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Research Article

Ash melting and slagging and residual K ion content in biomass pellet combustion

, , , , , & show all
Pages 3324-3337 | Received 03 May 2023, Accepted 14 Jul 2023, Published online: 11 Mar 2024

References

  • Blomberg, T. 2012. Correlation of the corrosion rates of steels in a straw fired boiler with the thermodynamically predicted trend of KOH(g) in the flue gases. Biomass and Bioenergy 39:489–493. doi:10.1016/j.biombioe.2012.01.016.
  • Bostrom, D., N. Skoglund, A. Grimm, C. Boman, M. Ohman, M. Brostrom, and R. Backman. 2012. Ash transformation chemistry during combustion of biomass. Energy & Fuels 26 (1):85–93. doi:10.1021/ef201205b.
  • Chen, C., Z. Y. Luo, and C. J. Yu. 2019. Release and transformation mechanisms of trace elements during biomass combustion. Journal of Hazardous Materials 380:9. doi:10.1016/j.jhazmat.2019.120857.
  • Deng, L., J. Jiang, Y. Tie, S. Ma, G. Fan, T. Zhu, and D. Che. 2022. Potassium transformation and release during biomass combustion. The Canadian Journal of Chemical Engineering 101 (1):337–46. doi:10.1002/cjce.24359.
  • Dinesha, P., S. Kumar, and M. A. Rosen. 2019. Biomass briquettes as an alternative fuel: A comprehensive review. Energy Technology 7 (5). doi: 10.1002/ente.201801011.
  • Gilvari, H., W. de Jong, and D. L. Schott. 2019. Quality parameters relevant for densification of bio-materials: Measuring methods and affecting factors - a review. Biomass and Bioenergy 120:117–134. doi:10.1016/j.biombioe.2018.11.013.
  • Hernandez Solorzano, L. C., C. A. Forero Nuñez, and F. E. Sierra. 2017. Biomass densification: A review of the market and recent R&D trends. Tecciencia 12 (23):81–92. doi:10.18180/tecciencia.2017.23.10.
  • Iftikhar, M., A. Asghar, N. Ramzan, B. Sajjadi, and W.-Y. Chen. 2019. Biomass densification: Effect of cow dung on the physicochemical properties of wheat straw and rice husk based biomass pellets. Biomass and Bioenergy 122:1–16. doi:10.1016/j.biombioe.2019.01.005.
  • Jiao, F., N. Kinoshita, M. Kawaguchi, M. Asada, M. Honda, K. Sueki, Y. Ninomiya, D. Sergeev, M. Bläsing, and M. Müller. 2017. Vaporization behavior of Cs, K, and Na in Cs-containing incineration bottom ash during thermal treatment with CaCl2 and CaO. Energy & Fuels 31 (12):14045–52. doi:10.1021/acs.energyfuels.7b02930.
  • Karkania, V., E. Fanara, and A. Zabaniotou. 2012. Review of sustainable biomass pellets production – a study for agricultural residues pellets’ market in Greece. Renewable and Sustainable Energy Reviews 16 (3):1426–1436. doi:10.1016/j.rser.2011.11.028.
  • Kou, L., J. Tang, T. Hu, B. Zhou, and L. Yang. 2021. Effect of CaO on catalytic combustion of semi-coke. Green Processing and Synthesis 10 (1):011–020. doi:10.1515/gps-2021-0002.
  • Lai, X., Z. Zhong, Z. Xue, and Y. Huang. 2020. Experimental study on enrichment of heavy metals by intercalation-exfoliation modified kaolin during coal combustion. Environmental Technology 41 (26):3464–72. doi:10.1080/09593330.2019.1611942.
  • Liao, Y. F., Y. W. Cao, T. Chen, and X. Q. Ma. 2015. Experiment and simulation study on alkalis transfer characteristic during direct combustion utilization of bagasse. Bioresource Technology 194:196–204. doi:10.1016/j.biortech.2015.06.121.
  • Liu, Y., Y. He, Z. Wang, J. Xia, K. Wan, R. Whiddon, and K. Cen. 2018. Characteristics of alkali species release from a burning coal/biomass blend. Applied Energy 215:523–531. doi:10.1016/j.apenergy.2018.02.015.
  • Liu, Q., W. Zhong, J. Zhou, and Z. Yu. 2022. Effects of S and al on K migration and transformation during coal and biomass co-combustion. American Chemical Society Omega 7 (18):15880–15891. doi:10.1021/acsomega.2c00994.
  • Niu, Y., H. Tan, and S. E. Hui. 2016. Ash-related issues during biomass combustion: Alkali-induced slagging, silicate melt-induced slagging (ash fusion), agglomeration, corrosion, ash utilization, and related countermeasures. Progress in Energy and Combustion Science 52:1–61. doi:10.1016/j.pecs.2015.09.003.
  • Pradhan, P., S. M. Mahajani, and A. Arora. 2018. Production and utilization of fuel pellets from biomass: A review. Fuel Processing Technology 181:215–232. doi:10.1016/j.fuproc.2018.09.021.
  • Qi, J. H., K. H. Han, Q. Wang, and J. Gao. 2017. Carbonization of biomass: Effect of additives on alkali metals residue, SO2 and NO emission of chars during combustion. Energy 130:560–569. doi:10.1016/j.energy.2017.04.109.
  • Ramin, B., Y., Ahmet, and A. Aysel. 2022. Co-combustion of high and low ash lignites with raw and torrefied biomass under air and oxy-fuel combustion atmospheres. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. doi:10.1080/15567036.2022.2038313.
  • Rawat, S., and S. Kumar. 2021. Critical review on processing technologies and economic aspect of bio-coal briquette production. Preparative Biochemistry & Biotechnology 52 (8):1–17. doi:10.1080/10826068.2021.2001754.
  • Ribeiro, J. P., E. D. Vicente, C. Alves, X. Querol, F. Amato, and L. A. Tarelho. 2017. Characteristics of ash and particle emissions during bubbling fluidised bed combustion of three types of residual forest biomass. Environmental Science and Pollution Research International 24 (11):10018–29. doi:10.1007/s11356-016-8099-6.
  • Roy, P., A. Dutta, B. Acharya, and B. Deen. 2018. An investigation of raw and torrefied lignocellulosic biomasses with CaO during combustion. Journal of the Energy Institute 91 (4):584–594. doi:10.1016/j.joei.2017.03.002.
  • Rudolfsson, M., E. Borén, L. Pommer, A. Nordin, and T. A. Lestander. 2017. Combined effects of torrefaction and pelletization parameters on the quality of pellets produced from torrefied biomass. Applied Energy 191:414–424. doi:10.1016/j.apenergy.2017.01.035.
  • Shi, W.-J., L.-X. Kong, J. Bai, J. Xu, W.-C. Li, Z.-Q. Bai, and W. Li. 2018. Effect of CaO/Fe2O3 on fusion behaviors of coal ash at high temperatures. Fuel Processing Technology 181:18–24. doi:10.1016/j.fuproc.2018.09.007.
  • Song, W. J., L. H. Tang, X. D. Zhu, Y. Q. Wu, Z. B. Zhu, and S. Koyama. 2010. Effect of coal ash composition on ash fusion temperatures†. Energy & Fuels 24 (1):182–189. doi:10.1021/ef900537m.
  • Tang, Q., G. Liu, C. Zhou, and R. Sun. 2013. Distribution of trace elements in feed coal and combustion residues from two coal-fired power plants at Huainan, Anhui, China. Fuel 107:315–322. doi:10.1016/j.fuel.2013.01.009.
  • Wang, T., T. Fu, K. Chen, R. Cheng, S. Chen, J. Liu, M. Mei, J. Li, and Y. Xue. 2020. Co-combustion behavior of dyeing sludge and rice husk by using TG-MS: Thermal conversion, gas evolution, and kinetic analyses. Bioresource Technology 311:123527. doi:10.1016/j.biortech.2020.123527.
  • Wang, T., Y. Zhai, H. Li, Y. Zhu, S. Li, C. Peng, B. Wang, Z. Wang, Y. Xi, S. Wang, et al. 2018. Co-hydrothermal carbonization of food waste-woody biomass blend towards biofuel pellets production. Bioresource Technology 267:371–77. doi:10.1016/j.biortech.2018.07.059.
  • Wei, J., M. Wang, D. Xu, L. Shi, B. Li, Y. Bai, G. Yu, W. Bao, J. Xu, H. Zhang, et al. 2022. Migration and transformation of alkali/alkaline earth metal species during biomass and coal co-gasification: A review. Fuel Processing Technology 235:107376. doi:10.1016/j.fuproc.2022.107376.
  • Wu, D., Y. Wang, Y. Wang, S. Li, and X. Wei. 2016. Release of alkali metals during co-firing biomass and coal. Renewable Energy 96:91–97. doi:10.1016/j.renene.2016.04.047.
  • Xing, P., L. I. Darvell, J. M. Jones, L. Ma, M. Pourkashanian, and A. Williams. 2016. Experimental and theoretical methods for evaluating ash properties of pine and El cerrejon coal used in co-firing. Fuel 183:39–54. doi:10.1016/j.fuel.2016.06.036.
  • Xing, P., P. E. Mason, S. Chilton, S. Lloyd, J. M. Jones, A. Williams, W. Nimmo, and M. Pourkashanian. 2016. A comparative assessment of biomass ash preparation methods using X-ray fluorescence and wet chemical analysis. Fuel 182:161–65. doi:10.1016/j.fuel.2016.05.081.
  • Yang, W., D. Pudasainee, R. Gupta, W. Li, Z. Song, B. Wang, and L. Sun. 2020. Particulate emission from municipal solid waste combustion: Effect of si–Al-based additives for its mitigation. Energy & Fuels 34 (12):15399–15410. doi:10.1021/acs.energyfuels.0c02183.
  • Yang, W., Y. Zhu, Y. Li, W. Cheng, W. Zhang, H. Yang, Z. Tan, and H. Chen. 2022. Mitigation of particulate matter emissions from co-combustion of rice husk with cotton stalk or cornstalk. Renewable Energy 190:893–902. doi:10.1016/j.renene.2022.03.157.
  • Zha, J., Y. Huang, W. Xia, Z. Xia, C. Liu, L. Dong, and L. Liu. 2018. Effect of mineral reaction between calcium and aluminosilicate on heavy metal behavior during sludge incineration. Fuel 229:241–47. doi:10.1016/j.fuel.2018.05.015.
  • Zha, J., Y. Huang, Z. Zhu, M. Yu, P. T. Clough, Y. Yan, L. Dong, and H. Cheng. 2021. Dynamic transformations of metals in the burning solid matter during combustion of heavy metal-contaminated biomass. ACS Sustainable Chemistry & Engineering 9 (20):7063–7073. doi:10.1021/acssuschemeng.1c01048.
  • Zhang, J., J. Li, Y. Mao, J. Bi, M. Zhu, Z. Zhang, L. Zhang, and D. Zhang. 2017. Effect of CaCO3 addition on ash sintering behaviour during K2CO3 catalysed steam gasification of a Chinese lignite. Applied Thermal Engineering 111:503–09. doi:10.1016/j.applthermaleng.2016.09.111.
  • Zhou, C., G. Liu, S. Wu, and P. K. Lam. 2014. The environmental characteristics of usage of coal gangue in bricking-making: A case study at Huainan, China. Chemosphere 95:274–80. doi:10.1016/j.chemosphere.2013.09.004.
  • Zhou, C., G. Liu, Z. Yan, T. Fang, and R. Wang. 2012. Transformation behavior of mineral composition and trace elements during coal gangue combustion. Fuel 97:644–650. doi:10.1016/j.fuel.2012.02.027.
  • Zhou, Y., Z. Zhang, Y. Zhang, Y. Wang, Y. Yu, F. Ji, R. Ahmad, and R. Dong. 2016. A comprehensive review on densified solid biofuel industry in China. Renewable and Sustainable Energy Reviews 54:1412–28. doi:10.1016/j.rser.2015.09.096.
  • Zhu, G., L. Yang, Y. Gao, J. Xu, H. Chen, Y. Zhu, Y. Wang, C. Liao, C. Lu, and C. Zhu. 2019. Characterization and pelletization of cotton stalk hydrochar from HTC and combustion kinetics of hydrochar pellets by TGA. Fuel 244:479–91. doi:10.1016/j.fuel.2019.02.039.
  • Zhu, Y., H. Zhang, Y. Niu, H. Xu, X. Zhang, S. E. Hui, and H. Tan. 2017. Experiment study on ash fusion characteristics of cofiring straw and sawdust. Energy & Fuels 32 (1):525–31. doi:10.1021/acs.energyfuels.7b03104.

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