Denitrifying Woodchip Bioreactors: A Microbial Solution for Nitrate in Agricultural Wastewater-A Review.

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
ACS Applied Electronic Materials Pub Date : 2023-09-01 Epub Date: 2023-08-18 DOI:10.1007/s12275-023-00067-z
Sua Lee, Min Cho, Michael J Sadowsky, Jeonghwan Jang
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Abstract

Nitrate (NO3-) is highly water-soluble and considered to be the main nitrogen pollutants leached from agricultural soils. Its presence in aquatic ecosystems is reported to cause various environmental and public health problems. Bioreactors containing microbes capable of transforming NO3- have been proposed as a means to remediate contaminated waters. Woodchip bioreactors (WBRs) are continuous flow, reactor systems located below or above ground. Below ground systems are comprised of a trench filled with woodchips, or other support matrices. The nitrate present in agricultural drainage wastewater passing through the bioreactor is converted to harmless dinitrogen gas (N2) via the action of several bacteria species. The WBR has been suggested as one of the most cost-effective NO3--removing strategy among several edge-of-field practices, and has been shown to successfully remove NO3- in several field studies. NO3- removal in the WBR primarily occurs via the activity of denitrifying microorganisms via enzymatic reactions sequentially reducing NO3- to N2. While previous woodchip bioreactor studies have focused extensively on its engineering and hydrological aspects, relatively fewer studies have dealt with the microorganisms playing key roles in the technology. This review discusses NO3- pollution cases originating from intensive farming practices and N-cycling microbial metabolisms which is one biological solution to remove NO3- from agricultural wastewater. Moreover, here we review the current knowledge on the physicochemical and operational factors affecting microbial metabolisms resulting in removal of NO3- in WBR, and perspectives to enhance WBR performance in the future.

Abstract Image

反硝化木屑生物反应器:一种处理农业废水中硝酸盐的微生物解决方案
硝酸盐(NO3-)具有很高的水溶性,被认为是农业土壤中主要的氮污染物。据报道,它在水生生态系统中的存在会造成各种环境和公共卫生问题。含有能够转化NO3-的微生物的生物反应器已被提议作为修复污染水域的一种手段。木片生物反应器(WBR)是位于地下或地上的连续流动反应器系统。地下系统由填充木屑或其他支撑基质的沟渠组成。通过生物反应器的农业排水中存在的硝酸盐通过几种细菌的作用转化为无害的二氮气体(N2)。WBR被认为是几种现场边缘实践中最具成本效益的NO3-去除策略之一,并在几项现场研究中被证明可以成功去除NO3-。WBR中的NO3-去除主要通过反硝化微生物的活性进行,反硝化微生物通过酶促反应将NO3-依次还原为N2。虽然之前的木片生物反应器研究广泛关注其工程和水文方面,但涉及在该技术中发挥关键作用的微生物的研究相对较少。这篇综述讨论了由集约农业实践和氮循环微生物代谢引起的NO3-污染案例,氮循环微生物新陈代谢是从农业废水中去除NO3-的一种生物解决方案。此外,在这里,我们回顾了影响WBR中NO3-去除的微生物代谢的物理化学和操作因素的最新知识,以及未来提高WBR性能的前景。
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
CiteScore
7.20
自引率
4.30%
发文量
567
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