DOI QR코드

DOI QR Code

Atmosphere-forest Exchange of Ammoniacal Nitrogen in a Subalpine Deciduous Forest in Central Japan during a Summer Week

  • Hayashi, Kentaro (Carbon and Nutrient Cycles Division, National Institute for Agro-Environmental Sciences) ;
  • Matsuda, Kazuhide (School of Science and Engineering, Meisei University) ;
  • Takahashi, Akira (Central Research Institute of Electric Power Industry) ;
  • Nakaya, Ko (Central Research Institute of Electric Power Industry)
  • Received : 2011.01.06
  • Accepted : 2011.05.25
  • Published : 2011.06.30

Abstract

The present study aimed to investigate the diurnal variations in air concentrations and exchange fluxes of ammoniacal nitrogen ($NH_x$: ammonia ($NH_3$) and particulate ammonium) in a subalpine deciduous forest in central Japan during a week in summer. The $NH_3$ concentrations ($0.50\;{\mu}g\;N\;m^{-3}$ on average) showed a clear circadian variation, i.e., high and low in the daytime and nighttime, respectively. The concentration of particulate ammonium in the coarse fractions was extremely low, whereas that for the PM2.5 fraction was relatively high $0.55\;{\mu}g\;N\;m^{-3}$ on average). The main inorganic ion components of PM2.5 at the study site were ammonium and sulfate. The exchange fluxes of $NH_x$ were bidirectional. Both the maximum and minimum values occurred in the daytime, i.e., $0.39\;mg\;N\;m^{-2}\;hr^{-1}$ of downward flux and $0.11\;mg\;N\;m^{-2}\;hr^{-1}$ of upward flux for $NH_3$ and $0.25\;mg\;N\;m^{-2}\;hr^{-1}$ of downward flux and $0.13\;mg\;N\;m^{-2}\;hr^{-1}$ of upward flux for PM2.5 ammonium. The exchange fluxes of $NH_x$ at night could be considered as zero. The mean deposition velocity during the research period was almost zero for both $NH_3$ and PM2.5 ammonium. The atmosphere-forest exchange of $NH_x$ in the forest during the study period was balanced. The remarkably large deposition of $NH_x$ was attributable to meteorological events such as showers the night before that thoroughly washed the forest canopy and subsequent clear skies in the morning, which enhanced convection. The cleaning effect of rainfall and the rapid change in convection in the early morning should be monitored to evaluate and generalize the gas and particle exchange in a forest.

Keywords

References

  1. Andersen, H.V., Hovmand, M.F., Hummelshoj, P., Jensen, N.O. (1999) Measurements of ammonia concentrations, fluxes and dry deposition velocities to a spruce forest 1991-1995. Atmospheric Environment 33, 1367-1383. https://doi.org/10.1016/S1352-2310(98)00363-X
  2. Anlauf, K.G., Fellin, P., Wiebe, H.A., Schiff, H.I., Mackay, G.I., Braman, R.S., Gilbert, R. (1985) A comparison of three methods for measurement of atmospheric nitric acid and aerosol nitrate and ammonium. Atmospheric Environment 19, 325-333. https://doi.org/10.1016/0004-6981(85)90100-3
  3. Bardouki, H., Liakakou, H., Economou, C., Sciare, J., Smolik, J., Zdimal, V., Eleftheriadis, K., Lazaridis, M., Dye, C., Mihalopoulos, N. (2003) Chemical composition of size-resolved atmospheric aerosols in the eastern Mediterranean during summer and winter. Atmospheric Environment 37, 195-208. https://doi.org/10.1016/S1352-2310(02)00859-2
  4. Bouwman, A.F., van Vuuren, D.P., Derwent, R.G., Posch, M. (2002) A global analysis of acidification and eutrophication of terrestrial ecosystems. Water, Air, and Soil Pollution 141, 349-382. https://doi.org/10.1023/A:1021398008726
  5. Businger, J.A. (1986) Evaluation of the accuracy with which dry deposition can be measured with current micrometeorological techniques. Journal of Climate and Applied Meteorology 25, 1100-1124. https://doi.org/10.1175/1520-0450(1986)025<1100:EOTAWW>2.0.CO;2
  6. EMEP (2001) EMEP manual for sampling and chemical analysis. EMEP/CCC-Report 1/95. Available from: http://www.emep.int/.
  7. Erisman, J.W., Draaijers, G.P.J. (1995) Atmospheric deposition in relation to acidification and eutrophication, Studies in Environmental Science 63, Elsevier, 55-75.
  8. Erisman, J.W., Draaijers, G., Duyzer, J., Hofshreuder, P., van Leeuwen, N.F.M., Romer, F., Ruijgrok, W., Wyers, P., Gallagher, M. (1997) Particle deposition to forestssummary of results and application. Atmospheric Environment 31, 321-332. https://doi.org/10.1016/S1352-2310(96)00223-3
  9. Erisman, J.W., Schaap, M. (2004) The need for ammonia abatement with respect to secondary PM reductions in Europe. Environmental Pollution 129, 159-163. https://doi.org/10.1016/j.envpol.2003.08.042
  10. Galloway, J.N., Dentener, F.J., Capone, D.G., Boyer, E.W., Howarth, R.W., Seitzinger, S.P., Asner, G.P., Cleveland, C.C., Green, P.A., Holland, E.A., Karl, D.M., Michaels, A.F., Porter, J.H., Townsend, A.R., Vörösmarty, C.J. (2004) Nitrogen cycles: past, present, and future. Biogeochemistry 70, 153-226. https://doi.org/10.1007/s10533-004-0370-0
  11. Garland, J.A. (2001) On the size dependence of particulate deposition. Water, Air and Soil Pollution: Focus 1, 323-332. https://doi.org/10.1023/A:1013183911748
  12. Hayashi, K., Komada, M., Miyata, A. (2007) Atmospheric deposition of reactive nitrogen on turf grassland in central Japan: Comparison of the contribution of wet and dry deposition. Water, Air, and Soil Pollution: Focus 7, 119-129. https://doi.org/10.1007/s11267-006-9096-4
  13. Hayashi, K., Koga, N., Yanai, Y. (2009b) Effects of fieldapplied composted cattle manure and chemical fertilizer on ammonia and particulate ammonium exchanges at an upland field. Atmospheric Environment 43, 5702-5707. https://doi.org/10.1016/j.atmosenv.2009.07.043
  14. Hayashi, K., Nishimura, S., Yagi, K. (2008) Ammonia volatilization from a paddy field following applications of urea: Rice plants are both an absorber and an emitter for atmospheric ammonia. Science of the Total Environment 390, 485-494. https://doi.org/10.1016/j.scitotenv.2007.10.037
  15. Hayashi, K., Takagi, K., Noguchi, I., Fukuzawa, K., Takahashi, H., Fukazawa, T., Shibata, H., Fujinuma, Y. (2009a) Ammoniacal nitrogen emission from a young larch ecosystem afforested after clear-cutting of a pristine forest in northernmost Japan. Water, Air, and Soil Pollution 200, 33-46. https://doi.org/10.1007/s11270-008-9891-9
  16. Hayashi, K., Yan, X.Y. (2010) Airborne nitrogen load in Japanese and Chinese agroecosystems. Soil Science and Plant Nutrition 56, 2-18. https://doi.org/10.1111/j.1747-0765.2009.00423.x
  17. Horvath, L. (2003) Dry deposition velocity of PM2.5 ammonium sulfate particles to a Norway spruce forest on the basis of S- and N-balance estimations. Atmospheric Environment 37, 4419-4424. https://doi.org/10.1016/S1352-2310(03)00584-3
  18. Ikeda, H., Yasuike, S., Kobayashi, T., Nakaya, K., Suzuki, C. (2004) Carbon stock and chemistry in deciduous forest-soil system. CRIEPI Research Report, Central Research Institute of Electric Power Industry, Japan, U03069, 19p (in Japanese with English abstract).
  19. IPCC (2007) The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of Intergovernmental Panel on Climate Change. Cambridge University Press, Cambridge.
  20. Keck, L., Wittmaack, K. (2005) Effect of filter type and temperature on volatilization losses from ammonium salts in aerosol matter. Atmospheric Environment 39, 4093-4100. https://doi.org/10.1016/j.atmosenv.2005.03.029
  21. Langford, A.O., Fehsenfeld, F.C. (1992) Natural vegetation as a source or sink for atmospheric ammonia: a case study. Science 25, 581-583.
  22. Langford, A.O., Fehsenfeld, F.C., Zachariassen, J., Schimel, D.S. (1992) Gaseous ammonia fluxes and background concentrations in terrestrial ecosystems of the United States. Global Biogeochemical Cycles 6, 459-483. https://doi.org/10.1029/92GB02123
  23. Matson, P., Lohse, K.A., Hall, S.J. (2002) The globalization of nitrogen deposition: Consequences for terrestrial ecosystems. Ambio 31, 113-119. https://doi.org/10.1579/0044-7447-31.2.113
  24. Matsuda, K., Fujimura, Y., Hayashi, K., Takahashi, A., Nakaya, K. (2010) Deposition velocity of PM2.5 sulfate in the summer above a deciduous forest in central Japan. Atmospheric Environment 44, 4582-4587. https://doi.org/10.1016/j.atmosenv.2010.08.015
  25. Miyata, A. (2001) Observational study on methane exchange between wetland ecosystems and the atmosphere. Bulletin of National Institute for Agro-Environmental Sciences, 19, 61-183. Available from: http://www.niaes.affrc.go.jp/index_e.html.
  26. Nakaya, K. (2008) Study of improvement on evaluation method of energy and mass exchange between atmosphere and forest ecosystem. Memories of the Research Faculty of Agriculture, Hokkaido University 29, 149-213 (in Japanese with English abstract)
  27. Neirynck, J., Ceulemans, R. (2008) Bidirectional ammonia exchange above a mixed coniferous forest. Environmental Pollution 154, 424-438. https://doi.org/10.1016/j.envpol.2007.11.030
  28. Nemitz, E., Sutton, M.A. (2004) Gas-particle interactions above a Dutch heathland: III. Modelling the influence of the $NH_3-HNO_3-NH_4NO_3$ equilibrium on size-segregated particle fluxes. Atmospheric Chemistry and Physics 4, 1025-1045. https://doi.org/10.5194/acp-4-1025-2004
  29. Nemitz, E., Sutton, M.A., Wyers, G.P., Otjes, R.P., Mennen, M.G., van Putten, E.M., Gallagher, M.W. (2004) Gas-particle interactions above a Dutch heathland: II. Concentrations and surface exchange fluxes of atmospheric particles. Atmospheric Chemistry and Physics 4, 1007-1024. https://doi.org/10.5194/acp-4-1007-2004
  30. Neuberger, M., Schimek, M.G., Horak, Jr. F., Moshammer, H., Kundi, M., Frischer, T., Gomiscek, B., Puxbaum, H., Hauck, H., AUPHEP-Team (2004) Acute effects of particulate matter on respiratory diseases, symptoms and functions: epidemiological results of the Austrian project on health effects of particulate matter (AUPHEP). Atmospheric Environment 38, 3971-3981. https://doi.org/10.1016/j.atmosenv.2003.12.044
  31. Niemi, J.V., Saarikoski, S., Aurela, M., Tervahattu, H., Hillamo, R., Westphal, D.L., Aarnio, P., Koskentalo, T., Makkonen, U., Vehkamaki, H., Kulmala, M. (2009) Long-range transport episodes of fine particles in southern Finland during 1999-2007. Atmospheric Environment 43, 1255-1264. https://doi.org/10.1016/j.atmosenv.2008.11.022
  32. Pryor, S.C., Barthelmie, R.J., Sorensen, L.L., Jensen, B. (2001) Ammonia concentrations and fluxes over a forest in the midwestern USA. Atmospheric Environment 35, 5645-5656. https://doi.org/10.1016/S1352-2310(01)00259-X
  33. Saigusa, N., Yamamoto, S., Murayama, S., Kondo, H., Nishimura, N. (2002) Gross primary production and net ecosystem exchange of a cool-temperate deciduous forest estimated by the eddy covariance method. Agricultural and Forest Meteorology 112, 203-215. https://doi.org/10.1016/S0168-1923(02)00082-5
  34. Sickles II, J.E., Hodson, L.L., Vorburger, L.M. (1999) Evaluation of the filter pack for long-duration sampling of ambient air. Atmospheric Environment 33, 2187-2202. https://doi.org/10.1016/S1352-2310(98)00425-7
  35. van Oss, R., Duyzer, J.H., Wyers, P. (1998) The influence of gas-to-particle conversion on measurements of ammonia exchange over forest. Atmospheric Environment 32, 465-471. https://doi.org/10.1016/S1352-2310(97)00280-X
  36. Wyers, G.P., Duyzer, J.H. (1997) Micrometeorological measurement of the dry deposition flux of sulphate and nitrate aerosols to coniferous forest. Atmospheric Environment 31, 333-343. https://doi.org/10.1016/S1352-2310(96)00188-4
  37. Wyers, G.P., Erisman, J.W. (1998) Ammonia exchange over coniferous forest. Atmospheric Environment 32, 441-451. https://doi.org/10.1016/S1352-2310(97)00275-6
  38. Wyers, G.P., Vermeulen, A.T., Slanina, J. (1992) Measurement of dry deposition of ammonia on a forest. Environmental Pollution 75, 25-28. https://doi.org/10.1016/0269-7491(92)90052-C
  39. Zimmermann, F., Plessow, K., Queck, R., Bernhofer, C., Matschullat, J. (2006) Atmospheric N- and S-fluxes to a spruce forest: Comparison of inferential modelling and the throughfall method. Atmospheric Environment 40, 4782-4796. https://doi.org/10.1016/j.atmosenv.2006.03.056

Cited by

  1. Atmosphere-rice paddy exchanges of inorganic particles and relevant gases during a week in winter and a week in summer vol.68, pp.1, 2011, https://doi.org/10.2480/agrmet.68.1.8
  2. Characteristics of Atmosphere-rice Paddy Exchange of Gaseous and Particulate Reactive Nitrogen in Terms of Nitrogen Input to a Single-cropping Rice Paddy Area in Central Japan vol.11, pp.3, 2011, https://doi.org/10.5572/ajae.2017.11.3.202