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海岸湿地针叶林-阔叶林突变临界维持机制研究 被引量:1

Maintenance of an abrupt boundary between needle-leaved and broad-leaved forests in a wetland near coast
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摘要 There is an abrupt boundary between two well-developed wetland forests, a stand consisting of a broad-leaved, nitrogen-fixer Alnusjaponica and a stand of the needle-leaved Picea glehnii Masters, in eastern Hokkaido, Japan. To clarify maintenance mechanisms, we studied the forest profile, water level, groundwater and precipitation chemistry, seedling establishment patterns in relation to microhabitats, and seed migration. The profile of groundwater level insufficiently explained the abrupt boundary formation, while the groundwater chemistry differed significantly between the two forests ; i.e., EC, Na^+, K^+, Mg^2+, Ca^2+ and Cl^- were higher in P. glehnii forest and pH was lower. Precipitation in P. glehnii forest contained richer Na+, Ca^2+ and Cl^-, indicating that the differences in surface-water chemistry were mostly derived from precipitation. Solar radiation was less than 2.2 MJ.m^-2.d^-1 on P. glehnii forest in late June, while that was patchily distributed in A.japonica forest with a range from 1.0 to 3.7 MJ'm^-2'd^-1. Moss cover on the soil surface, most of which were made of Sphagnum spp., was 60% in P. glehnii forest, but was 10% in A. japonica forest. Surface water chemistry represented by pH was considered to determine the development of Sphagnum moss. About 70% of P. glehnii seedlings 〈 1.3 m in height established on moss cover. Seed-sowing experiments suggested that seed germination and seedling survival for both species were significantly higher in P. glehnii forest. Therefore, the regeneration of P. glehnii in A. japonica forest was negligible, owing to the paucity of favorable microhabitats and low seedling establishment. A. japonica regenerated only by resprouting, and the seedlings were few in both forests. In addition, A. japonica seed migration into the P. glehnii forests was greatly restricted, and low solar radiation in the P. glehnii forest contributed to low seedling survival. Based on those results, we concluded that Picea glehnii and Alnusjaponica could develop distinct and selfish environments being unsuitable for the other species and inhibit natural afforestation of another species each other by excluding invasion. There is an abrupt boundary between two well-developed wetland forests, a stand consisting of a broad-leaved, nitrogen-fixer Alnusjaponica and a stand of the needle-leaved Picea glehnii Masters, in eastern Hokkaido, Japan. To clarify maintenance mechanisms, we studied the forest profile, water level, groundwater and precipitation chemistry, seedling establishment patterns in relation to microhabitats, and seed migration. The profile of groundwater level insufficiently explained the abrupt boundary formation, while the groundwater chemistry differed significantly between the two forests ; i.e., EC, Na^+, K^+, Mg^2+, Ca^2+ and Cl^- were higher in P. glehnii forest and pH was lower. Precipitation in P. glehnii forest contained richer Na+, Ca^2+ and Cl^-, indicating that the differences in surface-water chemistry were mostly derived from precipitation. Solar radiation was less than 2.2 MJ.m^-2.d^-1 on P. glehnii forest in late June, while that was patchily distributed in A.japonica forest with a range from 1.0 to 3.7 MJ'm^-2'd^-1. Moss cover on the soil surface, most of which were made of Sphagnum spp., was 60% in P. glehnii forest, but was 10% in A. japonica forest. Surface water chemistry represented by pH was considered to determine the development of Sphagnum moss. About 70% of P. glehnii seedlings 〈 1.3 m in height established on moss cover. Seed-sowing experiments suggested that seed germination and seedling survival for both species were significantly higher in P. glehnii forest. Therefore, the regeneration of P. glehnii in A. japonica forest was negligible, owing to the paucity of favorable microhabitats and low seedling establishment. A. japonica regenerated only by resprouting, and the seedlings were few in both forests. In addition, A. japonica seed migration into the P. glehnii forests was greatly restricted, and low solar radiation in the P. glehnii forest contributed to low seedling survival. Based on those results, we concluded that Picea glehnii and Alnusjaponica could develop distinct and selfish environments being unsuitable for the other species and inhibit natural afforestation of another species each other by excluding invasion.
出处 《Journal of Forestry Research》 SCIE CAS CSCD 2009年第2期91-98,I0001,共9页 林业研究(英文版)
关键词 Alnusjaponica MICROHABITAT Picea glehnii positive feedback switch precipitation chemistry seed dispersal wetland forest Alnusjaponica microhabitat Picea glehnii positive feedback switch precipitation chemistry seed dispersal wetland forest
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参考文献32

  • 1Adema EB., Grootjans AP, Petersen J, Grijpstra J. 2002. Alternative stable states in a wet calcareous dune slack in The Netherlands. Journal of Vegetation Science, 13:107-114.
  • 2Cantu Silva I, Gonzalez Rodriguez H. 2001. Interception loss, throughfall and stem flow chemistry in pine and oak forests in northeastern Mexico. Tree Physiology, 21: 1009-1013.
  • 3Duncan, RP. 1993. Flood disturbance and the coexistence of species in a lowland Podocarp forest, south Westland. New Zealand Journal of Ecology, 81: 403-416.
  • 4Delcourt, PA, Delcourt, HR. 1992. Ecotone dynamics in space and time. In: A.J. Hansen, F. de Castri (eds), Landscape boundaries. Consequences for biotic diversity and ecological flows. New York: Springer-Verlag, pp. 19-54.
  • 5di Castri F, Hansen A. 1992. The environment and development crises as determinants of landscape dynamics. In: A.J. Hansen, F. de Castri (eds), Landscape boundaries. Consequences for biotic diversity and ecological flows. New York: Springer-Verlag, pp. 3-18.
  • 6Gunnarsson U, Rydin H, Sjors H. 2000. Diversity and pH changes after 50 years on the boreal mire Skattloshergs Stormosse, Central Sweden. Journal of Vegetation Science, 11: 277-286.
  • 7Grace JB, Wetzel RG. 1981. Habitat partitioning and competitive displacement in cattails (Typha): Experimental field studies. American Naturalist. 118: 463-474.
  • 8Haraguchi A. 1992. Seasonal changes in redox property of peat and its relation to vegetation in a system of floating mat and pond. Ecological Research, 7: 205-212.
  • 9Haraguchi A, Iyobe T, Nishijima H, Tomizawa H. 2003. Acid and sea-salt accumulation in coastal mires of a Picea glehnii forest in Ochiishi, eastern Hokkaido, Japan. Wetlands 23: 229-235.
  • 10Haraguchi A, Shibasaki M, Noda M, Tomizawa H, Nishio F. 1999. Climatic factors influencing the tree-ring growth of Alnusjaponica in Kiritapp Mire, northern Japan. Wetlands 19: 100--105.

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