Factors controlling deep-profile soil organic carbon and water storage following Robinia pseudoacacia afforestation of the Loess Plateau in China

被引:0
作者
Xi Yang [1 ,2 ]
Tongchuan Li [1 ]
Mingan Shao [1 ,2 ,3 ,4 ]
机构
[1] State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Northwest A & F University
[2] College of Natural Resources and Environment, Northwest A & F University
[3] Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences
[4] College of Resources and Environment, University of Chinese Academy of Sciences
关键词
Afforestation; Robinia pseudoacacia; Soil organic carbon; Soil water; Coupling interaction;
D O I
暂无
中图分类号
S714.2 [森林土壤理化性质];
学科分类号
0903 ; 090301 ;
摘要
Background: Afforestation is a common and effective approach used for the restoration of degraded ecosystems worldwide. In China, Robinia pseudoacacia(RP) is among the main non-native tree species and has been widely planted in revegetation of the Loess Plateau. However, owing to uncertainties regarding soil water consumption and carbon sequestration, it is necessary to assess the suitability and sustainability of R. pseudoacacia in restoration. In this study, we aimed to analyse the dynamic effects of R. pseudoacacia forest on soil carbon storage(SCS)and soil water storage(SWS). Specifically, we investigated the association between soil water content(SWC) and soil organic carbon(SOC) and underlying factors in the 0–500-cm profile of a 10-to 50-year-old chronosequence.Results: The results obtained indicated that the dynamics of SWS and SCS on this time scale could be divided into an initial reduction phase(the initial 20 years after afforestation) and subsequent recovery(20–50 years after afforestation). Compared with in the abandoned land(AL), the net accumulation of SCS in R. pseudoacacia forest was 2.51 Mg·ha-1 at 50 years after afforestation, whereas there was a 398.76-mm deficit in SWS. Additionally,the natural succession of R. pseudoacacia forest has contributed to the continuous change in stand structure(e.g.vegetation cover(VC), understory vegetation coverage(UVC), and litter biomass(LB)).Conclusions: These findings indicate that vegetation restoration increases carbon sequestration while causing soil water deficit. Furthermore, stand density(SD) was established to make a predominant contribution to the dynamics of SWS and SCS via its effects in altering vegetation, soil, and litter characteristics. Therefore, high-density plantation forests in the Loess Plateau area should be appropriately thinned to reduce the density of forest stands on the basis of soil erosion control and wind and sand fixation, so as to increase carbon sink with lower water consumption, thus realizing the synergistic development of soil carbon sequestration and water connotation.
引用
收藏
页码:838 / 851
页数:14
相关论文
共 101 条
[1]   Selective logging enhances ecosystem multifunctionality via increase of functional diversity in a Pinus yunnanensis forest in Southwest China [J].
Xiaobo Huang ;
Shuaifeng Li ;
Jianrong Su .
Forest Ecosystems, 2020, 7 (04) :733-745
[2]   Soil-plant co-stimulation during forest vegetation restoration in a subtropical area of southern China [J].
Chan Chen ;
Xi Fang ;
Wenhua Xiang ;
Pifeng Lei ;
Shuai Ouyang ;
Yakov Kuzyakov .
Forest Ecosystems, 2020, 7 (03) :404-420
[3]   黄土丘陵区植被恢复的土壤碳水效应 [J].
冯棋 ;
杨磊 ;
王晶 ;
石学圆 ;
汪亚峰 .
生态学报, 2019, 39 (18) :6598-6609
[4]  
Ecosystem carbon and nitrogen storage following farmland afforestation with black locust(Robinia pseudoacacia) on the Loess Plateau, China[J]. Guangqi Zhang,Ping Zhang,Yang Cao.Journal of Forestry Research. 2018(03)
[5]   旱季雨季对黄土丘陵退耕区植被根系分布及水分利用的影响 [J].
常恩浩 ;
李鹏 ;
张铁钢 ;
肖列 ;
徐国策 ;
赵宾华 ;
张祎 .
农业工程学报, 2016, 32 (24) :129-138
[6]  
Comparison of transpiration between different aged black locust(Robinia pseudoacacia)trees on the semi-arid Loess Plateau,China[J]. JIAO Lei,LU Nan,FU Bojie,GAO Guangyao,WANG Shuai,JIN Tiantian,ZHANG Liwei,LIU Jianbo,ZHANG Di.Journal of Arid Land. 2016(04)
[7]  
Soil Organic Matter Fractions under Different Vegetation Types in Permafrost Regions along the Qinghai-Tibet Highway, North of Kunlun Mountains, China[J]. SHANG Wen,ZHAO Lin,WU Xiao-dong,LI Yu-qiang,YUE Guang-yang,ZHAO Yong-hua,QIAO Yong-ping.Journal of Mountain Science. 2015(04)
[8]   陆地生态系统碳—水耦合机制初探 [J].
赵风华 ;
于贵瑞 .
地理科学进展, 2008, (01) :32-38
[9]   干旱缺水地区森林植被蒸散耗水研究 [J].
王彦辉 ;
熊伟 ;
于澎涛 ;
沈振西 ;
郭明春 ;
管伟 ;
马长明 ;
叶兵 ;
郭浩 .
中国水土保持科学, 2006, (04) :19-25+32
[10]   贵州西部喀斯特石漠化地区退耕弃荒地土壤氮素变异特征 [J].
林昌虎 ;
涂成龙 ;
陆晓辉 ;
林邵霞 .
水土保持学报, 2005, (04) :14-17+88