Reconstruction of particle size distribution from cross-sections

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초록

Controlling the microstructure enables higher energy density and lower energy consumption of a battery. Although particle size distribution is an important property of microstructures, its study is hindered by limited analytical tools. In this study, we precisely estimate the 3-dimensional (3D) spherical size distribution from a 2-dimensional circular size distribution. Here, we introduce the least absolute shrinkage and selection operator (LASSO) regularization method to handle the existing issues in 3D reconstruction efficiently. Using a virtual structure from various predefined distributions, we demonstrate that the LASSO regression outperforms other regularization methods in predicting the original distribution. Finally, we suggest an effective number of cross sections, that is, the minimum required number of cross sections, for 3D reconstruction consisting of spherical particles.

키워드

LASSO RegressionStereology3D ReconstructionWicksell's Corpuscle ProblemRegularizationThe Number of Cross-sectionsMAXIMUM-LIKELIHOOD-ESTIMATIONENERGY-STORAGEBATTERYSIMULATION
제목
Reconstruction of particle size distribution from cross-sections
저자
Oh, JihoonKim, DongjaeLee, SeunggeonNam, Jaewook
DOI
10.1007/s11814-023-1521-0
발행일
2023-12
유형
Article
저널명
Korean Journal of Chemical Engineering
40
12
페이지
3079 ~ 3086