Diversification and ecosystem services for conservation agriculture: Outcomes from pastures and integrated crop-livestock systems

被引:110
作者
Sanderson, Matt A. [1 ]
Archer, David [1 ]
Hendrickson, John [1 ]
Kronberg, Scott [1 ]
Liebig, Mark [1 ]
Nichols, Kris [1 ]
Schmer, Marty [2 ]
Tanaka, Don [1 ]
Aguilar, Jonathan [1 ]
机构
[1] USDA ARS, No Great Plains Res Lab, Mandan, ND 58554 USA
[2] Univ Nebraska, USDA ARS, Agroecosyst Management Res Unit, Lincoln, NE 68583 USA
关键词
cropland; crop rotations; crop sequencing; ecosystem function; integrated agricultural systems; soil biology; soil carbon management; ARBUSCULAR MYCORRHIZAL FUNGI; SOIL CARBON DYNAMICS; PLANT DIVERSITY; CROP/LIVESTOCK SYSTEMS; COVER CROPS; PERENNIAL POLYCULTURES; ORGANIC-MATTER; NITROGEN RATE; GREAT-PLAINS; CORN YIELD;
D O I
10.1017/S1742170512000312
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Conservation agricultural systems rely on three principles to enhance ecosystem services: (1) minimizing soil disturbance, (2) maximizing soil surface cover and (3) stimulating biological activity. In this paper, we explore the concept of diversity and its role in maximizing ecosystem services from managed grasslands and integrated agricultural systems (i.e., integrated crop-livestock-forage systems) at the field and farm level. We also examine trade-offs that may be involved in realizing greater ecosystem services. Previous research on livestock production systems, particularly in pastureland, has shown improvements in herbage productivity and reduced weed invasion with increased forage diversity but little response in terms of animal production. Managing forage diversity in pastureland requires new tools to guide the selection and placement of plant mixtures across a farm according to site suitability and the goals of the producer. Integrated agricultural systems embrace the concept of dynamic cropping systems, which incorporates a long-term strategy of annual crop sequencing that optimizes crop and soil use options to attain production, economic and resource conservation goals by using sound ecological management principles. Integrating dynamic cropping systems with livestock production increases the complexity of management, but also creates synergies among system components that may improve resilience and sustainability while fulfilling multiple ecosystem functions. Diversified conservation agricultural systems can sustain crop and livestock production and provide additional ecosystem services such as soil C storage, efficient nutrient cycling and conservation of biodiversity.
引用
收藏
页码:129 / 144
页数:16
相关论文
共 170 条
  • [1] Plant species composition and biofuel yields of conservation grasslands
    Adler, Paul R.
    Sanderson, Matt A.
    Weimer, Paul J.
    Vogel, Kenneth P.
    [J]. ECOLOGICAL APPLICATIONS, 2009, 19 (08) : 2202 - 2209
  • [2] Productivity Is a Poor Predictor of Plant Species Richness
    Adler, Peter B.
    Seabloom, Eric W.
    Borer, Elizabeth T.
    Hillebrand, Helmut
    Hautier, Yann
    Hector, Andy
    Harpole, W. Stanley
    O'Halloran, Lydia R.
    Grace, James B.
    Anderson, T. Michael
    Bakker, Jonathan D.
    Biederman, Lori A.
    Brown, Cynthia S.
    Buckley, Yvonne M.
    Calabrese, Laura B.
    Chu, Cheng-Jin
    Cleland, Elsa E.
    Collins, Scott L.
    Cottingham, Kathryn L.
    Crawley, Michael J.
    Damschen, Ellen I.
    Davies, Kendi F.
    DeCrappeo, Nicole M.
    Fay, Philip A.
    Firn, Jennifer
    Frater, Paul
    Gasarch, Eve I.
    Gruner, Daniel S.
    Hagenah, Nicole
    Lambers, Janneke Hille Ris
    Humphries, Hope
    Jin, Virginia L.
    Kay, Adam D.
    Kirkman, Kevin P.
    Klein, Julia A.
    Knops, Johannes M. H.
    La Pierre, Kimberly J.
    Lambrinos, John G.
    Li, Wei
    MacDougall, Andrew S.
    McCulley, Rebecca L.
    Melbourne, Brett A.
    Mitchell, Charles E.
    Moore, Joslin L.
    Morgan, John W.
    Mortensen, Brent
    Orrock, John L.
    Prober, Suzanne M.
    Pyke, David A.
    Risch, Anita C.
    [J]. SCIENCE, 2011, 333 (6050) : 1750 - 1753
  • [3] Performance assessment of the cellulose absorption index method for estimating crop residue cover
    Aguilar, J.
    Evans, R.
    Daughtry, C. S. T.
    [J]. JOURNAL OF SOIL AND WATER CONSERVATION, 2012, 67 (03) : 202 - 210
  • [4] Ecology of mycorrhizae: A conceptual framework for complex interactions among plants and fungi
    Allen, MF
    Swenson, W
    Querejeta, JI
    Egerton-Warburton, LM
    Treseder, KK
    [J]. ANNUAL REVIEW OF PHYTOPATHOLOGY, 2003, 41 : 271 - 303
  • [5] Integrated irrigated crop-livestock systems in dry climates
    Allen, V. G.
    Baker, M. T.
    Segarra, E.
    Brown, C. P.
    [J]. AGRONOMY JOURNAL, 2007, 99 (02) : 346 - 360
  • [6] Anand M., 2011, Sustainable Alternative Fuel Feedstock Opportunities, Challenges and Roadmaps for Six US Regions: Proceedings of the Sustainable Feedstocks for Advance Biofuels Workshop, P193
  • [7] A multi-tactic approach to manage weed population dynamics in crop rotations
    Anderson, RL
    [J]. AGRONOMY JOURNAL, 2005, 97 (06) : 1579 - 1583
  • [8] The soil management assessment framework: A quantitative soil quality evaluation method
    Andrews, SS
    Karlen, DL
    Cambardella, CA
    [J]. SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2004, 68 (06) : 1945 - 1962
  • [9] [Anonymous], 2005, Ecosystems and human well-being: Desertification synthesis, DOI DOI 10.1196/ANNALS.1439.003
  • [10] Antle J.M, 2003, ENVIRON DEV ECON, V11, P39