Evaluation of soil macro-aggregate characteristics in response to soil macropore characteristics investigated by X-ray computed tomography under freeze-thaw effects

被引:33
作者
Liu, Bo [1 ,2 ]
Fan, Haoming [1 ,2 ]
Jiang, Yu [1 ,3 ]
Ma, Renming [1 ,2 ]
机构
[1] Shenyang Agr Univ, Coll Water Conservancy, Shenyang 110866, Liaoning, Peoples R China
[2] Key Lab Soil Eros Control & Ecol Restorat Liaoning, Shenyang, Peoples R China
[3] China Water Resources Beifang Invest Design & Res, Tianjin 300222, Peoples R China
关键词
Soil structure; Macropore; Macro-aggregate; Freeze-thaw effects; Mollisol; PRINCE-EDWARD-ISLAND; SIZE DISTRIBUTION; BLACK SOIL; EROSION PROCESSES; NORTHEAST CHINA; FROZEN SOIL; CYCLES; WATER; MANAGEMENT; STABILITY;
D O I
10.1016/j.still.2022.105559
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
As two complementary aspects of soil structure, the importance of macropore and macro-aggregate character-istics in maintaining soil functions and productivity is paramount. However, the changes in macropores and macro-aggregates and their interactions induced by the effects of freeze-thaw action have rarely been evaluated. This study aimed to evaluate the freeze-thaw effects on soil macropore and macro-aggregate characteristics and their relationships using X-ray computer tomography and dry sieving. Thirty-nine undisturbed soil columns were derived from a depth of 0-15 cm in the Mollisol area of Northeast China. Seven freeze-thaw treatments, including 0 (CK), 1 (FT.1), 3 (FT.3), 5 (FT.5), 7 (FT.7), 10 (FT.10), and 15 (FT.15) freeze-thaw cycles, and two initial soil mass water contents (30% and 40% the initial soil water content (ISWC)) were selected under controlled lab-oratory conditions. Our results showed that freeze-thaw effects significantly increased the total image porosity, mean pore diameter, porosity with branches, and connectivity density (p < 0.05). However, the total number of pores showed a "first increase - then decrease" trend with an increasing number of freeze-thaw cycles. During the freeze-thaw cycles, the macropore and macro-aggregate size distributions exhibited dynamic processes. Compared to the CK treatment, soils for 30% and 40% ISWC under the FT.15 treatment exhibited a lower > 7 mm macro-aggregates by 27.9% and 43.1%, but a higher < 3 mm macro-aggregates by 78.0% and 88.4%, respectively. The total image porosity, porosity with branches, and connectivity density were significantly positively and negatively correlated (p < 0.05) with the mean weight diameter and fractal dimension of macro -aggregates, respectively. The increase in macroporosity and pore branches easily induced the breakdown of the macro-aggregates. This study can help improve the understanding of the effects of changes in macropore characteristics and the processes of macro-aggregate breakdown and further enable the utilisation of soil structure as an indicator for assessing the sustainability and erodibility of soils.
引用
收藏
页数:12
相关论文
共 80 条
[11]   BoneJ Free and extensible bone image analysis in ImageJ [J].
Doube, Michael ;
Klosowski, Michal M. ;
Arganda-Carreras, Ignacio ;
Cordelieres, Fabrice P. ;
Dougherty, Robert P. ;
Jackson, Jonathan S. ;
Schmid, Benjamin ;
Hutchinson, John R. ;
Shefelbine, Sandra J. .
BONE, 2010, 47 (06) :1076-1079
[12]  
Edwards LM, 2013, CAN J SOIL SCI, V93, P459, DOI [10.4141/cjss2012-059, 10.4141/CJSS2012-059]
[13]   THE EFFECT OF ALTERNATE FREEZING AND THAWING ON AGGREGATE STABILITY AND AGGREGATE SIZE DISTRIBUTION OF SOME PRINCE-EDWARD-ISLAND SOILS [J].
EDWARDS, LM .
JOURNAL OF SOIL SCIENCE, 1991, 42 (02) :193-204
[14]   Effects of mulching materials on nitrogen mineralization, nitrogen availability and poplar growth on degraded agricultural soil [J].
Fang, Shengzuo ;
Xie, Baodong ;
Liu, Dong ;
Liu, Jiujun .
NEW FORESTS, 2011, 41 (02) :147-162
[15]   Quantifying the effect of a freeze-thaw cycle on soil erosion: laboratory experiments [J].
Ferrick, MG ;
Gatto, LW .
EARTH SURFACE PROCESSES AND LANDFORMS, 2005, 30 (10) :1305-1326
[16]   Tillage effects on topsoil structural quality assessed using X-ray CT, soil cores and visual soil evaluation [J].
Garbout, A. ;
Munkholm, L. J. ;
Hansen, S. B. .
SOIL & TILLAGE RESEARCH, 2013, 128 :104-109
[17]   Monitoring particle aggregation processes [J].
Gregory, John .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2009, 147-48 :109-123
[18]  
[顾汪明 Gu Wangming], 2020, [中国水土保持科学, Science of Soil and Water Conservation], V18, P45
[19]   Soil freeze-thaw cycle experiments: Trends, methodological weaknesses and suggested improvements [J].
Henry, Hugh A. L. .
SOIL BIOLOGY & BIOCHEMISTRY, 2007, 39 (05) :977-986
[20]   Soil structure formation and management effects on gas emission [J].
Horn, Rainer ;
Peth, Stephan .
BIOLOGIA, 2009, 64 (03) :449-453