Effects of the conversion of natural tropical rainforest to monoculture rubber plantations on soil hydrological processes

Author:

Chen Qiaoyan12,Fu Ruiyu12,Cheng Siyuan12,Qiao Dong12,Hu Zhongmin12,Zhang Zijia3,Dai Licong12

Affiliation:

1. Hainan Baoting Tropical Rainforest Ecosystem Observation and Research Station, School of Ecology and Environment, Hainan University , Haikou 570228 , China

2. Center for Eco-Environment Restoration Engineering of Hainan Province, Hainan University , Haikou 570228 , China

3. Hainan Ecological Environment Monitoring Center , Haikou 570100 , China

Abstract

Abstract Rubber plantations have increased significantly under unprecedented economic growth in tropical areas, which leads to soil degradation and thereby alters soil hydrological processes. However, our understanding of how forest conversion affects soil hydrological processes remains unclear. Here, we collected soil samples from secondary forests (SF) and rubber plantations (RP) to determine the soil hydrological characteristics. We found the topsoil (0–20 cm) water retention in SF was higher than that of RP but displayed the contrast pattern in a deeper soil layer (20–60 cm). Meanwhile, the soil infiltration rates among the two vegetation types decreased significantly with infiltration time, with higher stable soil infiltration rates in SF than those in RP. Moreover, soil properties were also impacted by the forest conversion, such as the topsoil capillary porosity (CP) and total porosity (TP) in SF were higher than those of RP but contrasted in a deep soil layer. In comparison, the topsoil bulk density (BD) in SF was lower than that of RP, but contrasted in the deep soil layer and reached a significant level in the 0–10 and 40–50 cm (P < 0.05). Overall, the soil water retention was mainly determined by the CP, which could explain 31.56% of the total variance in soil water retention, followed by TP (26.57%) and soil BD (26.47%), whereas soil texture exerts a weak effect on soil water retention. Therefore, we can conclude that the conversion of tropical rainforest into rubber plantations may accelerate soil erosion owing to its lower topsoil water retention and soil infiltration rates.

Funder

Hainan Province South China Sea New Star Science and Technology Innovation Talent Platform Project

National Natural Science Foundation of China

Hainan Provincial Natural Science Foundation of China

Key R&D Program of Hainan

Hainan University

Publisher

Oxford University Press (OUP)

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