从水和废水中生物除铁和回收。

4区 工程技术 Q2 Biochemistry, Genetics and Molecular Biology
Anna Henriikka Kaksonen, Eberhard Janneck
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引用次数: 0

摘要

铁是原水和废水中常见的污染物。特别是采矿业和冶金业,会产生和排放大量含铁量高的废水。由于铁对生物和基础设施的有害影响,因此需要从水和废水中去除铁的高效技术。另一方面,铁也是一种应用广泛的宝贵商品。微生物可通过好氧和厌氧过程促进铁的去除和回收。最常用的微生物包括铁氧化剂和硫酸盐还原剂,前者可促进铁沉淀为jarosite、schwertmannite、ferrihydrite、goethite和scorodite,后者可产生硫化氢,使铁沉淀为硫化物。生物除铁已在各种悬浮细胞和生物膜生物反应器中进行了探索,这些生物反应器可并联或串联配置,并与沉淀和沉降装置集成,以形成有效的流程表。本章将介绍生物除铁和回收的原理、相关微生物、反应器类型、专利、实验室和中试规模研究实例以及该技术的全面实施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biological Iron Removal and Recovery from Water and Wastewater.

Iron is a common contaminant in source water and wastewater. The mining and metallurgical industries in particular can produce and discharge large quantities of wastewater with high iron concentrations. Due to the harmful effects of iron on organisms and infrastructure, efficient technologies for iron removal from water and wastewater are needed. On the other hand, iron is a valuable commodity for a wide range of applications. Microorganisms can facilitate iron removal and recovery through aerobic and anaerobic processes. The most commonly utilized microbes include iron oxidizers that facilitate iron precipitation as jarosites, schwertmannite, ferrihydrite, goethite, and scorodite, and sulfate reducers which produce hydrogen sulfide that precipitates iron as sulfides. Biological iron removal has been explored in various suspended cell and biofilm-based bioreactors that can be configured in parallel or series and integrated with precipitation and settling units for an effective flow sheet. This chapter reviews principles for biological iron removal and recovery, the microorganisms involved, reactor types, patents and examples of laboratory- and pilot-scale studies, and full-scale implementations of the technology.

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来源期刊
Advances in biochemical engineering/biotechnology
Advances in biochemical engineering/biotechnology 工程技术-生物工程与应用微生物
CiteScore
5.70
自引率
0.00%
发文量
29
期刊介绍: Advances in Biochemical Engineering/Biotechnology reviews actual trends in modern biotechnology. Its aim is to cover all aspects of this interdisciplinary technology where knowledge, methods and expertise are required for chemistry, biochemistry, microbiology, genetics, chemical engineering and computer science. Special volumes are dedicated to selected topics which focus on new biotechnological products and new processes for their synthesis and purification. They give the state-of-the-art of a topic in a comprehensive way thus being a valuable source for the next 3 - 5 years. It also discusses new discoveries and applications.
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