Biosolubilization of low-grade rock phosphate by mixed thermophilic iron-oxidizing bacteria

C. Xiao, Guang Xu, Qi Wang, R. Chi
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引用次数: 2

Abstract

Abstract A bacterial culture, which was mixed by three thermophilic iron-oxidizing bacteria, namely Sulfobacillus thermosulfidooxidans, Leptospirillum ferriphilum and Acidithiobacillus caldus, was used to solubilize low grade rock phosphate (RP) in 9K basal salts medium containing pyrite as an energy substrate. Culture of a single mesophilic iron-oxidizing bacterium Acidithiobacillus ferrooxidans was used as control. Experimental results show that the phosphate solubilizing capacity of the mixed thermophilic iron-oxidizing bacteria was more effective than that of the single bacterium, and such positive effect was mainly attributed to the bioaugmentation of pyrite oxidation with coinoculation of these thermophilic iron-oxidizing bacteria. Results also show that the biosolubilization of low-grade RP by the mixed thermophilic iron-oxidizing bacteria was influenced markedly by environmental conditions. The highest phosphate releasing rate was achieved at 45-50°C. The rate of phosphate released was highest when the pH was at range from 2.0 to 2.5. The increase in pulp density generates a decrease in the phosphate releasing rate, if the pulp density exceeded 3% w/v. The culture led to the highest phosphate releasing rate when the mass ratio of pyrite to RP was at 2:1 or 3:1. However, volume ratio between thermophilic iron-oxidizing bacteria had no significant effect on the rate of phosphate released.
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混合嗜热铁氧化细菌对低品位磷矿的生物增溶作用
摘要以3种嗜热氧化铁细菌(即热硫氧化铁硫杆菌、嗜铁钩螺旋菌和嗜酸硫杆菌)为培养物,在含黄铁矿的9K基盐培养基中进行低品位磷矿(RP)的溶出实验。以一种嗜酸性氧化亚铁硫杆菌的培养为对照。实验结果表明,混合嗜热铁氧化菌的增磷能力比单一嗜热铁氧化菌的增磷能力更强,这种积极作用主要是由于这些嗜热铁氧化菌共接种对黄铁矿氧化有生物增强作用。结果还表明,混合嗜热铁氧化菌对低品位RP的生物增溶作用受环境条件的显著影响。在45-50°C时,磷酸盐释放率最高。pH在2.0 ~ 2.5范围内,磷酸盐的释放速率最高。当矿浆密度超过3% w/v时,随着矿浆密度的增加,磷素释放速率降低。当黄铁矿与RP的质量比为2:1或3:1时,培养的磷酸盐释放率最高。而嗜热铁氧化菌间的体积比对磷酸盐的释放速率无显著影响。
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CiteScore
0.88
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审稿时长
1 months
期刊介绍: The Journal of advanced oxidation technologies (AOTs) has been providing an international forum that accepts papers describing basic research and practical applications of these technologies. The Journal has been publishing articles in the form of critical reviews and research papers focused on the science and engineering of AOTs for water, air and soil treatment. Due to the enormous progress in the applications of various chemical and bio-oxidation and reduction processes, the scope of the Journal is now expanded to include submission in these areas so that high quality submission from industry would also be considered for publication. Specifically, the Journal is soliciting submission in the following areas (alphabetical order): -Advanced Oxidation Nanotechnologies -Bio-Oxidation and Reduction Processes -Catalytic Oxidation -Chemical Oxidation and Reduction Processes -Electrochemical Oxidation -Electrohydraulic Discharge, Cavitation & Sonolysis -Electron Beam & Gamma Irradiation -New Photocatalytic Materials and processes -Non-Thermal Plasma -Ozone-based AOTs -Photochemical Degradation Processes -Sub- and Supercritical Water Oxidation -TiO2 Photocatalytic Redox Processes -UV- and Solar Light-based AOTs -Water-Energy (and Food) Nexus of AOTs
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