Water Retention Evaluation of Slab Trench on Rocky Desertification Slope in a Karst Area of Southwest China

Author:

Liu Shiya1,Zhou Cheng1ORCID,Gao Shan2,Zhong Qiming3,Fan Lijuan1,Luo Qi2,Chen Qun1,Zhou Zechang4,Zhu Xunhong5

Affiliation:

1. State Key Laboratory of Hydraulics and Mountain River Engineering, College of Water Resource and Hydropower Engineering, Sichuan University, Chengdu 610017, China

2. Guangxi New Development Transportation Group Co., Ltd., Nanning 530000, China

3. Nanjing Hydraulic Research Institute, Nanjing 210098, China

4. Guangxi Communications Design Group Co., Ltd., Nanning 530000, China

5. Guangxi Road and Bridge Engineering Group Co., Ltd., Nanning 530000, China

Abstract

Soil erosion and water loss are serious problems on the rocky desertification slopes in the karst dynamic system of southwest China. The lack of soil and shortage of water restrict the ecological restoration of the regional slopes and utility of water resources. Therefore, a new slab trench capable of storing soil and water in layers on rocky desertification slopes is introduced in this paper to promote vegetation restoration. To explore the water-storing and -holding capacity of the new type of vegetated slab trench, five groups of model experiments were carried out on the vegetated slab trench under different rainfall intensities and different numbers of plants. Under rainfall and then following dry conditions, the effects of rainfall intensity and the number of plants on the water-storing and -holding capacity of vegetated slab trench models were compared and analyzed. Water-storing and -holding capacity was further explored in three groups of models with single planting or combinations of plants including water stored only in succulent root plant, only in succulent stem plant, or in mixed plants. The test results show that the new type of vegetated slab trench can effectively help to store and hold water. In the rainfall period, due to the runoff of the rainfall not being considered, the greater the rainfall intensity, the higher the water storage efficiency; the more vegetation implanted, the greater the blocking effect of the plant canopy during falling rainwater, and the more reduction is induced on the water storage efficiency of the vegetated slab trench. In the following dry period, both the succulent root plant and succulent stem plant have strong water storage capacity, but the succulent root plant has a stronger capacity for water storage. The growth status of the mixed plants was better than that of single planting, which may be due to the water complementarities between the succulent root plant and succulent stem plant in a mixed planting manner. This study is important for solving the problem of soil erosion and water loss in rocky desertification slopes, and it helps to restore the ecological environment of the area.

Funder

the National Natural Science Foundation (NSFC) of China

the 3rd series of Guangxi Transportation Keynote Research Program in 2020

Publisher

MDPI AG

Subject

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

Reference35 articles.

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3. Zhou, H.Y., Pan, X.Y., and Zhou, W.Z. Assessing spatial distribution of soil erosion in a karst region in southwestern China: A case study in Jinfo Mountains. Proceedings of the IOP Conference Series: Earth and Environmental Science.

4. Global karst vegetation regime and its response to climate change and human activities;Zhao;Ecol. Indic.,2020

5. A geographically weighted regression model augmented by Geodetector analysis and principal component analysis for the spatial distribution of PM2.5;Zhao;Sustain. Cities Soc.,2020

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