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Changes in soil and vegetation following stabilisation of dunes in the southeastern fringe of the Tengger Desert, China

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Abstract

Properties of the soil and sand-binding vegetation were measured at five sites plus a control on dunes of the Tengger Desert stabilized for periods of up to 50 years. In the topsoil, fine particles, total N, P, K and organic matter increased significantly with increasing site age. However, there were no significant changes in deeper soil profiles (>0.4 m depth). Soil pH, calcium carbonate content, and total salt content tended to increase with age. Soil water in the topsoil changed little with increasing age, but was closely related to rainfall during the 50-year period. For deeper soil layers (0.4–3.0 m) soil water decreased significantly with age. After revegetation, the number of herbaceous species increased up to 30 years and then levelled off to 12–14 species, whereas the number of shrub species decreased from the 10 initial sand-binding species to only 3 species. Shrub cover decreased from a highest average of about 33% to the current 9%, whereas cover and biomass of herbaceous species increased throughout succession from 1956 to 2006. The development of soil and cryptogamic crusts on the surface of stabilized dunes enhanced the colonization and establishment of herbaceous plants due to increasing water availability, clay and silt content and soil nutrients. We propose that changes in properties of the surface soil led to increased interception of water, favoring shallow rooted grasses and forbs over perennial shrubs.

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References

  • Agriculture Chemistry Council, Soil Science Society of China (1983) General analysis methods of soil agriculture chemistry. Science Press, Beijing

    Google Scholar 

  • Aguiar MR, Sala OE (1999) Patch structure, dynamics and implications for the functioning of arid ecosystems. Trends Ecol Evol 14:273–277

    Article  PubMed  Google Scholar 

  • Bohn HL, McNeal BL, O’Connor GA (2001) Soil Chemistry, 3rd edn. Wiley, New York, pp 155–171

    Google Scholar 

  • Buckley RC, Chen W, Liu Y, Zhu Z (1986) Characteristics of the Tengger dunefield, north-central China and comparisons with the central Australian dunefields. J Arid Environ 10:97–101

    Google Scholar 

  • Carpenter DE, Barbour MG, Bahre CJ (1986) Old field succession in Mojave desert scrub. Madrono 33:111–122

    Google Scholar 

  • Danin A, Bar-or Y, Dor I, Yisraeli T (1989) The role of cyanobacteria in stabilization of sand dunes in Southern Israel. Ecol Medit XV (1/2):55–64

  • Dale V, Adams WM (2003) Plant reestablishment 15 years after the debris avalanche at Mount St. Helens, Washington. Sci Total Environ 313:101–113

    Article  PubMed  CAS  Google Scholar 

  • Dodd MB, Lauenroth WK (1997) The influence of soil texture on the soil water dynamics and vegetation structure of a shortgrass steppe ecosystem. Plant Ecol 133:13–28

    Article  Google Scholar 

  • Dodd MB, Lauenroth WK, Burke IC, Chapman PL (2002) Association between vegetation patterns and soil texture in the shortgrass steppe. Plant Ecol 158:127–137

    Article  Google Scholar 

  • Drees LR (1993) Characteristics of aeolian dusts in Niger, West Africa. Geoderma 59:213–233

    Article  Google Scholar 

  • Ejrnes R, Hansen DN, Aude E (2003) Changing course of secondary succession in abandoned sandy field. Biol Conserv 109:343–350

    Article  Google Scholar 

  • El-Demerdash MA, Hegazy AK, Zilay AM (1995) Vegetation-soil relationship in Tihamah coastal plains of Jazan region, Saudi Arabia. J Arid Environ 30:161–174

    Article  Google Scholar 

  • EI-Sheikh MA (2005) Plant succession on abandoned fields after 25 years of shifting cultivation in Assuit, Egypt. J Arid Environ 61:461–481

    Article  Google Scholar 

  • FAO/UNESCO (1974) Soil map of the world 1:5,000,000, vol 1, legend. UNESCO, Paris

  • Fisher FM, Zak JC, Cunningham GL, Whitford WG (1988) Water and nitrogen effects on growth and allocation patterns of creosote bush in the northern Chihuahuan Desert. J Range Manage 41:387–391

    Google Scholar 

  • Fullen MA, Mitchell DJ (1994) Desertification and reclamation in north-central China. Ambio 23:131–135

    Google Scholar 

  • Gardner CMK, Robinson D, Blyth K, Cooper JD (2001) Soil water content. In: Smith KA, Mullins CE (eds) Soil and environmental analysis: physical methods, 2nd edn. Dekker, New York, pp 1–64

    Google Scholar 

  • Harmer R, Peterken G, Kerr G, Poulton P (2001) Vegetation changes during 100 years of development of two secondary woodlands on abandoned arable land. Biol Conserv 101:291–304

    Article  Google Scholar 

  • Havstad KM, Herrick JE, Schlesinger WH (2000) Desert rangelands, degradation and nutrients. In: Arnalds O, Archer S (eds) Rangeland desertification. Kluwer, Dordrecht, pp 77–87

    Google Scholar 

  • Knudsen D, Peterson GA, Pratt PF (1982) Lithium, sodium and potassium. In: Page AL, Miller RH, Keeney DR (eds) Methods of soil analysis part 2: chemical and microbiologicaI properties, 2nd edn. American Society of Agronomy, Soil Science Society of America, Madison, WI, pp 225–246

    Google Scholar 

  • Li XR, Zhang JG, Wang XP, Liu LC (2000) Study on soil microbiotic crust and its influences on sand-fixing vegetation in arid desert region. Acta Bot Sin 42:965–970

    Google Scholar 

  • Li XR, Zhou HY, Wang XP, Zhu YG, O’Conner PJ (2003) The effects of re-vegetation on cryptogam species diversity in Tengger Desert, Northern China. Plant Soil 251:237–245

    Article  CAS  Google Scholar 

  • Li XR, Zhang ZS, Zhang JG, Wang XP, Hong JX (2004a) Association between vegetation patterns and soil properties in the southeastern Tengger Desert, China. Arid Land Res Manage 18:369–383

    Article  Google Scholar 

  • Li XR, Ma FY, Xiao HL, Wang XP, Kim KC (2004b) Long-term effects of re-vegetation on soil water content of sand dunes in arid region of northern China. J Arid Environ 57:1–16

    Article  Google Scholar 

  • Li XR, He MZ, Duan ZH, Xiao HL, Jia XH (2007) Recovery of topsoil physiochemical properties in revegetated sites in the sand-burial ecosystems of the Tengger Desert, northern China. Geomorph 88:254–265

    Article  Google Scholar 

  • Miki T, Kondoh M (2002) Feedbacks between nutrient cycling and vegetation predict plant species coexistence and invasion. Ecol Lett 5:624–633

    Article  Google Scholar 

  • Moorhead DL, Fisher FM, Whitford WG (1988) Cover of spring annuals on nitrogen rich kangaroo rat mounds in a Chihuahuan Desert grassland. Am Midl Nat 120:443–447

    Article  Google Scholar 

  • Nanjing Institute of Soil Research, CAS (1980) Analysis of soil physicochemical features. Shanghai Science and Technology Press, Shanghai, (in Chinese)

    Google Scholar 

  • Noy-Meir I (1985) Desert ecosystem structure and function. In: Evenari M (ed) Hot deserts and arid shrublands. Elsevier, Amsterdam, pp 93–103

    Google Scholar 

  • Olsen SR, Sommers LE (1982) Phosphorus. In: Page AL, Miller RH, Keeney DR (eds) Methods of soil analysis part 2: chemical and microbiologicaI properties, 2nd edn. American Society of Agronomy, Soil Science Society of America, Madison, WI, pp 403–430

    Google Scholar 

  • Oztas T, Koc A, Comakli B (2003) Changes in vegetation and soil properties along a slope on overgrazed and eroded rangelands. J Arid Environ 55:93–100

    Article  Google Scholar 

  • Powlson DS, Smith P, Coleman K, Smith JU, Glendining MJ, Korschens M, Franko U (1998) A European network of long-term sites for studies on soil organic matter. Soil Till Res 47:263–274

    Article  Google Scholar 

  • Schlesinger WH, Aikes JAR, Hartley AE, Cross AF (1996) On the spatial pattern of soil nutrients in desert ecosystems. Ecology 77:364–374

    Article  Google Scholar 

  • Shapotou Desert Research and Experiment Station, CAS (1980) Study on shifting sand control in Shapotou region of Tengger Desert (1). Ningxia People’s Publishing House, Yingchuan, pp 1–15, (in Chinese with English abstract)

    Google Scholar 

  • Shapotou Desert Research and Experiment Station, CAS (1991) Study on shifting sand control in Shapotou region of Tengger Desert (2). Ningxia People’s Publishing House, Yingchuan, pp 101–106, (in Chinese with English abstract)

    Google Scholar 

  • Singh KP, Mandal TN, Tripathi SK (2001) Pattern of restoration of soil physicochemical properties and microbial biomass in different landslide sites in the sal forest ecosystem of Nepal Himalaya. Ecol Eng 17:385–401

    Article  Google Scholar 

  • Smith SD, Monson RK, Anderson JE (1997) Physiological ecology of north American desert plants. Springer, Berlin

    Google Scholar 

  • Sparling G, Ross D, Trustrum N, Arnold G, West A, Speir T, Schipper L (2003) Recovery of topsoil characteristics after landslide erosion in dry hill country of New Zealand, and a test of the space-for-time hypothesis. Soil Biol Biochem 35:1575–1586

    Article  CAS  Google Scholar 

  • US Soil Conservation Service (1974) Soil Taxonomy. Washington

  • Warren J, Christal A, Wilson F (2002) Effects of snowing and management on vegetation succession during grassland habitat restoration. Agric Ecosyst Environ 93:393–402

    Article  Google Scholar 

  • Webb RH, Steiger JW, Newman EB (1988) The response of vegetation to disturbance in Death Valley National Monument, California. US Geological Survey Bulletin 1793. US Department of the Interior, US Geological Survey, Washington, DC

  • Whitford WG (1986) Pattern and process in desert ecosystems. University of New Mexico Press, Albuquerque, NM

    Google Scholar 

  • Whitford WG (2002) Ecology of desert ecosystems. Academic, New York

    Google Scholar 

  • Xun Y, Li QK (1987) Soil in China, 2nd edn. Science Press, Beijing, (in Chinese)

    Google Scholar 

  • Zhang JG, Li XR, Wang XP, Wang G (2004) Ecological adaptation strategies of annual plants in artificial vegetation-stabilized sand dune in Shapotou region. Sci Chin Ser D 47(supp. 1):50–60

    Article  Google Scholar 

  • Zou B, Cong Z, Liu S (1981) A preliminary observation on the basic character of sand-carrying currents and the effects of adopted prevention and control measurement at Shapotou. J Desert Res 1:33–39

    Google Scholar 

  • Zhu Z, Liu S, Di X (1992) Desertification and rehabilitation in China. Lanzhou: the international centre for education and research on desertification control. Science Press, Beijing

    Google Scholar 

Download references

Acknowledgments

We gratefully acknowledge Dr. N. Jim Barrow and Dr. David Eldridge for their valuable comments as technical editors for this manuscript. This study was supported by the Chinese National Natural Scientific Foundation (40671011, 90202015).

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Correspondence to X. R. Li.

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Responsible Editor: N. Jim Barrow.

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Li, X.R., Kong, D.S., Tan, H.J. et al. Changes in soil and vegetation following stabilisation of dunes in the southeastern fringe of the Tengger Desert, China. Plant Soil 300, 221–231 (2007). https://doi.org/10.1007/s11104-007-9407-1

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