Quantifying the Impact of 3D Pore Space Morphology on Soil Gas Diffusion in Loam and Sand

被引:6
|
作者
Prifling, Benedikt [1 ]
Weber, Matthias [1 ]
Ray, Nadja [2 ]
Prechtel, Alexander [3 ]
Phalempin, Maxime [4 ]
Schlueter, Steffen [4 ]
Vetterlein, Doris [4 ]
Schmidt, Volker [1 ]
机构
[1] Ulm Univ, Inst Stochast, Ulm, Germany
[2] Catholic Univ Eichstatt Ingolstadt, Math Inst Machine Learning & Data Sci, Ingolstadt, Germany
[3] Friedrich Alexander Univ Erlangen Nurnberg, Dept Math, Erlangen, Germany
[4] UFZ Helmholtz Ctr Environm Res, Dept Soil Syst Sci, Halle, Germany
关键词
Microstructure; Diffusive mass transport; Microstructure-property relationships; Prediction formula; Tortuosity; DISCONTINUOUS GALERKIN METHOD; MICROSTRUCTURE; PERMEABILITY; COEFFICIENT; TORTUOSITY; ALGORITHM; TRANSPORT; SIZE;
D O I
10.1007/s11242-023-01971-z
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Effective diffusion is an important macroscopic property for assessing transport in porous media. Numerical computations on segmented 3D CT images yield precise estimates for diffusive properties. On the other hand, geometrical descriptors of pore space such as porosity, specific surface area and further transport-related descriptors can be easily computed from 3D CT images and are closely linked to diffusion processes. However, the investigation of quantitative relationships between these descriptors and diffusive properties for a diverse range of porous structures is still ongoing. In the present paper, we consider three different soil samples of each loam and sand for a total of six samples, whose 3D microstructure is quantitatively investigated using univariate as well as bivariate probability distributions of geometrical pore space descriptors. This information is used for investigating microstructure-property relationships by means of empirically derived regression formulas, where a particular focus is put on the differences between loam and sand samples. Due to the analytical nature of these formulas, it is possible to obtain a deeper understanding for the relationship between the 3D pore space morphology and the resulting diffusive properties. In particular, it is shown that formulas existing so far in the literature for predicting soil gas diffusion can be significantly improved by incorporating further geometrical descriptors such as geodesic tortuosity, chord lengths, or constrictivity of the pore space. The robustness of these formulas is investigated by fitting the regression parameters on different data sets as well as by applying the empirically derived regression formulas to data that is not used for model fitting. Among others, it turns out that a formula based on porosity as well as mean and standard deviation of geodesic tortuosity performs best with regard to the coefficient of determination and the mean absolute percentage error. Moreover, it is shown that regarding the prediction of diffusive properties the concept of geodesic tortuosity is superior to geometric tortuosity, where the latter is based on the creation of a skeleton of the pore space.
引用
收藏
页码:501 / 527
页数:27
相关论文
共 50 条
  • [41] Topology-based characterization of chemically-induced pore space changes using reduction of 3D digital images
    Prokhorov, Dmitry
    Lisitsa, Vadim
    Khachkova, Tatyana
    Bazaikin, Yaroslav
    Yang, Yongfei
    JOURNAL OF COMPUTATIONAL SCIENCE, 2022, 58
  • [42] Quantifying the impact of early calcite cementation on the reservoir quality of carbonate rocks: A 3D process-based model
    Hosa, Aleksandra
    Wood, Rachel
    ADVANCES IN WATER RESOURCES, 2017, 104 : 89 - 104
  • [43] D3T: Dual-Domain Diffusion Transformer in Triplanar Latent Space for 3D Incomplete-View CT Reconstruction
    Liu, Xuhui
    Li, Hong
    Qiao, Zhi
    Huang, Yawen
    Liu, Xi
    Zhang, Juan
    Qian, Zhen
    Zhen, Xiantong
    Zhang, Baochang
    INTERNATIONAL JOURNAL OF COMPUTER VISION, 2025,
  • [44] Fast diffusion supercapacitors via an ultra-high pore volume of crumpled 3D structure reduced graphene oxide activation
    Lee, Keunsik
    Kim, Doyoung
    Yoon, Yeoheung
    Yang, Junghee
    Yun, Ho-Gyeong
    You, In-Kyu
    Lee, Hyoyoung
    RSC ADVANCES, 2015, 5 (75): : 60914 - 60919
  • [45] Characterization of ultrasonic induced damage on multi-scale pore/fracture in coal using gas sorption and ?-CT 3D reconstruction
    Liu, Peng
    Nie, Baisheng
    Zhao, Zhengduo
    Zhao, Yulong
    Li, Quangui
    FUEL, 2023, 332
  • [46] Quantitative visualization and characteristics of gas flow in 3D pore-fracture system of tight rock based on Lattice Boltzmann simulation
    Hou, Peng
    Liang, Xin
    Gao, Feng
    Dong, Jiabin
    He, Jian
    Xue, Yi
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2021, 89
  • [47] Examination of interface roughness and particle morphology on granular soil-structure shearing behavior using DEM and 3D printing
    Ma, Xiongying
    Lei, Hang
    Kang, Xin
    ENGINEERING STRUCTURES, 2023, 290
  • [48] Micro-Nano 3D CT Scanning to Assess the Impact of Microparameters of Volcanic Reservoirs on Gas Migration
    Gao, Xiangwei
    Yu, Yunliang
    Xu, Zhongjie
    Liu, Yingchun
    PROCESSES, 2024, 12 (09)
  • [49] A 3D convolutional neural network accurately predicts the permeability of gas diffusion layer materials directly from image data
    Cawte, Taylr
    Bazylak, Aimy
    CURRENT OPINION IN ELECTROCHEMISTRY, 2022, 35
  • [50] Characterization of Electrospun and Commercial Gas Diffusion Layers for PEMFC Using High-Resolution 3D Imaging and Direct Simulations
    de Beaufort, Bertrand Roussillo-David
    Fouda-Onana, Frederic
    Ducros, Jean-Baptiste
    David, Thomas
    Scheel, Mario
    Serre, Guillaume
    Pauchet, Joel
    Prat, Marc
    ACS APPLIED ENERGY MATERIALS, 2024, : 151 - 169