Literature DB >> 22547815

Climate change impacts of US reactive nitrogen.

Robert W Pinder1, Eric A Davidson, Christine L Goodale, Tara L Greaver, Jeffrey D Herrick, Lingli Liu.   

Abstract

Fossil fuel combustion and fertilizer application in the United States have substantially altered the nitrogen cycle, with serious effects on climate change. The climate effects can be short-lived, by impacting the chemistry of the atmosphere, or long-lived, by altering ecosystem greenhouse gas fluxes. Here we develop a coherent framework for assessing the climate change impacts of US reactive nitrogen emissions, including oxides of nitrogen, ammonia, and nitrous oxide (N(2)O). We use the global temperature potential (GTP), calculated at 20 and 100 y, in units of CO(2) equivalents (CO(2)e), as a common metric. The largest cooling effects are due to combustion sources of oxides of nitrogen altering tropospheric ozone and methane concentrations and enhancing carbon sequestration in forests. The combined cooling effects are estimated at -290 to -510 Tg CO(2)e on a GTP(20) basis. However, these effects are largely short-lived. On a GTP(100) basis, combustion contributes just -16 to -95 Tg CO(2)e. Agriculture contributes to warming on both the 20-y and 100-y timescales, primarily through N(2)O emissions from soils. Under current conditions, these warming and cooling effects partially offset each other. However, recent trends show decreasing emissions from combustion sources. To prevent warming from US reactive nitrogen, reductions in agricultural N(2)O emissions are needed. Substantial progress toward this goal is possible using current technology. Without such actions, even greater CO(2) emission reductions will be required to avoid dangerous climate change.

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Year:  2012        PMID: 22547815      PMCID: PMC3356669          DOI: 10.1073/pnas.1114243109

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  9 in total

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Authors:  S Sitch; P M Cox; W J Collins; C Huntingford
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Authors:  Drew T Shindell; Greg Faluvegi; Dorothy M Koch; Gavin A Schmidt; Nadine Unger; Susanne E Bauer
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6.  Canopy nitrogen, carbon assimilation, and albedo in temperate and boreal forests: Functional relations and potential climate feedbacks.

Authors:  S V Ollinger; A D Richardson; M E Martin; D Y Hollinger; S E Frolking; P B Reich; L C Plourde; G G Katul; J W Munger; R Oren; M-L Smith; K T Paw U; P V Bolstad; B D Cook; M C Day; T A Martin; R K Monson; H P Schmid
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Review 7.  A review of nitrogen enrichment effects on three biogenic GHGs: the CO2 sink may be largely offset by stimulated N2O and CH4 emission.

Authors:  Lingli Liu; Tara L Greaver
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Review 8.  Transformation of the nitrogen cycle: recent trends, questions, and potential solutions.

Authors:  James N Galloway; Alan R Townsend; Jan Willem Erisman; Mateete Bekunda; Zucong Cai; John R Freney; Luiz A Martinelli; Sybil P Seitzinger; Mark A Sutton
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  9 in total
  14 in total

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4.  Shifts in tree functional composition amplify the response of forest biomass to climate.

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6.  The role of industrial nitrogen in the global nitrogen biogeochemical cycle.

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9.  Effects of Nitrogen Addition on Litter Decomposition and CO2 Release: Considering Changes in Litter Quantity.

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10.  The Warming Climate Aggravates Atmospheric Nitrogen Pollution in Australia.

Authors:  Yi Sun; Baojing Gu; Hans J M van Grinsven; Stefan Reis; Shu Kee Lam; Xiuying Zhang; Youfan Chen; Feng Zhou; Lin Zhang; Rong Wang; Deli Chen; Jianming Xu
Journal:  Research (Wash D C)       Date:  2021-06-07
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