases climate constraints on soil nematode communities across large spatial scales[J]. Global Change Biology, 2020, 26(2): 919-930.
21 高凯. 文献计量分析软件VOSviewer的应用研究[J]. 科技情报开发与经济, 2015, 25(12): 95-98.
21 Gao K. Research on the Application of Bibliometric Analysis Software VOSviewer [J]. Journal of Library and Information Science, 2015, 25(12): 95-98.
22 Glaser B, Lehmann J, Zech W. Ameliorating physical and chemical properties of highly weathered soils in the tropics with charcoal-a review[J]. Biology and Fertility of Soils, 2002, 35(4): 219-230.
23 Bandick A K, Dick R P. Field management effects on soil enzyme activities[J]. Soil Biology &Biochemistry, 1999, 31(11): 1471-1479.
24 Reeves DW. The role of soil organic matter in maintaining soil quality in continuous cropping systems[J]. Soil & Tillage Research, 1997, 43(1-2): 131-167.
25 Crews T E, Kitayama K, Fownes J H. Changes in soil phosphorus fractions and ecosystem dynamics across a long chronosequence in Hawaii[J]. Ecology, 1995, 76(5): 1407-1424.
26 Ghani A, Dexter M, Perrott, K W. Hot-water extractable carbon in soils a sensitive measurement for determining impacts of fertilization, grazing and cultivation[J]. Soil Biology & Biochemistry, 2003, 35(9): 1231-1243.
27 Mariangela Diacono, Francesco Montemurro. Long-term effects of organic amendments on soil fertility. A review [J]. Agronomy for Sustainable Development, 2010, 30(2): 401-422.
28 Follett RF. Soil management concepts and carbon sequestration zin cropland soils[J]. Soil & Tillage Research, 2001, 31(1-2):77-92.
29 Kumar K, Goh K M. Crop residues and management practices: Effects on soil quality, soil nitrogen dynamics, crop yield, and nitrogen recovery[J]. Advances in Agronomy, 2000, 68:197-319.
30 Karlen D L, Wollenhaupt N C, Erbach D C, et al. Crop Residue Effects on Soil Quality Following 10-years of No-till Corn [J]. Soil & Tillage Research, 1994, 31(2/3): 149-167.
31 Sharma K L, Mandal U K, Srinivas K, et al. Long-term Soil Management Effects on Crop Yields and Soil Quality in a Dryland Alfisol [J]. Soil &Tillage Research, 2005, 83(2): 246-259.
32 Leinweber P, Schulten H R, Korschens M. Hot Water Extracted Organic Matter: Chemical Composition and Temporal Variations in a Long-term Field Experiment [J]. Biology & Fertility of Soils, 1995, 20(1): 17-23.
33 Yang X M, Wander M M. Temporal changes in dry aggregate size and stability: tillage and crop effects on a silty loam Mollisol in Illinois [J]. Soil & Tillage Research, 1998,(3): 173-183.
34 Kamau S, Barrios E, Karanja N K, et al. Dominant Tree Species and Earthworms Affect Soil Aggregation and Carbon Content Along a Soil Degradation Gradient in an Agricultural Landscape [J]. Geoderma, 2020, 359: 113983.
35 Stcker C M, Adilson L B, Stumpf L, et al. Short-term Soil Physical Quality Improvements Promoted by an Agroforestry System [J]. Agroforestry Systems, 2020,94: 2053-2064.
36 Sinha N K, Chopra U K, Singh A K. Cropping System Effects on Soil Quality for Three Agro-ecosystems in India [J]. Experimental Agriculture, 2014,50(3): 321-342.
37 Lv FL, Song J S, Giltrap D, et al. Crop Yield and N2O Emission Affected by Long-term Organic Manure Substitution Fertilizer under Winter Wheat-summer Maize Cropping System [J]. Science of The Total Environment, 2020, 732: 139321.
38 Liu X, Zhou J, Chi Z, et al. Biochar Provided Limited Benefits for Rice Yield and Greenhouse Gas Mitigation Six Years Following an Amendment in a Fertile Rice Paddy [J]. Catena, 2019,179: 20-28.
39 程琨, 岳骞, 徐向瑞, 等. 土壤生态系统服务功能表征与计量[J]. 中国农业科学, 2015, 48(23): 4621-4629.
39 Chen K, Yue Q, Xu X R, et al. Characterizing and Quantifying Soil Resilience for Ecosystem Services [J] . Scientia Agricultura Sinica, 2015, 48(23): 4621-4629.
40 Thoumazeau A, Bessou C, Panklang P, et al. Biofunctool?: a new set of indicators to assess the impact of land management onsoil functioning [A]. WUR, ISRIC, IBED. Book of abstarcts of the Wageningen Soil Conference 2019[C]. Wageningen: Wageningen University and Research, Résumé, 64.
41 赵方杰, 谢婉滢, 汪鹏. 土壤与人体健康[J]. 土壤学报, 2020, 57(1): 1-11.
41 Zhao F J, Xie W Y, Wang P. Soil and Human Health[J]. Acta Pedologica Sinica, 2020, 57(1): 1-11.
42 Zhong W, Gu T, Wang W, et al. The Effects of Mineral Fertilizer and Organic Manure on Soil Microbial Community and Diversity [J]. Plant and Soil, 2010, 326(s1-2): 523.
43 Li X, Ding L, Li X, et al. Abundance, Diversity, and Structure of Geobacteraceae Community in Paddy Soil under Long-term Fertilization Practices [J]. Applied Soil Ecology, 2020,153:103577.
44 Livia B, Uwe L, Frank B. Microbial Biomass, Enzyme Activities and Microbial Community Structure in Two European Long-term Field Experiments [J]. Agriculture, Ecosystems & Environment, 2005, 109(1-2): 141-152.
45 Davide F, Elke S, Guillaume L, et al. Mineral vs. Organic Amendments: Microbial Community Structure, Activity and Abundance of Agriculturally Relevant Microbes Are Driven by Long-Term Fertilization Strategies [J]. Frontiers in Microbiology, 2016, 7(289).
46 褚海燕,马玉颖,杨腾, 等. “十四五”土壤生物学分支学科发展战略[J]. 土壤学报, 2020, 57(05): 1105-1116.
46 Chu H Y, Ma Y T, Yang T, et al. The Strategies for Development of the Sub-discipline of Soil Biology for the 14th Five-Year Plan [J]. Acta Pedologica Sinic, 2020, 57(05): 1105-1116.
47 Wang L, Li X. Steering soil microbiome to enhance soil system resilience[J]. Critical Rev Microbiol, 2019, 45: 743–753.
48 Toju H, Peay K G, Yamamichi M, et al. Core microbiomes for sustainable agroecosystems[J]. Nat Plants, 2018, 4: 247–257.
文章导航

/