[1] Amos B, Arkebauer T J, Doran J W. Soil surface fluxes of greenhouse gases in an irrigated maize-based agroecosystem[J]. Soil Science Society of America Journal, 2005, 69:387-395.
[2] Scheer C R, Wassmann, Kienzler K. Nitrous oxide emissions from fertilized, irrigated cotton (Gossypiumhirsutum L.) in the Aral Sea Basin, Uzbekistan: influences of nitrogen applications and irrigation practices[J]. Soil Biology Biochemistry, 2008, 40:290-301.
[3] Maharjan B, Venterea R, Rosen C. Fertilizer and irrigation management effects on nitrous oxide emissions and nitrate leaching[J]. Agronomy Journal, 2014, 106:703-714.
[4] Turner N C. Plant water relations and irrigation management[J]. Agricultural Water Management, 1990, 17:59-73.
[5] Smart D R, Schwass E, Lakso A, et al. Grapevine rooting patterns: a comprehensive analysis and a review[J]. American Journal of Enology and Viticulture, 2006, 57:89-104.
[6] Steenwerth K, Belina K M. Cover crops and cultivation: impacts on soil N dynamics and microbiological function in a Mediterranean vineyard agroecosystem[J]. Applied Soil Ecology, 2008, 40:370-380.
[7] Stehfest E, Bouwman L. N2O and NO emission from agricultural fields and soils under natural vegetation: summarizing available measurement data and modeling of global annual emissions[J]. Nutrient Cycling in Agroecosystems, 2006, 74:207-228.
[8] Bouwman AF, Boumans LJM, Batjes NH. Emissions of N2O and NO from fertilized fields: summary of available measurement data[J]. Global Biogeochemical Cycles, 2002, 16:1 058.
[9] Zhang Y J, Niu H S, Wang S P, et al. Application of the DNDC model to estimate N2O emissions under different types of irrigation in vineyards in Ningxia, China[J]. Agricultural Water Management, 2016, 163:295-304.
[10] Wang R, Sun Q, Guo J, et al. Sandy wine vineyards soil moisture distribution in the east of Helan Mountain[J]. Journal of Irrigation and Drainage, 2013, 32:69-73 (in Chinese).
[11] Su Z S, Wang L X. Observation and analysis on mountain climate in the semi-arid mountainous district in south of Ningxia[J]. Arid Meteorology, 2005, 23:17-20 (in Chinese).
[12] Parkin TB, Kaspar TC. Temporal variability of soil carbon dioxide flux: effect of sampling frequency on cumulative carbon loss estimation[J]. Soil Science Society of America Journal, 2004, 68:1 234-1 241.
[13] Dong Y H, Ouyang Z, Li Y S, et al. Influence of different fertilisation on CO2 and N2O fluxes from agricultural soil[J]. Soil and Fertilizer Science in China, 2007, 4:34-39 (in Chinese).
[14] Dai Z H, Trettin C C, Li C S, et al. Effect of assessment scale on spatial and temporal variations in CH4, CO2, and N2O fluxes in a forested wetland[J]. Water Air Soil Pollution, 2012, 223:253-265.
[15] Weitz A M, Linder E, Frolking S, et al. N2O emissions from humid tropical agricultural soils: effects of soil moisture, texture and nitrogen availability[J]. Soil Biology Biochemistry, 2001, 33:1 077-1 093.
[16] Lee X, Wu H W, Sigler J, et al. Rapid and transient response of soil respiration to rain[J]. Global Change Biology, 2004, 10:1 017-1 026.
[17] Li X L, Xu H, Cai Z C. Effect of water management on nitrous oxide emission from rice paddy field: a review[J]. Soils, 2009, 41:1-7 (in Chinese).
[18] Hou A X, Chen G X, Cleemput O V. Effect of different nitrogen fertilizers on N2O emission from soil[J]. Chinese Journal of Applied Ecology, 1998, 9:176-180 (in Chinese).
[19] Feng K, Yin S X. Some soil factors of nitrous oxide emissions[J]. Progress in Soil Science, 1995, 23:35-42 (in Chinese).
[20] Eichner M. Nitrous oxide emissions from fertilized soils: summary of available data[J]. Journal of Environmental Quality, 1990, 19:272-280.
[21] Bouwman A F. Direct emission of nitrous oxide from agricultural soils[J]. Nutrient Cycling in Agroecosystems, 1996, 46:53-70.
[22] Eggleston H S, Buendia L, Miwa K, et al. IPCC guidelines for national greenhouse gas inventories, prepared by the national greenhouse gas inventories programme[R]. Japan: IGES, 2006.
[23] Mosier A R, Hutchinson G L. Nitrous Oxide Emissions from Cropped Fields[J]. Journal of Environmental Quality, 1981, 10:169-173.
[24] Sun Z G, Liu J S, Yang J S, et al. N2O flux characteristics and emission contributions of Calamagrostis angustifolia wetland during growth and non-growth seasons[J]. Actaprataculturae Sinica, 2009, 18:242-247 (in Chinese).
[25] Jiang C S, Wang Y S, Zheng X H, et al. CH4 and N2O emission from a winter-time flooded paddy field in a hilly area of Southwest China[J]. Chinese Journal of Applied Ecology, 2005, 16:539-544 (in Chinese).
[26] Kennedy LT, Suddick CE, Six J. Reduced nitrous oxide emissions and increased yields in California tomato cropping systems under drip irrigation and fertigation[J]. Agricultural Ecosystem Environment, 2013, 170:16-27. |