Soil organic carbon as an indicator of environmental quality at the national scale: Inventory monitoring methods and policy relevance

被引:33
|
作者
Ogle, SM [1 ]
Paustian, K
机构
[1] Colorado State Univ, Nat Resource Ecol Lab, Ft Collins, CO 80523 USA
[2] Colorado State Univ, Dept Soil & Crop Sci, Ft Collins, CO 80523 USA
关键词
natural resource inventory; environmental quality indicators; soil organic carbon; land use and management; national inventory; Organization for Economic Co-operation and Development;
D O I
10.4141/S04-087
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Soil organic carbon (SOC) storage is an indicator of environmental quality for mineral soils because of the influence that organic matter has on key functional properties, such as fertility, soil structure and water relations. Historically, agricultural management has caused large losses of SOC relative to native ecosystems, leading to degradation. However, new technologies and conservation practices have been developed during the past few decades that can enhance SOC storage, and thus improve environmental quality. Our objective was to describe a national inventory procedure to estimate SOC storage for purposes of monitoring environmental quality. The major steps in this procedure include: (1) model selection/development, (2) model verification, (3) identification of model input data, (4) uncertainty assessment, (5) model implementation, and (6) validation of results. Applying this approach With a simple C accounting method, the upper 30 cm of US agricultural soils were estimated to have accumulated 10.8 Tg C yr(-1) between 1982 and 1997, with an uncertainty of +/- 40%. A simple index was developed to relate estimated SOC stocks to the potential amounts under native conditions and conventional agricultural management. An index value of 0% on the proposed scale would be equivalent to the SOC under conventional agricultural use, while an index value of 100% would be equivalent to native levels. With an estimated 1997 stock of 22400 Tg C, the index value for US agricultural soils was about 60%. Using this inventory procedure, environmental issues related to soil, water and air quality could be informed by SOC in combination with other key indicators, in addition to using the inventory for evaluating sustainability of agricultural lands for food and fiber production.
引用
收藏
页码:531 / 540
页数:10
相关论文
共 50 条
  • [21] A Bayesian network simulates the responses of soil organic carbon to environmental factors at a catchment scale
    Liu, Shaozhen
    Wang, Yunqiang
    Yang, Yang
    Li, Zimin
    CATENA, 2023, 233
  • [22] Methods of evaluating soil bulk density: Impact on estimating large scale soil organic carbon storage
    Xu, Li
    He, Nianpeng
    Yu, Guirui
    CATENA, 2016, 144 : 94 - 101
  • [23] Spectral and Soil Quality Index for Monitoring Environmental Rehabilitation and Soil Carbon Stock in an Amazonian Sandstone Mine
    Ribeiro, Paula Godinho
    Martins, Gabriel Caixeta
    Gastauer, Markus
    da Silva Junior, Ediu Carlos
    Santos, Diogo Correa
    Frois Caldeira Junior, Cecilio
    Cavalcante, Rosane Barbosa Lopes
    dos Santos, Douglas Silva
    Carneiro, Marco Aurelio Carbone
    Valadares, Rafael Borges da Silva
    Nascimento Junior, Wilson da Rocha
    Oliveira, Guilherme
    Souza Filho, Pedro Walfir Martins e
    Ramos, Silvio Junio
    SUSTAINABILITY, 2022, 14 (02)
  • [24] Methods of Rapid Quality Assessment for National-Scale Land Surface Change Monitoring
    Zhou, Qiang
    Barber, Christopher
    Xian, George
    REMOTE SENSING, 2020, 12 (16)
  • [25] A spatially explicit life cycle assessment midpoint indicator for soil quality in the European Union using soil organic carbon
    Morais, Tiago G.
    Domingos, Tiago
    Teixeira, Ricardo F. M.
    INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2016, 21 (08): : 1076 - 1091
  • [26] A spatially explicit life cycle assessment midpoint indicator for soil quality in the European Union using soil organic carbon
    Tiago G. Morais
    Tiago Domingos
    Ricardo F. M. Teixeira
    The International Journal of Life Cycle Assessment, 2016, 21 : 1076 - 1091
  • [27] Baseline map of organic carbon in Australian soil to support national carbon accounting and monitoring under climate change
    Rossel, Raphael A. Viscarra
    Webster, Richard
    Bui, Elisabeth N.
    Baldock, Jeff A.
    GLOBAL CHANGE BIOLOGY, 2014, 20 (09) : 2953 - 2970
  • [28] Soil carbon sequestration due to post-Soviet cropland abandonment: estimates from a large-scale soil organic carbon field inventory
    Wertebach, Tim-Martin
    Hoelzel, Norbert
    Kaempf, Immo
    Yurtaev, Andrey
    Tupitsin, Sergey
    Kiehl, Kathrin
    Kamp, Johannes
    Kleinebecker, Till
    GLOBAL CHANGE BIOLOGY, 2017, 23 (09) : 3729 - 3741
  • [29] Evaluation of modelling approaches for predicting the spatial distribution of soil organic carbon stocks at the national scale
    Martin, M. P.
    Orton, T. G.
    Lacarce, E.
    Meersmans, J.
    Saby, N. P. A.
    Paroissien, J. B.
    Jolivet, C.
    Boulonne, L.
    Arrouays, D.
    GEODERMA, 2014, 223 : 97 - 107
  • [30] A Comprehensive Evaluation of Machine Learning Algorithms for Digital Soil Organic Carbon Mapping on a National Scale
    Radocaj, Dorijan
    Jug, Danijel
    Jug, Irena
    Jurisic, Mladen
    APPLIED SCIENCES-BASEL, 2024, 14 (21):