[1] |
HE Y, PAN Y, ZHANG G, et al., 2020. Tracking ammonia morning peak, sources and transport with 1 Hz measurements at a rural site in North China Plain[J]. Atmospheric Environment, 235: 117-130.
|
[2] |
HUANG B, LIU M, REN Z F, et al., 2013. Chemical composition, diurnal variation and sources of PM2.5 at two industrial sites of South China[J]. Atmospheric Pollution Research, 4(3): 298-305.
DOI
URL
|
[3] |
KIM M S, KOO N, HYUN S, et al., 2020. Comparison of Ammonia emission estimation between passive sampler and chamber system in paddy soil after fertilizer Application[J]. International Journal of Environmental Research and Public health, 17(17): 2-11.
DOI
URL
|
[4] |
KUANG Y, XU W, LIN W, et al., 2020. Explosive morning growth phenomena of NH3 on the North China Plain: Causes and potential impacts on aerosol formation[J]. Environmental Pollution, 257: 113-121.
|
[5] |
LUO X S, LI Y, LIU X J, et al., 2014. An evaluation of atmospheric Nr pollution and deposition in North China after the Beijing Olympics[J]. Atmospheric Environment, 74: 209-216.
DOI
URL
|
[6] |
MA S Y, 2020. High-resolution assessment of ammonia emissions in China: Inventories, driving forces and mitigation[J]. Atmospheric Environment, 229: 117-128.
|
[7] |
SCHJOERRING J K, SOMMER S G, FERM M, 1992. A simple passive sampler for measuring ammonia emission in the field[J]. Water, Air, and Soil Pollution, 62: 13-24.
DOI
URL
|
[8] |
SHEN J L, LIU X J, ZHNAG Y et al., 2011. Atmospheric ammonia and particulate ammonium from agricultural sources in the North China Plain[J]. Atmospheric Environment, 45(28): 5033-5041.
DOI
URL
|
[9] |
WANG C, YIN S, BAI L, et al., 2018. High-resolution ammonia emission inventories with comprehensive analysis and evaluation in Henan, China, 2006-2016 [J]. Atmospheric Environment, 193: 11-23.
DOI
URL
|
[10] |
鲍士旦, 2000. 土壤农化分析[M]. 北京: 中国农业出版社.
|
|
BAO S D, 2000. Soil Agrochemical Analysis[M]. Beijing: China Agriculture Press.
|
[11] |
杜思婕, 张艺磊, 张志勇, 等, 2021. 冬小麦-夏玉米轮作体系不同新型尿素的氮素利用率及去向[J]. 植物营养与肥料学报, 27(1): 24-34.
|
|
DU S J, ZHANG Y L, ZHANG Z Y, et al., 2021. Nitrogen use efficiency and fate of new urea types in a winter wheat-summer maize rotation system[J]. Journal of Plant Nutrition and Fertilizers, 27(1): 24-34.
|
[12] |
郭娅, 刘娇, 尹焕丽, 等, 2020. 单株定量施肥对夏玉米产量及养分吸收利用的影响[J]. 农业资源与环境学报, 37(6): 924-930.
|
|
GUO Y, LIU J, YIN H L, et al., 2020. Effects of quantitative fertilization by a single plant on the yield, nutrient absorption, and utilization of summer maize[J]. Journal of Agricultural Resources and Environment, 37(6): 924-930.
|
[13] |
孔盼, 夏苏敬, 张海维, 等, 2021. 耕作方式对早稻-再生稻稻田氨挥发的影响[J]. 生态环境学报, 30(8): 1627-1633.
DOI
|
|
KONG P, XIA S J, ZHANG H W, et al., 2021. Effects of tillage methods on ammonia volatilization of early season rice-ratooning rice fields[J]. Ecology and Environmental Sciences, 30(8): 1627-1633.
|
[14] |
刘学军, 沙志鹏, 宋宇, 等, 2021. 我国大气氨的排放特征、减排技术与政策建议[J]. 环境科学研究, 34(1): 149-157.
|
|
LIU X J, SHA Z P, SONGY, et al., 2021. China’s atmospheric ammonia emission characteristics, mitigation options and policy recommendations[J]. Research of Environmental Sciences, 34(1): 149-157.
|
[15] |
吕宏菲, 马星霞, 杨改河, 等, 2020. 秸秆还田对关中地区麦玉复种体系土壤氨排放的影响[J]. 中国生态农业学报(中英文), 28(4): 513-522.
|
|
LÜ H F, MA X X, YANG G H, et al., 2020. Effect of straw returning on ammonia emissions from soil in a wheat-maize multiple cropping system in the Guanzhong region, China[J]. Chinese Journal of Eco-Agriculture, 28(4): 513-522.
|
[16] |
吕金岭, 王小非, 李太魁, 等, 2020. 不同施肥方式下砂姜黑土冬小麦-夏玉米轮作农田氨挥发特征及排放系数[J]. 中国生态农业学报(中英文), 28(12): 1869-1879.
|
|
LÜ J L, WANG X F, LI T K, et al., 2020. Ammonia emission characteristics and emission coefficients of wheat and maize rotation cropland under different fertilization methods in lime concretion black soil[J]. Chinese Journal of Eco-Agriculture, 28(12): 1869-1879.
|
[17] |
吕金岭, 王小非, 骆晓声, 等, 2021. 减量施氮条件下沙壤质潮土小麦玉米轮作体系氨挥发特征及排放系数[J]. 植物营养与肥料学报, 27(2): 346-359.
|
|
LÜ J L, WANG X F, LUO X S, et al., 2021. Ammonia volatilization characteristics and emission coefficients of wheat and maize rotation in sandy fluvo-aquic soil under reduced N fertilization[J]. Journal of Plant Nutrition and Fertilizers, 27(2): 346-359.
|
[18] |
宋涛, 尹俊慧, 胡兆平, 等, 2021. 脲酶/硝化抑制剂减少农田土壤氮素损失的作用特征[J]. 农业资源与环境学报, 38(4): 585-597.
|
|
SONG T, YIN J H, HU Z P, et al., 2021. Characteristics of urease/nitrification inhibitors in reducing nitrogen losses in Cropland soils[J]. Journal of Agricultural Resources and Environment, 38(4): 585-597.
|
[19] |
王远, 许纪元, 潘云枫, 等, 2021. 长江下游地区水肥一体化对设施番茄氮肥利用率及氨挥发的影响[J]. 土壤学报, 59(3): 776-785.
|
|
WANG Y, XU J Y, PAN Y F, et al., 2021. Effects of fertigation on nitrogen use efficiency and ammonia volatilization in greenhouse tomato cultivation in lower reaches of the Yangtze River[J]. Acta Pedologica Sinica, 59(3): 776-785.
|
[20] |
许云翔, 何莉莉, 陈金媛, 等, 2020. 生物炭对农田土壤氨挥发的影响机制研究进展[J]. 应用生态学报, 31(12): 4312-4320.
DOI
|
|
XU Y X, HE L L, CHEN J Y, et al., 2020. Effects of biochar on ammonia volatilization from cropland soil: A review[J]. Chinese Journal of Applied Ecology, 31(12): 4012-4320.
|
[21] |
杨国英, 郭智, 刘红江, 等, 2020. 稻田氨挥发影响因素及其减排措施研究进展[J]. 生态环境学报, 29(9): 1912-1919.
DOI
|
|
YANG G Y, GUO Z, LIU H J, et al., 2020. Research progress on factors affecting ammonia volatilization and its mitigation measures in paddy fields[J]. Ecology and Environmental Sciences, 29(9): 1912-1919.
|
[22] |
张薇, 倪邦, 许秀春, 等, 2020. 氮肥使用对北方夏玉米季氨挥发的影响[J]. 环境科学, 41(11): 5176-5184.
|
|
ZHANG W, NI B, XU X C, et al., 2020. Impacts of nitrogen application on ammonia volatilization during maize season in northern China[J]. Environmental Science, 41(11): 5176-5184.
DOI
URL
|
[23] |
张怡彬, 李俊改, 王震, 等, 2021. 有机替代下华北平原旱地农田氨挥发的年际减排特征[J]. 植物营养与肥料学报, 27(1): 1-11.
|
|
ZHANG Y B, LI J G, WANG Z, et al., 2021. Substitution of chemical fertilizer with organic manure reduces ammonia volatilization in maize farmland in North China Plain[J]. Journal of Plant Nutrition and Fertilizer, 27(1): 1-11.
|
[24] |
赵蒙, 曾科, 姚元林, 等, 2019. 聚脲甲醛缓释肥对太湖稻麦轮作体系氨挥发及产量的影响[J]. 植物营养与肥料学报, 25(1): 55-63.
|
|
ZHAO M, ZENG K, YAO Y L, et al., 2019. Effects of polyurea- formaldehyde on ammonia volatilization and yields under rice-wheat rotation in Taihu Region[J]. Journal of Plant Nutrition and Fertilizers, 25(1): 55-63.
|
[25] |
中华人民共和国环境保护部, 2014. 大气氨源排放清单编制技术指南 (试行)[EB/OL]. [2014-08-20]. https://www.mee.gov.cn/gkml/hbb/bgg/201408/W020140828351293771578.pdf.
|
|
Ministry of Ecology and Environment, People’s Republic of China, 2014. Technical Guide for Compilation of Inventories of Atmospheric Ammonia Sources (Trial)[EB/OL]. [2014-08-20]. https://www.mee.gov.cn/gkml/hbb/bgg/201408/W020140828351293771578.pdf.
|
[26] |
周平遥, 张震, 王华, 等, 2020. 不同深施肥方式对稻田氨挥发及水稻产量的影响[J]. 农业环境科学学报, 39(11): 2683-2691.
|
|
ZHOU P Y, ZHANG Z, WANG H, et al., 2020. Effects of deep fertilization methods on ammonia volatilization and rice yield in paddy fields[J]. Journal of Agro-Environment Science, 39(11): 2683-2691.
|