Under which climate and soil conditions the plant productivity-precipitation relationship is linear or nonlinear?

Sci Total Environ

State Key Laboratory of Grassland Agro-ecosystems, School of Life Sciences, Key Laboratory for Semi-Arid Climate Change of the Ministry of Education, Lanzhou University, No. 222, South Tianshui Road, Lanzhou 730000, China.

Published: March 2018

AI Article Synopsis

  • - The study analyzes the relationship between plant productivity (NPP) and precipitation under various climate and soil conditions in the Northern Hemisphere, using satellite data from 2000-2016 to identify linear and nonlinear patterns.
  • - Key differences are found between linear and nonlinear types, particularly in climate variables (like radiation and evapotranspiration) and soil nutrients, suggesting that nonlinear types are more resource-limited beyond just precipitation.
  • - The research calls for more comprehensive modeling that incorporates both precipitation and other climate and soil factors to improve predictions of plant productivity as environmental conditions change.

Article Abstract

Understanding under which climate and soil conditions the plant productivity-precipitation relationship is linear or nonlinear is useful for accurately predicting the response of ecosystem function to global environmental change. Using long-term (2000-2016) net primary productivity (NPP)-precipitation datasets derived from satellite observations, we identify >5600pixels in the North Hemisphere landmass that fit either linear or nonlinear temporal NPP-precipitation relationships. Differences in climate (precipitation, radiation, ratio of actual to potential evapotranspiration, temperature) and soil factors (nitrogen, phosphorous, organic carbon, field capacity) between the linear and nonlinear types are evaluated. Our analysis shows that both linear and nonlinear types exhibit similar interannual precipitation variabilities and occurrences of extreme precipitation. Permutational multivariate analysis of variance suggests that linear and nonlinear types differ significantly regarding to radiation, ratio of actual to potential evapotranspiration, and soil factors. The nonlinear type possesses lower radiation and/or less soil nutrients than the linear type, thereby suggesting that nonlinear type features higher degree of limitation from resources other than precipitation. This study suggests several factors limiting the responses of plant productivity to changes in precipitation, thus causing nonlinear NPP-precipitation pattern. Precipitation manipulation and modeling experiments should combine with changes in other climate and soil factors to better predict the response of plant productivity under future climate.

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Source
http://dx.doi.org/10.1016/j.scitotenv.2017.10.203DOI Listing

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