((VI) 通过铁电凝连续流通过挑战水的去除.
Xicheng He1, Yihang Yuan1, Maya Mehrotra1
1Department of Energy, Environmental and Chemical Engineering, Washington University at St. Louis, St. Louis, Missouri 63130, United States.
Environmental science & technology
|August 11, 2025
概括
铁电凝能有效地从水中去除酸盐,但碳酸盐和硫酸盐通过改变铁固体的反应性来显著抑制该过程. 优化铁剂量和硫酸盐预处理是现实应用的关键.
科学领域:
- 环境科学 环境科学
- 水处理技术水处理技术
- 无机化学 无机化学
背景情况:
- (VI) (酸盐) 是各种水体中令人担忧的污染物.
- 铁电凝 (EC) 显示出消除酸盐的潜力.
- 了解水矩阵效应对于有效的EC应用至关重要.
研究的目的:
- 为了研究在环境相关条件下通过流体铁EC去除酸盐的性能.
- 为了确定水成分对酸盐去除效率的影响.
- 阐明水成分影响酸盐去除的机制.
主要方法:
- 进行了流通铁电凝试验.
- 主要离子 (二碳酸盐,硫酸盐,酸盐) 和酸的作用被单独和复杂的水矩阵中检查.
- 进行了对铁固体形成,氧化还原特性和吸附机制的分析.
主要成果:
- 双碳酸通过形成不那么有反应性的铁固体 (绿色生) 来抑制酸盐的去除.
- 硫酸盐阻碍了铁固体的氧化和转化,降低了与酸盐的反应性.
- 硫酸盐和高离子强度是真正的废水的主要抑制剂,需要更高的铁剂量.
- 硫酸盐预处理提高了农业和采矿废水的EC性能,但不是FGD废水.
结论:
- 水的成分显著影响铁电凝效率,以去除酸盐.
- 二碳酸盐和硫酸盐是关键的抑制物种,需要管理策略.
- 对固体形成,氧化还原和吸附的洞察力为实际的水处理设计提供了指导.
相关概念视频
Coagulation
373
Colloidal solids are solid particles suspended in solution. They are usually negatively charged, attracting a compact primary layer of positively charged ions, which attract more counterions to form an electrical double layer. Electrostatic repulsion between the charged double layers prevents the particles from colliding, stabilizing the colloids. These solids are often undesirable because they can contain toxins that are difficult to remove. Coagulation is a technique that helps aggregate and...
373
Precipitation and Co-precipitation
2.0K
Precipitation and coprecipitation methods can be used to separate a mixture of ions in a solution. In qualitative inorganic analysis, ions that form sparingly soluble precipitates with the same reagent are separated based on the differences in solubility products. For example, consider the separation of Cu(II) and Fe(II) ions by precipitation as insoluble sulfides. First, copper(II) sulfide is precipitated by the addition of acidic H2S, where the dissociation of H2S is suppressed. Adding H2S...
2.0K
Extraction: Advanced Methods
524
Metal ions can be separated from one another by complexation with organic ligands–the chelating agent– to form uncharged chelates. Here, the chelating agent must contain hydrophobic groups and behave as a weak acid, losing a proton to bind with the metal. Since most organic ligands used in this process are insoluble or undergo oxidation in the aqueous phase, the chelating agent is initially added to the organic phase and extracted into the aqueous phase. The metal-ligand complex is...
524
Electrodeposition
709
Electrodeposition is a technique used to separate an analyte from interferents by electrochemical processes. Here, the analyte is a metal ion that can be deposited on an electrode immersed in the sample solution. The electrochemical setup consists of an anode and a cathode. When an electric current is applied to the setup, oxidation occurs at the anode. At the cathode, which consists of a large metal surface, metal ions undergo reduction and deposit onto the surface.
Electrodeposition can...
Electrodeposition can...
709
Voltammetry: Stripping Methods
344
Anodic Stripping Voltammetry (ASV), Cathodic Stripping Voltammetry (CSV), and Adsorptive Stripping Voltammetry (AdSV) are electrochemical techniques used to determine trace amounts of analytes in solution. These methods involve applying a potential to an electrode and measuring the resulting current.
Anodic Stripping Voltammetry (ASV)
ASV is used to determine metals and metalloids at trace levels. It involves two steps: deposition and stripping. First, a negative potential is applied to the...
Anodic Stripping Voltammetry (ASV)
ASV is used to determine metals and metalloids at trace levels. It involves two steps: deposition and stripping. First, a negative potential is applied to the...
344
Factors Affecting Solubility
33.9K
Compared with pure water, the solubility of an ionic compound is less in aqueous solutions containing a common ion (one also produced by dissolution of the ionic compound). This is an example of a phenomenon known as the common ion effect, which is a consequence of the law of mass action that may be explained using Le Chȃtelier’s principle. Consider the dissolution of silver iodide:
33.9K


