Optimizing Soil Stabilization with Chitosan: Investigating Acid Concentration, Temperature, and Long-Term Strength.

IF 4.9 3区 工程技术 Q1 POLYMER SCIENCE Polymers Pub Date : 2025-01-09 DOI:10.3390/polym17020151
Runshen Wang, Dominic E L Ong, Hossein Sadighi, Mohammad Goli, Peng Xia, Hadi Fatehi, Tianchi Yao
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Abstract

Civil and geotechnical researchers are searching for economical alternatives to replace traditional soil stabilizers such as cement, which have negative impacts on the environment. Chitosan biopolymer has shown its capacity to efficiently minimize soil erosion, reduce hydraulic conductivity, and adsorb heavy metals in soil that is contaminated. This research used unconfined compression strength (UCS) to investigate the impact of chitosan content, long-term strength assessment, acid concentration, and temperature on the improvement of soil strength. Static triaxial testing was employed to evaluate the shear strength of the treated soil. Overall, the goal was to identify the optimum values for the mentioned variables so that the highest potential for chitosan-treated soil can be obtained and applied in future research as well as large-scale applications in geotechnical engineering. The UCS results show that chitosan increased soil strength over time and at high temperatures. Depending on the soil type, a curing temperature between 45 to 65 °C can be considered optimal. Chitosan biopolymer is not soluble in water, and an acid solution is needed to dissolve the biopolymer. Different ranges of acid solution were investigated to find the appropriate amount. The strength of the treated soil increased when the acid concentration reached its optimal level, which is 0.5-1%. A detailed chemical model was developed to express how acid concentration and temperature affect the properties of the biopolymer-treated soil. The SEM examination findings demonstrate that chitosan efficiently covered the soil particles and filled the void spaces. The soil was strengthened by the formation of hydrogen bonds and electrostatic interactions with the soil particles.

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壳聚糖优化土壤稳定性:考察酸浓度、温度和长期强度。
土木和岩土研究人员正在寻找经济的替代品来取代传统的土壤稳定剂,如水泥,它们对环境有负面影响。壳聚糖生物聚合物在减少土壤侵蚀、降低土壤导电性、吸附污染土壤中的重金属等方面具有重要的作用。本研究利用无侧限抗压强度(UCS)研究壳聚糖含量、长期强度评定、酸浓度和温度对土壤强度提高的影响。采用静三轴试验对处理后土的抗剪强度进行了评价。总的来说,目标是确定上述变量的最佳值,以便获得壳聚糖处理土壤的最大潜力,并将其应用于未来的研究以及岩土工程中的大规模应用。UCS结果表明,随着时间的推移和高温,壳聚糖增加了土壤的强度。根据土壤类型,养护温度在45至65°C之间可以被认为是最佳的。壳聚糖生物聚合物不溶于水,需要酸性溶液溶解。研究了不同范围的酸溶液,以确定合适的酸溶液用量。当酸浓度达到最佳水平(0.5 ~ 1%)时,处理后的土壤强度增加。建立了一个详细的化学模型来表达酸浓度和温度如何影响生物聚合物处理过的土壤的性质。扫描电镜分析结果表明,壳聚糖有效地覆盖了土壤颗粒,填充了空隙。土壤通过氢键的形成和与土壤颗粒的静电相互作用而得到强化。
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来源期刊
Polymers
Polymers POLYMER SCIENCE-
CiteScore
8.00
自引率
16.00%
发文量
4697
审稿时长
1.3 months
期刊介绍: Polymers (ISSN 2073-4360) is an international, open access journal of polymer science. It publishes research papers, short communications and review papers. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Polymers provides an interdisciplinary forum for publishing papers which advance the fields of (i) polymerization methods, (ii) theory, simulation, and modeling, (iii) understanding of new physical phenomena, (iv) advances in characterization techniques, and (v) harnessing of self-assembly and biological strategies for producing complex multifunctional structures.
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