An Assessment of Soil Loss by Water Erosion in No-Tillage and Mulching, China

Author:

Cao Zhen123,Chen Guohui14,Zhang Song4,Huang Shangshu15,Wu Yan5,Dong Fangjin6,Guo Yuming7,Wang Jianhao8,Jiang Fahui1ORCID

Affiliation:

1. Key Laboratory of Agricultural Resources and Ecology in Poyang Lake Watershed of Ministry of Agriculture and Rural Affairs in China, Jiangxi Agricultural University, Nanchang 330000, China

2. University of Chinese Academy of Sciences, Beijing 100049, China

3. Key Laboratory of Watershed Geographic Sciences, Nanjing Institute of Geography and Limnology, Chinese Academy of Sciences, Nanjing 210008, China

4. Jiujiang Academy of Agricultural Sciences, Jiujiang 332000, China

5. Jiangxi Institute of Red Soil and Germplasm Resources, Nanchang 330000, China

6. Northeast Institute of Geography and Agroeocology, Chinese Academy of Sciences, Harbin 150081, China

7. Cultivated Land Quality Monitoring and Protection Center, Ministry of Agriculture and Rural Affairs, Beijing 100125, China

8. College of Environmental Science and Engineering, Guilin University of Technology, Guilin 541000, China

Abstract

Soil erosion poses a global threat to arable land and its sustainability, particularly in China, where the most severe soil erosion exists worldwide. No-tillage (NT) and mulching (NTS) are considered the most effective soil management techniques for reducing erosion, but only 10% of the global area utilizes them. Therefore, in comparison to conventional tillage (CT), we conducted a comprehensive national assessment of NT and NTS to evaluate their impact on water erosion across China’s croplands for the period spanning 2000 to 2018, through using Revised Universal Soil Loss Equation (RUSLE); subsequently, we projected the temporal and spatial erosion distribution, and examined their effects of various underlying driving factors by using a random-forest model. Nationally, the average soil loss rates were 1085, 564, and 396 t km−2 a−1 for the CT, NT, and NTS, respectively, across the entire arable land over a span of 18 years. This represents a reduction of 48% and 64% in the NT and NTS, respectively, compared to CT. From 2000 to 2018, water erosion-induced soil loss exhibited a slightly increasing trend with a wavelike pattern in CT, NT, and NTS. The spatial distribution of water erosion in China’s arable land was primarily influenced by local precipitation, accounting for 45% to 52% of the total impact on CT, NT, and NTS. Additionally, the soil slope degree played a role, contributing 29% to 36% of the erosion patterns. Overall, NT and NTS demonstrated superior performance in mitigating the soil erosion in the southern regions of China, including the Central South, Southwest, and East China, owing to the substantial local rainfall and steep terrain. In contrast, NT and NTS exhibited a lower but still significant reduction in soil loss in the northern regions of China due to the flat topography and limited rainfall. However, considering the trade-off between economic losses (yield) and ecosystem benefits (erosion control), we recommend implementing NT and NTS primarily in the northern parts of China, such as the Northeast, North China, and Northwest.

Funder

National Key Research and Development Program of China

Provincial Science and Technology Special Project of Jinggangshan Nonggao District

Jiangxi Province Rice Industry Technology System Project

Three Increases and Two Decreases Demonstration Project for Rice of Rural Revitalization Modern Agriculture Development Special Fund Project from Jiujiang City

Publisher

MDPI AG

Subject

Water Science and Technology,Aquatic Science,Geography, Planning and Development,Biochemistry

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