创新水力旋流器技术在重金属土壤修复中的细颗粒分离

IF 8 1区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Ruiqi Zhang , Leyao Xing , Yang Li , Ran Shen , Jixian Yang , Lixin Gao
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引用次数: 0

摘要

土壤重金属污染对生态系统和人类健康构成重大威胁。传统的修复方法(如植物修复、热处理和电动修复)往往受到高成本和低效率的限制。本文提出了一种利用数值模拟设计的小型水力旋流器有效分离细颗粒污染土壤的新方法。虽然重金属主要附着在小于20 μm的颗粒上,但之前的研究主要集中在200 μm颗粒的粗分离上。我们的设计创新特别关注20 μm的关键粒径范围。采用雷诺应力模型(RSM)、流体体积模型和离散相模型,研究了寻涡器直径对流场和分级效率的影响,并分析了颗粒轨迹和分离性能。在最佳条件下(水土比为1:25,流速为1.1 m3/h),溢流中<;20 μm颗粒分数从76.3%提高到89.2%,底流解吸效率分别达到88.7% (Cu)、84.5% (Pb)和80.4% (Cd)。该方法在细颗粒分类和污染土壤体积的精确减少方面有显著的改进。我们的研究结果为土壤修复提供了一种经济有效的解决方案,解决了主要的环境挑战,为未来的环境修复研究和应用提供了一条有希望的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fine-particle separation in heavy metal soil remediation using innovative hydrocyclone technology

Fine-particle separation in heavy metal soil remediation using innovative hydrocyclone technology
Heavy metal pollution in soils poses significant threats to ecosystems and human health. Traditional remediation methods (such as phytoremediation, thermal treatment, and electrokinetic remediation) are frequently limited by high costs and low efficiency. This study presents a novel approach using a small-scale hydrocyclone designed through numerical simulations to effectively separate fine-particle-contaminated soil. While heavy metals primarily adhere to particles smaller than 20 μm, previous studies have focused on rough separation of particles up to 200 μm. Our design innovation focuses specifically on the key particle size range of 20 μm. Using the Reynolds Stress Model (RSM), Volume of Fluid model, and discrete phase model, we investigated the effects of vortex finder diameter on flow field and classification efficiency and analyzed particle trajectories and separation performance. Under optimal conditions (1:25 water-to-soil ratio, 1.1 m3/h flow rate), the <20 μm particle fraction in overflow increased from 76.3 % to 89.2 %, while underflow desorption efficiencies reached 88.7 % (Cu), 84.5 % (Pb), and 80.4 % (Cd). This approach demonstrates significant improvements in fine particle classification and precise reduction of contaminated soil volume. Our findings offer a cost-effective and efficient solution for soil remediation, addressing a major environmental challenge and providing a promising avenue for future research and application in environmental restoration.
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来源期刊
Science of the Total Environment
Science of the Total Environment 环境科学-环境科学
CiteScore
17.60
自引率
10.20%
发文量
8726
审稿时长
2.4 months
期刊介绍: The Science of the Total Environment is an international journal dedicated to scientific research on the environment and its interaction with humanity. It covers a wide range of disciplines and seeks to publish innovative, hypothesis-driven, and impactful research that explores the entire environment, including the atmosphere, lithosphere, hydrosphere, biosphere, and anthroposphere. The journal's updated Aims & Scope emphasizes the importance of interdisciplinary environmental research with broad impact. Priority is given to studies that advance fundamental understanding and explore the interconnectedness of multiple environmental spheres. Field studies are preferred, while laboratory experiments must demonstrate significant methodological advancements or mechanistic insights with direct relevance to the environment.
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