Mechanism of Damage and Deterioration of Red Sandstone in South China under Different pH Treatments

Groundwater in southern China region contains various chemical compositions. By comparing the effects of acidic, neutral, and alkaline solutions on mechanical properties and internal structure, the changes in mechanical parameters and microstructure of chemical solution etched samples were obtained....

Full description

Saved in:
Bibliographic Details
Main Authors: Shuguang Zhang, Shutian Zhao, Jiaqi Liu, Zhifeng Liu, Dipeng Zhu, Yingbo Li
Format: Article
Language:English
Published: Wiley 2024-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2024/3684358
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1832544767262588928
author Shuguang Zhang
Shutian Zhao
Jiaqi Liu
Zhifeng Liu
Dipeng Zhu
Yingbo Li
author_facet Shuguang Zhang
Shutian Zhao
Jiaqi Liu
Zhifeng Liu
Dipeng Zhu
Yingbo Li
author_sort Shuguang Zhang
collection DOAJ
description Groundwater in southern China region contains various chemical compositions. By comparing the effects of acidic, neutral, and alkaline solutions on mechanical properties and internal structure, the changes in mechanical parameters and microstructure of chemical solution etched samples were obtained. The results show that as the pH of the solution increases from 2 to 12, the peak strength and elastic modulus of the rock samples initially increase and then decrease, while axial strain and Poisson’s ratio first decrease and then increase. The degree of deterioration of rock samples by different chemical solutions follows the order strong acid (pH ≤ 4) > strong alkali (pH ≥ 10) > weak acid (4 < pH ≤ 6) > weak alkali (8 ≤ pH < 10) > neutral (pH = 7). Alkaline and neutral solutions mainly corrode the surface of rock samples, with the wave velocity of the rock core higher than that of the surface. The wave velocities of alkaline solutions at different pH values after corrosion are essentially the same as that of pH = 7 neutral solution, ~2,850 m/s. Acidic solutions corrode both the surface and core of rock samples, with the wave velocities of the core and surface being similar. After corrosion by pH = 2 acidic solution, the wave velocity of the rock samples decreases to 2,505 m/s. With increasing acidity or alkalinity of the chemical solution, the internal pores of the rock transition from micropores to mesopores and macropores. Compared to pH = 7 neutral solution, the porosity of rock samples increases by 59.13% and 24.17% after corrosion by pH = 2 and pH = 12 solutions, respectively. Acidic and alkaline solutions exhibit distinct mechanisms: acidic solutions corrode particles and framework to form continuous fractures, whereas alkaline solutions generate new substances filling the fractures through hydration reactions. By introducing chemical damage variables and considering threshold factors, a chemical damage constitutive model is constructed to effectively describe the impact of chemical corrosion on mechanical properties. This systematic study of the chemical environment’s influence on internal structures reveals the erosion mechanisms of acidic, alkaline, and neutral saline solutions, which is crucial for the stability of underground engineering surrounding rocks and geological disaster prevention in southern China.
format Article
id doaj-art-97ac1e203e1a4a888f68086b719d26a8
institution Kabale University
issn 1687-8094
language English
publishDate 2024-01-01
publisher Wiley
record_format Article
series Advances in Civil Engineering
spelling doaj-art-97ac1e203e1a4a888f68086b719d26a82025-02-03T09:58:38ZengWileyAdvances in Civil Engineering1687-80942024-01-01202410.1155/2024/3684358Mechanism of Damage and Deterioration of Red Sandstone in South China under Different pH TreatmentsShuguang Zhang0Shutian Zhao1Jiaqi Liu2Zhifeng Liu3Dipeng Zhu4Yingbo Li5School of Civil EngineeringSchool of Civil EngineeringNanning College of TechnologyChina Railway 16TH Bureau Group Co., Ltd.South China Construction Co., Ltd.Shenzhen Railway Investment and Construction Group Co., Ltd.Groundwater in southern China region contains various chemical compositions. By comparing the effects of acidic, neutral, and alkaline solutions on mechanical properties and internal structure, the changes in mechanical parameters and microstructure of chemical solution etched samples were obtained. The results show that as the pH of the solution increases from 2 to 12, the peak strength and elastic modulus of the rock samples initially increase and then decrease, while axial strain and Poisson’s ratio first decrease and then increase. The degree of deterioration of rock samples by different chemical solutions follows the order strong acid (pH ≤ 4) > strong alkali (pH ≥ 10) > weak acid (4 < pH ≤ 6) > weak alkali (8 ≤ pH < 10) > neutral (pH = 7). Alkaline and neutral solutions mainly corrode the surface of rock samples, with the wave velocity of the rock core higher than that of the surface. The wave velocities of alkaline solutions at different pH values after corrosion are essentially the same as that of pH = 7 neutral solution, ~2,850 m/s. Acidic solutions corrode both the surface and core of rock samples, with the wave velocities of the core and surface being similar. After corrosion by pH = 2 acidic solution, the wave velocity of the rock samples decreases to 2,505 m/s. With increasing acidity or alkalinity of the chemical solution, the internal pores of the rock transition from micropores to mesopores and macropores. Compared to pH = 7 neutral solution, the porosity of rock samples increases by 59.13% and 24.17% after corrosion by pH = 2 and pH = 12 solutions, respectively. Acidic and alkaline solutions exhibit distinct mechanisms: acidic solutions corrode particles and framework to form continuous fractures, whereas alkaline solutions generate new substances filling the fractures through hydration reactions. By introducing chemical damage variables and considering threshold factors, a chemical damage constitutive model is constructed to effectively describe the impact of chemical corrosion on mechanical properties. This systematic study of the chemical environment’s influence on internal structures reveals the erosion mechanisms of acidic, alkaline, and neutral saline solutions, which is crucial for the stability of underground engineering surrounding rocks and geological disaster prevention in southern China.http://dx.doi.org/10.1155/2024/3684358
spellingShingle Shuguang Zhang
Shutian Zhao
Jiaqi Liu
Zhifeng Liu
Dipeng Zhu
Yingbo Li
Mechanism of Damage and Deterioration of Red Sandstone in South China under Different pH Treatments
Advances in Civil Engineering
title Mechanism of Damage and Deterioration of Red Sandstone in South China under Different pH Treatments
title_full Mechanism of Damage and Deterioration of Red Sandstone in South China under Different pH Treatments
title_fullStr Mechanism of Damage and Deterioration of Red Sandstone in South China under Different pH Treatments
title_full_unstemmed Mechanism of Damage and Deterioration of Red Sandstone in South China under Different pH Treatments
title_short Mechanism of Damage and Deterioration of Red Sandstone in South China under Different pH Treatments
title_sort mechanism of damage and deterioration of red sandstone in south china under different ph treatments
url http://dx.doi.org/10.1155/2024/3684358
work_keys_str_mv AT shuguangzhang mechanismofdamageanddeteriorationofredsandstoneinsouthchinaunderdifferentphtreatments
AT shutianzhao mechanismofdamageanddeteriorationofredsandstoneinsouthchinaunderdifferentphtreatments
AT jiaqiliu mechanismofdamageanddeteriorationofredsandstoneinsouthchinaunderdifferentphtreatments
AT zhifengliu mechanismofdamageanddeteriorationofredsandstoneinsouthchinaunderdifferentphtreatments
AT dipengzhu mechanismofdamageanddeteriorationofredsandstoneinsouthchinaunderdifferentphtreatments
AT yingboli mechanismofdamageanddeteriorationofredsandstoneinsouthchinaunderdifferentphtreatments