Chemistry and phase evolution during roasting of toxic thallium-bearing pyrite

被引:39
作者
Lopez-Arce, Paula [1 ]
Garcia-Guinea, Javier [1 ]
Garrido, Fernando [1 ]
机构
[1] CSIC, Museo Nacl Ciencias Nat, C Jose Gutierrez Abascal 2, Madrid 28026, Spain
关键词
Thallium; Tl-bearing pyrite; Roasting; Iron oxides wastes; Riotinto mine; Environmental pollution; TRACE-ELEMENTS; CEMENT PLANT; COAL; COMBUSTION; BEHAVIOR; METALS; ZN; PB; OXIDATION; MINERALS;
D O I
10.1016/j.chemosphere.2017.04.109
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In the frame of a research project on microscopic distribution and speciation of geogenic thallium (Tl) from contaminated mine soils, Tl-bearing pyrite ore samples from Riotinto mining district (Huelva, SW Spain) were experimentally fired to simulate a roasting process. Concentration and volatility behavior of Tl and other toxic heavy metals was determined by quantitative ICP-MS, whereas semi-quantitative mineral phase transitions were identified by in situ thermo X-Ray Diffraction (HT-XRD) and Scanning Electron Microscopy with Energy Dispersive Spectroscopy (SEM-EDS) analyses after each firing temperature. Sample with initial highest amount of quartz (higher Si content), lowest quantity of pyrite and traces of jarosite (lower S content) developed hematite and concentrated Tl (from 10 up to 72 mg kg(-1)) after roasting at 900 degrees C in an oxidizing atmosphere. However, samples with lower or absent quartz content and higher pyrite amount mainly developed magnetite, accumulating Tl between 400 and 500 degrees C and releasing Tl from 700 up to 900 degrees C (from 10-29 mg kg(-1) down to 4-1 mg kg(-1)). These results show the varied accumulative, or volatile, behaviors of one of the most toxic elements for life and environment, in which oxidation of Tl-bearing Fe sulfides produce Fe oxides wastes with or without Tl. The initial chemistry and mineralogy of pyrite ores should be taken into account in coal-fired power stations, cement or sulfuric acid production industry involving pyrite roasting processes, and steel, brick or paint industries, which use iron ore from roasted pyrite ash, where large amounts of Ti entail significant environmental pollution. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:447 / 460
页数:14
相关论文
共 40 条
[1]  
[Anonymous], MINER ENG, V13, P973
[2]   THERMAL-ANALYSIS OF CHALCOPYRITE ROASTING REACTIONS [J].
BAYER, G ;
WIEDEMANN, HG .
THERMOCHIMICA ACTA, 1992, 198 (02) :303-312
[3]   In situ high-temperature phase transformation studies on pyrite [J].
Bhargava, S. K. ;
Garg, A. ;
Subasinghe, N. D. .
FUEL, 2009, 88 (06) :988-993
[4]  
Blanco M.D. Ferrero, 1999, CAPITALISMO MINERO R
[5]   A LABORATORY STUDY OF THE PARTITIONING OF TRACE-ELEMENTS DURING PULVERIZED COAL COMBUSTION [J].
BOOL, LE ;
HELBLE, JJ .
ENERGY & FUELS, 1995, 9 (05) :880-887
[6]   Local impacts of coal mines and power plants across Canada. I. Thallium in waters and sediments [J].
Cheam, V ;
Garbai, G ;
Lechner, J ;
Rajkumar, J .
WATER QUALITY RESEARCH JOURNAL OF CANADA, 2000, 35 (04) :581-607
[7]   Environmental exposure and flux of thallium by industrial activities utilizing thallium-bearing pyrite [J].
Chen YongHeng ;
Wang ChunLin ;
Liu Juan ;
Wang Jin ;
Qi JianYing ;
Wu YingJuan .
SCIENCE CHINA-EARTH SCIENCES, 2013, 56 (09) :1502-1509
[8]   REPEATED SURVEILLANCE OF EXPOSURE TO THALLIUM IN A POPULATION LIVING IN THE VICINITY OF A CEMENT PLANT EMITTING DUST CONTAINING THALLIUM [J].
DOLGNER, R ;
BROCKHAUS, A ;
EWERS, U ;
WIEGAND, H ;
MAJEWSKI, F ;
SODDEMANN, H .
INTERNATIONAL ARCHIVES OF OCCUPATIONAL AND ENVIRONMENTAL HEALTH, 1983, 52 (01) :79-94
[9]   A FOURIER-TRANSFORM INFRARED STUDY OF THE OXIDATION OF PYRITE - THE INFLUENCES OF EXPERIMENTAL-VARIABLES [J].
DUNN, JG ;
GONG, W ;
SHI, D .
THERMOCHIMICA ACTA, 1993, 215 :247-254
[10]  
Fergusson JE., 1990, HEAVY ELEMENTS CHEM