Monitoring polythionate bio-oxidation by conductivity measurement

被引:2
|
作者
Montes-Rosua, Cristina [1 ]
Iglesias-Gonzalez, Nieves [1 ]
Romero, Rafael [2 ]
Mazuelos, Alfonso [1 ]
Carranza, Francisco [1 ]
机构
[1] Univ Seville, Dept Chem Engn, E-41012 Seville, Spain
[2] Univ Seville, Languages & Comp Syst Dept, Seville, Spain
关键词
Polythionates; Bio-oxidation; Analysis; Monitoring cultures; Bioreactor control; THIOSULFATE; TETRATHIONATE; TRITHIONATE; PH;
D O I
10.1016/j.mineng.2016.06.008
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Polythionates are formed by the incomplete oxidation of sulphide minerals in the grinding and flotation circuits, and particularly of those containing pyrite. Polythionate levels in the recycling water must be adjusted; otherwise, it can affect metal recoveries. The presence of different species, such as thiosulphate, trithionate, and tetrathionate in certain effluents can affect the environment. In this paper, an indirect method based on conductivity measurement for monitoring polythionate bio-oxidation is proposed. Firstly, the conductivity of acidic solutions containing polythionates is verified as the sum of the conductivities corresponding to acid and tetrathionate and, therefore, in synthetic solutions, polythionate concentrations can be estimated by simply measuring conductivity. In process water and cultures with background conductivity, polythionate concentrations are predicted from the linear relationship between polythionate concentration and the total conductivity of the system. Once the slope of the linear relationship is known, polythionate concentrations can be estimated, and therefore it is necessary to perform only chemical analysis at the beginning and at an intermediate point. The degradation of polythionates can be continuously recorded, and hence the kinetic study of a culture can be more easily and accurately performed. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:40 / 47
页数:8
相关论文
共 50 条
  • [31] Bio-oxidation of pyrite, chalcopyrite and pyrrhotite by Acidithiobacillus ferrooxidans
    Jiang Lei
    Zhou HuaiYang
    Peng XiaoTong
    CHINESE SCIENCE BULLETIN, 2007, 52 (19): : 2702 - 2714
  • [32] Role of hydrolyzed rice husk in pyrite bio-oxidation
    Yang, Hongying
    Li, Jiafeng
    Tong, Linlin
    Ma, Pengcheng
    Zhang, Qin
    Jin, Zhenan
    GEOCHEMISTRY, 2021, 81 (04):
  • [33] Influence of poisonous gases on the bio-oxidation of coalmine gas
    Yu, H. X.
    Min, H.
    Lv, Z. M.
    Liu, J.
    INTERNATIONAL JOURNAL OF MINING RECLAMATION AND ENVIRONMENT, 2009, 23 (02) : 121 - 131
  • [34] Bio-oxidation as a viable method for SOx emission control
    Gangli, P
    Kozinski, JA
    Xu, Z
    Brienne, SHR
    CIM BULLETIN, 1998, 91 (1016): : 86 - 89
  • [35] Review on the Bio-oxidation of Pyrite: Implications for the Mining Industry
    Lv, Xin
    Zhao, Hongbo
    Zhang, Yanjun
    Zhang, Yisheng
    Meng, Xiaoyu
    Wang, Jun
    Qiu, Guanzhou
    TMS 2020 149TH ANNUAL MEETING & EXHIBITION SUPPLEMENTAL PROCEEDINGS, 2020, : 1309 - 1314
  • [36] Bio-oxidation of tripropylene glycol under aerobic conditions
    Agnieszka Zgoła-Grześkowiak
    Tomasz Grześkowiak
    Joanna Zembrzuska
    Magdalena Frańska
    Rafał Frański
    Zenon Łukaszewski
    Biodegradation, 2008, 19 : 365 - 373
  • [37] Bio-oxidation of pyrite,chalcopyrite and pyrrhotite by Acidithiobacillus ferrooxidans
    JIANG Lei1
    2 Graduate University of Chinese Academy of Sciences
    ChineseScienceBulletin, 2007, (19) : 2702 - 2714
  • [38] BIO-OXIDATION OF PULP-MILL WASTES IN SWEDEN
    RENNERFELT, J
    INTERNATIONAL JOURNAL OF AIR AND WATER POLLUTION, 1961, 5 (2-4): : 327 - 330
  • [40] Aerobic bio-oxidation with ozonation for recalcitrant wastewater treatment
    Kamenev, Inna
    Viiroja, Andres
    Kallas, Juha
    JOURNAL OF ADVANCED OXIDATION TECHNOLOGIES, 2008, 11 (02) : 338 - 347