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Suppression of coal dust by microbially induced carbonate precipitation using Staphylococcus succinus

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Abstract

Coal dust from open-cast mines is a significant air pollutant; thus, dust particles and toxins contained in the dust are a severe threat to human health and ecosystems. Microbially induced carbonate precipitation (MICP) is a low-cost and environmentally friendly way to suppress coal dust. With high urease activity and tolerance to coal dust, a bacterial strain, Staphylococcus succinus J3, was isolated from soil in a mine area. Thus, in dust suppression experiments, we used coal dust dominated by fine granule particles (100–250 μm) from an open-cast mine. Consequently, four factors were identified: initial bacterial biomass, calcium concentration, urea concentration, and spraying frequency; we investigated their effects on MICP as a dust suppression technique using one-factor-at-a-time experiments. Maximum threshold broken wind speed (45.5 m s−1) and pressure (912 kPa) were obtained under the following condition: OD600 = 0.7, 40 mmol calcium, 6% (w/w) urea in the bonding solution which was sprayed five times in 35 days. Pearson correlation analysis described that urea concentration and spraying frequency both significantly positive correlations with the threshold broken wind speed and pressure via Pearson analysis. When the coal dust suppression process was complete, scanning electron microscopy (SEM) and energy-dispersive X-ray spectroscopy showed that a solidified layer of calcareous precipitate had formed on the surface of the dust. These results indicate that Staphylococcus succinus J3 has considerable potential for use in MICP as a coal dust suppression technique.

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References

  • Abliz A, Tiyip T, Sawut M (2016) Analysis of spatial distribution of soil heavy metal pollution in Zhundong open pit coal mining. China Mining Magazine 25:58–65 (In Chinese)

    Google Scholar 

  • Achal V, Mukherjee A, Basu PC, Reddy MS (2009) Strain improvement of Sporosarcina pasteurii for enhanced urease and calcite production. J Ind Microbiol Biotechnol 36:981–988

    CAS  Google Scholar 

  • Achal V, Pan X, Zhang D (2011) Remediation of copper-contaminated soil by Kocuria flava CR1, based on microbially induced calcite precipitation. Ecol Eng 37:1601–1605

    Google Scholar 

  • Akyüz M, Çabuk H (2009) Meteorological variations of PM2.5 / PM10 concentrations and particle-associated polycyclic aromatic hydrocarbons in the atmospheric environment of Zonguldak, Turkey. J Hazard Mater 170:13–21

    Google Scholar 

  • Bibi S, Oualha M, Ashfaq MY, Suleiman MT, Zouari N (2018) Isolation, differentiation and biodiversity of ureolytic bacteria of Qatari soil and their potential in microbially induced calcite precipitation (MICP) for soil stabilization. RSC Adv 8:854–863

    Google Scholar 

  • Birch GF, McCready S (2009) Catchment condition as a major control on the quality of receiving basin sediments (Sydney Harbour, Australia). Sci Total Environ 407:2820–2835

    CAS  Google Scholar 

  • Chen F, Deng C, Song W, Zhang D, Al-Misned FA, Mortuza MG, Gadd GM, Pan X (2016) Biostabilization of desert sands using bacterially induced calcite precipitation. Geomicrobiol J 33:243–249

    CAS  Google Scholar 

  • Cheng L, Shahin MA, Cord-Ruwisch R (2014) Bio-cementation of sandy soil using microbially induced carbonate precipitation for marine environments. Géotechnique 64:1010–1013

    Google Scholar 

  • De Muynck W, De Belie N, Verstraete W (2010) Microbial carbonate precipitation in construction materials: A review. Ecol Eng 36:118–136

    Google Scholar 

  • Dixon-Hardy DW, Beyhan S, Ediz IG, Erarslan K (2008) The use of oil refinery wastes as a dust suppression surfactant for use in mining. Environ Eng Sci 25:1189–1196

    CAS  Google Scholar 

  • Doley R, Barthakur M (2017) Biodegradation of naphthalene by Staphylococcus pasteuri RD2 isolated from oil contaminated soil. Int J Curr Microbiol App Sci 6:1310–1319

    Google Scholar 

  • Espitia-Pérez L, da Silva J, Espitia-Pérez P, Brango H, Salcedo-Arteaga S, Hoyos-Giraldo LS, de Souza CT, Dias JF, Agudelo-Castañeda D, Valdés Toscano A, Gómez-Pérez M, Henriques JAP (2018) Cytogenetic instability in populations with residential proximity to open-pit coal mine in Northern Colombia in relation to PM10 and PM2.5 levels. Ecotoxicol Environ Saf 148:453–466

    Google Scholar 

  • Gautam S, Patra AK, Sahu SP, Hitch M (2018) Particulate matter pollution in opencast coal mining areas: a threat to human health and environment. Int J Min Reclam Environ 32:75–92

    Google Scholar 

  • Gordobil O, Moriana R, Zhang L, Labidi J, Sevastyanova O (2016) Assesment of technical lignins for uses in biofuels and biomaterials: structure-related properties, proximate analysis and chemical modification. Ind Crop Prod 83:155–165

    CAS  Google Scholar 

  • Hendryx M, Ahern MM (2008) Relations between health indicators and residential proximity to coal mining in West Virginia. Am J Public Health 98:669–671

    Google Scholar 

  • Hu XM, Cheng WM, Wang DM (2014) Properties and applications of novel composite foam for blocking air leakage in coal mine. Russ J Appl Chem 87:1099–1108

    CAS  Google Scholar 

  • Jimenez-Lopez C, Jroundi F, Pascolini C, Rodriguez-Navarro C, Piñar-Larrubia G, Rodriguez-Gallego M, González-Muñoz MT (2008) Consolidation of quarry calcarenite by calcium carbonate precipitation induced by bacteria activated among the microbiota inhabiting the stone. Int Biodeterior Biodegradation 62:352–363

    CAS  Google Scholar 

  • Kannan L, Wheeler WC (2012) Maximum parsimony on phylogenetic networks. Algorithms Mol 7:9

    Google Scholar 

  • Kothai P, Prathibha P, Saradhi I, Pandit G, Puranik V (2009) Characterization of atmospheric particulate matter using pixe technique. Int J Environ Sci Eng 1:27–30

    Google Scholar 

  • Kumari D, Qian X-Y, Pan X, Achal V, Li Q, Gadd GM (2016) Microbially-induced carbonate precipitation for immobilization of toxic metals. Adv Appl Microbiol 94:79–108

    CAS  Google Scholar 

  • Kuram R (2013) Studies on physico-chemical characteristics and microbial diversity of top-soil collected from proposed coal mining area of Latehar district. Dissertation, National Institute of Technology, India.

  • Kurth L, Kolker A, Engle M, Geboy N, Hendryx M, Orem W, McCawley M, Crosby L, Tatu C, Varonka M, DeVera C (2015) Atmospheric particulate matter in proximity to mountaintop coal mines: sources and potential environmental and human health impacts. Environ Geochem Health 37:529–544

    CAS  Google Scholar 

  • Li F, Liu X, Zhao D, Wang B, Jin J, Hu D (2011) Evaluating and modeling ecosystem service loss of coal mining: a case study of Mentougou district of Beijing, China. Ecol Complex 8:139–143

    Google Scholar 

  • Li M, Cheng X, Guo H (2013) Heavy metal removal by biomineralization of urease producing bacteria isolated from soil. Inter Biodeter Biodegradation 76:81–85

    CAS  Google Scholar 

  • Lu X, Zhu H, Wang D (2017) Investigation on the new design of foaming device used for dust suppression in underground coal mines. Powder Technol 315:270–275

    CAS  Google Scholar 

  • Mandal K, Kumar A, Tripathi N, Singh RS, Chaulya SK, Mishra PK, Bandyopadhyay LK (2012) Characterization of different road dusts in opencast coal mining areas of India. Environ Monit Assess 184:3427–3441

    CAS  Google Scholar 

  • McConnaughey TA, Whelan JF (1997) Calcification generates protons for nutrient and bicarbonate uptake. Earth-Sci Rev 42:95–117

    CAS  Google Scholar 

  • Mortensen BM, Haber MJ, DeJong JT, Caslake LF, Nelson DC (2011) Effects of environmental factors on microbial induced calcium carbonate precipitation. J Appl Microbiol 111:338–349

    CAS  Google Scholar 

  • Naidoo G, Chirkoot D (2004) The effects of coal dust on photosynthetic performance of the mangrove, Avicennia marina in Richards Bay, South Africa. Environ Pollut 127:359–366

    CAS  Google Scholar 

  • Ng WS, Lee ML, Hii SL (2012) An overview of the factors affecting microbial-induced calcite precipitation and its potential application in soil improvement. World Acad Sci Eng Technol 62:723–729

    Google Scholar 

  • Nie W, Ma X, Cheng W, Liu Y, Xin L, Peng H, Wei W (2016) A novel spraying/negative-pressure secondary dust suppression device used in fully mechanized mining face: a case study. Process Saf Environ Prot 103:126–135

    CAS  Google Scholar 

  • Prostański D (2013) Use of air-and-water spraying systems for improving dust control in mines. J Sustain Min 12:29–34

    Google Scholar 

  • Qian D, Yan C, Xing Z, Xiu L (2017) Monitoring coal mine changes and their impact on landscape patterns in an alpine region: a case study of the Muli coal mine in the Qinghai-Tibet Plateau. Environ Monit Assess 189:559

    Google Scholar 

  • Rai PK (2016) Impacts of particulate matter pollution on plants: implications for environmental biomonitoring. Ecotoxicol Environ Saf 129:120–136

    CAS  Google Scholar 

  • Sawut R, Tiyip T, Abliz A, Kasim N, Nurmemet I, Sawut M, Tashpolat N, Ablimit A (2017) Using regression model to identify and evaluate heavy metal pollution sources in an open pit coal mine area, Eastern Junggar, China. Environ Earth Sci 76:822

    Google Scholar 

  • Sethy K, Behera N (2012) Antimicrobial activity of thermotolerant bacterial isolate from coal mine spoil. Afr J Microbiol Res 6:5459–5463

    Google Scholar 

  • Shi X, He F (2012) The environmental pollution perception of residents in coal mining areas: a case study in the Hancheng mine area, Shaanxi Province, China. Environ Manag 50:505–513

    Google Scholar 

  • Srimuruganandam B, Shiva Nagendra SM (2012) Source characterization of PM10 and PM2.5 mass using a chemical mass balance model at urban roadside. Sci Total Environ 433:8–19

    CAS  Google Scholar 

  • Stocks-Fischer S, Galinat JK, Bang SS (1999) Microbiological precipitation of CaCO3. Soil Biol Biochem 31:1563–1571

    CAS  Google Scholar 

  • Stuut J-B, Prins M (2014) The significance of particle size of long-range transported mineral dust. PAGES News 22:14–15

    Google Scholar 

  • Weichenthal SA, Godri-Pollitt K, Villeneuve PJ (2013) PM2.5, oxidant defence and cardiorespiratory health: a review. Environ Health 12:40

    Google Scholar 

  • World Energy Council (2016) World energy resources. World Energy Council, London

    Google Scholar 

  • Yakovleva EV, Gabov DN, Beznosikov VA, Kondratenok BM (2016) Accumulation of polycyclic aromatic hydrocarbons in soils and plants of the tundra zone under the impact of coal-mining industry. Eurasian Soil Sci 49:1319–1328

    CAS  Google Scholar 

  • Yao F, Bao A, Guli J, Yin J, Li C, Zhang G (2013) Soil heavy metal sources and pollution assessment in the coalfield of East Junggar Basin in XinJiang, China. China Environ Sci 33:1821–1828 (In Chinese)

    CAS  Google Scholar 

  • Zhang Y, Guo HX, Cheng XH (2014) Influences of calcium sources on microbially induced carbonate precipitation in porous media. Mater Res Innov 18:S2–79-S2-84

    Google Scholar 

  • Zhao Q, Li L, Li C, Li M, Amini F, Zhang H (2014) Factors affecting improvement of engineering properties of MICP-treated soil catalyzed by bacteria and urease. J Mater Civ Eng 26:04014094

    Google Scholar 

  • Zhou Q, Qin B, Ma D, Jiang N (2017) Novel technology for synergetic dust suppression using surfactant-magnetized water in underground coal mines. Process Saf Environ Prot 109:631–638

    CAS  Google Scholar 

Download references

Funding

This work was supported by the Key Research and Development Plan of XinJiang Uygur Autonomous Region (2016B03042-2) and granted from the Youth Innovation Promotion Association of the Chinese Academy of Sciences (Grant no: 2017478).

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Correspondence to Wenjuan Song or Xiangliang Pan.

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Song, W., Yang, Y., Qi, R. et al. Suppression of coal dust by microbially induced carbonate precipitation using Staphylococcus succinus . Environ Sci Pollut Res 26, 35968–35977 (2019). https://doi.org/10.1007/s11356-019-06488-x

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