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Investigations of Fine Biomachining of Metals by using Microbially Influenced Corrosion

机译:使用微生物影响腐蚀来研究金属细菌的研究

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In order to use microbially influenced corrosion for the fine biomachining of metals, culture conditions of bacteria and differences between mild steel and copper in the metal biomachining through Tiobacillus Ferrooxidans of a kind of iron oxidizing bacteria have been investigated in three types of environment of 9 K medium, the bacteria-cultured solution, and the cultured and sterilized solution. The results were summarized as follows. To culture bacteria in 9 K medium of PH 2.5 gave the maximum amounts of the cell with the minimum culture time. However the maximum amount of bacteria cells became 20 percent less in pH 3.0 medium than in pH 2.5 one and so the former seemed to be suitable for biomachining test of metals from the point of view of reproduction of culture. Losses in mass of SS 400 by biomachining in 9 K medium with cultured solution were larger than those of copper. Differences in loss in mass between SS 400 and copper were not clear in the solution cultured and sterilized. Losses in mass of SS 400 and copper by biomachining in the cultured solution were respectively about 30 mm/y and 6 mm/y of dissolution in thickness as the dissolved amount was converted into thickness. The surface of SS 400 by biomachining was in rough compared with copper's in 9 K medium and the cultured solution, that is the surface roughness of SS 400 was about 30 #mu#m whilst one of copper was about 3 #mu#m. There is no difference in the roughness between SS 400 and copper in the cultured and sterilized solution. Both SS 400 and copper took a general attack in corrosion. But pitting was observed on the surface microstructures of SS 400 in 9 K medium and the cultured solution. The crystallographic dissolution with step also was observed in grains through high magnification. In the cultured and sterilized solution, a few dispersed attacks were observed as if the surface was covered with films. In all solutions, copper took general corrosion. The biomachined surface of copper with the very fine structures was differed apparently from that of SS 400. On the copper surface, neither crystallographic attacks with step nor localized pitting were observed.
机译:为了使用微血管对金属的细微生物加工的腐蚀,通过Tiobacillus的铁氧化物在金属生物机中的细菌和铜之间的培养条件,通过Tiobacillus的氧化氧化细菌的三种环境,为9 k的三种环境进行了研究培养基,细菌培养溶液,以及培养和灭菌的溶液。结果总结如下。培养细菌在pH 2.5的9K培养基中,给出了最大培养时间的最大电池量。然而,在pH 3.0培养基中,细菌细胞的最大量比pH 2.5在pH 3.0培养基中较小,因此前者似乎适用于从培养的繁殖的角度来看金属的生物切割试验。通过培养溶液9K培养基中通过生物机的SS 400质量损失大于铜。 SS 400与铜之间的质量损失差异在培养和灭菌的溶液中尚不清楚。通过培养的溶液中的生物机质量的SS 400和铜的损失分别为约30mm /张厚度,厚度为6mm /毫米,随着溶解量转化为厚度。通过生物夹紧的SS 400的表面与铜中的9K中等和培养的溶液相比,SS 400的表面粗糙度为约30#mu #m,而铜的一部分约为3#mu#m。 SS 400与培养和灭菌溶液中的铜之间的粗糙度没有差异。 SS 400和铜均采用腐蚀的一般攻击。但是在9K培养基和培养溶液中的SS 400的表面微观结构上观察到蚀。通过高倍率在晶粒中观察到步骤的晶体溶解。在培养和灭菌的溶液中,观察到一些分散的攻击,好像表面被薄膜覆盖。在所有解决方案中,铜都会腐蚀。具有非常精细结构的铜的生物机表面显然是从SS 400的那些不同的。在铜表面上,观察到跨越步长的晶体攻击,也不被观察到局部斑点。

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