Assessment of the Uptake of Base Cation and Nitrogen in Korean Forest

우리나라 산림에 의한 염기성 양이온과 질소의 흡수량 산정

  • Lee, Sang-Deok (Department of Environmental Diagnostics, National Institute of Environmental Research) ;
  • Han, Jin-Seok (Department of Environmental Diagnostics, National Institute of Environmental Research) ;
  • Chung, Il-Rok (Department of Environmental Diagnostics, National Institute of Environmental Research) ;
  • Lee, Sang-Yong (Department of Forest Resources Protection, Kangwon National University)
  • 이상덕 (국립환경과학원 환경진단연구부) ;
  • 한진석 (국립환경과학원 환경진단연구부) ;
  • 정일록 (국립환경과학원 환경진단연구부) ;
  • 이상용 (강원대학교 산림자원보호학과)
  • Received : 2008.09.26
  • Accepted : 2009.01.31
  • Published : 2009.02.28

Abstract

Using the "Statistical Yearbooks of Korean forestry", we assessed the uptake of nitrogen and base cations by Korean forest. Combined amount of base cations uptake by forest tress during its growth and that of at the time of harvest reached to 1,034 eq/ha/yr. The base cations uptake in the range of 900 ~ 1,100 eq/ha/yr occupied approximately 48.6% out of total. Coniferous forest in the range of 170 ~ 200 eq/ha/yr was 59.9%, deciduous forest in the range of 430 ~ 530 eq/ha/yr was 42.6%, and mixed forest in the range of 270 ~ 370 eq/ha/yr was 35.7% out of total. Deciduous forest recorded higher uptake rate of nitrogen and base cation than coniferous forest in Korea. Combined amounts of nitrogen uptake by forest tress during growth and that at the time of forest, was 1,108 eq/ha/yr and nitrogen uptake was in the range of 1,000 ~ 1,200 eq/ha/yr, Within Korea, forest with nitrogen uptake in the range of 1,000 ~ 1,200 eq/ha/yr account for 45.7% of the entire country. Locations in the range of 320 ~ 390 eq/ha/yr occupied 43.9% of all coniferous forest while deciduous forest in the range of 470 ~ 570 eq/ha/yr was 40.4% of total deciduous forest. As for mixed forest in the range of 270 ~ 370 eq/ha/yr, it occupied 35.9% of all mixed forest of Korea.

Keywords

References

  1. 국립환경과학원, 2005, 국가 대기오염불질 배출량-연도별 배출량 추이(1999-2003)-, 환경부, pp. 205
  2. 산림청, 2001, 산림과 임업기술, 259-260
  3. 산림청, 2005, 임업통계연보, pp. 462
  4. 한진석, 이상덕, 홍유덕, 공부주, 신선아, 정일록, 2006, 2005년 우리나라 습성강하물의 특성과 분포, 한국대기환경학회지, 22(4), 459-467
  5. 행정자치부, 2005, 지적통계연보, pp. 512
  6. Bussotti F. and Ferretti M., 1998, Air pollution, forest condition and forest decline in Southern Europe: an overview, Environ Pollut, 101(1), 49-65 https://doi.org/10.1016/S0269-7491(98)00039-6
  7. Choi Young Cheol and Park In Hyeop, 1993, Biomass and Net Production of a Natural Quercus variabilis Forest and a Populus $alba{\times}P$. glandulosa Plantation at Mt. Mohu Area in Chonnam, Journal of Korean Forest Society, 82, 188-194
  8. Cowling, E. B., 1982, Acid precipitation in historical perspective, Environmental Science Technology, 16, 110A-123A https://doi.org/10.1021/es00096a002
  9. David M., Anne P., and Jean-Paul P., 2004, Weathering, atmospheric deposition and vegetation uptake : role for ecosystem sensitivity to acid deposition and critical load. External Geophysics, Climate and Environment, 336, 1417-1426
  10. De Vries W., G. J. Reinds, and M. Posch, 1994, Assessment of critical loads and their exceedances on European forests using a one-layer steady-state model. Water, Air and Soil Pollution, 72, 357-394 https://doi.org/10.1007/BF01257134
  11. Galloway J. N., 1995, Acid deposition:perspectives in time and space, Water Air Soil Pollut., 85, 15-24 https://doi.org/10.1007/BF00483685
  12. Heij G. J., de Vries W., Posthumus A. C., Mohren G. M. J., 1991, Effects of air pollution and acid deposition on forests and forest soils, In:Schneider T, Heij GJ, editors. Acidification research in the Netherlands Final report of the Dutch Priority Programme on Acidification, studies in environmental science; wol. 46, Amsterdam: Elsevier, 97-137
  13. Hopke, P. K., 1985, Receptor modelling in environmental chemistry. John Wiley & Sons. 91-110
  14. Jo, N. S., 2006, Statistical yearbook of forestry, www.foa.go.kr
  15. Kandler O. and Innes J. L., 1995, Air pollution and forest decline in central Europe, Environ Pollut., 90(2), 171-180 https://doi.org/10.1016/0269-7491(95)00006-D
  16. Kramer, H., 1996, Waldwachstumslehre, Verlag Paul Parey, Hamburg und Berlin
  17. Seinfeld, J. H., 1986, Atmospheric chemistry and physics of air pollution, John Wiley & Sons, 699
  18. Lei Duan, Yongmei Huang, Jiming Hao, Shaodong Xie, Min Hou, 2004, Vegetation uptake of mitrogen and base cations in China and its role in soil acidification, Science of the total environment, 330, 187-198 https://doi.org/10.1016/j.scitotenv.2004.03.035
  19. Seinfeld J. H., 1986, Atmospheric chemistry and physics of air pollution, John Wiley & Sons, pp. 699
  20. Stumm, W. and J. J. Morgan, 1990, Aquatic chemistry; an introduction emphasizing chemical equilibria in natural waters, 2nd Ed. John Wiley & Sons, New York, 121-170
  21. Park, I. H, D, K, Lee, K. J. Lee, and G. S. Moon., 1996, Growth, Biomass and NetProduction of Quercus Species(I) - With Reference to Natural Stands of Quercusvariabilis, Q. acutissima, Q. dentata and Q. mongolica in Kwangju, Kyonggi Do -,Journal of Korean Forest Society, 85, 76-83
  22. Posch. M., P. A. M. de Smet, J. P. Hettelingh and R. J. Downing (eds.), 1995,Calculation and mapping of critical thresholds in Europe: in CCE Status Report, National Institute of Public Health and the Environment(RIVM) Rep. 259101005, Bilthoven, Netherlands
  23. UBA 1996, ICP Modelling and Mapping:Manual on Methodologies and Criteria for Mapping Critical Levels/Loads and geographical areas where they areexceeded. Federal Environmental Agency (Umweltbundesamt), Texte 71/96, Berlin
  24. UBA 2004, ICP Modelling and Mapping : Manual on Methodologies and Criteria for Mapping Critical Levels/Loads and geographical areas where they are exceeded. Federal Environmental Agency (Umweltbundesamt), Texte 52/04,Berlin