Journal of Zhejiang Agricultural Sciences ›› 2023, Vol. 64 ›› Issue (12): 3012-3019.DOI: 10.16178/j.issn.0528-9017.20221171
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Received:
2022-11-17
Online:
2023-12-11
Published:
2023-12-14
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[1] | FAO. Food and Agriculture Organization, 2017. Global Soil Organic Carbon Map[R/OL]. (2019-06-01) [2023-08-12]. https://data.apps.fao.org/map/catalog/srv/eng/catalog.search#/metadata/7730e747-eb73-49c9-bfe6-84ebae718743. |
[2] | FAO. Learning tool on Nationally Appropriate Mitigation Actions (NAMAs) in the agriculture, forestry and other land use (AFOLU) sector[R]. Rome, 2015. |
[3] | LAL R. Soil carbon sequestration impacts on global climate change and food security[J]. Science, 2004, 304(5677): 1623-1627. |
[4] | LEFEVRE C, REKIK F, ALCANTARA V, et al. Soil organic carbon: The hidden potential[R]. Food and Agriculture Organization of the United Nations, Rome, Italy, 2017. |
[5] | CAI Z C, YAN X Y. Understanding greenhouse gas emissions from croplands in China[M]. ACS Symposium Series. Washington, DC: American Chemical Society, 2011: 91-120. |
[6] | 赵永存, 徐胜祥, 王美艳, 等. 中国农田土壤固碳潜力与速率: 认识、挑战与研究建议[J]. 中国科学院院刊, 2018, 33(2): 191-197. |
[7] | SUN W, HUANG Y, ZHANG W, et al. Carbon sequestration and its potential in agricultural soils of China[J]. Global Biogeochemical Cycles, 2010, 24(3): 1302-1307. |
[8] | 美国可持续农业研究与教育计划. 覆盖作物高效管理[M]. 3版. 北京: 电子工业出版社, 2016. |
[9] | HUGHES H D, HENSON E R. Crop production-principles and practices[M]. New York: Macmillan Co, 1957. |
[10] | LANGDALE G W, BLEVINS R L, KARLEN D, et al. Cover crop effects on soil erosion by wind and water[M]∥HARGROVE W L. Cover crops for clean water, SWCS, Ankeny, 1991. |
[11] | RAM D N, VITTUM M T, ZWERMAN P J. An evaluation of certain winter cover crops for the control of splash erosion[J]. Agronomy Journal, 1960, 52(8): 479-482. |
[12] | ZHU J C, GANTZER C J, ANDERSON S H, et al. Runoff, soil, and dissolved nutrient losses from no-till soybean with winter cover crops[J]. Soil Science Society of America Journal, 1989, 53(4): 1210-1214. |
[13] | MAES J, JACOBS S. Nature-based solutions for Europe's sustainable development[J]. Conservation Letters, 2017, 10:121-124. |
[14] | FISHER M J, RAO I M, AYARZA M A, et al. Carbon storage by introduced deep-rooted grasses in the South American savannas[J]. Nature, 1994, 371(6494): 236-238. |
[15] | MOUKANNI N, BREWER K, GAUDIN A C M, et al. Optimizing carbon sequestration through cover cropping in Mediterranean agroecosystems: synthesis of mechanisms and implications for management[J]. Frontiers in Agronomy, 2022, 4: 844166. |
[16] | BLANCO-CANQUI H, HOLMAN J D, SCHLEGEL A J, et al. Replacing fallow with cover crops in a semiarid soil: effects on soil properties[J]. Soil Science Society of America Journal, 2013, 77(3): 1026-1034. |
[17] | BLANCO-CANQUI H, SHAVER T, LINDQUIST J, et al. Cover crops and ecosystem services: insights from studies in temperate soils[J]. Agronomy Journal, 2015, 107(6): 2449-2474. |
[18] | GREGORY P J, ATWELL B J. The fate of carbon in pulse-labelled crops of barley and wheat[J]. Plant and Soil, 1991, 136(2): 205-213. |
[19] | SCHMITT A, PAUSCH J, KUZYAKOV Y. C and N allocation in soil under ryegrass and alfalfa estimated by 13C and 15N labelling[J]. Plant and Soil, 2013, 368(1/2): 581-590. |
[20] | 余健, 房莉, 卞正富, 等. 土壤碳库构成研究进展[J]. 生态学报, 2014, 34(17): 4829-4838. |
[21] | HU S, GRUNWALD N, VAN BRUGGEN A, et al. Short-term effects of cover crop incorporation on soil carbon pools and nitrogen availability[J]. Soil Science Society of America Journal, 1997, 61(3): 901-911. |
[22] | HAN X, XU C, DUNGAIT J, et al. Straw incorporation increases crop yield and soil organic carbon sequestration but varies under different natural conditions and farming practices in China: a system analysis[J]. Biogeosciences, 2018, 15(7): 1933-1946. |
[23] | HUANG Y, REN W, GROVE J, et al. Assessing synergistic effects of no-tillage and cover crops on soil carbon dynamics in a long-term maize cropping system under climate change[J]. Agricultural and Forest Meteorology, 2020, 291: 108090. |
[24] | LEOMO S, ALAM S, AFRIANTO E, et al. Cover crop residue effects on soil and corn performance in ex-nickel mining soils[J]. Pakistan Journal of Biological Sciences, 2021, 24(8): 888-894. |
[25] | ABDALLA M, HASTINGS A, CHENG K, et al. A critical review of the impacts of cover crops on nitrogen leaching, net greenhouse gas balance and crop productivity[J]. Global Change Biology, 2019, 25(8): 2530-2543. |
[26] | KEENE C L, CURRAN W S, WALLACE J M, et al. Cover crop termination timing is critical in organic rotational no-till systems[J]. Agronomy Journal, 2017, 109(1): 272-282. |
[27] | HAYDEN Z D, NGOUAJIO M, BRAINARD D C. Planting date and staggered seeding of rye-vetch mixtures: biomass, nitrogen, and legume winter survival[J]. Agronomy Journal, 2015, 107(1): 33-40. |
[28] | 魏静, 郭树芳, 翟丽梅, 等. 覆盖作物翻压对华北平原春玉米产量和土壤养分的影响[J]. 中国土壤与肥料, 2020(1): 172-178. |
[29] | CHAHAL I, VYN R J, MAYERS D, et al. Cumulative impact of cover crops on soil carbon sequestration and profitability in a temperate humid climate[J]. Scientific Reports, 2020, 10(1): 13381. |
[30] | ODLAND T E, KNOBLAUCH H C. The value of cover crops in continuous corn Culture[J]. Agronomy Journal, 1938, 30(1): 22-29. |
[31] | BELFRY K D, VAN EERD L L. Establishment and impact of cover crops intersown into corn[J]. Crop Science, 2016, 56(3): 1245-1256. |
[32] | JINGER D, KAKADE V. Land degradation and its management through soil and water conservation measures on arable[J]. Kerala Karshakan, 2019, 7(5): 12-20. |
[33] | 肖胜生, 方少文, 杨洁, 等. 水土流失区植被恢复过程中土壤碳汇的形成机理[J]. 中国水土保持, 2011(12): 25-28. |
[34] | AI M, SUN Y Y, YAN B, et al. A summary of the impact of land degradation on soil carbon sequestration[J]. IOP Conference Series: Materials Science and Engineering, 2018, 394: 052028. |
[35] | ALLISON F E. Soil organic matter and its role in crop production[M]. Elsevier Science Publication, 1973. |
[36] | BEALE O W, NUTT G, PEELE T. The effects of mulch tillage on runoff, erosion, soil properties, and crop yields[J]. Soil Science Society of America Journal, 1955, 19(2): 244-247. |
[37] | SHELTON C H, BRADLEY J F. Controlling erosion and sustaining production with no-till systems[J]. Tennessee Farm and Home Science, 1987, (winter):18-23. |
[38] | MUTCHLER C K, MCDOWELL L L. Soil loss from cotton with winter cover crop[J]. Transactions of the ASAE, 1990, 33(2): 432-436. |
[39] | SALTER R M, GREEN T C. Factors affecting the accumulation and loss of nitrogen and organic carbon in cropped Soils[J]. Agronomy Journal, 1933, 25(9): 622-630. |
[40] | BARTHÈS B, ROOSE E. Aggregate stability as an indicator of soil susceptibility to runoff and erosion; validation at several levels[J]. CATENA, 2002, 47(2): 133-149. |
[41] | CATES A M, RUARK M D, HEDTCKE J L, et al. Long-term tillage, rotation and perennialization effects on particulate and aggregate soil organic matter[J]. Soil and Tillage Research, 2016, 155: 371-380. |
[42] | ZHANG D B, YAO Z Y, CHEN J, et al. Improving soil aggregation, aggregate-associated C and N, and enzyme activities by green manure crops in the Loess Plateau of China[J]. European Journal of Soil Science, 2019: 12843. |
[43] | BRUCE R R, LANGDALE G W, WEST L T. Modification of soil characteristics of degraded soil surfaces by biomass input and tillage affecting soil water regime[J]. Soil Science, 1990, 6: 17-21. |
[44] | STEGARESCU G, REINTAM E, TÕNUTARE T. Cover crop residues effect on soil structural stability and phosphatase activity[J]. Acta Agriculturae Scandinavica, Section B — Soil & Plant Science, 2021, 71(9): 992-1005. |
[45] | 王敬宽, 高枫舒, 张楷悦, 等. 禾本科绿肥还田对盐碱地棉田土壤碳氮及微生物量碳氮的影响[J]. 中国生态农业学报(中英文), 2023, 31(3): 396-404. |
[46] | 郑佳舜, 胡钧铭, 韦翔华, 等. 绿肥压青对粉垄稻田土壤微生物量碳和有机碳累积矿化量的影响[J]. 中国生态农业学报(中英文), 2021, 29(4): 691-703. |
[47] | 高嵩涓, 曹卫东, 白金顺, 等. 长期冬种绿肥改变红壤稻田土壤微生物生物量特性[J]. 土壤学报, 2015, 52(4): 902-910. |
[48] | BUYER J S, TEASDALE J R, ROBERTS D P, et al. Factors affecting soil microbial community structure in tomato cropping systems[J]. Soil Biology and Biochemistry, 2010, 42(5): 831-841. |
[49] | 任慧, 丁磊, 赵财. 不同冬季覆盖作物轮作对农田土壤碳氮影响[J]. 中国农学通报, 2021, 37(35): 57-64. |
[50] | RYGIEWICZ P, ANDERSEN C. Mycorrhizae alter quality and quantity of carbon allocated below ground[J]. Nature, 1994, 369(6475): 58-60. |
[51] | GRIMOLDI A, KAVANOVÁ M, LATTANZI F A, et al. Arbuscular mycorrhizal colonization on carbon economy in perennial ryegrass: quantification by 13CO2/12CO2 steady-state labelling and gas exchange[J]. New Phytologist, 2006, 172(3): 544-553. |
[52] | SNELLGROVE R C, SPLITTSTOESSER W E, STRIBLEY D P, et al. The distribution of carbon and the demand of the fungal symbiont in leek plants with vesicular-arbuscular mycorrhizas[J]. New Phytologist, 1982, 92(1): 75-87. |
[53] | LEYVAL C, BERTHELIN J. Rhizodeposition and net release of soluble organic compounds by pine and beech seedlings inoculated with rhizobacteria and ectomycorrhizal fungi[J]. Biology and Fertility of Soils, 1993, 15(4): 259-267. |
[54] | KABIR Z, KOIDE R T. Effect of autumn and winter mycorrhizal cover crops on soil properties, nutrient uptake and yield of sweet corn in Pennsylvania, USA[J]. Plant and Soil, 2002, 238(2): 205-215. |
[55] | 陈春梅, 谢祖彬, 朱建国. 土壤有机碳激发效应研究进展[J]. 土壤, 2006, 38(4): 359-365. |
[56] | LÖHNIS F. Nitrogen availability of green manures[J]. Soil Science, 1926, 22(4): 253-290. |
[57] | BINGEMAN C W, VARNER J E, MARTIN W P. The effect of the addition of organic materials on the decomposition of an organic soil[J]. Soil Science Society of America Journal, 1953, 17(1): 34-38. |
[58] | BROADBENT F E, NORMAN A G. Some factors affecting the availability of the organic nitrogen in soil-a preliminary report[J]. Soil Science Society of America Journal, 1947, 11(C): 264-267. |
[59] | DE DEYN G B, CORNELISSEN J H C, BARDGETT R D. Plant functional traits and soil carbon sequestration in contrasting biomes[J]. Ecology Letters, 2008, 11(5): 516-531. |
[60] | CANTAREL A A M, POMMIER T, DESCLOS-THEVENIAU M, et al. Using plant traits to explain plant-microbe relationships involved in nitrogen acquisition[J]. Ecology, 2015, 96(3): 788-799. |
[61] | GUYONNET J P, GUILLEMET M, DUBOST A, et al. Plant nutrient resource use strategies shape active rhizosphere microbiota through root exudation[J]. Frontiers in Plant Science, 2018, 9: 1662. |
[62] | 唐海明, 程凯凯, 肖小平, 等. 不同冬季覆盖作物对双季稻田土壤有机碳的影响[J]. 应用生态学报, 2017, 28(2): 465-473. |
[63] | 张经廷, 张丽华, 吕丽华, 等. 还田作物秸秆腐解及其养分释放特征概述[J]. 核农学报, 2018, 32(11): 2274-2280. |
[64] | HERBERT S J, LIU G H. Cover crop biomass accumulation and nitrogen release[R]. Agronomy Research Report Umass Extension. USDA, 1997: 13-16. |
[65] | PEREIRA N S, SOARES I, DE MIRANDA F R. Decomposition and nutrient release of leguminous green manure species in the Jaguaribe-Apodi region, Ceará, Brazil[J]. Ciência Rural, 2016, 46(6): 970-975. |
[66] | ZHANG Z L, KAYE J P, BRADLEY B A, et al. Cover crop functional types differentially alter the content and composition of soil organic carbon in particulate and mineral-associated fractions[J]. Global Change Biology, 2022, 28(19): 5831-5848. |
[67] | 朱亚琼, 简大为, 郑伟, 等. 不同种植模式下豆科绿肥对土壤改良效果的影响[J]. 草业科学, 2020, 37(5): 889-900. |
[68] | FAÉ G S, SULC R M, BARKER D J, et al. Integrating winter annual forages into a no-till corn silage system[J]. Agronomy Journal, 2009, 101(5): 1286-1296. |
[69] | STAVI I, LAL R, JONES S, et al. Implications of cover crops for soil quality and geodiversity in a humid-temperate region in the Midwestern usa[J]. Land Degradation & Development, 2012, 23(4): 322-330. |
[70] | FORNARA D A, TILMAN D. Plant functional composition influences rates of soil carbon and nitrogen accumulation[J]. Journal of Ecology, 2008, 96(2): 314-322. |
[71] | CONG W F, VAN RUIJVEN J, MOMMER L, et al. Plant species richness promotes soil carbon and nitrogen stocks in grasslands without legumes[J]. Journal of Ecology, 2014, 102(5): 1163-1170. |
[72] | 陈学文, 张晓平, 梁爱珍, 等. 耕作方式对黑土硬度和容重的影响[J]. 应用生态学报, 2012, 23(2): 439-444. |
[73] | 王芸, 韩宾, 史忠强, 等. 保护性耕作对土壤微生物特性及酶活性的影响[J]. 水土保持学报, 2006, 20(4): 120-122, 142. |
[74] | 吕瑞珍, 熊瑛, 李友军, 等. 保护性耕作对农田土壤碳库特性的影响[J]. 水土保持学报, 2014, 28(4): 206-209, 217. |
[75] | CHEN G H, WEIL R R. Penetration of cover crop roots through compacted soils[J]. Plant and Soil, 2010, 331(1/2): 31-43. |
[76] | FRANZLUEBBERS A J. Achieving soil organic carbon sequestration with conservation agricultural systems in the southeastern United States[J]. Soil Science Society of America Journal, 2010, 74(2): 347-357. |
[77] | BAI X, HUANG Y, REN W, et al. Responses of soil carbon sequestration to climate-smart agriculture practices: a meta-analysis[J]. Global Change Biology, 2019, 25(8): 2591-2606. |
[78] | OLSON K, EBELHAR S A, LANG J M. Long-term effects of cover crops on crop yields, soil organic carbon stocks and sequestration[J]. Open Journal of Soil Science, 2014, 4(8): 284-292. |
[79] | 冯秋苹, 刘玉涛, 郭勇智, 等. 不同秸秆还田方式对土壤团聚体稳定性及有机碳含量的影响[J]. 吉林农业大学学报, 2023, 45(5): 564-571. |
[80] | 李忠义, 唐红琴, 蒙炎成, 等. 不同还田方式下拉巴豆秸秆腐解及养分释放特征[J]. 中国土壤与肥料, 2017(2): 130-135. |
[81] | 李忠义, 韦彩会, 何铁光, 等. 不同还田方式下2种夏季绿肥的腐解特性[J]. 西南农业学报, 2020, 33(7): 1554-1560. |
[82] | HASSINK J, WHITMORE A P. A model of the physical protection of organic matter in soils[J]. Soil Science Society of America Journal, 1997, 61(1): 131-139. |
[83] | 张学良, 张宇亭, 刘瑞, 等. 绿肥不同还田方式对土壤温室气体排放的影响[J]. 草业学报, 2021, 30(5): 25-33. |
[84] | 张涛, 何燕. 绿肥还田对贵州黄壤玉米产量及温室气体排放的影响[J]. 江苏农业科学, 2022, 50(9): 70-76. |
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