Extreme summer drought increased soil detachment capacity of biocrusts in subtropical China

IF 6.1 1区 农林科学 Q1 SOIL SCIENCE Soil & Tillage Research Pub Date : 2024-11-29 DOI:10.1016/j.still.2024.106372
Yajun Zhao , Yuan Ping , Guiyin Mi , Zhiyuan Xiao , Fujun Liu , Chongfa Cai , Zhonglu Guo
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Abstract

Biological soil crusts (Biocrusts) are considered to have significant effects on soil detachment processes. Increasing extreme droughts are expected to affect the structure and functioning of biocrust ecosystems. However, understanding how biocrust ecosystems will respond to drought requires further investigation in the subtropical region. This study conducted continuously monitoring of understory biocrusts in subtropical China from May to November 2022, analyzed the monthly variation of near-surface characteristics of biocrusts and performed scouring experiments with six flow shear stresses (7.61–21.08 Pa) to assess the monthly variation of soil detachment capacity (Dc) of biocrusts. Finally, we elucidated the complex effects of summer drought (August-September) on Dc of biocrusts. Results showed that summer drought led to significant reductions in biocrust coverage (BC) and biocrust thickness (BT) (P<0.05), as well as notable declines in soil stability (including soil cohesion and Mean weight diameter) and soil nutrient content (including soil organic matter, total Nitrogen, total Phosphorus) (P<0.05), except for a non-significant increase in bulk density (P>0.05). Furthermore, Dc of biocrusts significantly increased by 172.2 % during the summer drought compared to the previous months (P<0.05). These changes of biocrusts are mainly affected by moisture stress more than heat stress. Partial least squares path modeling (PLS-PM) revealed that reduced rain and lower soil moisture increased Dc mainly by diminishing the BC and BT, followed by reducing soil cohesion and soil aggregate stability. The results provide empirical evidence for the cumulatively detrimental effects of future climate on biocrusts and contribute to more comprehensive understanding of biocrusts multifunctionality.
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夏季极端干旱增加了亚热带生物结皮土壤剥离能力
生物土壤结皮(Biocrusts)被认为对土壤剥离过程有重要影响。越来越多的极端干旱预计将影响生物结霜生态系统的结构和功能。然而,了解生物结壳生态系统如何应对干旱需要在亚热带地区进行进一步的调查。本研究于2022年5 - 11月对中国亚热带林下生物结皮进行了连续监测,分析了生物结皮近地表特征的逐月变化,并进行了6种流动剪应力(7.61-21.08 Pa)冲刷试验,评价了生物结皮土壤剥离能力(Dc)的逐月变化。最后阐明了夏季干旱(8 - 9月)对生物结皮Dc的复杂影响。结果表明:夏季干旱导致生物结皮盖度(BC)和生物结皮厚度(BT)显著降低(P<0.05),土壤稳定性(包括土壤黏聚力和平均重径)和土壤养分含量(包括土壤有机质、全氮、全磷)显著下降(P<0.05),但容重增加不显著(P>0.05)。夏季干旱期间,生物结皮的Dc比前几个月显著增加172.2 % (P<0.05)。这些变化主要受水分胁迫而非热胁迫的影响。偏最小二乘路径模型(PLS-PM)表明,降雨减少和土壤湿度降低主要通过降低BC和BT来增加Dc,其次是降低土壤黏聚力和土壤团聚体稳定性。这些结果为未来气候对生物壳的累积不利影响提供了经验证据,有助于更全面地了解生物壳的多功能性。
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来源期刊
Soil & Tillage Research
Soil & Tillage Research 农林科学-土壤科学
CiteScore
13.00
自引率
6.20%
发文量
266
审稿时长
5 months
期刊介绍: Soil & Tillage Research examines the physical, chemical and biological changes in the soil caused by tillage and field traffic. Manuscripts will be considered on aspects of soil science, physics, technology, mechanization and applied engineering for a sustainable balance among productivity, environmental quality and profitability. The following are examples of suitable topics within the scope of the journal of Soil and Tillage Research: The agricultural and biosystems engineering associated with tillage (including no-tillage, reduced-tillage and direct drilling), irrigation and drainage, crops and crop rotations, fertilization, rehabilitation of mine spoils and processes used to modify soils. Soil change effects on establishment and yield of crops, growth of plants and roots, structure and erosion of soil, cycling of carbon and nutrients, greenhouse gas emissions, leaching, runoff and other processes that affect environmental quality. Characterization or modeling of tillage and field traffic responses, soil, climate, or topographic effects, soil deformation processes, tillage tools, traction devices, energy requirements, economics, surface and subsurface water quality effects, tillage effects on weed, pest and disease control, and their interactions.
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