Fractal characteristics of uranium‐bearing sandstone structure and their effects on acid leaching

Abstract Pore structure characteristics have significant effects on the flow distribution, seepage characteristics, and reaction mechanism of the leachate as well as the uranium leaching efficiency in‐situ leaching (ISL) of uranium. In this study, a series of experiments including mercury injection...

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Main Authors: Sheng Zeng, Ni Zhang, Shuwen Zhang, Bing Sun, Kaixuan Tan, Xianzhe Duan, Xueming Du
Format: Article
Language:English
Published: Wiley 2019-10-01
Series:Energy Science & Engineering
Subjects:
Online Access:https://doi.org/10.1002/ese3.396
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author Sheng Zeng
Ni Zhang
Shuwen Zhang
Bing Sun
Kaixuan Tan
Xianzhe Duan
Xueming Du
author_facet Sheng Zeng
Ni Zhang
Shuwen Zhang
Bing Sun
Kaixuan Tan
Xianzhe Duan
Xueming Du
author_sort Sheng Zeng
collection DOAJ
description Abstract Pore structure characteristics have significant effects on the flow distribution, seepage characteristics, and reaction mechanism of the leachate as well as the uranium leaching efficiency in‐situ leaching (ISL) of uranium. In this study, a series of experiments including mercury injection and uranium leaching were conducted to study the characteristics of the pore structure and their effects on uranium leaching. The following conclusions can be drawn: The distribution of uranium‐bearing sandstone particle size shows the double fractal characteristic, and the particle size can be divided into coarse particles (r > 0.6 mm) and fine particles (r ≤ 0.6 mm). Furthermore, the pore volume and specific surface area of uranium sandstone both have dual fractal features corresponding to an intergranular‐dominant region and intragranular‐dominant region from mercury injection results. Fractures in the uranium‐bearing sandstone may be the main factors that lead to the abnormal fractal dimensions of pore structure. The uranium leaching efficiency of the sandstone increase with the leaching time and reach the maximum value (above 90%) at the 112th hour, and the whole leaching process can be divided into two phases taking the 60th hour as the demarcation point. Through correlation analysis, fractal dimension of the particle size, pore volume, and specific surface area was significantly correlated with the leaching efficiency of uranium at different dissolution phase. Corresponding measures such as adjusting solutions concentration and adding hydrofluoric acid can be taken to avoid the negative effect of pore structure. Those observations can provide a theoretical reference for the optimization of the leaching period and site design parameters of uranium‐bearing sandstone.
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spelling doaj.art-a1b2549a4d5e4d2e86b070ef85eb99bb2022-12-21T23:41:11ZengWileyEnergy Science & Engineering2050-05052019-10-01751852186610.1002/ese3.396Fractal characteristics of uranium‐bearing sandstone structure and their effects on acid leachingSheng Zeng0Ni Zhang1Shuwen Zhang2Bing Sun3Kaixuan Tan4Xianzhe Duan5Xueming Du6School of Resources Environment and Safety Engineering University of South China Hengyang ChinaSchool of Resources Environment and Safety Engineering University of South China Hengyang ChinaSchool of Resources Environment and Safety Engineering University of South China Hengyang ChinaCivil Engineering College University of South China Hengyang ChinaSchool of Resources Environment and Safety Engineering University of South China Hengyang ChinaSchool of Resources Environment and Safety Engineering University of South China Hengyang ChinaFaculty of Engineering and Built Environment, ARC Centre of Excellence for Geotechnical Science and Engineering The University of Newcastle Callaghan New South Wales AustraliaAbstract Pore structure characteristics have significant effects on the flow distribution, seepage characteristics, and reaction mechanism of the leachate as well as the uranium leaching efficiency in‐situ leaching (ISL) of uranium. In this study, a series of experiments including mercury injection and uranium leaching were conducted to study the characteristics of the pore structure and their effects on uranium leaching. The following conclusions can be drawn: The distribution of uranium‐bearing sandstone particle size shows the double fractal characteristic, and the particle size can be divided into coarse particles (r > 0.6 mm) and fine particles (r ≤ 0.6 mm). Furthermore, the pore volume and specific surface area of uranium sandstone both have dual fractal features corresponding to an intergranular‐dominant region and intragranular‐dominant region from mercury injection results. Fractures in the uranium‐bearing sandstone may be the main factors that lead to the abnormal fractal dimensions of pore structure. The uranium leaching efficiency of the sandstone increase with the leaching time and reach the maximum value (above 90%) at the 112th hour, and the whole leaching process can be divided into two phases taking the 60th hour as the demarcation point. Through correlation analysis, fractal dimension of the particle size, pore volume, and specific surface area was significantly correlated with the leaching efficiency of uranium at different dissolution phase. Corresponding measures such as adjusting solutions concentration and adding hydrofluoric acid can be taken to avoid the negative effect of pore structure. Those observations can provide a theoretical reference for the optimization of the leaching period and site design parameters of uranium‐bearing sandstone.https://doi.org/10.1002/ese3.396fractal dimensionparticle size distributionpore structureuranium leachinguranium‐bearing sandstone
spellingShingle Sheng Zeng
Ni Zhang
Shuwen Zhang
Bing Sun
Kaixuan Tan
Xianzhe Duan
Xueming Du
Fractal characteristics of uranium‐bearing sandstone structure and their effects on acid leaching
Energy Science & Engineering
fractal dimension
particle size distribution
pore structure
uranium leaching
uranium‐bearing sandstone
title Fractal characteristics of uranium‐bearing sandstone structure and their effects on acid leaching
title_full Fractal characteristics of uranium‐bearing sandstone structure and their effects on acid leaching
title_fullStr Fractal characteristics of uranium‐bearing sandstone structure and their effects on acid leaching
title_full_unstemmed Fractal characteristics of uranium‐bearing sandstone structure and their effects on acid leaching
title_short Fractal characteristics of uranium‐bearing sandstone structure and their effects on acid leaching
title_sort fractal characteristics of uranium bearing sandstone structure and their effects on acid leaching
topic fractal dimension
particle size distribution
pore structure
uranium leaching
uranium‐bearing sandstone
url https://doi.org/10.1002/ese3.396
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