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True eddy accumulation – Part 1: Solutions to the problem of non-vanishing mean vertical wind velocity
[摘要] The true eddy accumulation (TEA) method provides direct measurements ofecosystem-level turbulent fluxes for a wide range of atmospheric constituents.TEA utilizes conditional sampling to overcome the requirement for a fast sensorresponse demanded by the state-of-the-art eddy covariance (EC) method. The TEA method is formulated under the assumption of ideal conditions with azero mean vertical wind velocity during the averaging interval.However, this idealization is rarely met under field conditions.Additionally, unlike in EC, this assumption cannot be imposed in post-processing due to the real-time nature of sampling and the absence ofhigh-frequency measurements of the scalar.Consequently, fluxes measured with the TEA method are biased with anon-turbulent advective term that scales with the scalar mean concentration. Here, we explore the magnitude of this biased advective term and potential waysto minimize or remove it.We propose a new formulation to calculate TEA fluxes that minimizes the bias term.The new formulation shows that the magnitude of the error is constrained to w ‾ / | w | ‾ when the stationarity criterion is fulfilled.Here, w is the vertical wind velocity, and the overbar denotes time averaging.The error is shown to be dependent on the asymmetry of atmospheric transport,represented by the coefficient α c .Two methods of estimating the coefficient α c are proposed: aprobabilistic treatment of turbulent transport and a method utilizing theassumption of scalar similarity.We show how other formulas for calculating the TEA flux are linked to the newformulation and explore the different corrections in a numerical simulation. The new formulation avoids the direct dependence of the bias term on the scalarbackground concentration.This result increases confidence in applying the TEA method to measuringfluxes of atmospheric constituents.This is particularly relevant to scalars with a large background concentrationand a small flux.This paper is Part 1 of a two-part series on true eddy accumulation.
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