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在工业水系统中溴硝醇对腐蚀性细菌群落的控制

Control of corrosive bacterial community by bronopol in industrial water system.

作者信息

Narenkumar Jayaraman, Ramesh Nachimuthu, Rajasekar Aruliah

机构信息

1Environmental Molecular Microbiology Research Laboratory, Department of Biotechnology, Thiruvalluvar University, Serkkadu, Vellore, Tamilnadu 632115 India.

2School of Bio Sciences and Technology, VIT University, Vellore, Tamilnadu 632 014 India.

出版信息

3 Biotech. 2018 Jan;8(1):55. doi: 10.1007/s13205-017-1071-4. Epub 2018 Jan 5.

Abstract

ABSTRACT

Ten aerobic corrosive bacterial strains were isolated from a cooling tower water system (CWS) which were identified based on the biochemical characterization and 16S rRNA gene sequencing. Out of them, dominant corrosion-causing bacteria, namely, EN2, EN3, and EN9, were selected for biocorrosion studies on mild steel 1010 (MS) in a CWS. The biocorrosion behaviour of EN2, EN3, and EN9 strains was studied using immersion test (weight loss method), electrochemical analysis, and surface analysis. To address the corrosion problems, an anti-corrosive study using a biocide, bronopol was also demonstrated. Scanning electron microscopy and Fourier-transform infrared spectroscopy analyses of the MS coupons with biofilm developed after exposure to CWS confirmed the accumulation of extracellular polymeric substances and revealed that biofilms was formed as microcolonies, which subsequently cause pitting corrosion. In contrast, the biocide system, no pitting type of corrosion, was observed and weight loss was reduced about 32 ± 2 mg over biotic system (286 ± 2 mg). FTIR results confirmed the adsorption of bronopol on the MS metal surface as protective layer (co-ordination of NH-Fe) to prevent the biofilm formation and inhibit the corrosive chemical compounds and thus led to reduction of corrosion rate (10 ± 1 mm/year). Overall, the results from WL, EIS, SEM, XRD, and FTIR concluded that bronopol was identified as effective biocide and corrosion inhibitor which controls the both chemical and biocorrosion of MS in CWS.

摘要

摘要

从一个冷却塔水系统(CWS)中分离出10株需氧腐蚀性细菌菌株,通过生化特性和16S rRNA基因测序对其进行鉴定。其中,选择了主要的致腐蚀细菌EN2、EN3和EN9,用于在CWS中对低碳钢1010(MS)进行生物腐蚀研究。采用浸泡试验(失重法)、电化学分析和表面分析等方法研究了EN2、EN3和EN9菌株的生物腐蚀行为。为了解决腐蚀问题,还展示了使用杀菌剂溴硝醇进行的防腐研究。对暴露于CWS后形成生物膜的MS试片进行扫描电子显微镜和傅里叶变换红外光谱分析,证实了细胞外聚合物的积累,并表明生物膜以微菌落的形式形成,随后导致点蚀。相比之下,在杀菌剂体系中未观察到点蚀类型的腐蚀,与生物体系(286±2mg)相比,失重减少了约32±2mg。傅里叶变换红外光谱结果证实溴硝醇吸附在MS金属表面形成保护层(NH-Fe配位),以防止生物膜形成并抑制腐蚀性化合物,从而降低腐蚀速率(10±1mm/年)。总体而言,失重法、电化学阻抗谱、扫描电子显微镜、X射线衍射和傅里叶变换红外光谱的结果表明,溴硝醇被确定为有效的杀菌剂和缓蚀剂,可控制CWS中MS的化学腐蚀和生物腐蚀。

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