Articles
  • Effects of blending bagasse with an aluminosilicate-based additive on bagasse ash properties
  • Ji Yeon Parka,b, Byoung-In Sangb, Kwonho Jeonc, Sangmin Choic, Byoungdae Minc and Jin Hyung Leea,*

  • aKorea Institute of Ceramic Engineering and Technology, Cheongju 28160, Republic of Korea
    bDepartment of Chemical Engineering, Hanyang University, Seoul 04763, Republic of Korea
    cBlue Ocean Industry, Inc., Gunsan 54002, Republic of Korea

  • This article is an open access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

References
  • 1. Y. Wang, Y. Liu, Z. Xu, K. Yin, Y. Zhou, J. Zhang, P. Cui, S. Ma, Y. Wang, and Z. Zhu, Renew. Sust. Energy Rev. 189 (2024) 114015.
  •  
  • 2. D. Glushkov, G. Nyashina, R. Anand, and P. Strizhak, Process Saf. Environ. Prot. 156 (2021) 43-56.
  •  
  • 3. Y. Zhu, Y. Niu, H. Tan, and X. Wang, Front. Energy Res. 2 (2014) 7.
  •  
  • 4. X. Wei, U. Schnell, and K.R. Hein, Fuel 84[7-8] (2005) 841-848.
  •  
  • 5. M. Broström, H. Kassman, A. Helgesson, M. Berg, C. Andersson, R. Backman, and A. Nordin, Fuel Process. Technol. 88[11-12] (2007) 1171-1177.
  •  
  • 6. A.-L. Elled, K. Davidsson, and L.-E. Åmand, Biomass Bioenergy 34[11] (2010) 1546-1554.
  •  
  • 7. A. Mlonka-Mędrala, A. Magdziarz, I. Kalemba-Rec, and W. Nowak, Energy Convers. Manage. 187 (2019) 15-28.
  •  
  • 8. Y. Niu, H. Tan, X. Wang, Z. Liu, Y. Liu, and T. Xu, Energy Fuels 24[3] (2010) 2127-2132.
  •  
  • 9. Biomass Magazine, Efficient cleaning of sustainable biomass boilers (2022).
  •  
  • 10. F. Li, B. Yu, W. Zhao, J. Wang, M. Xu, H. Fan, J. Huang, and Y. Fang, Fuel 323 (2022) 124446.
  •  
  • 11. F. Li, C. Zhao, H. Fan, M. Xu, Q. Guo, Y. Li, L. Wu, T. Wang, and Y. Fang, Energy 251 (2022) 123912.
  •  
  • 12. Z. Yang, F. Li, M. Ma, H. Fan, X. Liu, and Y. Fang, J. Environ. Chem. Eng. 12[3] (2024) 112863.
  •  
  • 13. Y. Wang, L. Jia, B. Guo, B. Wang, L. Zhang, X. Zheng, J. Xiang, and Y. Jin, Waste Manage. 145 (2022) 83-91.
  •  
  • 14. Z. Yang, F. Li, M. Ma, W. Zhao, X. Liu, Y. Wang, Z. Li, and Y. Fang, Waste Manage. 174 (2024) 328-339.
  •  
  • 15. H. Wang, T. Zhou, X. Tan, N. Hu, Y. Wang, H. Yang, and M. Zhang, Fuel 356 (2024) 129586.
  •  
  • 16. Y. Liu, W. Tan, S. Liang, and X. Pan, Fuel 358 (2024) 130068.
  •  
  • 17. H. Mörtenkötter, M. Kulkarni, L. Fuchs, F. Kerscher, S. Fendt, and H. Spliethoff, Fuel 374 (2024) 132471.
  •  
  • 18. J.H. Park, D.-H. Lee, K.-H. Han, J.-S. Shin, D.-H. Bae, T.-E. Shim, J.H. Lee, and D. Shun, Fuel 236 (2019) 792-802.
  •  
  • 19. J. Zhang, H. Gao, D. Lian, N. Luo, J. Wu, and C. Wang, J. Ceram. Process. Res. 26[2] (2025) 209-218.
  •  
  • 20. S. Shanmugam, S. Mahalingam, and A. Ranjithkumar, J. Ceram. Process. Res. 24[3] (2023) 495-502.
  •  
  • 21. J. Pettersson, C. Pettersson, N. Folkeson, L.G. Johansson, E. Skog, and J.E. Svensson, Materials Science Forum 522-523 (2006) 563-370.
  •  
  • 22. Y. Kawahara, Corros. Sci. 44[2] (2002) 223-245.
  •  
  • 23. P. Henderson, P. Szakalos, R. Pettersson, C. Andersson, and J. Högberg, Mater. Corros. 57[2] (2006) 128-134.
  •  
  • 24. K. Khantisopon, S. Singh, J. Jitputti, C.C. Berndt, and A.S. Ang, High Temp. Corros. Mater. 101 (2024) 1-55.
  •  
  • 25. J.R. Keiser, W. Sharp, and D.L. Singbeil, Tappi J. 13[8] (2014) 51-63.
  •  
  • 26. Z. Ahmad, in “Principles of corrosion engineering and corrosion control” (Elsevier, 2006)
  •  
  • 27. S. Zhang, Y. Su, K. Ding, and H. Zhang, Energy 186 (2019) 115888.
  •  
  • 28. S.B. Saleh, B.B. Hansen, P.A. Jensen, and K. Dam-Johansen, Energy Fuels 27[12] (2013) 7541-7548.
  •  
  • 29. L. Wang, J.E. Hustad, Ø. Skreiberg, G. Skjevrak, and M. Grønli, Energy Procedia 20 (2012) 20-29.
  •  
  • 30. Í.W. França, S.J. Cartaxo, M. Bastos-Neto, L.R. Gonçalves, and F.A. Fernandes, Emiss. Control Sci. Technol. 6 (2020) 105-112.
  •  
  • 31. G. Mahmoudzadeha, S.A. Khorramia, S.S. Madania, and M. Frounchib, J. Ceram. Process. Res. 13[4] (2012) 368-372.
  •  
  • 32. H. Murray, Clay Miner. 34[1] (1999) 39-49.
  •  
  • 33. F. Bergaya and G. Lagaly, Dev. Clay Sci. 1 (2006) 1-18.
  •  
  • 34. M.G. Xavier and S.F. Banda, Orient. J. Chem. 32 (2016) 2401-2406.
  •  
  • 35. C. Chen, Y. Huang, S. Qin, D. Huang, X. Bu, and H. Huang, Energy 194 (2020) 116889.
  •  
  • 36. T. Zeng, A. Pollex, N. Weller, V. Lenz, and M. Nelles, Fuel 212 (2018) 108-116.
  •  
  • 37. Y. Fan, Q. Lyu, Z. Zhu, and H. Zhang, J. Energy Inst. 93[4] (2020) 1651-1665.
  •  
  • 38. A. Anukam, S. Mamphweli, P. Reddy, E. Meyer, and O. Okoh, Renew. Sust. Energy Rev. 66 (2016) 775-801.
  •  
  • 39. M.M. Tun, D. Juchelková, M.M. Win, A.M. Thu, and T. Puchor, Resour. 8[2] (2019) 81.
  •  
  • 40. K. Mroczek, S. Kalisz, M. Pronobis, and J. Sołtys, Fuel Process. Technol. 92[5] (2011) 845-855.
  •  
  • 41. F. Li, X. Wang, C. Zhao, Y. Li, M. Guo, H. Fan, Q. Guo, and Y. Fang, Bioresour. Technol. 299 (2020) 122515.
  •  
  • 42. W. Yang, D. Pudasainee, R. Gupta, W. Li, Z. Song, B. Wang, and L. Sun, Energy Fuels 34[12] (2020) 15399-15410.
  •  
  • 43. ASTM D3172-13, Standard practice for proximate analysis of coal and coke (2021).
  •  
  • 44. ASTM D7582-15, Standard test methods for proximate analysis of coal and coke by macro thermogravimetric analysis (2023).
  •  
  • 45. ISO16993:2015, Solid biofuels – Conversion of analytical results from one basis to another (2015).
  •  
  • 46. ISO 21404:2020, Solid biofuels – Determination of ash melting behavior (2020).
  •  
  • 47. R. García, C. Pizarro, A. Álvarez, A.G. Lavín, and J.L. Bueno, Fuel 148 (2015) 152-159.
  •  
  • 48. M. Reinmöller, M. Klinger, M. Schreiner, and H. Gutte, Fuel 151 (2015) 118-123.
  •  
  • 49. T. Rizvi, P. Xing, M. Pourkashanian, L. Darvell, J. Jones, and W. Nimmo, Fuel 141 (2015) 275-284.
  •  
  • 50. T. Bridgeman, L. Darvell, J. Jones, P. Williams, R. Fahmi, A. Bridgwater, T. Barraclough, I. Shield, N. Yates, and S. Thain, Fuel 86[1-2] (2007) 60-72.
  •  
  • 51. A. Garcia-Maraver, J. Mata-Sanchez, M. Carpio, and J.A. Perez-Jimenez, J. Energy Inst. 90[2] (2017) 214-228.
  •  
  • 52. M. Erol, H. Haykiri-Acma, and S. Küçükbayrak, Renew. Energy 35[1] (2010) 170-173.
  •  
  • 53. E. Virmond, R.L. Schacker, W. Albrecht, C.A. Althoff, M. de Souza, R.F. Moreira, and H.J. José, Energy 36[6](2011) 3897-3906.
  •  
  • 54. R. Shao, X. Liu, H. Li, and H. Zhou, Ceram. Int. 49[22](2023) 34603-34615.
  •  
  • 55. D.S. Clery, P.E. Mason, C.M. Rayner, and J.M. Jones, Fuel 214 (2018) 647-655.
  •  
  • 56. P. Lu, Q. Huang, A.T. Bourtsalas, N.J. Themelis, Y. Chi, and J. Yan, J. Environ. Sci. 78 (2019) 13-28.
  •  
  • 57. X. Li, F. He, F. Behrendt, Z. Gao, J. Shi, and C. Li, Fuel 289 (2021) 119754.
  •  
  • 58. H. Tan, J. Ceram. Process. Res. 13[6] (2012) 767-769.
  •  
  • 59. N. Brachhold and C.G. Aneziris, Int. J. Appl. Ceram. Technol. 10[4] (2013) 707-715.
  •  
  • 60. L.J. Roberts, P.E. Mason, J.M. Jones, W.F. Gale, A. Williams, A. Hunt, and J. Ashman, Biomass Bioenergy 127 (2019) 105284.
  •  

This Article

  • 2025; 26(4): 559-566

    Published on Aug 31, 2025

  • 10.36410/jcpr.2025.26.4.559
  • Received on Apr 4, 2025
  • Revised on Jun 17, 2025
  • Accepted on Jun 18, 2025

Correspondence to

  • Jin Hyung Lee
  • Korea Institute of Ceramic Engineering and Technology, Cheongju 28160, Republic of Korea
    Tel : +82-43-913-1502

  • E-mail: leejinh1@kicet.re.kr