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Methanogens predominate in natural corrosion protective layers on metal sheet piles.

机译:在金属薄板桩的天然防腐蚀层中,产甲烷菌占主导地位。

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摘要

Microorganisms are able to cause, but also to inhibit or protect against corrosion. Corrosion inhibition by microbial processes may be due to the formation of mineral deposition layers on metal objects. Such deposition layers have been found in archaeological studies on ancient metal objects, buried in soil, which were hardly corroded. Recent field investigations showed that natural mineral deposition layers can be found on sheet piles in soil. We investigated the microbial communities of these deposition layers and the adjacent soil. Our data, from five different sampling sites, all show striking differences between microbial communities of the deposition layer versus the adjacent soil over the depth profile. Bacterial species dominated in top soil while archaeal sequences increased in abundance with depth. All mineral deposition layers from the steel surface were dominated by Euryarchaeota, of which almost all sequences were phylogenetically related with the Methanobacteria genus. The mineral layer consisted of carbonate precipitates. Based on 16S rDNA gene sequencing data we hypothesize that the methanogens directly extract electrons from the metal surface, thereby, initially inducing mild corrosion, but simultaneously, inducing carbonate precipitation. This, will cause encrustation of the archaea, which drastically slow down their activity and create a natural protective layer against further corrosion.
机译:微生物能够引起但也可以抑制或防止腐蚀。微生物过程对腐蚀的抑制作用可能是由于在金属物体上形成了矿物沉积层所致。这样的沉积层已经在考古研究中发现,这些古金属物体被埋在土壤中,几乎没有被腐蚀。最近的野外调查表明,在土壤中的板桩上可以发现天然矿物沉积层。我们调查了这些沉积层和邻近土壤的微生物群落。我们从五个不同采样点获得的数据都显示出沉积层微生物群落与邻近土壤在深度剖面上的显着差异。细菌种类在表层土壤中占优势,而古细菌序列随深度增加。来自钢表面的所有矿物沉积层均以Euryarchaeota为主,其中几乎所有序列都与Methanobacteria属在系统发育上相关。矿物层由碳酸盐沉淀组成。基于16S rDNA基因测序数据,我们假设产甲烷菌直接从金属表面提取电子,从而最初引起轻微的腐蚀,但同时引起碳酸盐沉淀。这将引起古细菌的结垢,从而大大减慢其活性并形成天然的保护层以防止进一步的腐蚀。

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