Acta Laser Biology Sinica, Volume. 28, Issue 5, 415(2019)
Research Progress on Carbon Flux in Agro-ecosystem Based on Eddy Covariance System
[2] [2] YU Guirui, ZHANG Leiming, SUN Xiaomin. Progresses and prospects of chinese terrestrial ecosystem flux observation and research network(ChinaFLUX)[J]. Progress in Geography, 2014, 33(7): 903-917.
[3] [3] LI Jing, WANG Mingxing, WANG Yuesi, et al. Advance of researches on greenhouse gases emission from chinese agricultural ecosystem[J]. Chinese Journal of Atmospheric Science, 2003, 27(4): 740-749.
[4] [4] LIU Yu, CHEN Minpeng, CHEN Jining. Progress and perspectives in studies on agro-ecosystem carbon cycle model[J]. Transactions of the Chinese Society of Agricultural Engineering, 2015, 31(3): 1-9.
[5] [5] ZHU Yongli. Carbon dioxide exchange between paddy ecosystem and the atmosphere in the subtropical region[D]. Xianyang: Chinese Academy of Sciences and Ministry of Education (Research Center of Soil and Water Conservation and Ecological Environment), 2005.
[7] [7] BALDOCCHI D. Breathing of the terrestrial biosphere: lessons learned from a global network of carbon dioxide flux measurement systems[J]. Australian Journal of Botany, 2008, 56(1): 1-26.
[8] [8] WANG Jin, BAI Jie, CHEN Xi, et al. Carbon fluxes in cotton field with plastic mulched drip irrigation in Xinjiang oasis[J]. Journal of Agricultural Machinery, 2015, 46(2): 70-78, 136.
[9] [9] CAO Yuanyuan, WANG Juan, WANG Jianlin. Diurnal change characteristics of H2O and CO2 flux of corn farmland ecosystem[J]. Chinese Agricultural Science Bulletin, 2016, 32(9): 137-141.
[10] [10] CAI Xu, ZHANG Fenghua, YANG Haichang. Net ecosystem exchange changes of agricultural ecosystem and its influencing factors in Xinjiang[J]. Journal of Arid Land Resources and Environment, 2016, 30(7): 59-64.
[11] [11] SUN Xiaoxiang, CHANG Zhizhou, YANG Guishan, et al. Characteristics of net ecosystem exchange and environmental factors of rice-wheat rotation system in the Yangtze River delta of China[J]. Chinese Journal of Eco-agriculture, 2015, 23(7): 803-811.
[12] [12] XU Xibao, YANG Guishan, SUN Xiaoxiang. Analysis of net ecosystem CO2 exchange (NEE) in the rice-wheat rotation agroecosystem of the lake Taihu basin,China[J]. Acta Ecologica Sinica, 2015, 35(20): 6655-6665.
[13] [13] WANG Y, HU C, DONG W, et al. Carbon budget of a winter-wheat and summer-maize rotation cropland in the North China Plain[J]. Agriculture, Ecosystems & Environment, 2015, 206: 33-45.
[14] [14] WEI Jiabin, XU Huaqin, ZHOU Linghong, et al. Seasonal variation in carbon exchange and its modulating factors of a double cropping rice ecosystem in southern China[J]. Journal of Agro-environment Science, 2018, 37(5): 1035-1044.
[15] [15] HUANG Guoqin, SUN Danping. Development situation and research progress of multiple cropping in China[J]. Chinese Agricultural Science Bulletin, 2017, 33(3): 35-43.
[16] [16] XUE Hongxi, LI Feng, LI Qi, et al. Research progress on carbon flux over agro-ecosystem based on the eddy covariance method in China[J]. Journal of Nanjing University of Information Science and Technology: Natural Science Edition, 2012, 4(3): 226-232.
[17] [17] WANG Yanan, LONG Huiling, YUAN Zhanliang, et al. Carbon fluxes and carbon sequestration capacity variation of maize ecosystem in Heihe basin based on eddy covariance observation[J]. Journal of Henan Agricultural Sciences, 2015, 44(8): 154-159.
[18] [18] JIANG Yumeng, ZHAO Fenghua, LIU Jinqiu, et al. Effect of extreme heat on winter wheat canopy carbon assimilation[J]. Chinese Journal of Eco-agriculture, 2015, 23(10): 1260-1267.
[19] [19] MACHADO C B, LIMA J R D S, ANTONINO A C, et al. Daily and seasonal patterns of CO2 fluxes and evapotranspiration in maize-grass intercropping[J]. Revista Brasileira De Engenharia Agrícola E Ambiental, 2016, 20(9): 777-782.
[20] [20] LI X, LIU L, YANG H, et al. Relationships between carbon fluxes and environmental factors in a drip-irrigated, film-mulched cotton field in arid region[J]. Plos One, 2018, 13(2): 1-18.
[21] [21] ZHONG Xiaochun, CHEN Wen, LIU Tao, et al. Spatial and temporal change of vegetation net primary productivity and its relationship with climate from 2001 to 2010 in China[J]. Chinese Journal of Agricultural Resources and Regional Planning, 2016, 37(9): 16-22.
[22] [22] LIU Xiaoyin, WU Yongqiang, LIU Shimeng, et al. Diurnal variation of water and carbon fluxes of water-saving irrigation paddy fields under different soil moisture conditions[J]. China Rural Water and Hydropower, 2016, (8): 93-96, 101.
[23] [23] BAI J, WANG J, CHEN X, et al. Seasonal and inter-annual variations in carbon fluxes and evapotranspiration over cotton field under drip irrigation with plastic mulch in an arid region of Northwest China[J]. Journal of Arid Land, 2015, 7(2): 272-284.
[24] [24] GAO X, GU F, HAO W, et al. Carbon budget of a rainfed spring maize cropland with straw returning on the loess plateau, China[J]. Science of the Total Environment, 2017, 586: 1193-1203.
[25] [25] GAO X, GU F, MEI X, et al. Carbon exchange of a rainfed spring maize cropland under plastic film mulching with straw returning on the loess plateau, China[J]. Catena, 2017, 158: 298-308.
[26] [26] JANS W W, JACOBS C M, KRUIJT B, et al. Carbon exchange of a maize (Zea mays L.) crop: influence of phenology[J]. Agriculture, Ecosystems & Environment, 2010, 139(3): 316-324.
[27] [27] WAGLE P, GOWDA P H, ANAPALLI S S, et al. Growing season variability in carbon dioxide exchange of irrigated and rainfed soybean in the Southern United States[J]. Science of the Total Environment, 2017, 593-594: 263-273.
[28] [28] CHI J S, WALDO SARAH, PRESSLEY SHELLEY, et al. Assessing carbon and water dynamics of no-till and conventional tillage cropping systems in the inland Pacific Northwest US using the eddy covariance method[J]. Agricultural and Forest Meteorology, 2016, 218-219: 37-49.
[29] [29] SHARMA S, RAJAN N, CUI S, et al. Seasonal variability of evapotranspiration and carbon exchanges over a biomass sorghum field in the Southern U.S. Great Plains[J]. Biomass and Bioenergy, 2017, 126(105): 392-401.
[30] [30] ZHANG Zhigao, YUAN Zheng, LI Beige, et al. Spatial-temporal evolution characteristics and factor decomposition on agricultural carbon emissions in Henan province[J]. Chinese Journal of Agricultural Resources and Regional Planning, 2017, 38(10): 152-161.
[31] [31] FANG Jingyun, KE Jinhu,TANG Zhiyao, et al. Implications and estimations of four terrestrial productivity parameters[J]. Acta Phytoecologica Sinica, 2001, 25(4): 414-419.
[32] [32] XIN Fengfei, XIAO Xiangming, ZHAO Bin, et al. Modeling gross primary production of paddy rice cropland through analyses of data from CO2 eddy flux tower sites and MODIS images[J]. Remote Sensing of Environment, 2017, 190: 42-55.
[33] [33] SHIHUA L, PING H, L BAOSHENG. Modeling of maize gross primary production using MODIS imagery and flux tower data[J]. International Journal of Agricultural and Biological Engineering, 2016, 9(2): 110-118.
[34] [34] LIU Z, WANG L, WANG S. Comparison of different GPP models in China using MODIS image and China flux data[J]. Remote Sensing, 2014, 6(10): 10215-10231.
[35] [35] DU Qiyong, LIN Aiwen, FU Xing, et al. Comparison of multiple GPP models using remote sensing and American carbon flux data[J]. Geomatics & Spatial Information Technology, 2018, 41(2): 138-141, 146.
[37] [37] FENG Ailin, HE Honglin, LIU Limin, et al. A comparison of multiple phenology data sources for estimating the main phenological phases of winter wheat in Yucheng station[J]. Remote Sensing Technology and Application, 2016, 31(5): 958-965.
[38] [38] YANG Jianfeng, YANG Xiaoni, WANG Junhua, et al. Characteristics of CO2 flux in a mature apple (Malus demestica) orchard ecosystem on the loess plateau[J]. Environmental Science, 2018, 39(5): 2339-2350.
[39] [39] ZHAO Xiaosong, HUANG Yao. A comparison of three gap filling techniques for eddy covariance net carbon fluxes in short vegetation ecosystems[J]. Advances in Meteorology, 2015, 75(3): 1-12.
[40] [40] YAO Yugang, JIANG Yuelin, LI Jun. Advance on carbon dioxide flux observation of farmland[J].Chinese Agricultural Science Bulletin, 2007, 23(6): 626-629.
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TIAN Rongcai, WEN Shuangya, YANG Huibing. Research Progress on Carbon Flux in Agro-ecosystem Based on Eddy Covariance System[J]. Acta Laser Biology Sinica, 2019, 28(5): 415
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Received: Dec. 1, 2018
Accepted: --
Published Online: Nov. 14, 2019
The Author Email: Huibing YANG (yanghuibing6@sina.cn)