13.59.58.14=13.59
https://eutils.ncbi.nlm.nih.gov/entrez/eutils/efetch.fcgi?db=pubmed&id=29470656&retmode=xml&tool=RemsenMedia&email=hello@remsenmedia.com&api_key=81853a771c3a3a2c6b2553a65bc33b056f0813.59.58.14=13.59
https://eutils.ncbi.nlm.nih.gov/entrez/eutils/esearch.fcgi?db=pubmed&term=point+source&datetype=edat&usehistory=y&retmax=5&tool=RemsenMedia&email=hello@remsenmedia.com&api_key=81853a771c3a3a2c6b2553a65bc33b056f0813.59.58.14=13.59
https://eutils.ncbi.nlm.nih.gov/entrez/eutils/efetch.fcgi?db=pubmed&WebEnv=MCID_67957a63cbaaf736c90ac629&query_key=1&retmode=xml&retmax=5&tool=RemsenMedia&email=hello@remsenmedia.com&api_key=81853a771c3a3a2c6b2553a65bc33b056f08 Industrial point source CO emission strength estimation with aircraft measurements and dispersion modelling. | LitMetric

CO remains the greenhouse gas that contributes most to anthropogenic global warming, and the evaluation of its emissions is of major interest to both research and regulatory purposes. Emission inventories generally provide quite reliable estimates of CO emissions. However, because of intrinsic uncertainties associated with these estimates, it is of great importance to validate emission inventories against independent estimates. This paper describes an integrated approach combining aircraft measurements and a puff dispersion modelling framework by considering a CO industrial point source, located in Biganos, France. CO density measurements were obtained by applying the mass balance method, while CO emission estimates were derived by implementing the CALMET/CALPUFF model chain. For the latter, three meteorological initializations were used: (i) WRF-modelled outputs initialized by ECMWF reanalyses; (ii) WRF-modelled outputs initialized by CFSR reanalyses and (iii) local in situ observations. Governmental inventorial data were used as reference for all applications. The strengths and weaknesses of the different approaches and how they affect emission estimation uncertainty were investigated. The mass balance based on aircraft measurements was quite succesful in capturing the point source emission strength (at worst with a 16% bias), while the accuracy of the dispersion modelling, markedly when using ECMWF initialization through the WRF model, was only slightly lower (estimation with an 18% bias). The analysis will help in highlighting some methodological best practices that can be used as guidelines for future experiments.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5823952PMC
http://dx.doi.org/10.1007/s10661-018-6531-8DOI Listing

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