南京信息工程大学 应用气象学院,南京,210044
纸质出版:2021
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龙杰琦, 姚婷, 苗淑杰, 等. 生物炭对侵蚀黑土团聚体的影响[J]. 水土保持通报, 2021,41(3):76-80.
Long Jieqi, Yao Ting, Miao Shujie, et al. Effects of Biochar on Soil Aggregation of Eroded Mollisols[J]. Bulletin of Soiland Water Conservation, 2021, 41(3): 76-80.
龙杰琦, 姚婷, 苗淑杰, 等. 生物炭对侵蚀黑土团聚体的影响[J]. 水土保持通报, 2021,41(3):76-80. DOI: 10.13961/j.cnki.stbctb.2021.03.011.
Long Jieqi, Yao Ting, Miao Shujie, et al. Effects of Biochar on Soil Aggregation of Eroded Mollisols[J]. Bulletin of Soiland Water Conservation, 2021, 41(3): 76-80. DOI: 10.13961/j.cnki.stbctb.2021.03.011.
[目的] 探讨生物炭对侵蚀黑土团聚体的修复效果,揭示生物炭对侵蚀黑土团聚体的影响机制,为修复侵蚀黑土提供科学依据。[方法] 以侵蚀黑土为研究对象,研究未剥离农田(CK)、未剥离农田施生物炭(CK+BC)、模拟侵蚀土壤(RS)、侵蚀土壤施生物炭(RS+BC)4个处理生物炭对黑土团聚体的影响。[结果] 与CK处理相比,CK+BC处理中0.25~2 mm粒级团聚体含量增加了14.01%,RS+BC处理中0.25~2 mm粒级团聚体含量比RS处理增加了12.11%,生物炭提高了团聚体的几何平均直径(GMD)和大于0.25 mm团聚体含量,增加了CK+BC和RS+BC两个处理的原土和>0.25 mm粒级团聚体中的土壤有机碳含量(SOC),GMD分别与SOC和交换性钠呈正相关和负相关,且SOC对团聚体的胶结作用大于交换性钠的分散作用,提高了侵蚀黑土团聚体稳定性。[结论] 生物炭改善黑土侵蚀后的结构,促进了土壤团聚化,对侵蚀土壤具有良好的修复作用,是修复侵蚀黑土的有效措施。
[Objective] The remediation effects of biochar on eroded mollisols aggregates
define the influence mechanism of biochar on eroded mollisols aggregates were determined in order to provide a scientific basis for remediation of eroded mollisols. [Methods] Four experimental treatments were imposed to determine the effects of biochar on aggregates of an eroded mollisols: uneroded farmland as the control treatment (CK); uneroded farmland with biochar application (CK+BC); simulated eroded soil (RS); and biochar added to eroded soil (RS+BC). [Results] Biochar application increased the content of 0.25~2 mm size aggregates by 14.01% in CK+BC compared with CK. The content of 0.25~2 mm size aggregates in RS+BC treatment increased by 12.11% compared with RS. In addition
biochar increased the geometric mean diameter (GMD) and the contents of macro-aggregates (R0.25)
and the concentration of soil organic carbon (SOC) in bulk soil and aggregates larger than 0.25 mm. These results indicated that biochar improved the SOC content by increasing its macro-aggregates. GMD was positively and negatively correlated with the concentrations of SOC and exchangeable sodium
respectively. However
the function of SOC in aggregation was larger than function of exchangeable sodium in dispersion
resulting in improved aggregate stability. [Conclusion] Biochar improves the structure of eroded mollisols
promotes soil aggregation
and has a good remediation effect on the eroded soil
and is therefore an effective strategy to remediate eroded soil.
Rizwan M, Ali S, Qayyum M F, et al. Mechanisms of biochar-mediated alleviation of toxicity of trace elements in plants:A critical review[J]. Environmental Science and Pollution Research International, 2015,23(3):2230-2248.
Gul S, Whalen J K, Thomas B W, et al. Physico-chemical properties and microbial responses in biochar-amended soils:Mechanisms and future directions[J]. Agriculture, Ecosystems & Environment, 2015,206:46-59.
宋燕凤,张前前,吴震,等.田间陈化生物质炭提高稻田土壤团聚体稳定性和磷素利用率[J].植物营养与肥料学报,2020,26(4):613-621.
姬强.不同耕作措施和外源碳输入对土壤结构和有机碳库的影响[D].陕西杨凌:西北农林科技大学,2016.
Oladele S O, Adeyemo A J, Awodun M A. Influence of rice husk biochar and inorganic fertilizer on soil nutrients availability and rain-fed rice yield in two contrasting soils[J]. Geoderma, 2019,336:1-11.
王富华,黄容,高明,等.生物质炭与秸秆配施对紫色土团聚体中有机碳含量的影响[J].土壤学报,2019,56(4):929-939.
Herath H.M.S.K, Camps-Arbestain M, Hedley M. Effect of biochar on soil physical properties in two contrasting soils:An alfisol and an andisol[J]. Geoderma, 2013,209:188-197.
李江舟,代快,张立猛,等.施用生物炭对云南烟区红壤团聚体组成及有机碳分布的影响[J].环境科学学报,2016,36(6):2114-2120.
Walters R D, White J G. Biochar in situ decreased bulk density and improved soil-water relations and indicators in southeastern US coastal plain ultisols[J]. Soil Science, 2018,183(3):99-111.
王冲,王玉峰,谷学佳,等.连续施用生物炭对黑土基础理化性质的影响[J].土壤通报,2018,293(2):182-188.
吴媛媛,杨明义,张风宝,等.添加生物炭对黄绵土耕层土壤可蚀性的影响[J].土壤学报,2016,53(1):81-92.
杨文文,张学培,王洪英.东北黑土区坡耕地水土流失及防治技术研究进展[J].水土保持研究,2005,22(5):236-240.
张兴义,刘晓冰.中国黑土研究的热点问题及水土流失防治对策[J].水土保持通报,2020,40(4):340-344.
张旭冉,张卫青.土壤团聚体研究进展[J].北方园艺,2020(21):131-137.
孙经伟,尧水红,李娜,等.农田恢复措施对黑土母质发育的新成土壤团聚体微形态及孔隙结构的影响[J].中国土壤与肥料,2016(4):17-23.
韩晓日,葛银凤,李娜,等.连续施用生物炭对土壤理化性质及氮肥利用率的影响[J].沈阳农业大学学报,2017,48(4):392-398.
刘宇娟,谢迎新,董成,等.秸秆生物炭对潮土区小麦产量及土壤理化性质的影响[J].华北农学报,2018,33(3):232-238.
胡伟,张兴义,严月.不同土地利用方式下冻融期黑土水热过程观测研究[J].土壤与作物,2018,7(3):312-323.
Six J, Elliott T E, Paustian K. Aggregate dynamics under conventional and no-tillage systems[J]. Soil Science Society of America Journal, 1999,63(5):1350-1358.
Mikha M M, Rice C W. Tillage and manure effects on soil and aggregate-associated carbon and nitrogen[J]. Soil Science Society of America Journal, 2004,68(3):809-816.
鲁如坤.土壤农业化学分析方法[M].北京:农业科技出版社,2000:24-34.
谢钧宇,曹寒冰,孟会生,等.不同施肥措施及施肥年限下土壤团聚体的大小分布及其稳定性[J].水土保持学报,2020,34(3):276-281.
袁晓良,李俊雅,葛乐,等.不同土地利用方式对土壤团聚体稳定性及其导水率的影响[J].水土保持研究,2020,27(4):67-71.
李倩倩,董胜虎,许晨阳,等.生物炭对塿土土壤容重和团聚体的影响[J].环境科学,2019,40(7):3388-3396.
闫雷,董天浩,喇乐鹏,等.免耕和秸秆还田对东北黑土区土壤团聚体组成及有机碳含量的影响[J].农业工程学报,2020,36(22):181-188.
李景,吴会军,武雪萍,等.长期保护性耕作提高土壤大团聚体含量及团聚体有机碳的作用[J].植物营养与肥料学报,2015,21(2):378-386.
史奕,陈欣,闻大中.东北黑土团聚体水稳定性研究进展[J].中国生态农业学报,2005,13(4):95-98.
徐香茹,汪景宽.土壤团聚体与有机碳机制的研究进展[J].土壤通报,2017,48(6):1523-1529.
Esmaeelnejad L, Shorafa M, Gorji M, et al. Enhancement of physical and hydrological properties of a sandy loam soil via application of different biochar particle sizes during incubation period[J]. Spanish:Journal of Agricultural Research, 2016,14(2):e1103.
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