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The static chamber approach is often used for greenhouse gas (GHG) flux measurements, whereby the flux is deduced from the increase of species concentration after closing the chamber. Since this increase changes diffusion gradients between chamber air and soil air, a nonlinear increase is expected. Lateral gas flow and leakages also contribute to non linearity. Several models have been suggested to account for this non linearity, the most recent being the Hutchinson-Mosier regression model (hmr). However, the practical application of these models is challenging because the researcher needs to decide for each flux whether a nonlinear fit is appropriate or exaggerates flux estimates due to measurement artifacts. In the latter case, a flux estimate from the linear model is a more robust solution and introduces less arbitrary uncertainty to the data. We present the new, dynamic and reproducible flux calculation scheme, kappa.max, for an improved trade-off between bias and uncertainty (i.e. accuracy and precision). We develop a tool to simulate, visualise and optimise the flux calculation scheme for any specific static N2O chamber measurement system. The decision procedure and visualisation tools are implemented in a package for the R software. Finally, we demonstrate with this approach the performance of the applied flux calculation scheme for a measured flux dataset to estimate the actual bias and uncertainty. The kappa.max method effectively improved the decision between linear and nonlinear flux estimates reducing the bias at a minimal cost of uncertainty.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6062054 | PMC |
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0200876 | PLOS |
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College of Geography and Environmental Sciences, Zhejiang Normal University, Jinhua 321004, China.
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McMaster University, Department of Physics and Astronomy, Hamilton, Ontario L8S 4M1, Canada.
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Research Center for Crystal Materials; CAS Key Laboratory of Functional Materials and Devices for Special Environments, Xinjiang Key Laboratory of Functional Crystal Materials, Xinjiang Technical Institute of Physics & Chemistry, CAS, Urumqi 830011, China.
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Politecnico di Milano, Department of Chemistry, Materials and Chemical Engineering, "Giulio Natta" - Piazza Leonardo da Vinci 32, 20133, Milano, Italy.
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UMR Epoc 5805, Bordeaux-INP. 1 Allée Daguin, 33607, Pessac cedex, France. Electronic address:
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