[1] Schlesinger W H. Evidence from chronosequence studies for a low carbon-storage potential of soils. Nature, 1990.348, 232-234.
[2] Schlesinger W H. An overview of the C cycle. In: Lal R, Kimble J, Levin E et al. (eds.), Soils and Global Change. CRC Press, Inc. 1995. 9-26.
[3] Kimble L R J, Stewart B A. World soils as a source or sink for radiatively-active gases. In: Lal R, Kimble J, Levin E et al. (eds.), Soils and Global Change. CRC Press, Inc., 1995. 1-7.
[4] Post W M, Emanuel W R, Zinke P J et al. Soil carbon pools and world life zones. Nature, 1982, 298: 156-159.
[5] Trumbore S E. Potential responses of soil organic carbon to global environmental change. In: Proceedings of the National Academy Science, 1997, 94: 8284-8291.
[6] Trumbore S, Chadwick O A, Amundson R. Rapid exchange between soil carbon and atmospheric carbon dioxide driven by temperature change. Science, 1996, 272: 393-396.
[7] Jenkinson D S, Adams D E, Wild A. Model estimates of CO2 emissions from soil in response to global warming. Nature, 1991, 351: 304-306.
[8] Fang Jingyun, Liu Guohua, Xu Songling. Carbon pool of terrestrial ecosystem in China. In: Wang Gengchen, Wen Yupu (eds.), Monitoring of Greenhouse Gas Concentration and Emission and Relevant Processes. Beijing: China Environmental Science Press, 1996. 109-128.
[方精云, 刘国华, 徐嵩龄. 中国陆地生态系统的碳库. 见: 王庚辰, 温玉璞 (eds.), 温室气体浓度和排放监测及相关过程. 北京: 中国环境科学出版社, 1996. 109-128.]
[9] Wang Genxu, Cheng Guodong, Shen Yongping. Soil organic carbon pool of grasslands on the Tibetan Plateau and its global implication. Journal of Glaciolgy and Geocryology, 2002, 24(6): 693-700.
[王根绪, 程国栋, 沈永平. 青藏高原草地土壤有机碳库及其全球意义. 冰川冻土, 2002, 24(6): 693-700.]
[10] Liu Yunfen, Ouyang Hua, Cao Guangmin et al. Soil carbon emission from ecosystems of eastern Qinghai-Tibet Plateau. Journal of Natural Resources, 2001, 16(2): 152-160.
[刘允芬, 欧阳华, 曹广民 等. 青藏高原东部生态系统土壤碳排放. 自然资源学报, 2001, 16(2): 152-160.]
[11] Pei Zhiyong, Ouyang Hua, Zhou Caiping. A study on carbon fluxes from alpine grassland ecosystem on Tibetan Plateau. Acta Ecologica Sinica, 2003, 23(2): 231-236.
[裴志永, 欧阳华, 周才平. 青藏高原高寒草原碳排放及其迁移过程研究. 生态学报, 2003, 23(2): 231-236.]
[12] Liu Yunfen, Ouyang Hua, Zhang Xianzhou et al. Carbon balance in agro-ecosystem in Qinghai-Tibet Plateau. Acta Pedologica Sinica, 2002, 39(5): 636-642.
[刘允芬, 欧阳华, 张宪洲 等. 青藏高原农田生态系统碳平衡. 土壤学报, 2002, 39(5): 636-642.]
[13] Zhang X Z, Shi P L, Liu Y F, et al. Experimental study on soil CO2 emission in the alpine grassland ecosystem on Tibetan Plateau. Science in China (Series D), 2005, 48(suppl. 1): 218-224.
[14] Zhang Jinxia, Cao Guangmin, Zhou Dangwei et al. Diel and seasonal changes of carbon dioxide emission from mollic-cryic cambisols on degraded grassland. Acta Pedologica Sinica, 2001, 38(1): 32-39.
[张金霞, 曹广民, 周党卫 等. 退化草地暗沃寒冻雏形土CO2释放的日变化和季节动态. 土壤学报, 2001, 38(1): 32-39.]
[15] Cao Guangmin, Li Yingnian, Zhang Jinxia et al. Values of carbon dioxide emission from different land use patterns of alpine meadow. Environmental Sciences, 2001, 22(6): 14-19.
[曹广民, 李英年, 张金霞 等. 高寒草甸不同土地利用格局土壤CO2的释放量. 环境科学, 2001, 22(6): 14-19.]
[16] Wang Shaoqiang, Zhou Chenghu. Estimating soil carbon reservior of terrestrial ecosystem in China. Geographical Research, 1999, 18(4): 349-356.
[王绍强, 周成虎. 中国陆地土壤有机碳库的估算. 地理研究, 1999, 18(4): 349-356.]
[17] Zhang Yaosheng, Zhou Xingmin, Wang Qiji. A preliminary analysis of production performance of oat (Avena sativa) at alpine meadow pasture. Acta Agrestia Sinica, 1998, 16(2): 115-123.
[张耀生, 周兴民, 王启基. 高寒牧区燕麦生产性能的初步分析. 草地学报, 1998, 16(2): 115-123.]
[18] Li Yingnian, Wang Qinxue, Gu Song et al. Integrated monitoring of alpine vegetation types and its primary production. Acta Geographica Sinica, 2004, 59(1): 40-48.
[李英年, 王勤学, 古松 等. 高寒植被类型及其植物生产力的监测. 地理学报, 2004, 59(1): 40-48.]
[19] Wang Y, Amundson Ronald. The impact of land use change on C turnover in soils. Global Biogeochemical Cycles, 1999, 13(1): 47-57.
[20] Veldkamp E. Organic carbon turnover in three tropical soils under pasture after deforestation. Soil Sci. Soc. Am. J., 1994, 58: 175-180.
[21] Frank A B. Carbon dioxide fluxes over a grazed prairie and seeded pasture in the Northern Great Plains. Environmental Pollution, 2002, 116: 397-403.
[22] Rastetter E B, McKane R B, Shaver G R. Changes in C storage by terrestrial ecosystems: how C-N interactions restrict responses to CO2 and temperature. Water, Air, and Soil Pollution, 1992, 64: 327-344.
[23] Gifford R M. The global carbon cycle. Australian Journal of Plant Physiology, 1994, 21: 1-15.
[24] Schimel D S. Terrestrial ecosystems and the carbon cycle. Global Change Biol., 1995, 1: 77-91.
[25] Keeling C D, Chin J F S, Whorf T P. Increased activity of northern vegetation inferred from atmospheric CO2 measurements. Nature, 1996, 382: 146-149.
[26] Fan S, Gloor M, Mahlman J et al. A large terrestrial carbon sink in North America implied by atmospheric and oceanic carbon dioxide data and models. Science, 1998, 282: 442-446.
[27] Weaver J E, Hougen V H, Weldon M D. Relation of root distribution to organic matter in prairie soil. The Botanical Gazette, 1935, 96(3): 389-420.
[28] Gill R A. Biotic controls over the depth destribution of soil organic matter. Doctoral Dissertation in Ecology. Colorado State University, Fort Collins, CO., 1998.
[29] Reeder J D, Schuman G E. Influence of livestock grazing on C sequestration in semi-arid mixed-grass and short-grass rangelands. Environmental Pollution, 2002, 116: 457-463.
[30] Wang Y. The impact of land use change on C turnover in soils. Global Biogeochemical Cycles, 1999, 13(1): 47-57.
[31] Becker-Heidmann P, Andresen O, Kalmar D et al. Carbon dynamics in vertisols as revealed by high-resolution sampling. Radiocarbon, 2002, 44(1): 63-73.
[32] Chen Q Q, Sun Y M, Shen C D et al. Organic matter turnover rates and CO2 flux from organic matter decomposition of mountain soil profiles in the subtropical area, south China. Catena, 2002, 49: 217-229.
[33] Adams J M, Faure H, Faure-Denard L et al. Increases interrestrial carbon storage from the Last Glacial Maximum to the present. Nature, 1990, 348: 711-714.
[34] Anderson J M. Responses of soils to climate change. Adv. Ecol. Res., 1992, 22: 163-210.
[35] Batjes N H. Total carbon and nitrogen in the soils of the world. Eur. J. Soil Sci., 1996, 47: 151-163.
[36] Eswaran H, van den Berg E, Reich P. Organic carbon in soils of the world. Soil Sci. Soc. Am. J., 1993, 57: 192-194.
[37] Wang Shaoqiang, Zhou Chenghu, Li Kerang et al. Analysis on spatial distribution characteristics of soil organic carbon reservoir in China. Acta Geographica Sinica, 2000, 55(5): 533-544.
[王绍强, 周成虎, 李克让 等. 中国土壤有机碳库及空间分布特征分析. 地理学报, 2000, 55(5): 533-544.]
[38] Li Kerang, Wang Shaoqiang, Cao Mingkui. Vegetation and soil carbon storage in China. Science in China (Series D), 2004, 47(1): 49-57.
[39] Ni J. Carbon storage in terrestrial ecosystems of China. Climatic Change, 2001, 49(3): 339-358.
[40] Post W M, Peng T H, Emanuel W R et al. The global carbon cycle. American Scientist, 1990, 78: 310-326.
[41] Foley J A. An equilibrium model of the terrestrial carbon budget. Tellus, 1995, 47(B): 310-319.
[42] King A W, Emanuel W R, Wullschleger S D et al. A search of the missing carbon sink: a model of terrestrial biospheric response to landuse change and atmospheric CO2. Tellus, 1995, 47(B): 501-519.
|