{"title":"Influence of SiO<sub>2</sub> nanoparticles and Fe<sub>3</sub>O<sub>4</sub> solution on the consolidation of geological soft soil","authors":"Cong Yu, GuanJun Zhang, Yangzi Liu","doi":"10.1166/mex.2023.2548","DOIUrl":null,"url":null,"abstract":"Soft soil is widely distributed in coastal areas and needs to be treated first when used as a foundation. A method of incorporating nano SiO 2 particles and nano Fe 3 O 4 solution is proposed to address the consolidation problem of geological soft soil. During the process, nanomaterials are selected and a preparation method for incorporating nanomaterial soil is designed. Subsequently, the experimental device is designed and the main instrument usage methods are specified, resulting in a complete experimental process design. The experimental results showed that in the generation of electron microscope images of soil, the soil mixed with nano SiO 2 particles or nano Fe 3 O 4 solution has a denser characterization; In the experiment of current variation in soil, the maximum current of the soil mixed with nano SiO 2 particles is 0.1052 A at 72 hours; In the soil drainage test, the maximum total drainage of the soil mixed with nano Fe 3 O 4 material at the end reached 1907 mL; In the soil pH value experiment, the pH value of the soil is higher when the proportion of nano SiO 2 material added is 3‰ and the proportion of nano Fe 3 O 4 material added is 2‰. The above results indicate that the geological soft soil consolidation method designed by the research institute incorporating nano SiO 2 materials or nano Fe 3 O 4 materials can effectively improve the drainage and mechanical properties of the soil.","PeriodicalId":18318,"journal":{"name":"Materials Express","volume":"105 10","pages":"0"},"PeriodicalIF":0.7000,"publicationDate":"2023-11-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Materials Express","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1166/mex.2023.2548","RegionNum":4,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q3","JCRName":"Materials Science","Score":null,"Total":0}
引用次数: 0
Abstract
Soft soil is widely distributed in coastal areas and needs to be treated first when used as a foundation. A method of incorporating nano SiO 2 particles and nano Fe 3 O 4 solution is proposed to address the consolidation problem of geological soft soil. During the process, nanomaterials are selected and a preparation method for incorporating nanomaterial soil is designed. Subsequently, the experimental device is designed and the main instrument usage methods are specified, resulting in a complete experimental process design. The experimental results showed that in the generation of electron microscope images of soil, the soil mixed with nano SiO 2 particles or nano Fe 3 O 4 solution has a denser characterization; In the experiment of current variation in soil, the maximum current of the soil mixed with nano SiO 2 particles is 0.1052 A at 72 hours; In the soil drainage test, the maximum total drainage of the soil mixed with nano Fe 3 O 4 material at the end reached 1907 mL; In the soil pH value experiment, the pH value of the soil is higher when the proportion of nano SiO 2 material added is 3‰ and the proportion of nano Fe 3 O 4 material added is 2‰. The above results indicate that the geological soft soil consolidation method designed by the research institute incorporating nano SiO 2 materials or nano Fe 3 O 4 materials can effectively improve the drainage and mechanical properties of the soil.
软土在沿海地区分布广泛,作为基础需要先进行处理。为解决地质软土的固结问题,提出了一种纳米sio2颗粒与纳米fe3o4溶液复合的方法。在此过程中,选择了纳米材料,设计了掺入纳米土的制备方法。随后,设计了实验装置,明确了主要仪器的使用方法,完成了实验流程设计。实验结果表明,在土壤的电子显微镜图像生成中,混合纳米sio2颗粒或纳米fe3o4溶液的土壤具有更致密的表征;在土壤电流变化实验中,掺入纳米sio2颗粒的土壤在72小时的最大电流为0.1052 A;在土壤排水试验中,掺入纳米铁3 O 4材料的土壤最终最大总排水达到1907 mL;在土壤pH值实验中,纳米sio2材料添加比例为3‰,纳米fe3o4材料添加比例为2‰时,土壤pH值较高。上述结果表明,研究所设计的采用纳米sio2材料或纳米fe3o4材料的地质软土固结方法可以有效改善土壤的排水性能和力学性能。