基于生态系统多功能性的农田土壤健康评价
作者:
中图分类号:

S159.2

基金项目:

中国科学院野外站联盟项目(KFJ-SW-YW035-3)和科技部基础专项项目(2015FY10700)资助


Farmland Soil Health Assessment Based on Ecosystem Multi-functionality
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Fund Project:

the Field Station Alliance Project of Chinese Academy of Sciences (No. KFJ-SW-YW035) and the National Basic Work of Science and Technology of China (No. 2015FY10700)

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    摘要:

    农田土壤健康状况不仅影响作物产量和品质,还影响大气、水环境质量和生物安全,因而农田土壤健康评价应将土壤生产能力与生态环境效应结合考虑。基于土壤生态系统多功能性,将土壤功能归纳为作物生产、持水净水、养分运移与缓冲、碳固存及栖息地与多样性等5项功能。进一步针对每项功能,按照固有属性和动态属性两个方面分别选取基础项指标,同时考虑具有区域特点的威胁土壤功能发挥的限制项指标,并采用2个乘数来体现限制因子对固有和动态属性影响的差异性,共同构建农田生态系统土壤健康评价指标体系。以中国生态系统研究网络(CERN)内位于黄淮海平原的封丘、栾城和禹城3个实验站典型农田生态系统为例,应用所建立的指标体系,采用灰色关联分析法对其土壤健康状况进行综合评价。结果显示,3个农业生态实验站土壤健康状况总体相当且处于较高水平,但仍有所差异,表现为禹城 > 栾城 > 封丘,且作物生产功能与产量R2达到0.60,验证表明该评价体系比较合理。因此,基于多功能性的土壤健康评价方法可为进一步探究土壤健康长期变化趋势,实施土壤资源有效管理提供一定参考。

    Abstract:

    [Objective] Soil is an important carrier of cultivated land and the basis of agro-ecosystems. Farmland soil health not only affects crop production and food quality, but also regulates local climate and water environment quality, and sustains biological safety. Therefore, the assessment of farmland soil health should take into account both soil productivity and eco-environment effects. As a living ecosystem, soil varies in health status region, time and management practice. A reasonable assessment index system and a set of evaluation methods are the premise and foundation of soil health assessment. The aim of this study was to gain a deeper understanding of the connotations of soil function and soil health, and to explore the actual state of farmland soil health in China.[Method] In this paper, the Fengqiu, Luancheng and Yucheng ecological experiment stations in the Huang-Huai-Hai Plain, the most important grain producing area in China, were selected as objects for the study. Soil functions were generalized into five groups:crop production, water holding and purification, nutrient transport and buffering, carbon sequestration, and habitat and diversity. By referring to the German Müncheberg index scheme, evaluation indices were divided into basic ones and hazard ones. Out of each function, basic indices were selected in the light of their attributes, inherent or dynamic, separately, and got combined with region-specific restricting indices that might threaten soil functions to form a soil health assessment index system for agro-ecosystems. Among basic indices, the inherent attributes were classified or selected from climate, topography, hydrology and soil conditions, and the dynamic attributes were divided into three aspects including physical, chemical and biological indices. On considering that the restricting indices impact their inherent and dynamic properties to varying extent, two multipliers were defined for the two separately. In the end, based on the established soil health assessment index system, soil health of the three typical agro-ecosystems were assessed using the gray correlation analysis method.[Result] Results show:(1) The three agricultural ecological experiment stations all gained quite high soil health scores in the assessment, but still differed slightly, showing an order of Yucheng > Luangcheng > Fengqiu; (2) Farmland management methods also affect soil health, so the farmlands with no fertilizer applied were certainly lower than fertilized ones in productivity; in the Yucheng station, No.2 auxiliary plot applied with fertilizer and straw was the highest in soil health score among all the comprehensive and auxiliary observation fields; and (3) R2 between the crop production function and the maize yield reached 0.60.[Conclusion] (1) On the whole, the typical farmlands of the Huang-Huai-Hai Plain are fairly good in soil health, displaying an order of Yucheng > Luancheng > Fengqiu. (2) By referring to the Müncheberg index scheme, the revised soil health assessment framework has assigned different multipliers to the inherent and dynamic properties, which proves to be quite reasonable. So the multi-functionality-based soil health assessment system may serve as reference for further exploring trends of long-term evolution of soil health, and implementing effective management of soil resources.

    参考文献
    [1] Warkentin B P. The changing concept of soil quality[J]. Journal of Soil and Water Conservation,1995,50(3):226-228.
    [2] Zhao Q G,Sun B. Soil quality and sustainable environment:I. The definition of soil quality and assessment method[J]. Soils,1997,29(3):113-120.[赵其国,孙波. 土壤质量与持续环境:I.土壤质量的定义及评价方法[J].土壤,1997,29(3):113-120.]
    [3] Doran J W,Parkin T B. Defining and assessing soil quality[M]//SSSA. Special publications. Madison,WI,USA:Soil Science Society of America and American Society of Agronomy,1994:1-21.
    [4] European Commission(EC). Communication from the Commission to the Council,the European Parliament,the European Economic and Social Committee and Committee of the Regions "Thematic Strategy for Soil Protection"(COM(2006)231). Available online:http://eurlex.europa.eu/legal-content/EN/TXT/?uri=CELEX:52006DC0231.
    [5] Glæsner N,Helming K,de Vries W. Do current European policies prevent soil threats and support soil functions?[J]. Sustainability,2014,6(12):9538-9563.
    [6] FAO and ITPS,2015. Status of the World's Soil Resources(SWSR)-Main Report. Food and Agriculture Organization of the United Nations and Intergovernmental Technical Panel on Soils,Rome,Italy.
    [7] Liang S Y,Wu K N. Interpretation of evaluation indicators of soil functions[J]. Chinese Journal of Soil Science,2013,44(5):1035-1040.[梁思源,吴克宁. 土壤功能评价指标解译[J]. 土壤通报,2013,44(5):1035-1040.]
    [8] United States Department of Agriculture(USDA)-Forest Service:Proposed action for forest plan revision- Nez Perce-Clearwater National Forests[J]. Soil Quality and Productivity,2014.
    [9] 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.
    [10] Warkentin B P,Fletcher H F. Soil quality for intensive agriculture[C]. Proceedings of the International Seminar on Soil Environment and Fertility Management in Intensive Agriculture. Tokyo:National Institute of Agricultural Science,1977,594-598.
    [11] Powlson D S. Soil health-useful terminology for communication or meaningless concept? Or both?[J]. Frontiers of Agricultural Science and Engineering,2020,7(3):246-250.
    [12] Cao Z H,Zhou J M. Soil quality of China[M]. Beijing:Science Press,2008.[曹志洪,周健民. 中国土壤质量[M]. 北京:科学出版社,2008.]
    [13] Natrual Resources Conservation Services:Soil Health. 2012. Retrieved May 20,2020 from http://www.nrcs.usda.gov/wps/portal/nrcs/main/soils/health/.The Soil Renaissance accepted this definition in 2014.
    [14] Bünemann E K,Bongiorno G,Bai Z G,et al. Soil quality-A critical review[J]. Soil Biology and Biochemistry,2018,120:105-125.
    [15] Moebius-Clune B N,Moebius-Clune D J,Gugino B K,et al. Comprehensive assessment of soil health-the cornell framework. 3.2 edn. Geneva:Cornell University,2016:12.
    [16] Calzolari C,Ungaro F,Filippi N,et al. A methodological framework to assess the multiple contributions of soils to ecosystem services delivery at regional scale[J]. Geoderma,2016,261:190-203.
    [17] Rachman L M. Technical development to assess soil health using soil health index in Indonesia[J]. Journal of Applied and Physical Sciences,2018,4(3):79-85.
    [18] McKenzie D C. Visual soil examination techniques as part of a soil appraisal framework for farm evaluation in Australia[J]. Soil and Tillage Research,2013,127:26-33.
    [19] Mueller L,Saparov A,Lischeid G. Novel measurement and assessment tools for monitoring and management of land and water resources in agricultural landscapes of central Asia[M]. Cham:Springer International Publishing,2014.
    [20] Hong S M,Hao J M,Zhou N,et al. Change of cultivated land and its impact on grain production pattern in Huang-Huai-Hai Plain[J]. Transactions of the Chinese Society of Agricultural Engineering,2014,30(21):268-277.[洪舒蔓,郝晋珉,周宁,等. 黄淮海平原耕地变化及对粮食生产格局变化的影响[J]. 农业工程学报,2014,30(21):268-277.]
    [21] Cheng M Y,Liu Y S,Jiang N. Study on the spatial pattern and mechanism of rural population-land-industry coordinating development in Huang-Huai-Hai Area[J]. Acta Geographica Sinica,2019,74(8):1576-1589.[程明洋,刘彦随,蒋宁. 黄淮海地区乡村人-地-业协调发展格局与机制[J]. 地理学报,2019,74(8):1576-1589.]
    [22] Chen Z C,Gong Z T,Zhang G L,et al. Correlation of soil taxa between Chinese soil genetic classification and Chinese soil taxonomy on various scales[J]. Soils,2004,36(6):584-595.[陈志诚,龚子同,张甘霖,等. 不同尺度的中国土壤系统分类参比[J]. 土壤,2004,36(6):584-595.]
    [23] Mueller L,Schindler U,Shepherd T G,et al. A framework for assessing agricultural soil quality on a global scale[J]. Archives of Agronomy and Soil Science,2012,58(sup1):S76-S82.
    [24] Vogel H J,Eberhardt E,Franko U,et al. Quantitative evaluation of soil functions:Potential and state[J]. Frontiers in Environmental Science,2019,7:164. https://doi.org/10.3389/fenvs.2019.00164.
    [25] Yang Q J,Wu K N,Feng Z,et al. Advancement and revelation of the research on soil quality assessment on large spatial scales[J]. Acta Pedologica Sinica,2020,57(3):565-578.[杨淇钧,吴克宁,冯喆,等.大空间尺度土壤质量评价研究进展与启示[J].土壤学报,2020,57(3):565-578.]
    [26] Zhang T L,Pan J J. Advancement and direction of soil quality[J]. Soils,1999,31(1):1-7.[张桃林,潘剑君. 土壤质量研究进展与方向[J]. 土壤,1999,31(1):1-7.]
    [27] United States Department of Agriculture-Natrual Resources Conservation Services:Soil Quality Indicator Sheets. 2015. http://go.usa.gov/zUAH.
    [28] Novák P,Vopravil J,Lagová J. Assessment of the soil quality as a complex of productive and environmental soil function potentials[J]. Soil and Water Research,2010,5(3):113-119.
    [29] Larson W E,Pierce F J. Conservation and enhancement of soil quality[C]. Evaluation of sustainable land management in the developing world. Bangkok,Thailand:International Board of Soil Research Management,1991.
    [30] Chen M J,Xiao S Y,Shu Y G. Analysis on soil quality evaluation studies based on CNKI database[J]. Journal of Mountain Agriculture and Biology,2018,37(5):41-48.[陈梦军,肖盛杨,舒英格. 基于CNKI数据库对土壤质量评价研究现状的分析[J]. 山地农业生物学报,2018,37(5):41-48.]
    [31] Kibblewhite M G. Definition of priority areas for soil protection at a continental scale[J]. Soil Use and Management,2012,28(1):128-133.
    [32] Ma B,Zhang S D. Review on the microbial indicators of soil quality[J]. Sichuan Environment,2010,29(5):114-118.[马波,张绍东.土壤质量微生物学指标研究概述[J]. 四川环境,2010,29(5):114-118.]
    [33] Su Y,Zhu J,Wang P,et al. Research progress on soil water holding capacity[J]. Chinese Agricultural Science Bulletin,2013,29(14):140-145.[苏杨,朱健,王平,等. 土壤持水能力研究进展[J]. 中国农学通报,2013,29(14):140-145.]
    [34] Burauel P,Bassmann F. Soils as filter and buffer for pesticides-Experimental concepts to understand soil functions[J]. Environmental Pollution(Barking,Essex,2005,133(1):11-16.
    [35] Liu J H,Li M L,Su J B,et al. Effects of soil organic matter content and terrain slope on soil moisture,crop yield[J]. Hunan Agricultural Sciences,2017(1):16-18.[刘建华,李铭亮,苏剑波,等. 有机质含量、地形坡度对土壤保水效果及作物产量的影响[J]. 湖南农业科学,2017(1):16-18.]
    [36] Greiner L,Keller A,Grêt-Regamey A,et al. Soil function assessment:Review of methods for quantifying the contributions of soils to ecosystem services[J]. Land Use Policy,2017,69:224-237.
    [37] Jiang J,Song M H. Review of the roles of plants and soil microorganisms in regulating ecosystem nutrient cycling[J]. Chinese Journal of Plant Ecology,2010,34(8):979-988.[蒋婧,宋明华. 植物与土壤微生物在调控生态系统养分循环中的作用[J]. 植物生态学报,2010,34(8):979-988.]
    [38] van Rees K C J,Comerford N B,Rao P S C. Defining soil buffer power:Implications for ion diffusion and nutrient uptake modeling[J]. Soil Science Society of America Journal,1990,54(5):1505-1507.
    [39] Liu Z L,Yu W T,Zhou H,et al. Effects of long-term fertilization on aggregate size distribution and nutrient content[J]. Soils,2011,43(5):720-728.[刘中良,宇万太,周桦,等. 长期施肥对土壤团聚体分布和养分含量的影响[J]. 土壤,2011,43(5):720-728.]
    [40] Wiesmeier M,Urbanski L,Hobley E,et al. Soil organic carbon storage as a key function of soils-A review of drivers and indicators at various scales[J]. Geoderma,2019,333:149-162.
    [41] Ding X L,Han X Z,Qiao Y F,et al. Sequestration of organic carbon in cultivated soils:Main factors and their stabilization mechanisms[J]. Chinese Journal of Soil Science,2012,43(3):737-744.[丁雪丽,韩晓增,乔云发,等. 农田土壤有机碳固存的主要影响因子及其稳定机制[J].土壤通报,2012,43(3):737-744.]
    [42] Guo Y,Li X L,Wang X J,et al. Profile distribution of soil inorganic and organic carbon in farmland in arid and semi-arid areas of China[J]. Acta Pedologica Sinica,2016,53(6):1433-1443.[郭洋,李香兰,王秀君,等. 干旱半干旱区农田土壤碳垂直剖面分布特征研究[J]. 土壤学报,2016,53(6):1433-1443.]
    [43] Wu Q B,Wang X K,Guo R. Soil organic carbon stability and influencing factors[J]. Chinese Journal of Soil Science,2005,36(5):743-747.[吴庆标,王效科,郭然. 土壤有机碳稳定性及其影响因素[J]. 土壤通报,2005,36(5):743-747.]
    [44] Zhao Z H,Zhang C Z,Liu C H,et al. Spatial variability of soil organic carbon sequestration rate and its influencing factors in Fengqiu County,Henan,China[J]. Chinese Journal of Applied Ecology,2016,27(5):1479-1488.[赵占辉,张丛志,刘昌华,等. 河南封丘县域农田土壤固碳速率空间变异特征及其影响因素[J]. 应用生态学报,2016,27(5):1479-1488.]
    [45] Hobley E,Wilson B,Wilkie A,et al. Drivers of soil organic carbon storage and vertical distribution in Eastern Australia[J]. Plant and Soil,2015,390(1/2):111-127.
    [46] Hooper D U,Chapin III F S,Ewel J J,et al. Effects of biodiversity on ecosystem functioning:A consensus of current knowledge[J]. Ecological Monographs,2005,75(1):3-35.
    [47] Decaëns T. Macroecological patterns in soil communities[J]. Global Ecology and Biogeography,2010,19(3):287-302.
    [48] Wang Y C,Jing H W,Han L J,et al. Risk analysis on swell-shrink capacity of expansive soils with efficacy coefficient method and entropy coefficient method[J]. Applied Clay Science,2014,99:275-281.
    [49] Tang F F,Deng Y L,Zheng M,et al. Soil quality evaluation in rocky desertification of northwest Hunan Province based on gray correlation analysis[J]. Journal of Central South University of Forestry & Technology,2016,36(9):36-43.[唐菲菲,邓艳林,郑茂,等.基于灰色关联分析的湘西北石漠化区土壤质量评价[J]. 中南林业科技大学学报,2016,36(9):36-43.]
    [50] Li Y F,Tang J,Li Y M. Evaluation on grassland soil quality with analysis of principal component and grey relative[J]. Global Geology,2004,23(2):169-174,200.[李月芬,汤洁,李艳梅. 用主成分分析和灰色关联度分析评价草原土壤质量[J]. 世界地质,2004,23(2):169-174,200.]
    [51] Wang J X. Soil physical quality degradation characteristics in the Guanzhong farmland[D]. Yangling,Shaanxi:Northwest A&F University,2016.[王加旭. 关中农田土壤物理质量退化特征[D].陕西杨凌:西北农林科技大学,2016.]
    [52] Ju X S,Yang X W,Chen L J,et al. Research on determination of station indexes and division of regional flood/drought grades in China[J]. Quarterly Journal of Applied Meteorology,1997,8(1):26-33.[鞠笑生,杨贤为,陈丽娟,等.我国单站旱涝指标确定和区域旱涝级别划分的研究[J]. 应用气象学报,1997,8(1):26-33.]
    [53] Li X L,Wu K N,Chu X X,et al. Research progress and prospects for cultivated land productivity evaluation[J]. China Land Science,2019,33(7):91-100.[李晓亮,吴克宁,褚献献,等. 耕地产能评价研究进展与展望[J]. 中国土地科学,2019,33(7):91-100.]
    [54] Liu L M,Zhou D,Chang X,et al. A new grading system for evaluating China's cultivated land quality[J]. Land Degradation and Development,2020,31(12):1482-1501.
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杨颖,郭志英,潘恺,王昌昆,潘贤章.基于生态系统多功能性的农田土壤健康评价[J].土壤学报,2022,59(2):461-475. DOI:10.11766/trxb202006160306 YANG Ying, GUO Zhiying, PAN Kai, WANG Changkun, PAN Xianzhang. Farmland Soil Health Assessment Based on Ecosystem Multi-functionality[J]. Acta Pedologica Sinica,2022,59(2):461-475.

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  • 收稿日期:2020-06-16
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