Optimization of carbon membrane performance in reverse osmosis systems for reducing salinity, nitrates, phosphates, and ammonia in aquaculture wastewater

IF 8.1 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Chemosphere Pub Date : 2025-03-15 DOI:10.1016/j.chemosphere.2025.144304
Sayyed Ali Moezzi , Saeedeh Rastgar , Monireh Faghani , Zahra Ghiasvand , Arash Javanshir Khoei
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Abstract

This study investigates the performance of various types of carbon membranes in reverse osmosis systems aimed at reducing salinity, nitrates, phosphates, and ammonia in aquaculture wastewater. As sustainable aquaculture practices become increasingly essential, effective treatment solutions are needed to mitigate pollution from nutrient-rich effluents. The research highlights several carbon membranes types, including carbon molecular sieves, activated carbon membranes, carbon nanotube membranes, and graphene oxide membranes, all of which demonstrate exceptional filtration capabilities due to their unique structural properties. Findings reveal that these carbon membranes can achieve removal efficiencies exceeding 90 % for critical pollutants, thereby significantly improving water quality and supporting environmental sustainability. The study also explores the development of hybrid membranes and nanocomposites, which enhance performance by combining the strengths of different materials, allowing for customized solutions tailored to the specific requirements of aquaculture wastewater treatment. Additionally, operational parameters such as pH, temperature, and feed water characteristics are crucial for maximizing membrane efficiency. The integration of real-time monitoring technologies is proposed to enable prompt adjustments to treatment processes, thereby improving system performance and reliability. Overall, this research emphasizes the importance of interdisciplinary collaboration among researchers and industry stakeholders to drive innovation in advanced filtration technologies. The findings underscore the substantial potential of carbon membranes in tackling the pressing water quality challenges faced by the aquaculture sector, ultimately contributing to the sustainability of aquatic ecosystems and ensuring compliance with environmental standards for future generations.

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优化反渗透系统中的碳膜性能,降低水产养殖废水中的盐度、硝酸盐、磷酸盐和氨氮含量
本研究考察了不同类型的碳膜在反渗透系统中的性能,旨在降低水产养殖废水中的盐度、硝酸盐、磷酸盐和氨。随着可持续水产养殖做法变得越来越重要,需要有效的处理解决方案来减轻富含营养的废水的污染。该研究强调了几种碳膜类型,包括碳分子筛、活性炭膜、碳纳米管膜和氧化石墨烯膜,由于其独特的结构特性,它们都表现出卓越的过滤能力。研究结果表明,这些碳膜对关键污染物的去除效率超过90%,从而显著改善水质并支持环境可持续性。该研究还探索了混合膜和纳米复合材料的开发,通过结合不同材料的优势来提高性能,从而为水产养殖废水处理的特定要求提供定制解决方案。此外,pH值、温度和给水特性等操作参数对于最大限度地提高膜效率至关重要。建议整合实时监测技术,及时调整处理工艺,从而提高系统性能和可靠性。总的来说,这项研究强调了研究人员和行业利益相关者之间跨学科合作的重要性,以推动先进过滤技术的创新。研究结果强调了碳膜在解决水产养殖部门面临的紧迫水质挑战方面的巨大潜力,最终有助于水生生态系统的可持续性,并确保子孙后代遵守环境标准。
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来源期刊
Chemosphere
Chemosphere 环境科学-环境科学
CiteScore
15.80
自引率
8.00%
发文量
4975
审稿时长
3.4 months
期刊介绍: Chemosphere, being an international multidisciplinary journal, is dedicated to publishing original communications and review articles on chemicals in the environment. The scope covers a wide range of topics, including the identification, quantification, behavior, fate, toxicology, treatment, and remediation of chemicals in the bio-, hydro-, litho-, and atmosphere, ensuring the broad dissemination of research in this field.
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