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首页> 外文期刊>Agricultural and Forest Meteorology >Dis-aggregation of airborne flux measurements using footprint analysis
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Dis-aggregation of airborne flux measurements using footprint analysis

机译:使用足迹分析分解气载通量测量值

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Aircraft measurements of turbulent fluxes are generally being made with the objective to obtain an estimate of regional exchanges between land surface and atmosphere, to investigate the spatial variability of these fluxes, but also to learn something about the fluxes from some or all of the land cover types that make up the landscape. In this study we develop a method addressing this last objective, an approach to disentangle blended fluxes from a landscape into the component fluxes emanating from the various land cover classes making up that landscape. The method relies on using a footprint model to determine which part of the landscape the airborne flux observation refers to, using a high resolution land cover map to determine the fractional covers of the various land cover classes within that footprint, and finally using multiple linear regression on many such flux/fractional cover data records to estimate the component fluxes. The method is developed in the context of three case studies of increasing complexity and the analysis covers three scalar fluxes: sensible and latent heat fluxes and carbon dioxide flux, as well as the momentum flux.A basic assumption under the dis-aggregation method is that the composite flux, i.e. the landscape flux, is a linear average of the component fluxes, i.e. the fluxes from the various land elements. We test and justify this assumption by comparing linear averages of component fluxes in simple 'binary landscapes', weighted by their relative area, with directly aircraft observed fluxes.In all case studies dis-aggregation of mixed values for fluxes from heterogeneous areas into component land cover class specific fluxes is feasible using robust least squares regression, both in simple binary 'landscapes' and in more complex cases. Both the differences between land cover classes and the differences between synoptic conditions can be resolved, for those land cover classes that make up sufficiently large fractions of the landscape. The regression F-statistic and the closely associated p-values are good indicators for this latter prerequisite and for other sources of uncertainty in the dis-aggregated flux estimates that render it meaningful or not. An analysis of the effect of various sources of errors in input data, footprint estimates and of skewed land cover class distributions is presented. A validation of flux estimates obtained through the dis-aggregation method against independent ground data proved satisfactorily. Recommendations for the use of the method are given as are suggestions for further development
机译:通常对飞机进行湍流通量的测量,目的是获得对地表与大气之间区域交换的估计,以调查这些通量的空间变异性,还可以从部分或全部土地覆盖物中了解通量构成景观的类型。在这项研究中,我们开发了一种解决这个最终目标的方法,该方法可以将景观中的混合通量分解为组成该景观的各种土地覆盖类别产生的成分通量。该方法依赖于使用足迹模型来确定空中通量观测值所指的景观部分,使用高分辨率的土地覆盖图来确定该足迹内各种土地覆盖类别的分数覆盖,最后使用多元线性回归在许多这样的通量/分数覆盖数据记录上估计组分通量。该方法是在三个案例研究日益复杂的背景下开发的,分析涵盖了三个标量通量:显热通量和潜热通量,二氧化碳通量以及动量通量。分解方法的基本假设是复合通量,即景观通量,是成分通量(即来自不同陆要素的通量)的线性平均值。我们通过比较简单的``二元景观''中分量通量的线性平均值(由其相对面积加权)与直接飞机观测到的通量来测试并证明该假设。在所有案例研究中,从异质区域到分量土地的通量混合值的分解在简单的二元“景观”和更复杂的情况下,都可以使用鲁棒最小二乘回归来实现覆盖类特定通量。对于那些构成景观足够大部分的土地覆盖类别,土地覆盖类别之间的差异和天气条件之间的差异都可以解决。回归F统计量和紧密相关的p值是该条件的先决条件,也是分解通量估算中其他不确定性来源(使其有意义或不有意义)的良好指标。提出了对输入数据,足迹估计和倾斜的土地覆盖物类别分布中各种错误源的影响的分析。通过分解方法获得的通量估计值相对于独立地面数据的验证得到了令人满意的证明。给出了使用该方法的建议以及进一步开发的建议

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