Long-term urban carbon dioxide observations reveal spatial and temporal dynamics related to urban characteristics and growth.
Where this comes from
- Record sourced from PubMed, PMID 29507190.
- Also identified by DOI 10.1073/pnas.1702393115 and PMC identifier 5866532.
- No licence information is recorded for this record.
- Because redistribution is not established, this page shows the abstract only. Follow the links below for the full text.
Abstract
Cities are concentrated areas of CO<sub>2</sub> emissions and have become the foci of policies for mitigation actions. However, atmospheric measurement networks suitable for evaluating urban emissions over time are scarce. Here we present a unique long-term (decadal) record of CO<sub>2</sub> mole fractions from five sites across Utah's metropolitan Salt Lake Valley. We examine "excess" CO<sub>2</sub> above background conditions resulting from local emissions and meteorological conditions. We ascribe CO<sub>2</sub> trends to changes in emissions, since we did not find long-term trends in atmospheric mixing proxies. Three contrasting CO<sub>2</sub> trends emerged across urban types: negative trends at a residential-industrial site, positive trends at a site surrounded by rapid suburban growth, and relatively constant CO<sub>2</sub> over time at multiple sites in the established, residential, and commercial urban core. Analysis of population within the atmospheric footprints of the different sites reveals approximately equal increases in population influencing the observed CO<sub>2</sub>, implying a nonlinear relationship with CO<sub>2</sub> emissions: Population growth in rural areas that experienced suburban development was associated with increasing emissions while population growth in the developed urban core was associated with stable emissions. Four state-of-the-art global-scale emission inventories also have a nonlinear relationship with population density across the city; however, in contrast to our observations, they all have nearly constant emissions over time. Our results indicate that decadal scale changes in urban CO<sub>2</sub> emissions are detectable through monitoring networks and constitute a valuable approach to evaluate emission inventories and studies of urban carbon cycles.