Review of recent advances in utilising aquaculture wastewater for algae cultivation and microalgae-based bioproduct recovery.

IF 3.2 3区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL Environmental Geochemistry and Health Pub Date : 2024-11-07 DOI:10.1007/s10653-024-02286-8
Abubakar Shitu, Musa Abubakar Tadda, Jian Zhao, Umar Abdulbaki Danhassan, Zhangying Ye, Dezhao Liu, Wei Chen, Songming Zhu
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Abstract

Aquaculture operations produce large amounts of wastewater contaminated with organic matter, nitrogenous compounds, and other emerging contaminants; when discharged into natural water bodies, it could result in ecological problems and severely threaten aquatic habitats and human health. However, using aquaculture wastewater in biorefinery systems is becoming increasingly crucial as advancements in valuable bioproduct production continue to improve economic feasibility. Research on utilising microalgae as an alternative to producing biomass and removing nutrients from aquaculture wastewater has been extensively studied over the past decades. Microalgae have the potential to use carbon dioxide (CO2) effectively and significantly reduce carbon footprint, and the harvested biomass can also be used as aquafeed. Furthermore, aquaculture wastewater enriched with phosphorus (P) is a potential resource for P recovery for the production of biofertiliser. This will reduce the P supply shortage and eliminate the environmental consequences of eutrophication. In this context, the present review aims to provide a comprehensive overview of the current state of the art in a generation, as well as the characteristics and environmental impact of aquaculture wastewater reported by the most recent research. Furthermore, the review synthesized recent developments in algal biomass cultivation using aquaculture wastewater and its utilisation as biorefinery feedstocks for producing value-added products, such as aquafeeds, bioethanol, biodiesel, biomethane, and bioenergy. This integrated process provides a sustainable method for recovering biomass and water, fully supporting the framework of a circular economy in aquaculture wastewater treatment via resource recovery.

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回顾利用水产养殖废水进行藻类培养和基于微藻的生物产品回收的最新进展。
水产养殖过程中会产生大量废水,这些废水受到有机物、含氮化合物和其他新污染物的污染;一旦排入自然水体,就会造成生态问题,严重威胁水生生境和人类健康。然而,随着有价值的生物产品生产技术不断进步,经济可行性不断提高,在生物精炼系统中使用水产养殖废水正变得越来越重要。过去几十年来,人们对利用微藻作为生产生物质和去除水产养殖废水中营养物质的替代品进行了广泛研究。微藻具有有效利用二氧化碳(CO2)和显著减少碳足迹的潜力,收获的生物质还可用作水产饲料。此外,富含磷(P)的水产养殖废水是一种潜在的磷回收资源,可用于生产生物肥料。这将减少磷供应短缺,消除富营养化对环境造成的后果。在此背景下,本综述旨在全面概述一代技术的现状,以及最新研究报告的水产养殖废水的特点和对环境的影响。此外,本综述还综述了利用水产养殖废水培养藻类生物质的最新进展,以及将其用作生物精炼原料生产高附加值产品(如水产饲料、生物乙醇、生物柴油、生物甲烷和生物能源)的最新进展。这种综合工艺提供了一种可持续的生物质和水回收方法,通过资源回收充分支持了水产养殖废水处理的循环经济框架。
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来源期刊
Environmental Geochemistry and Health
Environmental Geochemistry and Health 环境科学-工程:环境
CiteScore
8.00
自引率
4.80%
发文量
279
审稿时长
4.2 months
期刊介绍: Environmental Geochemistry and Health publishes original research papers and review papers across the broad field of environmental geochemistry. Environmental geochemistry and health establishes and explains links between the natural or disturbed chemical composition of the earth’s surface and the health of plants, animals and people. Beneficial elements regulate or promote enzymatic and hormonal activity whereas other elements may be toxic. Bedrock geochemistry controls the composition of soil and hence that of water and vegetation. Environmental issues, such as pollution, arising from the extraction and use of mineral resources, are discussed. The effects of contaminants introduced into the earth’s geochemical systems are examined. Geochemical surveys of soil, water and plants show how major and trace elements are distributed geographically. Associated epidemiological studies reveal the possibility of causal links between the natural or disturbed geochemical environment and disease. Experimental research illuminates the nature or consequences of natural or disturbed geochemical processes. The journal particularly welcomes novel research linking environmental geochemistry and health issues on such topics as: heavy metals (including mercury), persistent organic pollutants (POPs), and mixed chemicals emitted through human activities, such as uncontrolled recycling of electronic-waste; waste recycling; surface-atmospheric interaction processes (natural and anthropogenic emissions, vertical transport, deposition, and physical-chemical interaction) of gases and aerosols; phytoremediation/restoration of contaminated sites; food contamination and safety; environmental effects of medicines; effects and toxicity of mixed pollutants; speciation of heavy metals/metalloids; effects of mining; disturbed geochemistry from human behavior, natural or man-made hazards; particle and nanoparticle toxicology; risk and the vulnerability of populations, etc.
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