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Species-diversified plant cover enhances orchard ecosystem resistance to climatic stress and soil erosion in subtropical hillside

  • Life Science & Biotechnology
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Abstract

Naturally occurring plants in agroecosystem evidently play an important role in ecosystem stability. Field studies on the ecological effects of native plants conserved in orchard and their resistance to adverse climatic stress, and soil erosion were conducted from 1998 to 2001 in a newly developed Changshan-huyou (Citrus changshan-huyou Y.B. Chang) orchard. The experimental area covered 150 ha in typical red soil hilly region in southeastern China. The experimental design was a randomized complete block with six combinations of twelve plant species with four replications. All species used were native in the orchard. Plots were 15×8 m2 and separated by 2 m buffer strips. Precipitation, soil erosion in rain-storm days and aboveground biomass of plant community when rainstorm days ended, soil temperature and moisture under various plant covers during seasonal megathermal drought period, antiscourability of soil with different root density under various simulated rainfalls were measured. Plant cover significantly decreased the daily highest and mean soil temperature and its daily variation in hot-drought season, but there was no significant difference of the alleviation among various plant covers. Plant covers significantly increased the soil moisture in seasonal megathermal drought period. Better moisture maintenance and soil erosion reduction was found when the plant species numbers in cover plant communities increased from one to eight. Higher root density in plant communities with higher species richness increased significantly the antiscourability of the soil. It was suggested that conserving plant communities with diversified native species could produce the best positive ecological effects on citrus orchard ecosystem stability.

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References

  • Altieri, M.A., 1999. The ecological role of biodiversity in agroecosystems. Agriculture, Ecosystem and Environment, 74: 19–31.

    Article  Google Scholar 

  • Buhler, D.D., Liebaman, M., Obrycki, J.J., 2000. Theoretical and practical challenges to an IPM approach to weed management. Weed Science, 48: 274–280.

    Article  Google Scholar 

  • Cai, X.M., 2000. Ecosystem Ecology. Science Press, Beijing, China, p. 331 (in Chinese).

    Google Scholar 

  • Chen, X., Tang, J.J., Wang, X., 1999. Effects of weed biodiversity conservation on soil erosion prevention in newly developed slope upland of red soil. Chinese Journal of Weed Science, (3): 5–8 (in Chinese).

    Google Scholar 

  • Chen, X., Wang, Z.Q., Tang, J.J., 2000. The ecological functions of weed biodiversity in agroecosystem. Chinese Journal of Ecology, 19(4): 50–52 (in Chinese with English abstract).

    Google Scholar 

  • Chen, X., Tang, J.J., Wang, Z.Q., 2002a. Functions of biodiversity in agroecosystem, approaches to its conservation and orientation of future research. Rural Eco-Environment, 18(1): 38–41 (in Chinese with English abstract).

    Google Scholar 

  • Chen, X., Tang, J.J., Fang, Z.G., Hu, S.J., 2002b. Phosphate-olubilizing microbes in rhizosphere soils of 19 weeds in southeastern China. Journal of Zhejiang University SCIENCE, 3(3): 355–361.

    Article  Google Scholar 

  • Chen, X., Tang, J.J., Fang, Z.G., Fan, X.H., 2003. The ecological role of weeds conserved in orchard in red soil hilly area during hot-dry season. Chinese Journal of Ecology, 22(6): 38–42 (in Chinese with English abstract)

    Google Scholar 

  • Chen, X., Tang, J.J., Fang, Z.G., Shimizu, K., 2004. Effects of weed communities with various species numbers on soil features in subtropical orchard ecosystem. Agriculture, Ecosystems and Environment, 102: 377–388.

    Article  Google Scholar 

  • Gomez, J.A., Battany, M., Renschler, C.S., Fereres, E., 2003. Evaluating the impact of soil management on soil loss in olive orchards. Soil Use & Management, 19(2): 127–134.

    Article  Google Scholar 

  • Gyssels, G., Poesen, J., 2003. The importance of plant root characteristics in controlling concentrated flow erosion rates. Earth Surface Processes and Landforms, 28(4): 371–384.

    Article  Google Scholar 

  • He, Z.L., Zhu, J., 1998. Microbial utilization and transformation of phosphate adsorbed by variable charge minerals. Soil Biology and Biochemistry, 30(7): 917–923.

    Article  Google Scholar 

  • Hooper, D.U., Vitousek, P.M., 1997. The effects of plant composition and diversity on ecosystem processes. Science, 277: 1302–1305.

    Article  Google Scholar 

  • Lagerlof, J., Wallin, H., 1993. The abundance of arthropods along two field margins with different types of vegetation composition: an experimental study. Agriculture, Ecosystem and Environment, 43: 141–154.

    Article  Google Scholar 

  • Li, X.P., Wang, Z.Q., Chen, X., 2002. Research on soil and water conservation and mechanisms of hedges under rainfall simulation in red soil slope field. Journal of Soil and Water Conservation, 16(2): 36–40 (in Chinese with English abstract).

    MathSciNet  Google Scholar 

  • Li, Y., Xu, X.Q., Zhu, X.M., 1993. Plant roots and soil antiscourability. Journal of Soil and Water Conservation, 7(3): 11–18 (in Chinese with English abstract).

    Google Scholar 

  • Moore, P.D., 2000. Conservation biology: seeds of doubt. Nature, 407: 683–685.

    Article  Google Scholar 

  • McCan, K.S., 2000. The diversity stability debate. Nature, 405: 228–233.

    Article  Google Scholar 

  • Pimm, S.L., 1997. Agriculture: In search for of perennial solution. Nature, 389: 126–127.

    Article  Google Scholar 

  • Risch, S.J., 1983. Agroecosystem diversity and pest control: data, tentative conclusions, and new research directions. Environmental Entomology, 12: 625–629.

    Article  Google Scholar 

  • Sainju, U.M., Whitehead, W.F., Singh, B.R., 2003. Cover crops and nitrogen fertilization effects on soil aggregation and carbon and nitrogen pools. Canadian Journal of Soil Science, 83(2): 155–165.

    Article  Google Scholar 

  • Sun, B., Zhao, Q.G., 1995. Comprehensive evolution of soil nutrient impoverished in red soil hilly area southern China. Chinese Journal of Soil Science, 27(3): 119–128 (in Chinese).

    MathSciNet  Google Scholar 

  • Tilman, D., Knops, J., Wedin, D., 1997. The influence of functional diversity and composition on ecosystem processes. Science, 277: 1300–1302.

    Article  Google Scholar 

  • Tian, J.L., Zhou, P.H., Liu, P.L., 1992. A preliminary report of REE tracer method for soil erosion. Journal of Soil and Water Conservation, 6(4): 23–27 (in Chinese with English abstract).

    Google Scholar 

  • Vandermeer, J.H., 1990. Intercropping. In: Carrol, C.R., Vandermeer, J.H., Rosset, P.M. (Eds.), Agroecology. McGraw-Hill, New York, p. 481–516.

    Google Scholar 

  • Wright, G.C., McCloskey, W.B., Taylor, K.C., 2003. Managing orchard floor vegetation in flood-irrigated citrus groves. Horttechnology, 13(4): 668–677.

    Google Scholar 

  • Wyss, E., 1996. The effects of artificial weed strips on diversity and abundance of the arthropod fauna in a Swiss experimental apple orchard. Agriculture, Ecosystem and Environment, 60: 47–59.

    Article  Google Scholar 

  • Yang, Y.S., 1999. Technological measures suitable for red earth region in southern China. Research of Soil and Water Conservation, 6(2): 117–120 (in Chinese with English abstract).

    Google Scholar 

  • Yang, W.D., Wang, Z.Q., Sui, G.P., Chen, X., 1999. Soil erosion model under different land use in red soil sloping field. Journal of Soil Erosion and Soil and Water Conservation, 5(1): 52–58, 68 (in Chinese with English abstract)

    Google Scholar 

  • Yuan, D.H., Wang, Z.Q., Chen, X., Guo, X.B., Zhang, R.L., 2002a. Characteristics of nitrogen loss from sloping field in red soil area under different cultivation practices. Chinese Journal of Applied Ecology, 13(7): 863–866 (in Chinese with English abstract).

    Google Scholar 

  • Yuan, D.H., Wang, Z.Q., Guo, X.B., Chen, X., Zhang, R.L., 2002b. Properties of soil and water loss and organic carbon loss from small watershed under different land use patterns in red soil area. Journal of Soil and Water Conservation, 16(2): 24–28 (in Chinese with English abstract).

    Google Scholar 

  • Zhang, Y.B., 1991. A new species of genus of citrus from China. Bulletin of Botanical Research, 11(2): 5–7 (in Chinese and Latin).

    Google Scholar 

  • Zhao, Q.G., 1995. Degradation of red earth in China. Chinese Journal of Soil Science, 27(6): 281–285 (in Chinese).

    Google Scholar 

  • Zhu, Y.Y., Chen, H.C., Fan, J.H., 2000. Genetic diversity and disease control in rice. Nature, 406: 718–722.

    Article  Google Scholar 

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Correspondence to Jian-jun Tang.

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Projects (Nos. 30228005, 39870143 and 30030030) supported by the National Natural Science Foundation of China

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Chen, X., Yang, Ys. & Tang, Jj. Species-diversified plant cover enhances orchard ecosystem resistance to climatic stress and soil erosion in subtropical hillside. J. Zheijang Univ.-Sci. 5, 1191–1198 (2004). https://doi.org/10.1631/jzus.2004.1191

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