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2019 | 28 | 3 |

Tytuł artykułu

Soil organic carbon, aggregates, and fractions under different land uses in the Loess Plateau, China

Autorzy

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The dynamics of soil organic carbon (SOC) under different land uses can be beneficial for accurately assessing carbon sequestration to deal with global climate change. The aim of this study was to quantify the SOC content in various fractions under different land uses. Soil samples were collected from the top 0.1 m and 0.1-0.3 m of cropland, grassland, and forest in Huachi County of Gansu Province, China. Significant differences in physical fractions were found in the top 0.1-m layer, with cropland having the highest proportion of micro-aggregates (<250 μm), forest having the highest proportion of small macro-aggregates (250-2000 μm), and grassland tending to form large macro-aggregates (>2000 μm). SOC values were 6.9, 11.3, and 10.3 g kg⁻¹ in the top 0.1-m layer for cropland, grassland, and forest, respectively. The difference in δ¹³C between the light and heavy fraction in small macro-aggregates was smaller than that in both large macro-aggregates and micro-aggregates. These results indicated that small macro-aggregates conserved SOC relative to micro-aggregates and large macro-aggregates. The differences in δ¹³C between the light and heavy fraction in all aggregate size fractions of grassland were much larger than in forest, indicating that there was higher microbial decomposition in grasslands. Overall, our results suggested that the accumulation of SOC in grassland was derived from the abundant carbon input, but the protection of SOC from small macro-aggregates was important to forest soil.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

28

Numer

3

Opis fizyczny

p.1877-1885,fig.,ref.

Twórcy

autor
  • College of Natural Resources and Environment, Northwest A&F University, Yangling, China
  • Key Laboratory of Plant Nutrition and the Agri-environment in Northwest China, Ministry of Agriculture, China
autor
  • College of Natural Resources and Environment, Northwest A&F University, Yangling, China
  • Key Laboratory of Plant Nutrition and the Agri-environment in Northwest China, Ministry of Agriculture, China
autor
  • College of Natural Resources and Environment, Northwest A&F University, Yangling, China
autor
  • College of Natural Resources and Environment, Northwest A&F University, Yangling, China
  • Key Laboratory of Plant Nutrition and the Agri-environment in Northwest China, Ministry of Agriculture, China

Bibliografia

  • 1. LAGANIERE J., ANGERS D.A., PARE D. Carbon accumulation in agricultural soils after afforestation: a meta-analysis. Global Change Biol. 16 (1), 439, 2010.
  • 2. BERTHRONG, S.T., PINEIRO G.E.R.V.A.S.I.O., JOBBÁGY E.G., JACKSON R.B. Soil C and N changes with afforestation of grasslands across gradients of precipitation and plantation age. Ecological Applications, 22 (1), 76, 2012.
  • 3. YUE C., CIAIS P., LI W. Smaller global and regional carbon emissions from gross land use change when considering sub-grid secondary land cohorts in a global dynamic vegetation model. Biogeosciences Discussions, https://doi.org/10.5194/bg-2017-329, 2017.
  • 4. HOUGHTON R.A., HOUSE J.I., PONGRATZ J. Carbon emissions from land use and land-cover change. Biogeosciences, 9 (12), 5125, 2012.
  • 5. LEITE C.C., COSTA M.H., SOARES-FILHO B.S., HISSA L.D.B.V. Historical land use change and associated carbon emissions in brazil from 1940 to 1995. Global Biogeoch. Cycl., 26 (2), GB2011, 2012.
  • 6. POSPISILOVA L., FORMANEK P., LIPTAJ T., LOSAK T., MARTENSSON A. Land use effects on carbon quality and soil biological properties in Eutric Cambisol. Acta Agriculturae Scandinavica Section B: Soil and Plant Science. 61 (7), 661, 2011.
  • 7. CHANG R., FU B., LIU G., WANG,S., YAO X. The effects of afforestation on soil organic and inorganic carbon: a case study of the Loess Plateau of China. Catena, 95, 145, 2012.
  • 8. LIU S., ZHANG W., WANG K., YIRONG S.U. Evaluation of carbon sequestration after conversion of cropland to forest and grassland projection in karst peak-cluster depression area of northwest Guangxi, China. Acta Ecologica Sinica, 36 (17), 5528, 2016.
  • 9. FANG X., XUE Z., LI B., AN S. Soil organic carbon distribution in relation to land use and its storage in a small watershed of the Loess Plateau, China. Catena, 88 (1), 6, 2012.
  • 10. WANG Y., FU B., LÜ Y., SONG C., LUAN Y. Local-scale spatial variability of soil organic carbon and its stock in the hilly area of the Loess Plateau, China. Quaternary Res. 73 (1), 70, 2010.
  • 11. HAN F., WEI H., ZHENG J., DU F., ZHANG X. Estimating soil organic carbon storage and distribution in a catchment of Loess Plateau, China. Geoderma, 154(3), 261, 2010.
  • 12. PARRAS-ALCÁNTARA L., MARTÍN-CARRILLO M., LOZANO-GARCÍA B. Impacts of land use change in soil carbon and nitrogen in a Mediterranean agricultural area (Southern Spain). Solid Earth, 4 (1), 167, 2013.
  • 13. POEPLAU C., DON A. Sensitivity of soil organic carbon stocks and fractions to different land-use changes across Europe. Geoderma, 192, 189, 2013.
  • 14. FU X., SHAO M., WEI X., HORTON R. Soil organic carbon and total nitrogen as affected by vegetation types in northern loess plateau of china. Geoderma, 155 (1), 31, 2010.
  • 15. CHANG R., FU B., LIU G., LIU S. Soil carbon sequestration potential for “Grain for Green” project in Loess Plateau, China. Environ. Manage. 48 (6), 1158, 2011.
  • 16. FAN T., XU M., SONG S., ZHOU G., DING L. Trends in grain yields and soil organic C in a long-term fertilization experiment in the China Loess Plateau. J. Plant Nutr. Soil Sci. 171 (3), 448, 2008.
  • 17. ZHANG K., CHENG X., DANG H., YE C., ZHANG Y., ZHANG, Q. Linking litter production, quality and decomposition to vegetation succession following agricultural abandonment. Soil Biol. Bio. 57, 803, 2013.
  • 18. SIX J., PAUSTIAN K., ELLIOTT E. T., COMBRINK C. Soil structure and organic matter I. Distribution of aggregate-size classes and aggregate-associated carbon. Soil Sci. Soc. Am. J. 64 (2), 681, 2000.
  • 19. AN S., MENTLER A., MAYER H., BLUM W.E. Soil aggregation, aggregate stability, organic carbon and nitrogen in different soil aggregate fractions under forest and shrub vegetation on the Loess Plateau, China. Catena 81 (3), 226, 2010.
  • 20. GUNINA A., KUZYAKOV Y. Pathways of litter C by formation of aggregates and SOM density fractions: implications from ¹³C natural abundance. Soil Biol. Biochem. 71, 95, 2014.
  • 21. DONG X., HAO Q., LI G., LIN Q., ZHAO X. Contrast effect of long-term fertilization on SOC and SIC stocks and distribution in different soil particle-size fractions. J. Soil. Sediment., 17 (4), 1054, 2017.
  • 22. ARAI H., TOKUCHI, N. Soil organic carbon accumulation following afforestation in a Japanese coniferous plantation based on particle-size fractionation and stable isotope analysis. Geoderma, 159 (3-4), 425, 2010.
  • 23. TAN Z., LAL R., OWENS L., IZAURRALDE R.C. Distribution of light and heavy fractions of soil organic carbon as related to land use and tillage practice. Soil Till. Res. 92 (1), 53, 2007.
  • 24. CAMBARDELLA C.A., ELLIOTT E.T. Carbon and nitrogen distribution in aggregates from cultivated and native grassland soils. Soil Sci. Soc. Am. J. 57 (4), 1071, 1993.
  • 25. HARRIS C.M., LOREDANO P., SRO G. pH and kinetic isotope effects in d-amino acid oxidase catalysis. FEBS J. 268 (21), 5504, 2001.
  • 26. Bao S. Soil Agrochemical Analysis. China Agriculture Press, Beijing. 2000.
  • 27. JOHN B., YAMASHITA T., LUDWIG B., FLESSA H. Storage of organic carbon in aggregate and density fractions of silty soils under different types of land use. Geoderma, 128 (1), 63, 2005.
  • 28. CELIK I. Land-use effects on organic matter and physical properties of soil in a southern Mediterranean highland of Turkey. Soil Till. Res. 83 (2), 270, 2015.
  • 29. SINGH M.K., SINGH S., GHOSHAL, N. Impact of land use change on soil aggregate dynamics in the dry tropics. Restor. Ecol., 25 (6), 962, 2017.
  • 30. BEARE M., HENDRIX P.F., COLEMAN D.C. Water-stable aggregates and organic matter fractions in conventional- and no-tillage soils. Soil Sci. Soc. Am. J. 58 (3), 777, 1994.
  • 31. LUO Z., WANG E., BALDOCK J., XING H. Potential soil organic carbon stock and its uncertainty under various cropping systems in Australian cropland. Soil Res., 52(5), 463, 2017.
  • 32. BOLINDERMARTIN A., KÄTTERER T., POEPLAU C., BÖRJESSON G., PARENTLEON E. Net primary productivity and below-ground crop residue inputs for root. Can. J. Soil Sci., 95 (2), 150319043440007, 2014.
  • 33. LUGO A.E., SANCHEZ M.J., BROWN S. Land use and organic carbon content of some subtropical soils. Plant Soil, 96 (2), 185, 1986.
  • 34. CHEN L., GONG J., FU B., HUANG Z., HUANG Y., GUI L. Effect of land use conversion on soil organic carbon sequestration in the loess hilly area, loess plateau of China. Ecol. Res. 22(4), 641, 2007.
  • 35. LIAO H., LONG J., LI J. Soil organic carbon associated in size-fractions as affected by different land uses in Karst region of Guizhou, Southwest China. Environ. Earth Sci. 74 (9), 6877, 2015.
  • 36. LI Q., WANG H., JIN Z., XIONG W., WU X., ZHANG Y., LIU C. The carbon isotope fractionation in the atmosphere-soil-spring system associated with CO₂-fixation bacteria at Yaji Karst experimental site in Guilin, SW China. Environ. Earth Sci., 74 (6), 5393, 2015.
  • 37. WANG X., CAMMERAAT E.L., CERLI C., KALBITZ, K. Soil aggregation and the stabilization of organic carbon as affected by erosion and deposition. Soil Biol. Biochem., 72, 55, 2014.
  • 38. LIU J.X., SUSENBETH A., SÜDEKUM K.H. In vitro gas production measurements to evaluate interactions between untreated and chemically treated rice straws, grass hay, and mulberry leaves. J. Anim. Sci. 80 (2), 517, 2002.
  • 39. WANG D., FU B., ZHAO W., HU H., WANG Y. Multifractal characteristics of soil particle size distribution under different land-use types on the Loess Plateau, China. Catena, 72 (1), 29, 2008.
  • 40. POSPISILOVA L., KOMINKOVA M., ZITKA O., KIZEK R., BARANCIKOVA G., LITAVEC T., LOSAK T., HLUSEK J., MARTENSSON A., LIPTAJ T. Fate of humic acids isolated from natural humic substances. Acta Agriculturae Scandinavica Section B: Soil and Plant Science. 65 (6), 517, 2015.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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