Literature DB >> 16417202

Biofouling and biocorrosion in industrial water systems.

S E Coetser1, T E Cloete.   

Abstract

Corrosion associated with microorganisms has been recognized for over 50 years and yet the study of microbiologically influenced corrosion (MIC) is relatively new. MIC can occur in diverse environments and is not limited to aqueous corrosion under submerged conditions, but also takes place in humid atmospheres. Biofouling of industrial water systems is the phenomenon whereby surfaces in contact with water are colonized by microorganisms, which are ubiquitous in our environment. However, the economic implications of biofouling in industrial water systems are much greater than many people realize. In a survey conducted by the National Association of Corrosion Engineers of the United States ten years ago, it was found that many corrosion engineer did not accept the role of bacteria in corrosion, and many of then that did, could not recognize and mitigate the problem. Biofouling can be described in terms of its effects on processes and products such as material degradation (bio-corossion), product contamination, mechanical blockages, and impedance of heat transfer. Microorganisms distinguish themselves from other industrial water contaminants by their ability to utilize available nutrient sources, reproduce, and generate intra- and extracellular organic and inorganic substances in water. A sound understanding of the molecular and physiological activities of the microorganisms involved is necessary before strategies for the long term control of biofouling can be format. Traditional water treatment strategies however, have largely failed to address those factors that promote biofouling activities and lead to biocorrosion. Some of the major developments in recent years have been a redefinition of biofilm architecture and the realization that MIC of metals can be best understood as biomineralization.

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Year:  2005        PMID: 16417202     DOI: 10.1080/10408410500304074

Source DB:  PubMed          Journal:  Crit Rev Microbiol        ISSN: 1040-841X            Impact factor:   7.624


  39 in total

1.  New device for high-throughput viability screening of flow biofilms.

Authors:  Michael R Benoit; Carolyn G Conant; Cristian Ionescu-Zanetti; Michael Schwartz; A Matin
Journal:  Appl Environ Microbiol       Date:  2010-04-30       Impact factor: 4.792

2.  Role of thermophilic bacteria (Bacillus and Geobacillus) on crude oil degradation and biocorrosion in oil reservoir environment.

Authors:  Punniyakotti Elumalai; Punniyakotti Parthipan; Jayaraman Narenkumar; Balakrishnan Anandakumar; Jagannathan Madhavan; Byung-Taek Oh; Aruliah Rajasekar
Journal:  3 Biotech       Date:  2019-02-12       Impact factor: 2.406

3.  Inactivation of efflux pumps abolishes bacterial biofilm formation.

Authors:  Malin Kvist; Viktoria Hancock; Per Klemm
Journal:  Appl Environ Microbiol       Date:  2008-10-03       Impact factor: 4.792

4.  Identification of a novel benzimidazole that inhibits bacterial biofilm formation in a broad-spectrum manner.

Authors:  Karthik Sambanthamoorthy; Ankush A Gokhale; Weiwei Lao; Vijay Parashar; Matthew B Neiditch; Martin F Semmelhack; Ilsoon Lee; Christopher M Waters
Journal:  Antimicrob Agents Chemother       Date:  2011-06-27       Impact factor: 5.191

5.  Analysis of Bacterial Community Composition of Corroded Steel Immersed in Sanya and Xiamen Seawaters in China via Method of Illumina MiSeq Sequencing.

Authors:  Xiaohong Li; Jizhou Duan; Hui Xiao; Yongqian Li; Haixia Liu; Fang Guan; Xiaofan Zhai
Journal:  Front Microbiol       Date:  2017-09-12       Impact factor: 5.640

6.  Thermal effects on microbial composition and microbiologically induced corrosion and mineral precipitation affecting operation of a geothermal plant in a deep saline aquifer.

Authors:  Stephanie Lerm; Anke Westphal; Rona Miethling-Graff; Mashal Alawi; Andrea Seibt; Markus Wolfgramm; Hilke Würdemann
Journal:  Extremophiles       Date:  2013-01-29       Impact factor: 2.395

7.  Microbially Influenced Corrosion of Stainless Steel by Acidithiobacillus ferrooxidans Supplemented with Pyrite: Importance of Thiosulfate.

Authors:  Yuta Inaba; Shirley Xu; Jonathan T Vardner; Alan C West; Scott Banta
Journal:  Appl Environ Microbiol       Date:  2019-10-16       Impact factor: 4.792

Review 8.  How sulphate-reducing microorganisms cope with stress: lessons from systems biology.

Authors:  Jizhong Zhou; Qiang He; Christopher L Hemme; Aindrila Mukhopadhyay; Kristina Hillesland; Aifen Zhou; Zhili He; Joy D Van Nostrand; Terry C Hazen; David A Stahl; Judy D Wall; Adam P Arkin
Journal:  Nat Rev Microbiol       Date:  2011-05-16       Impact factor: 60.633

9.  Corrosion of iron by iodide-oxidizing bacteria isolated from brine in an iodine production facility.

Authors:  Satoshi Wakai; Kimio Ito; Takao Iino; Yasuyoshi Tomoe; Koji Mori; Shigeaki Harayama
Journal:  Microb Ecol       Date:  2014-05-27       Impact factor: 4.552

10.  Surface-mediated release of a small-molecule modulator of bacterial biofilm formation: a non-bactericidal approach to inhibiting biofilm formation in Pseudomonas aeruginosa.

Authors:  Adam H Broderick; Anthony S Breitbach; Reto Frei; Helen E Blackwell; David M Lynn
Journal:  Adv Healthc Mater       Date:  2013-01-20       Impact factor: 9.933

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