Spatio-temporal Changes of Annual NPP in the Heihe River Basin and Its Response to Climate Factors

被引:0
|
作者
Jia L. [1 ]
Yu K. [1 ]
Deng M. [1 ]
Li P. [1 ,2 ]
Li Z. [1 ]
Shi P. [1 ,2 ]
Xu G. [1 ,2 ]
机构
[1] State Key Laboratory of Eco-Hydraulics in Northwest Arid Region of China, Xi’an University of Technology, Xi'an
[2] Key Laboratory of National Forestry and Grassland Administration on Ecological Hydrology and Disaster Prevention in Arid Regions, Xi’an University of Technology, Xi’an
关键词
carbon sinks; center of gravity shift; climate factors; Heihe River Basin; NPP; response; temporal and spatial changes;
D O I
10.16058/j.issn.1005-0930.2023.03.001
中图分类号
学科分类号
摘要
In recent decades, ecological environment has changed greatly, and net primary productivity of vegetation (NPP) of vegetation has become an important indicator to characterize the carbon sink status.In this study,the Heihe River Basin in the arid region of inland China was used as the research area,temporal and spatial variation characteristics of annual NPP was analyzed using monthly grid NPP,precipitation and average temperature data from 1985 to 2015,by applying Mann-Kendall trend test method and Pettitt change-point test method.The response of the annual NPP gravity shift to the climate factors gravity shift in different grids was investigated based on the fishing nets and the center of gravity shift model, the contribution rates of climate change and non-climatic factors to changes in NPP was quantified,and the influence of landform and climate factors on annual NPP changes was finally discussed.The results show that:(1) the annual NPP from 1985 to 2015 in 44.98% of the Heihe River Basin has a significant increase, while 35. 27% of the basin has a significant decrease;(2) 80. 12% of the total area has significant change-points from 1989 to 2010; (3) the shifting direction of the annual NPP gravity center from 1985 to 2015 is consistent with that of the annual precipitation and the annual average temperature in 21.69% and 26.78% of the grid numbers,respectively;(4) the average contribution rates of climatic factors and non-climatic factors to the annual NPP change are 16.13% and 83.87%,respectively.The research results are conducive to understanding the temporal and spatial characteristics of vegetation carbon sinks, thereby further providing a certain scientific basis for the formulation of environmental protection policies and plans in the Heihe River Basin. © 2023 Editorial Board of Journal of Basic Science and. All rights reserved.
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页码:523 / 540
页数:17
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共 46 条
  • [1] Houghton R A., The worldwide extent of land-use change[J], Bioscience, 44, 5, pp. 305-313, (1994)
  • [2] Habeal H., Human appropriation of net primary production as an environmental indicator:Implications for sustainable development[J], AMBIO A Journal of the Human Environment, 26, pp. 143-146, (1997)
  • [3] Wessels K J, Prince S D, Reshef I., Mapping land degradation by comparison of vegetation production to spatially derived estimates of potential production[J], Journal of Arid Environments, 72, 10, pp. 1940-1949, (2008)
  • [4] Ji Panpan, Gao Minhua, Yang Xiaodong, Analysis of NPP driving force in an arid region of Northwest China:A case study in Yili Valley and parts of Tianshan Mountains, Xinjiang, China [ J], Acta Ecologica Sinica, 39, 8, pp. 2995-3006, (2019)
  • [5] Matsushita B, Tamura M., Integrating remotely sensed data with an ecosystem model to estimate net primary productivity in East Asia[J], Remote Sensing of Environment, 81, 1, pp. 15-19, (2002)
  • [6] Liang W, Yang Y T, Fan D M, Et al., Analysis of spatial and temporal patterns of net primary production and their climate controls in China from 1982 to 2010[J], Agricultural and Forest Meteorology, 204, pp. 22-36, (2015)
  • [7] Sun R, Zhu Q J., Estimation of net primary productivity in China using remote sensing data[J], Journal of Geographical Sciences, 11, 1, pp. 14-23, (2001)
  • [8] Brouwers N C, Coops N C., Decreasing net primary production in forest and shrub vegetation across southwest Australia [J], Ecological Indicators, 66, pp. 10-19, (2016)
  • [9] Tum M, Zeidler J N, Gunther K P, Et al., Global NPP and straw bioenergy trends for 2000—2014[J], Biomass and Bioenergy, 90, pp. 230-236, (2016)
  • [10] Gang C C, Zhang Y Z, Wang Z Q, Et al., Modeling the dynamics of distribution,extent,and NPP of global terrestrial ecosystems in response to future climate change[J], Global & Planetary Change, 148, pp. 153-165, (2017)