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Soil Respiration in Pinus densiflora, Quercus variabilis and Platycarya strobilacea Stands in Jinju, Gyeongnam Province

경남 진주지역 소나무, 굴참나무 및 굴피나무림의 토양호흡에 관한 연구

  • 문현식 (경상대학교 산림과학부 농업생명과학연구원)
  • Published : 2004.04.01

Abstract

Soil respiration rate was measured from March to November 2003 using the KOH absorption method in Pinus densiflora, Quercus variabilis, Platycarya strobilacea stands in Jinju, Gyeongnam Province. Throughout the study period, average soil temperature and moisture content were 16.2$^{\circ}C$, 25.1% for P. densiflora stand, 17.1$^{\circ}C$, 24.3% for Q. variabilis stand, and 17.6$^{\circ}C$, 25.1% for P. strobilacea stand, respectively. The seasonal fluctuations of soil respiration rate increasing in summer and decreasing in winter, which there were strong positive correlations of soil respiration and soil temperature in all study stands. However, there were no significant correlations between soil moisture and soil respiration. Soil respiration rates throughout the study period ranged from 0.12 to 0.77 for P. densiflora stand, 0.23 to 1.37 for Q. valiabilis stand, and 0.30 to 1.47 g $CO_2\cdotm^{-2}\cdothr^{ -1}$ for P. strobilacea stand, respectively. Mean soil respiration rates in P. densiflora, Q. variabilis, P. strobilacea stands were 0.43, 0.80, and 0.90 g $CO_2\cdotm^{-2}\cdothr^{ -1}$, respectively. The Q$_{10}$ values were 2.38 for P. densiflora stand, 2.11 for Q. variabilis stand, and 2.07 for P. strobilacea stand. Annual total soil respiration was 24 for P. densiflora stand, 49.3 for Q. variabilis stand, and 55.3 t $CO_2\cdotha^{-1}\cdotyr^{ -1}$ for P. strobilacea stand, respectively.y.

Keywords

References

  1. 고려대학교 박사학위논문 양평지역 리기다소나무, 낙엽송, 졸참나무림의 물질생산과 질소 및 인의 분포에 관한 연구 김종성
  2. 경상대학교 연습림연구보고 v.11 월아산 근린공원의 식생구조와 동태 노일;조현남;박우진;문현식
  3. 경상대학교 농업생명과학연구 v.37 no.4 월아산 지역의 관속식물상에 관한 연구 문현식;노일;조현남
  4. 한국임학회지 v.85 no.3 리기다소나무와 낙엽송 인공조림지내 토양발생 이산화탄소에 관한 연구 손요환;김현우
  5. 한국임학회지 v.92 no.3 강원도춘천지역의 굴참나무림과 신갈나무림내 토양 CO₂의 발생 이명종
  6. 한국생태학회지 v.24 no.3 상수리나무림의 토양호흡에 관한 연구 이윤영;문형태
  7. 한국임학회지 v.91 no.4 리기다소나무와 낙엽송 임분에서 간벌, 석회시비 및 낙엽층 처리가 토양발생 이산화탄소 및 낙엽 분해에 미치는 영향 황재홍;손요환
  8. Can. J. For. Res. v.23 Contribution of aboveground litter, belowground litter, and root respiration to total soil respiration in a temperate mixed hardwood forest Bowden,K.D.;K.J.Nadelhoffer;R.D.Boone;J.M.Melillo;J.B.Garrison https://doi.org/10.1139/x93-177
  9. Soil Biol. Biochem. v.24 Mehanisms controlling soil respiration (CO₂and CH₄) in southern peatlands Bridgham,S.D.;C.J.Richardson https://doi.org/10.1016/0038-0717(92)90058-6
  10. Global Change Biol. v.4 Soil water content and temperature as independent or confounded factors controlling soil respiration in a temperate mixed hardwood forest Davidson,E.A.;E.Belk;R.D.Boone https://doi.org/10.1046/j.1365-2486.1998.00128.x
  11. Carbon Forms and Functions in Forest Soil.Soil Sci. Soc. Am. Management-induced changes in the actively cycling fraction of soil organic matter Ellert,B.H.;E.G.Gregorich;W.W.Mcfee(ed.);J.M.Kellg(ed.)
  12. Soil Sci. Soc. Am. J. v.57 Soil carbon dioxide characteristics under different forest types and after harvest Fernandez,I.J.;Y.Son;C.R.Kraske;L.E.Rustad;M.B.David https://doi.org/10.2136/sssaj1993.03615995005700040039x
  13. Climate change IPCC
  14. Jap. J. Ecol. v.27 Re-examination of the absorption method of measuring soil respiration under field conditions. Ⅱ. Effect of the size of the apparatus on CO₂absorption rates Kirita,H.
  15. Application of physiological ecology to forest management Landsberg,J.J.;S.T.Gower
  16. Func. Ecology v.8 On the temperature dependence of soil respiration Lloyd,J.;J.A.Taylor https://doi.org/10.2307/2389824
  17. Ecology v.59 Macroclimate and lignin control of litter decomposition Meentemeyer,V. https://doi.org/10.2307/1936576
  18. Ecology v.63 Nitrogen and lignin control of hardwood leaf litter decomposition dynamics Melillo,J.M.;J.D.Aber;J.F.Muratore https://doi.org/10.2307/1936780
  19. Korean J. Ecol. v.24 no.6 Rate of soil respiration at black locust(Robinia pseudo-acacia) stands in Jinju area Moon,H.S.;S.Y.Jung;S.C.Hong
  20. For. Ecol. Manage. v.72 Soil carbon cycling in a Japanese cedar (Cryptomeria japonica) plantation Nakane,K. https://doi.org/10.1016/0378-1127(94)03465-9
  21. Ecology v.75 Biases of chamber methods for measuring soil CO₂efflux demonstrated with a laboratory apparatus Nay,S.M.;K.G.Mattson;B.T.Bormann https://doi.org/10.2307/1940900
  22. Ecology v.70 Belowground carbon allocation in forest ecosystems: global trends Raich,J.W.;K.J.Nadelhoffer https://doi.org/10.2307/1938194
  23. Tellus v.44 The global carbon dioxide flux in soil respiration and its relationship to vegetation and climate Raich,J.W.;W.H.Schlesinger https://doi.org/10.3402/tellusb.v44i2.15428
  24. SAS/STAT User's Guide. 6.12ed. SAS
  25. Can. J. For. Res. v.15 Relationships between CO₂evolution from soil, substrate temperature, and substrate moisture in four mature forest types in interior Alaska Schlentner,R.E.;K. Van Cleve https://doi.org/10.1139/x85-018
  26. Bot. Rev. v.43 Plant decomposition and soil respiration in terrestrial ecosystems Singh,J.S.;S.R.Gupta https://doi.org/10.1007/BF02860844
  27. Nature v.361 CO₂, NH₄, and N₂O flux through a Wyoming snowpack and impliations for global budgets Sommerfeld,R.A.;A.R.Mosier;R.C.Musselman https://doi.org/10.1038/361140a0
  28. Kor. J. Soil. Sci. Fert. v.27 no.4 Soil carbon dioxide evolution in three deciduous tree plantation Son,Y.;G.Lee;J.Y.Hong
  29. Can. J. For. Res. v.23 Nitrogen mineralization and nitrification in successional ecosystems on the Tanana River floodplain, interior Alaska Van Cleve;K.J.Yarie;R.Erickson https://doi.org/10.1139/x93-125

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