Managing soil organic matter through biochar application and varying levels of N fertilisation increases the rate of water-stable aggregates formation

被引:1
作者
Simansky, Vladimir [1 ]
Wojcik-Gront, Elzbieta [2 ]
Buchkina, Natalya [3 ]
Horak, Jan [4 ]
机构
[1] Slovak Univ Agr, Inst Agron Sci, Fac Agrobiol & Food Resources, Dept Soil Sci, Nitra 94976, Slovakia
[2] Warsaw Univ Life Sci SGGW, Inst Agr, Dept Biometry, Nowoursynowska 159, PL-02776 Warsaw, Poland
[3] Agrophys Res Inst, Dept Soil Phys Phys Chem & Biophys, St Petersburg 195220, Russia
[4] Slovak Univ Agr, Inst Landscape Engn, Fac Hort & Landscape Engn, Nitra 94976, Slovakia
关键词
Soil structure; Water-stable aggregates; Biochar; Fertilisation; CARBON; QUALITY; SIZE;
D O I
10.2478/johh-2023-0004
中图分类号
TV21 [水资源调查与水利规划];
学科分类号
081501 ;
摘要
The formation of soil aggregates, including water-stable aggregates, is linked to soil organic matter (SOM). Biochar (B) is carbon-rich, which, in addition to storing carbon in a stable form for many years, has important benefits for soils and plants, but the mechanisms of soil structure formation after B and mineral fertiliser application are not sufficiently studied. For this reason, the study aimed to answer the following questions: How (1) the rate of B and (2) varying levels of nitrogen fertiliser (N) being applied to the soil affect the dynamics of soil aggregation due to the increase in the content of soil organic carbon, labile carbon in the bulk soil and in the content of water-stable aggregates (WSA) size-fractions. In 2014-2021, in Dolna Malanta (experimental site of Slovak University of Agriculture on silty loam Haplic Luvisol) during the growing seasons, soil samples were collected from all the B (0, 10 and 20 t ha(-1)) and N (0, 1(st) and 2(nd) level of N fertilisation) treatments. The results have shown that the highest values of many variables were associated with B20 treatment for all the N fertilisation levels. B compared to N more significantly affected the content of almost all the size-fractions of WSA. In all the treatments, the content of WSAma >5 mm, 5-3 mm, 3-2 mm and 1-0.5 mm in size was increasing over time - a yearly increase from 0.31 to 2.14% for 8-years. Based on the changes in the SOM content, WSA were divided into 3 groups: 1) Water-stable microaggregates (WSAmi < 0.25 mm), 2) Smaller size-fractions of water-stable macroaggregates (WSAma 1-0.25 mm), and 3) Medium and large fractions of WSAma (WSAma =1 mm).
引用
收藏
页码:199 / 209
页数:11
相关论文
共 51 条
[1]   Impact of biochar properties on soil conditions and agricultural sustainability: A review [J].
Al-Wabel, Mohammad I. ;
Hussain, Qaiser ;
Usman, Adel R. A. ;
Ahmad, Mahtab ;
Abduljabbar, Adel ;
Sallam, Abdulazeem S. ;
Ok, Yong Sik .
LAND DEGRADATION & DEVELOPMENT, 2018, 29 (07) :2124-2161
[2]  
Are Kayode Steven, 2017, Agriculture and Natural Resources, V51, P454, DOI 10.1016/j.anres.2018.03.009
[3]   Long-term effects of straw and straw-derived biochar on soil aggregation and fungal community in a rice-wheat rotation system [J].
Bai, Naling ;
Zhang, Hanlin ;
Li, Shuangxi ;
Zheng, Xianqing ;
Zhang, Juanqin ;
Zhang, Haiyun ;
Zhou, Sheng ;
Sun, Huifeng ;
Lv, Weiguang .
PEERJ, 2019, 6
[4]  
Bai S.H., 2022, SCI
[5]  
Balashov Eugene, 2022, Acta Horticulturae et Regiotecturae, V25, P115, DOI 10.2478/ahr-2022-0015
[6]   Effects of slow and fast pyrolysis biochar on N2O emissions and water availability of two soils with high water-filled pore space [J].
Balashov, Eugene ;
Buchkina, Natalya ;
Simansky, Vladimir ;
Horak, Jan .
JOURNAL OF HYDROLOGY AND HYDROMECHANICS, 2021, 69 (04) :467-474
[7]  
Blume H.P., 2016, Scheffer/SchachtschabelSoil Science, DOI [10.1007/978-3-642-30942, DOI 10.1007/978-3-642-30942]
[8]   Aggregate-occluded black carbon in soil [J].
Brodowski, S. ;
John, B. ;
Flessa, H. ;
Amelung, W. .
EUROPEAN JOURNAL OF SOIL SCIENCE, 2006, 57 (04) :539-546
[9]   Soil structure and management: a review [J].
Bronick, CJ ;
Lal, R .
GEODERMA, 2005, 124 (1-2) :3-22
[10]  
Dziadowiec H., 1999, METHODICAL GUIDE BOO, V120, P31