67
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

An experimental investigation into sifting and fluidization segregation characteristics for coal fly ash

, &

References

  • Alkassar, Y., V. K. Agarwal, R. K. Pandey, and N. Behera. 2021. Analysis of dense phase pneumatic conveying of fly ash using CFD including particle size distribution. Particulate Science and Technology 39 (3): 322–37. doi:10.1080/02726351.2020.1727592.
  • Antoni, Juan, Satria, Agung, Sugiarto, Djwantoro, Hardjito, 2017. Effect of variability of fly ash obtained from the same source on the characteristics of geopolymer. MATEC Web of Conferences97 (February 1): 01026. doi:10.1051/matecconf/20179701026.
  • ASTM Standard, C618-15. 2015. Standard specification for coal fly ash and raw or calcined natural pozzolona for use in concrete, West Conshohocken, PA: ASTM International. www.astm.org
  • ASTM Standard, D6941-12. 2012. Standard Practice for Measuring Fluidization Segregation Tendencies of Powders, West Conshohocken, PA: ASTM International. www.astm.org
  • ASTM Standard, D6940-10. 2010. Standard Practice for Measuring Sifting Segregation Tendencies of Bulk Solids, West Conshohocken, PA: ASTM International. www.astm.org
  • ASTM Standard, D7481-10. 2010. Standard Test Methods for Determining Loose and Tapped Bulk Densities of Powders Using a Graduated Cylinder, West Conshohocken, PA: ASTM International. www.astm.org
  • Behjani, M. A. 2018. Numerical Simulation of Segregation of Formulated Powder Mixtures. http://etheses.whiterose.ac.uk/23706/
  • Beakawi Al-Hashemi, H. M., and O. S. Baghabra Al-Amoudi. 2018. A review on the angle of repose of granular materials. Powder Technology 330: 397–417. doi:10.1016/j.powtec.2018.02.003.
  • Behjani, M. A., A. Hassanpour, M. Ghadiri, and A. Bayly. 2017a. Numerical analysis of the effect of particle shape and adhesion on the segregation of powder mixtures. EPJ Web of Conferences 140 (June 30): 06024. doi:10.1051/epjconf/201714006024.
  • Behjani, M. A., N. Rahmanian, N. Fardina Bt Abdul Ghani, and A. Hassanpour. 2017b. An investigation on process of seeded granulation in a continuous drum granulator using DEM. Advanced Powder Technology 28 (10): 2456–64. doi:10.1016/j.apt.2017.02.011.
  • Carr, M. J., A. W. Roberts, and C. A. Wheeler. 2019. A revised methodology for the determination of bulk material cohesion and adhesion. Advanced Powder Technology 30 (10): 2110–6. doi:10.1016/j.apt.2019.06.025.
  • Deng, T., V. Garg, H. Salehi, and M. S. A. Bradley. 2021. Correlations between segregation intensity and material properties such as particle sizes and adhesions and novel methods for assessment. Powder Technology 387 (July): 215–26. doi:10.1016/j.powtec.2021.04.023.
  • Devriendt, L., C. Gatumel, and H. Berthiaux. 2013. Experimental evidence of mixture segregation by particle size distribution. Particulate Science and Technology 31 (6): 653–7. doi:10.1080/02726351.2013.832447.
  • Deng, T., K. A. Paul, M. S. A. Bradley, L. Immins, C. Preston, J. F. Scott, and E. H. Welfare. 2010. Investigations on air-induced segregation of pharmaceutical powders and effect of material flow functions. Powder Technology 203 (2):354–8. doi:10.1016/j.powtec.2010.05.028.
  • Engblom, N., H. Saxén, R. Zevenhoven, H. Nylander, and G. G. Enstad. 2012a. Segregation of powder mixtures at filling and complete discharge of silos. Powder Technology 215–216 (January):104–16. doi:10.1016/j.powtec.2011.09.033.
  • Engblom, N., H. Saxén, R. Zevenhoven, H. Nylander, and G. G. Enstad. 2012b. Segregation of construction materials in silos. Part 1: Experimental findings on different scales. Particulate Science and Technology 30 (2):145–60. doi:10.1080/02726351.2011.553880.
  • Engblom, N., H. Saxén, R. Zevenhoven, H. Nylander, and G. G. Enstad. 2012c. Segregation of construction materials in silos. Part 2: Identification of relevant segregation mechanisms. Particulate Science and Technology: An International Journal 30 (2):161–78. doi:10.1080/02726351.2011.552097.
  • Engblom, N., H. Saxén, R. Zevenhoven, H. Nylander, and G. G. Enstad. 2012d. Effects of process parameters and hopper angle on segregation of cohesive ternary powder mixtures in a small-scale cylindrical silo. Advanced Powder Technology 23 (5):566–79. doi:10.1016/j.apt.2011.06.003.
  • Fry, A. M., V. Vidyapati, J. P. Hecht, P. B. Umbanhowar, J. M. Ottino, and R. M. Lueptow. 2020. Measuring segregation characteristics of industrially relevant granular mixtures: part ii – experimental application and validation. Powder Technology 368 (1):278–85. doi:10.1016/j.powtec.2020.04.064.
  • Fan, Y., K. V. Jacob, B. Freireich, and R. M. Lueptow. 2017. Segregation of granular materials in bounded heap flow: a review. Powder Technology 312 (May):67–88. doi:10.1016/j.powtec.2017.02.026.
  • Fernández-Jiménez, A., and A. Palomo. 2003. Characterisation of fly ashes. Potential reactivity as alkaline cements. Fuel 82 (18):2259–65. doi:10.1016/S0016-2361(03)00194-7.
  • Garg, V., S. S. Mallick, P. Garcia-Trinanes, and R. J. Berry. 2018. An investigation into the flowability of fine powders used in pharmaceutical industries. Powder Technology 336 (August):375–82. doi:10.1016/j.powtec.2018.06.014.
  • Gernon, T. M., and M. A. Gilbertson. 2012. Segregation of particles in a tapered fluidized bed. Powder Technology 231 (vember):88–101. doi:10.1016/j.powtec.2012.07.053.
  • Hastie, D. B. 2015. On the difficulties of sampling bulk powder blends in determining segregation propensity—a case study. Powder Technology 286 (December):164–71. doi:10.1016/j.powtec.2015.08.013.
  • He, X., X. Han, N. Ladyzhynsky, and R. Deanne. 2013. Assessing powder segregation potential by near infrared (nir) spectroscopy and correlating segregation tendency to tabletting performance. Powder Technology 236 (February):85–99. doi:10.1016/j.powtec.2012.05.021.
  • Hogg, R. 2009. Mixing and segregation in powders: Evaluation, mechanisms and processes. KONA Powder and Particle Journal 27 (0):3–17. doi:10.14356/kona.2009005.
  • Jaklič, M., K. Kočevar, S. Srčič, and R. Dreu. 2015. Particle size-based segregation of pharmaceutical powders in a vertical chute with a closed bottom: An experimental evaluation. Powder Technology 278 (July):171–80. doi:10.1016/j.powtec.2015.03.021.
  • Jha, A. K., and V. M. Puri. 2011. Percolation Segregation in binary size mixtures under different shear and intensity of motion. Particulate Science and Technology 29 (5):481–92. doi:10.1080/02726351.2010.521233.
  • Jha, A. K., and V. M. Puri. 2010. Percolation segregation of multi-size and multi-component particulate materials. Powder Technology 197 (3):274–82. doi:10.1016/j.powtec.2009.10.004.
  • Jha, A. K., J. S. Gill, and V. M. Puri. 2008. Percolation segregation in binary size mixtures of spherical and angular-shaped particles of different densities. Particulate Science and Technology 26 (5):482–93. doi:10.1080/02726350802367902.
  • Kalman, H. 2022. Role of reynolds and archimedes numbers in particle-fluid flows. Reviews in Chemical Engineering 38 (2):149–65. doi:10.1515/revce-2020-0005.
  • Kazys, R., R. Sliteris, L. Mazeika, L. Van den Abeele, P. Nielsen, and R. Snellings. 2021. Ultrasonic monitoring of variations in dust concentration in a powder classifier. Powder Technology 381 (March):392–400. doi:10.1016/j.powtec.2020.11.072.
  • Ketterhagen, W. R., J. S. Curtis, C. R. Wassgren, A. Kong, P. J. Narayan, and B. C. Hancock. 2007. Granular segregation in discharging cylindrical hoppers: a discrete element and experimental study. Chemical Engineering Science 62 (22):6423–39. doi:10.1016/j.ces.2007.07.052.
  • Kiattikomol, K., C. Jaturapitakkul, S. Songpiriyakij, and S. Chutubtim. 2001. A study of ground coarse fly ashes with different finenesses from various sources as pozzolanic materials. Cement and Concrete Composites 23 (4-5):335–43. doi:10.1016/S0958-9465(01)00016-6.
  • Lanzerstorfer, C. 2018. Fly ash from coal combustion: dependence of the concentration of various elements on the particle size. Fuel 228 (March):263–71. doi:10.1016/j.fuel.2018.04.136.
  • Lumay, G., F. Boschini, R. Cloots, and N. Vandewalle. 2013. Cascade of granular flows for characterizing segregation. Powder Technology 234 (January):32–6. doi:10.1016/j.powtec.2012.09.028.
  • Lumay, G., F. Boschini, K. Traina, S. Bontempi, J.-C. Remy, R. Cloots, and N. Vandewalle. 2012. Measuring the flowing properties of powders and grains. Powder Technology 224 (July):19–27. doi:10.1016/j.powtec.2012.02.015.
  • Marucci, M., B. Al-Saaigh, C. Boissier, M. Wahlgren, and H. Wikström. 2018. Sifting segregation of ideal blends in a two-hopper tester : segregation pro files and segregation magnitudes. Powder Technology 331:60–7. doi:10.1016/j.powtec.2018.01.070.
  • Miller, B. G. 2005. CHAPTER 3 - The effect of coal usage on human health and the environment. In Coal Energy Systems, ed. B. G. Miller, 77–122. Burlington: Academic Press. doi:10.1016/b978-012497451-7/50.003-6.
  • Oka, S., A. Sahay, W. Meng, and F. Muzzio. 2017. Diminished segregation in continuous powder mixing. Powder Technology 309 (March):79–88. doi:10.1016/j.powtec.2016.11.038.
  • Snellings, R., H. Kazemi-Kamyab, P. Nielsen, and L. Van den Abeele. 2021. Classification and milling increase fly ash pozzolanic reactivity. Frontiers in Built Environment 7:1–13. doi:10.3389/fbuil.2021.670996.
  • Schulze, D. 2008. Powders and Bulk Solids. Heidelberg: Springer. doi:10.1002/cite.201090034.
  • Shah, K. R., S. I. Farag Badawy, M. M. Szemraj, D. B. Gray, and M. A. Hussain. 2007. Assessment of segregation potential of powder blends. Pharmaceutical Development and Technology 12 (5):457–62. doi:10.1080/10837450701556834.
  • Shinohara, K., and B. Golman. 2002. Segregation indices of multi-sized particle mixtures during the filling of a two-dimensional hopper. Advanced Powder Technology 13 (1):93–107. doi:10.1163/15685520252900974.
  • Stange, K. 1985a. Pneumech silo-solution for large-scale and long-term storage of fly ash. Bulk Solids Handling (Germany, Federal Republic of) 5 (2):407–16.
  • Stange, K. 1985b. Silo storage of fly ash in power stations and in the cement industry. Bulk Solids Handling (Germany, Federal Republic of) 5 (5):997–1006.
  • Tang, P., and V. M. Puri. 2007. Segregation quantification of two-component particulate mixtures: effect of particle size, density, shape, and surface texture. Particulate Science and Technology 25 (6):571–88. doi:10.1080/02726350701783977.
  • Tang, P., and V. M. Puri. 2005. An innovative device for quantification of percolation and sieving segregation patterns–single component and multiple size fractions. Particulate Science and Technology 23 (4):335–50. doi:10.1080/02726350500212871.
  • Tang, P., and V. M. Puri. 2004. Methods for minimising segregation: A review. Particulate Science and Technology 22 (4):321–37. doi:10.1080/02726350490501420.
  • Wattimena, O. K Antoni, and D. Hardjito. 2017. A Review on the effect of fly ash characteristics and their variations on the synthesis of fly ash based geopolymer. In AIP Conference Proceedings, 1887, 1–12. doi:10.1063/1.5003524.
  • Xing, Y., F. Guo, M. Xu, X. Gui, H. Li, G. Li, Y. Xia, and H. Han. 2019. Separation of Unburned Carbon from Coal Fly Ash: A Review. Powder Technology 353 (July):372–84. doi:10.1016/j.powtec.2019.05.037.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.