A Critical Review of Produced Water Management Using the Chlor-Alkali Process: Challenges and Future Prospects.

IF 2.5 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Wajid Ali, Chunqing Jiang, Hassan Dehghanpour
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引用次数: 0

Abstract

The utilization of produced water (PW) as a feedstock for chlor-alkali (CA) processes offers significant potential for sustainable chemical production. This review article examines the technical feasibility of transforming PW into valuable products such as caustic soda, chlorine, and hydrogen gases through electrochemical processes. The high salinity of PW is identified as a potential advantage for reducing energy consumption in CA processes. However, the variable composition and presence of impurities, including multivalent cations like Ca2+, Mg2+, Sr2+, and Fe2+, and high total organic carbon (TOC) levels, necessitate advanced pretreatment. Effective pretreatment strategies involve a combination of physical and chemical methods, such as coagulation, chemical softening, microfiltration and activated carbon filtration, to achieve high contaminant removal efficiencies. The review evaluates different CA cell configurations, highlighting that diaphragm cells exhibit superior tolerance to impurities compared with membrane-based electrolyzers. Furthermore, the optimization of electrode materials and electrocatalysts is crucial to minimizing overpotentials and preventing deactivation. The review concludes by emphasizing key challenges and suggested future research directions focused on developing cost-effective, high-performance electrodes and diaphragm materials, improving feed brine quality, and enhancing energy efficiency through optimization, process integration and renewable energy utilization. SUMMARY: Electrolysis of highly saline-treated produced water generates caustic soda, chlorine, and hydrogen as valuable co-products. On-site production of caustic soda from electrolysis can be effectively used in the chemical softening of produced water. Integrating hydrogen fuel cells with chlor-alkali processes increases overall energy efficiency and mitigates environmental impacts.

氯碱法采出水管理综述:挑战与展望。
利用采出水作为氯碱(CA)工艺的原料为可持续化工生产提供了巨大的潜力。本文综述了利用电化学方法将PW转化为烧碱、氯和氢气等有价值产品的技术可行性。PW的高盐度被认为是降低CA工艺能耗的潜在优势。然而,多变的成分和杂质的存在,包括Ca2+、Mg2+、Sr2+和Fe2+等多价阳离子,以及高总有机碳(TOC)水平,需要进行高级预处理。有效的预处理策略包括物理和化学方法的结合,如混凝、化学软化、微过滤和活性炭过滤,以达到高的污染物去除效率。该综述评估了不同的CA电池配置,强调膜片电池与膜基电解槽相比具有更好的杂质耐受性。此外,电极材料和电催化剂的优化对于最小化过电位和防止失活至关重要。最后,强调了未来的研究方向,重点是开发具有成本效益的高性能电极和隔膜材料,通过优化、工艺集成和可再生能源利用来改善饲料盐水质量,提高能源效率。摘要:电解高盐处理的采出水产生烧碱、氯和氢作为有价值的副产物。现场电解生产烧碱可有效地用于产出水的化学软化。将氢燃料电池与氯碱工艺相结合,提高了整体能源效率,减轻了对环境的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Water Environment Research
Water Environment Research 环境科学-工程:环境
CiteScore
6.30
自引率
0.00%
发文量
138
审稿时长
11 months
期刊介绍: Published since 1928, Water Environment Research (WER) is an international multidisciplinary water resource management journal for the dissemination of fundamental and applied research in all scientific and technical areas related to water quality and resource recovery. WER''s goal is to foster communication and interdisciplinary research between water sciences and related fields such as environmental toxicology, agriculture, public and occupational health, microbiology, and ecology. In addition to original research articles, short communications, case studies, reviews, and perspectives are encouraged.
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