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Fitting Performance of Particle-size Distribution Models on Data Derived by Conventional and Laser Diffraction Techniques

机译:粒度分布模型对常规和激光衍射技术得出的数据的拟合性能

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摘要

Mathematical description of most classical particle size distribution (PSD) data is often used for estimating soil hydraulic properties. Fast laser diffraction (LD) techniques now provide more detailed PSDs, but deriving a function to characterize the entire range of sizes is a major challenge. The aim of this study was to compare the fitting performance of seven PSD functions with one to four parameters on sieve-pipette and LD data sets of fine-textured soils. The fits were evaluated by the adjusted R2, MSE, and Akaike's information criterion. The fractal and exponential functions performed poorly while the performance of the Gompertz model increased with clay content for the LD data sets. The Fredlund function provided very good fits with sieve-pipette PSDs but not the corresponding LD data sets, probably due to underestimation of the clay fraction in the latter. The two-parameter lognormal function showed better overall performance and provided very good fits with both sieve-pipette and LD data sets.
机译:大多数经典粒度分布(PSD)数据的数学描述通常用于估算土壤的水力特性。现在,快速激光衍射(LD)技术可提供更详细的PSD,但要获得表征整个尺寸范围的功能是一项重大挑战。这项研究的目的是在细纹理土壤的筛移液管和LD数据集上比较具有1-4个参数的7个PSD函数的拟合性能。通过调整后的R2,MSE和Akaike的信息标准对拟合进行评估。分形和指数函数的性能较差,而Gompertz模型的性能随LD数据集的粘土含量增加而增加。 Fredlund函数提供了非常适合筛移液器PSD的功能,但没有提供相应的LD数据集,这可能是由于后者中的粘土分数被低估了。两参数对数正态函数显示出更好的整体性能,并且非常适合筛移液器和LD数据集。

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