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1.
氧化亚铁硫杆菌对黄铜矿的生物氧化研究 总被引:1,自引:0,他引:1
针对矿区硫化矿氧化产生的酸性矿山废水(AMD)对生态环境造成严重影响的问题,以矿区常见的黄铜矿(CuFeS2)为研究对象,采用已筛选的氧化亚铁硫杆菌(Acidithiobacillus ferrooxidans,简称A.f菌)为实验菌株,探讨在A.f菌作用下黄铜矿的氧化过程。实验结果表明,A.f菌可显著促进黄铜矿的氧化,第18天有菌体系中的铜离子浓度是无菌体系中的5倍;同时细菌可促进溶液中Fe2+氧化为Fe3+,使氧化还原电位升高,从而对黄铜矿保持较高的氧化速率,并导致体系的pH值降低;还发现黄铜矿的氧化过程中可形成中间产物方黄铜矿(CuFe2S3),而细菌氧化还可产生硫磷化钴(CoPS),中间产物的形成并没有明显延缓黄铜矿的氧化速率;生物氧化可造成矿样表面侵蚀多坑,可能是细菌对黄铜矿的直接氧化作用造成的。由于黄铜矿的生物氧化明显控制其氧化进程,抑制黄铜矿的生物氧化对酸性矿山废水的源头治理具有十分重要的意义。 相似文献
2.
以海藻酸钠(SA)为包埋载体,对氧化硫硫杆菌(Acidithiobacillus thiooxidans)进行固定化制备菌球,优化菌球制备条件,在生物滤塔内验证其对H2S的去除能力.以前期驯化获得的富含硫系恶臭降解微生物菌群的污泥为菌源进行生物滤塔填料筛选,耦合A.thiooxidans菌球和填料进行生物除臭.结果表明,优选的固定化条件为:SA浓度3.0%、吸附剂CNT、A.thiooxidans菌悬液与混合液比例20%、CaCl2浓度4.0%、改性剂己二胺溶液,获得的菌球机械强度、传质性能、硫氧化能力最好.将A.thiooxidans菌球填装于生物滤塔,H2S最大去除率和去除能力为70%和1.06g H2S/m3·h.以混合挂膜方式进行填料挂膜后,在聚氨酯泡沫、活性碳布和陶粒中优选出最佳填料活性碳布,获得H2S最大去除率和去除能力为88%和0.84g H2S/m3·h.以混合填装方式将A.thiooxidans菌球与活性碳布填装于生物滤塔,获得H2S最大去除率和去除能力为86%和1.00g H2S/m3·h. 相似文献
3.
研究嗜酸性氧化亚铁硫杆菌(Acidithiobacillus ferrooxidans,A.f)对铅锌硫化矿尾矿重金属离子的生物浸出和重金属形态变化有助于了解生物浸出作用的过程变化.通过考察生物浸出体系中不同的矿浆浓度对pH值和浸出尾矿重金属的影响,探究生物浸出过程的重金属形态变化情况.结果表明,生物浸出作用对pH值和尾矿重金属的浸出影响巨大,随着矿浆浓度的增加,pH值下降速率呈现先升高后降低、重金属浸出率也呈现先增加后降低的趋势,最佳的生物浸出矿浆浓度为50 g·L~(-1),Fe和Zn的最佳浸出率分别为85.45%和97.85%.重金属形态分析表明,生物浸出作用对尾矿重金属形态变化产生巨大的影响,随着浸出时间的延长,重金属形态逐渐改变,首先易迁移的重金属被生物浸出,然后稳定的重金属也逐渐被生物浸出. 相似文献
4.
对净化废气中SO2的生物膜填料塔内的微生物进行了分离纯化并做鉴定,得到一株嗜酸性氧化硫硫杆菌(Acidithiobacillus thiooxidans IEL001)和一株分类地位非常接近链二孢属(Bispora sp.)的极端嗜酸真菌IEL002,生物膜填料塔内的极端酸性环境和有机营养的缺乏导致生物膜上的微生物种类较为单一,多样性程度不高。本研究还发现IEL002自身并不能氧化单质硫,但它能促进Acidithiobacillus thiooxidans IEL001对单质硫的氧化。 相似文献
5.
尽管石墨烯以其独特的光学、电学、力学特性在各大领域都具有广阔的应用前景,但其工业化使用后在环境当中的行为,特别是遗留下的石墨烯对生态系统的毒性研究则鲜见报道.因此,本文以嗜酸性氧化亚铁硫杆菌(Acidithiobacillus ferrooxidans)为目标微生物,探讨不同浓度(1、10、50 mg·L-1)石墨烯对Acidithiobacillus ferrooxidans的毒性效应.结果表明,石墨烯对Acidithiobacillus ferrooxidans的生长有明显抑制作用,且抑制作用随着石墨烯浓度的降低而增强.在石墨烯投加量为1 mg·L-1时,培养48 h后菌株的生长量OD420达到最大值0.045,低于空白组的0.163;并且其可溶性蛋白含量也达到最大值1.546 mg·L-1,低于空白组的3.789 mg·L-1.不同浓度石墨烯对体系p H和ORP均存在不同程度的影响,低浓度下的石墨烯影响最为显著.此外,通过扫描电镜(SEM)和荧光显微镜分析,进一步证实Acidithiobacillus ferrooxidans能在高浓度的石墨烯上生长,而低浓度的石墨烯则会对细胞膜造成损伤,它极其尖锐的边缘是细菌失活的有效机制.因此,石墨烯的毒性具有剂量效应,这一结果可为石墨烯合理利用及评价其生态毒性提供理论依据. 相似文献
6.
Effect of sediment size on bioleaching of heavy metals from contaminated sediments of Izmir Inner Bay 总被引:7,自引:0,他引:7
The effect of sediment size on metals bioleaching from bay sediments was investigated by using fine (< 45 μm), medium (45-300 μm), and coarse (300-2000 μm) size fractions of a sediment sample contaminated with Cr, Cu, Pb, and Zn. Chemical speciation of the metals in bulk and size fractions of sediment were studied before and after bioleaching. Microbial activity was provided with mixed cultures of Acidithiobacillus thiooxidans and Acidithiobacillus ferrooxidans. The bioleaching process was carried out in flask experiments for 48 days, by using 5% (W/V) of solid concentration in suspension. Bioleaching was found to be efficient for the removal of selected heavy metals from every size fraction of sediments, where the experiments with the smaller particles resulted in the highest solubilization ratios. At the end of the experimental period, Cr, Cu, Pb and Zn were solubilized to the ratios of 68%, 88%, 72%, and 91% from the fine sediment, respectively. Higher removal efficiencies can be explained by the larger surface area provided by the smaller particles. The changes in the chemical forms of metals were determined and most of the metal releases were observed from the reducible and organic fractions independent from grain size. Higher concentrations were monitored in the residual fraction after bioleaching period, suggesting they are trapped in this fraction, and cannot be solubilized under natural conditions. 相似文献
7.
Schwertmannite, a ubiquitous mineral present in iron oxyhydroxides formed in iron- and sulfate-rich acid media, favors incorporation of some toxic anions in its structure. We reported an iron-oxidizing bacterial strain HX3 from a municipal sludge that facilitates the formation of pure schwertmannite in cultures. Ferrous iron oxidation by the isolated strain HX3 was optimum at an initial pH of 2.0-3.3 and temperature of 28-35°C. Pure schwertmannite was found through bacterial oxidation of ferrous iron at an initial pH 2.8and temperature 28°C. Following 16 S rDNA gene sequence analysis the bacterial strain HX3 was identified as Acidithiobacillus ferrooxidans. The arsenic-resistance A. ferrooxidans HX3 showed the potential of environmental application in arsenic removal from the As(Ⅲ)- and iron-rich acid sulfate waters directly by As(Ⅲ) adsorption or the formation of schwertmannite in the environment. 相似文献
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9.
Bioleaching from soil artificially contaminated with analogues of radionuclides, Co and Sr, was carried out using a Fe-oxidizing
bacterium, Acidithiobacillus ferrooxidans. Due to bacterial metabolism, the pH and dissolved Fe3+ concentration in a biotic slurry decreased and increased respectively, over time, but the concentrations of Co and Sr extracted
from the soil showed no significant enhancement compared with those under abiotic control. In both cases, Co and Sr were leached
from the soil during the initial period of the experiment, due to the initially low solution pH of 2.0, and the dissolved
concentrations remained almost constant for the duration of the experiment (300 h). Since oxidation of Fe2+ by A. ferrooxidans led to the production of Fe precipitates and colloidal suspensions, the Co and Sr extracted into solution were most likely
re-adsorbed onto the Fe solids. Also, A. ferrooxidans, without an external supply of Fe2+, extracted almost equal or greater amounts of Co and Sr from the soil than when Fe2+ was supplied. Under the same leaching conditions, the extent of Sr removal was much lower than that of Co. On the contrary
to the high efficiency of microbial metal leaching in biohydrometallurgy for low-graded sulfide ores, which has been widely
documented, conventional bioleaching techniques with A. ferrooxidans supplied with enough Fe2+ showed low efficiency for the removal of radionuclides loosely bound onto soil particle surfaces. 相似文献
10.
利用从高硫煤矸石堆场浸出液中培养驯化获得的氧化亚铁硫杆菌(Acidithiobacillus ferrooxidans,A.f),通过静态实验,探讨添加不同量的碳酸盐岩对酸性硫酸盐体系中Fe2+生物氧化速率及次生铁矿物合成的影响.结果表明:添加10 g和30 g碳酸盐岩不会对体系中pH、氧化还原电位(ORP)和Fe2+生物氧化速率产生明显影响,但总铁(TFe)的去除率可从37%分别提高到55%和62%,矿物生成量也从8.17 g·L-1分别增加到12.03 g·L-1和13.69 g·L-1;同时,体系中合成的次生铁矿物相与不加碳酸盐岩时无明显变化,主要为黄铁矾和施氏矿物的混合物.随着碳酸盐岩添加量增至50、70和90 g时,体系pH快速上升,Fe2+生物氧化速率受到抑制,并产生大量结晶程度较好的硫酸钙,形成的铁矿物主要为纤铁矿或针铁矿.而适量的碳酸盐岩添加可使体系中产生Ca2+和Mg2+,从而影响次生铁矿物的合成.因此,在以碳酸盐岩为反应介质的酸性矿山废水处理工艺设计中,可通过添加A.f菌并控制碳酸盐岩投加量,强化系统中Fe2+生物氧化及次生矿物的合成,从而进一步提高反应系统对TFe的去除效果. 相似文献