The impact of land cover generated by a dynamic vegetation model on climate over East Asia in present and possible future climate
Author:
Cho M.-H., Boo K.-O., Martin G. M.ORCID, Lee J., Lim G.-H.
Abstract
Abstract. This study investigates the impacts of land cover change, as simulated by a dynamic vegetation model, on the summertime climatology over Asia. The climate model used in this study has systematic biases of underestimated rainfall around Korea and overestimation over the South China Sea. When coupled to a dynamic vegetation model, the resulting change in land cover is accompanied by an additional direct radiative effect over dust-producing regions. The direct radiative effect of the additional dust contributes to increasing the rainfall biases, while the land surface physical processes are related to local temperature biases such as warm biases over North China. In time-slice runs for future climate, as the dust loading changes, anomalous anticyclonic flows are simulated over South China Sea, resulting in reduced rainfall over the South China Sea and more rainfall toward around Korea and South China. In contrast with the rainfall changes, the influence of land cover change and the associated dust radiative effects are very small for future projection of temperature, which is dominated by atmospheric CO2 increase. The results in this study suggest that the land cover simulated by a dynamic vegetation model can affect, and be affected by, model systematic biases on regional scales over dust emission source regions such as Asia. In particular, analysis of the radiative effects of dust changes associated with land cover change is important in order to understand future changes of regional precipitation in global warming.
Publisher
Copernicus GmbH
Reference39 articles.
1. Adler, R. F., Huffman, G. J., Chang, A., Ferraro, R., Xie, P., Janowiak, J., Rudolf, B., Schneider, U., Curtis, S., Bolvin, D., Gruber, A., Susskind, J., Arkin, P., and Nelkin, E.: The Version 2 Global Precipitation Climatology Project (GPCP) monthly precipitation analysis (1979–present), J. Hydrometeorol., 4, 1147–1167, 2003. 2. Baek, H.-J., Lee, J., Lee, H.-S., Cho, C., Kwon, W.-T., Marzin, C., Hyun, Y.-K., Gan, S.-Y., Kim, M.-J., Choi, D.-H., Lee, J., Lee, J., Boo, K.-O., Kang, H.-S., and Byun, Y.-H.: Climate change in the 21st century simulated by HadGEM2-AO under representative concentration pathways, Asia-Pac. J. Atmos. Sci., 49, 603–618, 2013. 3. Batlle Bayer, L., van den Hurk, B. J. J. M., Strengers, B. J., and van Minnen, J. G.: Regional feedbacks under changing climate and land-use conditions, Earth Syst. Dynam. Discuss., 3, 201–234, https://doi.org/10.5194/esdd-3-201-2012, 2012. 4. Collins, W. J., Bellouin, N., Doutriaux-Boucher, M., Gedney, N., Halloran, P., Hinton, T., Hughes, J., Jones, C. D., Joshi, M., Liddicoat, S., Martin, G., O'Connor, F., Rae, J., Senior, C., Sitch, S., Totterdell, I., Wiltshire, A., and Woodward, S.: Development and evaluation of an Earth-System model – HadGEM2, Geosci. Model Dev., 4, 1051–1075, https://doi.org/10.5194/gmd-4-1051-2011, 2011. 5. Cox, P. M.: Description of the "TRIFFID" Dynamic Global Vegetation Model, Hadley Centre Technical Note No. 24, Met Office Hadley Centre, Exeter, UK, available at: http://www.metoffice.gov.uk/media/pdf/9/h/HCTN_24.pdf (last access: 15 October 2014), 2001.
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