Batch extraction method to estimate total dissolved solids (TDS) release from coal refuse and overburden

被引:5
作者
Castillo-Meza, L. E. [1 ,2 ]
Cravotta, C. A. [3 ]
Tasker, T. L. [1 ,4 ]
Warner, N. R. [1 ]
Daniels, W. L. [5 ]
Orndorff, Z. W. [5 ]
Bergstresser, T. [6 ]
Douglass, A. [6 ]
Kimble, G. [6 ]
Streczywilk, J. [6 ]
Barton, C. [7 ]
Fulton, S. [8 ]
Thompson, A. [8 ]
Burgos, W. D. [1 ]
机构
[1] Penn State Univ, Dept Civil & Environm Engn, 212 Sackett Bldg, University Pk, PA 16802 USA
[2] Univ Pontificia Bolivarina, Dept Environm Engn, Bucaramanga, Colombia
[3] US Geol Survey, 215 Limekiln Rd, New Cumberland, PA 17070 USA
[4] St Francis Univ, Dept Environm Engn, 117 Evergreen Dr, Loretto, PA 15940 USA
[5] Virginia Tech, Sch Plant & Environm Sci, Blacksburg, VA 24061 USA
[6] Geochem Testing, 2005 N Ctr Ave, Somerset, PA 15501 USA
[7] Univ Kentucky, Dept Forestry & Nat Resources, 203 Thomas Poe Cooper Bldg, Lexington, KY 40546 USA
[8] Univ Georgia, Dept Crop & Soil Sci, 3111 Miller Plant Sci Bldg, Athens, GA 30602 USA
关键词
Coal mining; Salinization; Reclamation; MARCELLUS SHALE; WATER-QUALITY; FRESH-WATER; CONSTITUENTS; PENNSYLVANIA; DISCHARGES; PRESSURE; ISOTOPE;
D O I
10.1016/j.apgeochem.2020.104540
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A rapid batch extraction method was evaluated to estimate potential for total dissolved solids (TDS) release by 65 samples of rock from coal and gas-bearing strata of the Appalachian Basin in eastern USA. Three different extractant solutions were considered: deionized water (DI), DI equilibrated with 10% CO2 atmosphere (DI thorn CO2), or 30% H2O2 under 10% CO2 (H2O2+CO2). In all extractions, 10 g of pulverized rock (<0.5-mm) were mixed with 20 mL of extractant solution and shaken for 4 h at 50 rpm and 20-22 degrees C. The 65 rock samples were classified as coal (n =3), overburden (n = 17), coal refuse that had weathered in the field (n = 14), unleached coal refuse that had oxidized during indoor storage (n = 20), gas-bearing shale (n = 10), and pyrite (n = 1). Extracts were analyzed for specific conductance (SC), TDS, pH, and major and trace elements, and subsequently speciated to determine ionic contributions to SC. The pH of extractant blanks decreased in the order DI (6.0), DI thorn CO2 (5.1), and H2O2+CO2 (2.6). The DI extractant was effective for mobilizing soluble SO4 and Cl salts. The DI thorn CO2 extractant increased weathering of carbonates and resulted in equivalent or greater TDS than the DI leach of the same material. The H2O2+CO2 extractant increased weathering of sulfides (and carbonates) and resulted in the greatest TDS production and lowest pH values. Of the 65 samples, 19 had leachate chemistry data from previous column experiments and 35 were paired to 10 field sites with leachate chemistry data. When accounting for the water-to-rock ratio, TDS from DI and DI thorn CO2 extractions were correlated to TDS from column experiments while TDS from H2O2+CO2 extractions was not. In contrast to column experiments, field SC was better correlated to SC measured from H2O2+CO2 extractions than DI extractions. The field SC and SC from H2O2+CO2 extractions were statistically indistinguishable for 7 of 9 paired data sets while SC from DI extractions underestimated field SC in 5 of 9 cases. Upscaling comparisons suggest that (1) weathering reactions in the field are more aggressive than DI water or synthetic rainwater extractants used in batch or column tests, and (2) a batch extraction method utilizing 30% H2O2 (which is mildly acidic without CO2 enrichment) could be effective for identifying rocks that will release high amounts of TDS.
引用
收藏
页数:16
相关论文
共 52 条
[1]   Water Quality Characteristics of Discharge from Reforested Loose-Dumped Mine Spoil in Eastern Kentucky [J].
Agouridis, Carmen T. ;
Angel, Patrick N. ;
Taylor, Timothy J. ;
Barton, Christopher D. ;
Warner, Richard C. ;
Yu, Xia ;
Wood, Constance .
JOURNAL OF ENVIRONMENTAL QUALITY, 2012, 41 (02) :454-468
[2]  
[Anonymous], 2013, CRC HDB CHEM PHYS
[3]   Multicomponent diffusion of a suite of tracers (HTO, Cl, Br, I, Na, Sr, Cs) in asingle sample of Opalinus Clay [J].
Appelo, C. A. J. ;
Van Loon, L. R. ;
Wersin, P. .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2010, 74 (04) :1201-1219
[4]  
ASTM, 2017, STAND TEST METH TOT, DOI [10.1520/D4839-03R17, DOI 10.1520/D4839-03R17]
[5]  
Barnhisel R.I., 1976, ESTIMATING LIME REQU
[6]  
Barrett A.P.a.S., 2015, 25000000 SETTLEMENT
[7]   How Many Mountains Can We Mine? Assessing the Regional Degradation of Central Appalachian Rivers by Surface Coal Mining [J].
Bernhardt, Emily S. ;
Lutz, Brian D. ;
King, Ryan S. ;
Fay, John P. ;
Carter, Catherine E. ;
Helton, Ashley M. ;
Campagna, David ;
Amos, John .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2012, 46 (15) :8115-8122
[8]  
Brady K.B.C., 1998, COAL MINE DRAINAGE P, P375
[9]   Geochemical and Strontium Isotope Characterization of Produced Waters from Marcellus Shale Natural Gas Extraction [J].
Chapman, Elizabeth C. ;
Capo, Rosemary C. ;
Stewart, Brian W. ;
Kirby, Carl S. ;
Hammack, Richard W. ;
Schroeder, Karl T. ;
Edenborn, Harry M. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2012, 46 (06) :3545-3553
[10]   Mineralogical influences on water quality from weathering of surface coal mine spoils [J].
Clark, Elyse V. ;
Daniels, W. Lee ;
Zipper, Carl E. ;
Eriksson, Kenneth .
APPLIED GEOCHEMISTRY, 2018, 91 :97-106