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Impacts of Corn Straw Coverage and Slope Gradient on Soil Erosion and Sediment Size Distributions in the Mollisol Region, NE China

  • DEGRADATION, REHABILITATION, AND CONSERVATION OF SOILS
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Abstract

The Chinese Mollisol region has the highest fertility and productivity in the country but also suffers from soil erosion. However, the characteristics of soil erosion and sediment size distributions in different seasons based on natural croplands with or without corn straw coverage at different slope gradients remain unclear. This study investigated the effects of corn straw coverage (0, 50, and 100%) and slope gradients (5° and 10°) on the soil water content, bulk density, runoff, soil loss, and eroded sediment size in autumn and the following spring in the Mollisol region of NE China. Natural runoff plots, which were 20 m long and 5 m wide, were used to conduct inflow scour (l L min1 m2) experiments. The results showed that the soil water contents generally increased and that the bulk densities decreased in spring compared with those in autumn. For treatments without corn straw coverage, the runoff values and soil losses in spring were 1.2–6.7 and 3.4–25.0 times greater than those in autumn, respectively. For treatments with corn straw coverage, the runoff was effectively decreased under 50% corn straw coverage for the 5° croplands but under 100% corn straw coverage for the 10° croplands; the soil losses were 0 for the 5° croplands and increased 2.3–2.6 times for the 10° croplands in spring compared with those in autumn. As the slope gradient varied from 5° to 10°, the runoff and soil losses significantly increased, but the loss of <0.25 mm soil materials in proportion to the soil erosion generally decreased. The seasonal changes affected the soil material size distributions of the eroded sediment, especially for finer sediments. In conclusion, soil conservation measures used to decrease the slope gradient and seasonality impacts on soil erosion and sediment size distributions in the Mollisol croplands are noteworthy.

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REFERENCES

  1. I. Angin, S. Sari, and E. L. Aksakal, “Effects of diatomite (DE) application on physical properties of soils subjected to freeze-thaw cycles,” Soil Tillage Res. 160, 34–41 (2016).

    Google Scholar 

  2. R. M. Bajracharya, R. Lal, and G. F. Hall, “Temporal variation in properties of an uncropped, ploughed Miamian soil in relation to seasonal erodibility,” Hydrol. Process. 12, 1021–1030 (1998).

    Google Scholar 

  3. C. J. Bronick and R. Lal, “Soil structure and management: a review,” Geoderma 124, 3–22 (2005).

    Google Scholar 

  4. T. L. Chow, H. W. Rees, and J. Monteith, “Seasonal distribution of runoff and soil loss under four tillage treatments in the upper St. John River valley New Brunswick, Canada,” Can. J. Soil Sci. 80, 649–660 (2000).

    Google Scholar 

  5. M. Cui, Q. G. Cai, A. X. Zhu, and H. M. Fan, “Soil erosion along a long slope in the gentle hilly areas of black soil region in Northeast China,” J. Geogr. Sci. 17 (3), 375–383 (2007).

    Google Scholar 

  6. G. S. de Aquino, C. de Conti Medina, M. Shahab, A. D. Santiago, A. C. B. Cunha, D. A. O. Kussaba, J. B. Carvalho, and A. Moreira, “Does straw mulch partial-removal from soil interfere in yield and industrial quality sugarcane? A long term study,” Ind. Crops Prod. 111, 573–578 (2018).

    Google Scholar 

  7. D. Dimoyiannis, “Seasonal soil aggregate stability variation in relation to rainfall and temperature under Mediterranean conditions,” Earth Surf. Process. Landforms 34, 860–866 (2009).

    Google Scholar 

  8. A. E. F. Eltom, W. M. Ding, Q. S. Ding, A. A. Tagar, Z. Talha, and Gamareldawla, “Field investigation of a trash-board, tillage depth and low speed effect on the displacement and burial of straw,” Catena 133, 385–393 (2015).

    Google Scholar 

  9. Z. Z. Feng, F. L. Zheng, W. Hu, G. F. Li, and X. M. Xu, “Impacts of mollic epipedon thickness and overloaded sediment deposition on corn yield in the Chinese mollisol region,” Agric., Ecosyst. Environ. 257, 175–182 (2018).

    Google Scholar 

  10. A. Frankl, V. Prêtre, J. Nyssen, and P. G. Salvador, “The success of recent land management efforts to reduce soil erosion in northern France,” Geomorphology 303, 84–93 (2018).

    Google Scholar 

  11. B. S. Gill and S. K. Jalota, “Evaporation from soil in relation to residue rate, mixing depth, soil texture and evaporativity,” Soil Technol. 8 (4), 293–301 (1996).

    Google Scholar 

  12. Z. J. Gu, Y. Xie, Y. Gao, X. Y. Ren, C. C. Cheng, and S. C. Wang, “Quantitative assessment of soil productivity and predicted impacts of water erosion in the black soil region of northeastern China,” Sci. Total Environ. 637–638, 706–716 (2018).

    Google Scholar 

  13. A. Hanay, U. Sahin, and O. Anapali, “Decrease in hydraulic conductivity of clay soils with salinity-sodicity problems due to freezing and thawing effect,” Acta Agric. Scand., Sect. B 53, 208–210 (2003).

    Google Scholar 

  14. R. J. Hou, T. X. Li, Q. Fu, D. Liu, S. Cui, Z. Q. Zhou, P. R. Yan, and J. W. Yan, “Effect of snow-straw collocation on the complexity of soil water and heat variation in the Songnen Plain, China,” Catena 172, 190–202 (2019).

    Google Scholar 

  15. H. Jiang, X. Z. Han, W. X. Zou, X. X. Hao, and B. Zhang, “Seasonal and long-term changes in soil physical properties and organic carbon fractions as affected by manure application rates in the mollisol region of Northeast China,” Agric., Ecosyst. Environ. 268, 133–143 (2018).

    Google Scholar 

  16. Y. L. Jiang, F. L. Zheng, L. L. Wen, and H. O. Shen, “Effects of sheet and rill erosion on soil aggregates and organic carbon losses for a mollisol hillslope under rainfall simulation,” J. Soils Sediments 19, 467–477 (2019).

    Google Scholar 

  17. M. Jourgholami and M. E. Abari, “Effectiveness of sawdust and straw mulching on postharvest runoff and soil erosion of a skid trail in a mixed forest,” Ecol. Eng. 109, 15–24 (2017).

    Google Scholar 

  18. A. J. Koiter, P. N. Owens, E. L. Petticrew, and D. A. Lobb, “The role of soil surface properties on the particle size and carbon selectivity of interrill erosion in agricultural landscapes,” Catena 153, 194–206 (2017).

    Google Scholar 

  19. S. H. Kværnø and L. Øygarden, “The influence of freeze–thaw cycles and soil moisture on aggregate stability of three soils in Norway,” Catena 67, 175–182 (2006).

    Google Scholar 

  20. M. P. Lagos-Avid and C. A. Bonilla, “Predicting the particle size distribution of eroded sediment using artificial neural networks,” Sci. Total Environ. 581–582, 833–839 (2017).

    Google Scholar 

  21. R. Lal, D. Reicosky, and J. Hanson, “Evolution of the plow over 10, 000 years and the rationale for no-till farming,” Soil Tillage Res. 93, 1–12 (2007).

    Google Scholar 

  22. G. Y. Li and H. M. Fan, “Effect of freeze-thaw on water stability of aggregates in a black soil of Northeast China,” Pedosphere 24 (2), 285–290 (2014).

    Google Scholar 

  23. H. H. Lin, Y. Xie, G. Liu, J. R. Zhai, and S. Li, “Soybean and maize simulation under different degrees of soil erosion,” Field Crops Res. 230, 1–10 (2019).

    Google Scholar 

  24. J. S. Lin, G. L. Zhu, J. Wei, F. S. Jiang, M. K. Wang, and Y. H. Huang, “Mulching effects on erosion from steep slopes and sediment particle size distributions of gully colluvial deposits,” Catena 160, 57–67 (2018).

    Google Scholar 

  25. H. S. Liu, X. M. Ou, J. H. Yuan, and X. Y. Yan, “Experience of producing natural gas from corn straw in China,” Resour., Conserv. Recycl. 135, 216–224 (2018).

    Google Scholar 

  26. Z. S. Liu, L. Zhang, Z. D. Yang, J. Li, and B. Zhang, “Derivation of a new generation of stormwater intensity formula for Changchun,” China Water Wastewater 30 (9), 147–150 (2014).

    Google Scholar 

  27. Y. L. Lou, W. J. Liang, M. G. Xu, X. H. He, Y. D. Wang, and K. Zhao, “Straw coverage alleviates seasonal variability of the topsoil microbial biomass and activity,” Catena 86, 117–120 (2011).

    Google Scholar 

  28. J. Lu, F. L. Zheng, G. F. Li, F. Bian, and J. An, “The effects of raindrop impact and runoff detachment on hillslope soil erosion and soil aggregate loss in the mollisol region of Northeast China,” Soil Tillage Res. 161, 79–85 (2016).

    Google Scholar 

  29. K. A. Maltsev and O. P. Yermolaev, “Potential soil loss from erosion on arable lands in the European part of Russia,” Eurasian Soil Sci. 52, 1588–1597 (2019). https://doi.org/10.1134/S106422931912010X

    Article  Google Scholar 

  30. G. E. Maurer and D. R. Bowling, “Seasonal snowpack characteristics influence soil temperature and water content at multiple scales in interior western U.S. mountain ecosystems,” Water Res. Res. 50, 5216–5234 (2014).

    Google Scholar 

  31. S. N. Mhaske, K. Pathak, and A. Basak, “A comprehensive design of rainfall simulator for the assessment of soil erosion in the laboratory,” Catena 172, 408–420 (2019).

    Google Scholar 

  32. J. P. Mitchell, A. Shrestha, K. Mathesius, K. M. Scow, R. J. Southard, R. L. Haney, R. Schmidt, D. S. Munk, and W. R. Horwath, “Cover cropping and no-tillage improve soil health in an arid irrigated cropping system in California’s San Joaquin Valley, USA,” Soil Tillage Res. 165, 325–335 (2017).

    Google Scholar 

  33. M. A. Nearing, Y. Xie, B. Y. Liu, and Y. Ye, “Natural and anthropogenic rates of soil erosion,” Int. Soil Water Conserv. Res. 5, 77–84 (2017).

    Google Scholar 

  34. W. Ouyang, Y. Y. Wu, Z. C. Hao, Q. Zhang, Q. W. Bu, and X. Gao, “Combined impacts of land use and soil property changes on soil erosion in a mollisol area under long-term agricultural development,” Sci. Total Environ. 613–614, 798–809 (2018).

    Google Scholar 

  35. T. Oztas and F. Fayetorbay, “Effect of freezing and thawing processes on soil aggregate stability,” Catena 52, 1–8 (2003).

    Google Scholar 

  36. F. J. Pérez-Latorre, L. de Castro, and A. Delgado, “A comparison of two variable intensity rainfall simulators for runoff studies,” Soil Tillage Res. 107, 11–16 (2010).

    Google Scholar 

  37. S. J. Richardson, “Effect of artificial weathering cycles on the structural stability of a dispersed silt soil,” Eur. J. Soil Sci. 27 (3), 287–294 (1976).

    Google Scholar 

  38. M. J. M. Römkens, K. Helming, and S. N. Prasad, “Soil erosion under different rainfall intensities, surface roughness, and soil water regimes,” Catena 46, 103–123 (2001).

    Google Scholar 

  39. M. S. Roxy, V. B. Sumithranand, and G. Renuka, “Soil heat flux and day time surface energy balance closure at astronomical observatory, Thiruvananthapuram, south Kerala,” J. Earth Syst. Sci. 123, 741–750 (2014).

    Google Scholar 

  40. B. Sharratt, “Freeze-thaw and winter temperature of agricultural soils in interior Alaska,” Cold Reg. Sci. Technol. 22 (1), 105–111 (1993).

    Google Scholar 

  41. H. O. Shen, Y. F. He, W. Hu, S. B. Geng, X. Han, Z.  J. Zhao, and H. L. Li, “The temporal evolution of soil erosion for corn and fallow hillslopes in the typical mollisol region of Northeast China,” Soil Tillage Res. 186, 200–205 (2019).

    Google Scholar 

  42. H. O. Shen, D. L. Wang, L. L. Wen, W. T. Zhao, and Y. Zhang, “'Soil erosion and typical soil and water conservation measures on hillslopes in the Chinese mollisol region,” Eurasian Soil Sci. 53, 1509–1519 (2020). https://doi.org/10.1134/S1064229320100178

    Article  Google Scholar 

  43. H. O. Shen, L. L. Wen, Y. F. He, W. Hu, H. L. Li, X. C. Che, and X. Li, “Rainfall and inflow effects on soil erosion for hillslopes dominated by sheet erosion or rill erosion in the Chinese mollisol region,” J. Mt. Sci. 15 (10), 2182–2191 (2018).

    Google Scholar 

  44. P. Shi, K. V. Oost, and R. Schulin, “Dynamics of soil fragment size distribution under successive rainfalls and its implication to size-selective sediment transport and deposition,” Geoderma 308, 104–111 (2017).

    Google Scholar 

  45. Z. H. Shi, N. F. Fang, F. Z. Wu, L. Wang, B. J. Yue, and G. L. Wu, “Soil erosion processes and sediment sorting associated with transport mechanisms on steep slopes,” J. Hydrol. 454–455, 123–130 (2012).

    Google Scholar 

  46. T. Starkloff, J. Stolte, R. Hessel, C. Ritsema, and V. Jetten, “Integrated, spatial distributed modelling of surface runoff and soil erosion during winter and spring,” Catena 166, 147–157 (2018).

    Google Scholar 

  47. B. Y. Sun, J. B. Xiao, Z. B. Li, B. Ma, L. T. Zhang, Y. L. Huang, and L. F. Bai, “An analysis of soil detachment capacity under freeze-thaw conditions using the Taguchi method,” Catena 162, 100–107 (2018).

    Google Scholar 

  48. D. Y. Wang, W. Ma, Y. H. Niu, X. X. Chang, and Z. Wen, “Effects of cyclic freezing and thawing on mechanical properties of Qinghai–Tibet clay,” Cold Reg. Sci. Technol. 48, 34–43 (2007).

    Google Scholar 

  49. F. Wang, X. Z. Han, L. H. Li, and K. Q. Zhang, “How freezing and thawing processes affect black-soil aggregate stability in northeastern China,” Sci. Cold Arid Reg. 2 (1), 67–72 (2010).

    Google Scholar 

  50. Y. Y. Wu, W. Ouyang, Z. C. Hao, C. Y. Lin, H. B. Liu, and Y. D. Wang, “Assessment of soil erosion characteristics in response to temperature and precipitation in a freeze-thaw watershed,” Geoderma 328, 56–65 (2018).

    Google Scholar 

  51. X. Z. Xu, Y. Xu, S. C. Chen, S. G. Xu, and H  W. Zhang, “Soil loss and conservation in the black soil region of Northeast China: a retrospective study,” Environ. Sci. Policy 13, 793–800 (2010).

    Google Scholar 

  52. Y. H. Yang, J. L. Ding, Y. H. Zhang, J. C. Wu, J. M. Zhang, X. Y. Pan, C. M. Gao, Y. Wang, and F. He, “Effects of tillage and mulching measures on soil moisture and temperature, photosynthetic characteristics and yield of winter wheat,” Agric. Water Manage. 201, 299–308 (2018).

    Google Scholar 

  53. K. L. Zhang and H. Y. Liu, “Research progresses and prospects on freeze-thaw erosion in the black soil region of Northeast China,” Sci. Soil Water Conserv. 16 (1), 17–24 (2018).

    Google Scholar 

  54. Z. Zhang, W. Ma, W. J. Feng, D. H. Xiao, and X. Hou, “Reconstruction of soil particle composition during freeze-thaw cycling: a review,” Pedosphere 26 (2), 167–179 (2016).

    Google Scholar 

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ACKNOWLEDGMENTS

The work was supported by the National Key R&D Program of China [grant nos.: 2016YFE0202900, 2016YFC0501201]; and the National Natural Science Foundation of China [grant nos.: 41601281, 41601284].

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Shen, H.O., Ma, R.M., Ye, Q. et al. Impacts of Corn Straw Coverage and Slope Gradient on Soil Erosion and Sediment Size Distributions in the Mollisol Region, NE China. Eurasian Soil Sc. 54, 2000–2008 (2021). https://doi.org/10.1134/S1064229321130044

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