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NOx and H2S formation in the reductive zone of air-staged combustion of pulverized blended coals

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Abstract

Low NOx combustion of blended coals is widely used in coal-fired boilers in China to control NOx emission; thus, it is necessary to understand the formation mechanism of NOx and H2S during the combustion of blended coals. This paper focused on the investigation of reductive gases in the formation of NOx and H2S in the reductive zone of blended coals during combustion. Experiments with Zhundong (ZD) and Commercial (GE) coal and their blends with different mixing ratios were conducted in a drop tube furnace at 1200°C–1400°C with an excessive air ratio of 0.6–1.2. The coal conversion and formation characteristics of CO, H2S, and NOx in the fuelrich zone were carefully studied under different experimental conditions for different blend ratios. Blending ZD into GE was found to increase not only the coal conversion but also the concentrations of CO and H2S as NO reduction accelerated. Both the CO and H2S concentrations inblended coal combustion increase with an increase in the combustion temperature and a decrease in the excessive air ratio. Based on accumulated experimental data, one interesting finding was that NO and H2S from blended coal combustion were almost directly dependent on the CO concentration, and the CO concentration of the blended coal combustion depended on the single char gasification conversion.Thus, CO, NOx, and H2S formation characteristics from blended coal combustion can be well predicted by single char gasification kinetics.

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References

  1. Jiang L, Fridley D, Lu H, Price L, Zhou N. Has coal use peaked in China: near-term trends in China’s coal consumption? Energy Policy, 2018, 123(12): 208–214

    Google Scholar 

  2. Su S, Pohl JH, Holcombe D, Hart J. Techniques to determine ignition, flame stability and burnout of blended coals in p.f. power station boilers. Progress in Energy and Combustion Science, 2001, 27(1): 75–98

    Google Scholar 

  3. Peralta D, Paterson NP, Dugwell DR, Kandiyoti R. Coal blend performance during pulverised-fuel combustion: estimation of relative reactivities by a bomb-calorimeter test. Fuel, 2001, 80(11): 1623–1634

    Google Scholar 

  4. Chi T, Zhang H, Yan Y, Zhou H, Zheng H. Investigations into the ignition behaviors of pulverized coals and coal blends in a drop tube furnace using flame monitoring techniques. Fuel, 2010, 89(3): 743–751

    Google Scholar 

  5. Lee B, Kim S, Song J, Chang Y, Jeon C. Influence of coal blending methods on unburned carbon and NO emissions in a drop-tube furnace. Energy & Fuels, 2011, 25(11): 5055–5062

    Google Scholar 

  6. Se HB, Ho YP, Sung HK. The effect of the coal blending method in a coal fired boiler on carbon in ash and NOx emission. Fuel, 2014, 128(7): 62–70

    Google Scholar 

  7. Wang C, Liu Y, Zhang X, Che D. A study on coal properties and combustion characteristics of blended coals in northwestern China. Energy & Fuels, 2011, 25(8): 3634–3645

    Google Scholar 

  8. Hu L, Zhang Y, Chen D, Fang J, Zhang M, Wu Y, Zhang H, Li Z, Lyu J. Experimental study on the combustion and NOx emission characteristics of a bituminous coal blended with semi-coke. Applied Thermal Engineering, 2019, 160(1): 113993

    Google Scholar 

  9. Chen G, Ma X, Lin M, Peng X, Yu Z. Pollutant emission characteristics and interaction during low-temperature oxidation of blended coal. Journal of the Energy Institute, 2016, 89(1): 40–47

    Google Scholar 

  10. Faúndez J, Arias B, Rubiera F, Arenillas A, García X, Gordon AL, Pis JJ. Ignition characteristics of coal blends in an entrained flow furnace. Fuel, 2007, 86(14): 2076–2080

    Google Scholar 

  11. Shen CH, Chen WH, Hsu HW, Sheu JY, Hsieh TH. Cogasification performance of coal and petroleum coke blends in a pilot-scale pressurized entrained-flow gasifier. International Journal of Energy Research, 2012, 36(4): 499–508

    Google Scholar 

  12. Zhang Z, Li Z, Cai N. Formation of reductive and corrosive gases during air-staged combustion of blends of anthracite/sub-bituminous coals. Energy & Fuels, 2016, 30(5): 4353–4362

    Google Scholar 

  13. Chi T, Yan Y, Shan Z. Quantification of the ignitability of pulverized coals and coal blends through advanced flame monitoring. In: Instrumentation and Measurement Technology Conference, Graz, Austria, 2012: 2391–2394

    Google Scholar 

  14. Lee SW. Source profiles of particulate matter emissions from a pilot-scale boiler burning North American coal blends. Journal of the Air & Waste Management Association, 2001, 51(11): 1568–1578

    Google Scholar 

  15. Su S, Pohl JH, Holcombe D. Fouling propensities of blended coals in pulverized coal-fired power station boilers. Fuel, 2003, 82(13): 1653–1667

    Google Scholar 

  16. Ghenai C, Janajreh I. CFD analysis of the effects of co-firing biomass with coal. Energy Conversion and Management, 2010, 51(8): 1694–1701

    Google Scholar 

  17. Hou LY, Fu WB. Integral numerical investigation on combustion of blended coal in revolving cement kiln. Combustion Science and Technology, 2000, 161(1): 309–321

    Google Scholar 

  18. Zhang Z, Wu Y, Chen D, Shen H, Li Z, Cai N, Zhou M, Smith ST, Thornock JN, Isaac BJ. A semi-empirical NOx model for LES in pulverized coal air-staged combustion. Fuel, 2019, 241(4): 402–409

    Google Scholar 

  19. Chen D, Zhang Z, Li Z, Cai N. Online deposition measurement and slag bubble behavior in the reduction zone of pulverized coal staged combustion. Proceedings of the Combustion Institute, 2019, 37(4): 4435–4442

    Google Scholar 

  20. Zhang Z, Li Z, Cai N. Reduced-order model of char burning for CFD modeling. Combustion and Flame, 2016, 165(3): 83–96

    Google Scholar 

  21. Liu H, Liu Y, Yi G, Nie L, Che D. Effects of air staging conditions on the combustion and NOx emission characteristics in a 600 MW wall fired utility boiler using lean coal. Energy & Fuels, 2013, 27(10): 5831–5840

    Google Scholar 

  22. Fan W, Lin Z, Li Y, Zhang M. Experimental flow field characteristics of OFA for large-angle counter flow of fuel-rich jet combustion technology. Applied Energy, 2010, 87(8): 2737–2745

    Google Scholar 

  23. Zhang X, Zhou J, Sun S, Sun R, Qin M. Numerical investigation of low NOx combustion strategies in tangentially-fired coal boilers. Fuel, 2015, 142(2): 215–221

    Google Scholar 

  24. Modlinski N. Computational modeling of a utility boiler tangentially-fired furnace retrofitted with swirl burners. Fuel Processing Technology, 2010, 91(11): 1601–1608

    Google Scholar 

  25. Hill SC, Douglas Smoot L. Modeling of nitrogen oxides formation and destruction in combustion systems. Progress in Energy and Combustion Science, 2000, 26(4-6): 417–458

    Google Scholar 

  26. Shim H, Valentine JR, Davis KA, Seo S, Kim TH. Chemical kinetic modeling of hydrocarbon combustion. Fuel, 2008, 87(15-16): 3353–3361

    Google Scholar 

  27. Valentine JR, Shim H, Davis KA, Seo S, Kim TH. CFD evaluation of waterwall wastage in coal-fired utility boilers. Energy & Fuels, 2007, 21(1): 242–249

    Google Scholar 

  28. Masuda H. Dry dispersion of fine particles gaseous phase. Advanced Powder Technology, 2009, 20(2): 113–122

    Google Scholar 

  29. Calvert G, Ghadiri M, Tweedie R. Aerodynamic dispersion of cohesive powders: a review of understanding and technology. Advanced Powder Technology, 2009, 20(1): 4–16

    Google Scholar 

  30. Visser J. Van der Waals and other cohesive forces affecting powder fluidization. Powder Technology, 1989, 58(1): 1–10

    Google Scholar 

  31. Chen D, Fang J, Zhou M, Li Z, Cai N. Development of an online ash-deposition thermogravimetric analyzer for pulverized coal combustion. Energy & Fuels, 2018, 32(11): 11947–11960

    Google Scholar 

  32. Chen D, Zhang Z, Li Z, Lv Z, Cai N. Optimizing in-situ char gasification kinetics in reduction zone of pulverized coal air-staged combustion. Combustion and Flame, 2018, 194(8): 52–71

    Google Scholar 

  33. Smith S. Coal Combustion and Gasification. New York: Plenum Press, 1985

    Google Scholar 

  34. Keller F, Küster F, Meyer B. Determination of coal gasification kinetics from integral drop tube furnace experiments with steam and CO2. Fuel, 2018, 218(4): 425–438

    Google Scholar 

  35. Su S, Xiang J, Sun X, Zhang Z, Zheng C, Xu M. Mathematical modeling of nitric oxide destruction by reburning. Energy & Fuels, 2006, 20(4): 1434–1443

    Google Scholar 

  36. Shirai H, Ikeda M, Aramaki H. Characteristics of hydrogen sulfide formation in pulverized coal combustion. Fuel, 2013, 114(12): 114–119

    Google Scholar 

  37. Zhou C, Wang Y, Jin Q, Chen Q, Zhou Y. Mechanism analysis on the pulverized coal combustion flame stability and NOx emission in a swirl burner with deep air staging. Journal of the Energy Institute, 2019, 92(2): 298–310

    Google Scholar 

  38. Liu X, Luo Z, Yu C. Conversion of char-N into NOx and N2O during combustion of biomass char. Fuel, 2019, 242(4): 389–397

    Google Scholar 

  39. Zhang Z, Chen D, Li Z, Cai N, Imada J. Development of sulfur release and reaction model for computational fluid dynamics modeling in sub-bituminous coal combustion. Energy & Fuels, 2017, 31(2): 1383–1398

    Google Scholar 

  40. Zhou C, Sendt K, Haynes BS. Experimental and kinetic modelling study of H2S oxidation. Proceedings of the Combustion Institute, 2013, 34(1): 625–632

    Google Scholar 

  41. Cerru FG, Kronenburg A, Lindstedt RP. Systematically reduced chemical mechanisms for sulfur oxidation and pyrolysis. Combustion and Flame, 2006, 146(3): 437–455

    Google Scholar 

Download references

Acknowledgments

This work was supported by the National Natural Science Foundation of China (Grant No. 51976102).

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Correspondence to Zhenshan Li.

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Cai, J., Li, D., Chen, D. et al. NOx and H2S formation in the reductive zone of air-staged combustion of pulverized blended coals. Front. Energy 15, 4–13 (2021). https://doi.org/10.1007/s11708-020-0804-y

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  • DOI: https://doi.org/10.1007/s11708-020-0804-y

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