A Novel Index (RI) to Evaluate the Relative Stability of Soils Using Ultrasonic Agitation

As soil stability is a complex phenomenon, various methods and indexes were introduced to assess the strength of soils. Because of the limitations of different stability methods and indexes (including wet sieving-based), we aimed to presents a relative stability index (RI) that was based on the esti...

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Main Authors: Fakher Abbas, Fang Lin, Zhaolong Zhu, Shaoshan An
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Sustainability
Subjects:
Online Access:https://www.mdpi.com/2071-1050/13/8/4229
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spelling doaj-20ee2845bc02443ba4b6db860ebb47e32021-04-10T23:03:17ZengMDPI AGSustainability2071-10502021-04-01134229422910.3390/su13084229A Novel Index (RI) to Evaluate the Relative Stability of Soils Using Ultrasonic AgitationFakher Abbas0Fang Lin1Zhaolong Zhu2Shaoshan An3State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation, Northwest A & F University, Yangling 712100, ChinaSchool of Control Science and Engineering, Dalian University of Technology, Dalian 116024, ChinaState Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation, Northwest A & F University, Yangling 712100, ChinaState Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation, Northwest A & F University, Yangling 712100, ChinaAs soil stability is a complex phenomenon, various methods and indexes were introduced to assess the strength of soils. Because of the limitations of different stability methods and indexes (including wet sieving-based), we aimed to presents a relative stability index (RI) that was based on the estimated components of the soil overall disruptive characteristic curve (SODC): (1) soil disruption constant (<i>K</i><sub>i</sub>, that is based upon dispersion energy of soils); (2) resulting change in mean weight diameter (ΔMWD). To evaluate the effectiveness and limitations of RI as well as to compare it with classical soil stability indexes of mean weight diameter (MWD) and geometric mean diameter (GMD). Ultrasonic agitation (UA) along with a wet sieving method (followed by dry sieving) was applied against four different soils named on the basis of sample location, Qingling soil (QL), Guanzhong soil (GZ), Ansai soil (AS), and Jingbian soil (JB). To evaluate the relative strength of soils at different applied energies (increase in sonication duration usually resulted in increased input energy and temperature of soil–water suspension), soils were subjected to six sonication durations (0, 30, 60, 120, 210, and 300 s) with a fixed (and exact) initial amplitude and temperature. Output energy was calculated based on the amplitude and temperature of the suspension, vessel, and system. The most abrupt and maximum disruption of soil aggregates was observed at a dispersion energy level of 0–200 J g<sup>−1</sup>. The MWD value of surface and subsurface ranged between 0.58 to 0.15 mm and 0.37 to 0.17 mm, respectively, while GMD was ranged from 0.14 to 0.33 mm overall. The results for MWD and GMD showed a similar trend. MWD and GMD showed more strong associations with physicochemical characteristics of soil than RI. A non-significant correlation was found between RI and MWD/GMD. Contrary to MWD and GMD, RI was significantly positively correlated with sand content; this finding indicated the influential role of sand in assessing the soil’s relative strength. The results indicated that JB soil possessed the least MWD and GMD but proved to be relatively stable because of having the highest RI value.https://www.mdpi.com/2071-1050/13/8/4229relative stabilityaggregate stabilitysoil aggregateultrasonic agitationwet sieving
collection DOAJ
language English
format Article
sources DOAJ
author Fakher Abbas
Fang Lin
Zhaolong Zhu
Shaoshan An
spellingShingle Fakher Abbas
Fang Lin
Zhaolong Zhu
Shaoshan An
A Novel Index (RI) to Evaluate the Relative Stability of Soils Using Ultrasonic Agitation
Sustainability
relative stability
aggregate stability
soil aggregate
ultrasonic agitation
wet sieving
author_facet Fakher Abbas
Fang Lin
Zhaolong Zhu
Shaoshan An
author_sort Fakher Abbas
title A Novel Index (RI) to Evaluate the Relative Stability of Soils Using Ultrasonic Agitation
title_short A Novel Index (RI) to Evaluate the Relative Stability of Soils Using Ultrasonic Agitation
title_full A Novel Index (RI) to Evaluate the Relative Stability of Soils Using Ultrasonic Agitation
title_fullStr A Novel Index (RI) to Evaluate the Relative Stability of Soils Using Ultrasonic Agitation
title_full_unstemmed A Novel Index (RI) to Evaluate the Relative Stability of Soils Using Ultrasonic Agitation
title_sort novel index (ri) to evaluate the relative stability of soils using ultrasonic agitation
publisher MDPI AG
series Sustainability
issn 2071-1050
publishDate 2021-04-01
description As soil stability is a complex phenomenon, various methods and indexes were introduced to assess the strength of soils. Because of the limitations of different stability methods and indexes (including wet sieving-based), we aimed to presents a relative stability index (RI) that was based on the estimated components of the soil overall disruptive characteristic curve (SODC): (1) soil disruption constant (<i>K</i><sub>i</sub>, that is based upon dispersion energy of soils); (2) resulting change in mean weight diameter (ΔMWD). To evaluate the effectiveness and limitations of RI as well as to compare it with classical soil stability indexes of mean weight diameter (MWD) and geometric mean diameter (GMD). Ultrasonic agitation (UA) along with a wet sieving method (followed by dry sieving) was applied against four different soils named on the basis of sample location, Qingling soil (QL), Guanzhong soil (GZ), Ansai soil (AS), and Jingbian soil (JB). To evaluate the relative strength of soils at different applied energies (increase in sonication duration usually resulted in increased input energy and temperature of soil–water suspension), soils were subjected to six sonication durations (0, 30, 60, 120, 210, and 300 s) with a fixed (and exact) initial amplitude and temperature. Output energy was calculated based on the amplitude and temperature of the suspension, vessel, and system. The most abrupt and maximum disruption of soil aggregates was observed at a dispersion energy level of 0–200 J g<sup>−1</sup>. The MWD value of surface and subsurface ranged between 0.58 to 0.15 mm and 0.37 to 0.17 mm, respectively, while GMD was ranged from 0.14 to 0.33 mm overall. The results for MWD and GMD showed a similar trend. MWD and GMD showed more strong associations with physicochemical characteristics of soil than RI. A non-significant correlation was found between RI and MWD/GMD. Contrary to MWD and GMD, RI was significantly positively correlated with sand content; this finding indicated the influential role of sand in assessing the soil’s relative strength. The results indicated that JB soil possessed the least MWD and GMD but proved to be relatively stable because of having the highest RI value.
topic relative stability
aggregate stability
soil aggregate
ultrasonic agitation
wet sieving
url https://www.mdpi.com/2071-1050/13/8/4229
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